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			562 lines
		
	
	
		
			15 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			562 lines
		
	
	
		
			15 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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#include <libsolidity/formal/CHC.h>
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#ifdef HAVE_Z3
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#include <libsolidity/formal/Z3CHCInterface.h>
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#endif
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#include <libsolidity/formal/SymbolicTypes.h>
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#include <libsolidity/ast/TypeProvider.h>
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using namespace std;
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using namespace dev;
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using namespace langutil;
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using namespace dev::solidity;
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CHC::CHC(smt::EncodingContext& _context, ErrorReporter& _errorReporter):
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	SMTEncoder(_context),
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#ifdef HAVE_Z3
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	m_interface(make_shared<smt::Z3CHCInterface>()),
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#endif
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	m_outerErrorReporter(_errorReporter)
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{
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}
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void CHC::analyze(SourceUnit const& _source)
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{
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	solAssert(_source.annotation().experimentalFeatures.count(ExperimentalFeature::SMTChecker), "");
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#ifdef HAVE_Z3
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	auto z3Interface = dynamic_pointer_cast<smt::Z3CHCInterface>(m_interface);
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	solAssert(z3Interface, "");
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	m_context.setSolver(z3Interface->z3Interface());
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	m_context.clear();
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	m_context.setAssertionAccumulation(false);
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	m_variableUsage.setFunctionInlining(false);
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	_source.accept(*this);
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#endif
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}
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bool CHC::visit(ContractDefinition const& _contract)
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{
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	if (!shouldVisit(_contract))
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		return false;
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	reset();
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	if (!SMTEncoder::visit(_contract))
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		return false;
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	m_stateVariables = _contract.stateVariablesIncludingInherited();
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	for (auto const& var: m_stateVariables)
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		// SMT solvers do not support function types as arguments.
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		if (var->type()->category() == Type::Category::Function)
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			m_stateSorts.push_back(make_shared<smt::Sort>(smt::Kind::Int));
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		else
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			m_stateSorts.push_back(smt::smtSort(*var->type()));
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	string interfaceName = "interface_" + _contract.name() + "_" + to_string(_contract.id());
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	m_interfacePredicate = createBlock(interfaceSort(),	interfaceName);
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	// TODO create static instances for Bool/Int sorts in SolverInterface.
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	auto boolSort = make_shared<smt::Sort>(smt::Kind::Bool);
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	auto errorFunctionSort = make_shared<smt::FunctionSort>(
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		vector<smt::SortPointer>(),
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		boolSort
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	);
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	m_errorPredicate = createBlock(errorFunctionSort, "error");
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	// If the contract has a constructor it is handled as a function.
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	// Otherwise we zero-initialize all state vars.
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	// TODO take into account state vars init values.
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	if (!_contract.constructor())
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	{
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		string constructorName = "constructor_" + _contract.name() + "_" + to_string(_contract.id());
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		m_constructorPredicate = createBlock(constructorSort(), constructorName);
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		for (auto const& var: m_stateVariables)
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		{
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			auto const& symbVar = m_context.variable(*var);
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			symbVar->increaseIndex();
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			m_interface->declareVariable(symbVar->currentName(), *symbVar->sort());
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			m_context.setZeroValue(*symbVar);
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		}
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		smt::Expression constructorAppl = (*m_constructorPredicate)({});
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		m_interface->addRule(constructorAppl, constructorName);
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		smt::Expression constructorInterface = smt::Expression::implies(
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			constructorAppl && m_context.assertions(),
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			interface()
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		);
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		m_interface->addRule(constructorInterface, constructorName + "_to_" + interfaceName);
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	}
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	return true;
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}
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void CHC::endVisit(ContractDefinition const& _contract)
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{
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	if (!shouldVisit(_contract))
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		return;
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	auto errorAppl = (*m_errorPredicate)({});
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	for (auto const& target: m_verificationTargets)
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		if (query(errorAppl, target->location()))
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			m_safeAssertions.insert(target);
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	SMTEncoder::endVisit(_contract);
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}
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bool CHC::visit(FunctionDefinition const& _function)
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{
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	if (!shouldVisit(_function))
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		return false;
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	solAssert(!m_currentFunction, "Inlining internal function calls not yet implemented");
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	m_currentFunction = &_function;
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	initFunction(_function);
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	// Store the constraints related to variable initialization.
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	smt::Expression const& initAssertions = m_context.assertions();
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	createFunctionBlock(*m_currentFunction);
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	// Rule Interface -> FunctionEntry, uses no constraints.
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	smt::Expression interfaceFunction = smt::Expression::implies(
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		interface(),
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		predicateCurrent(m_currentFunction)
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	);
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	m_interface->addRule(
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		interfaceFunction,
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		m_interfacePredicate->currentName() + "_to_" + m_predicates.at(m_currentFunction)->currentName()
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	);
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	pushBlock(predicateCurrent(m_currentFunction));
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	createFunctionBlock(m_currentFunction->body());
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	// Rule FunctionEntry -> FunctionBody, also no constraints.
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	smt::Expression functionBody = smt::Expression::implies(
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		predicateEntry(m_currentFunction),
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		predicateBodyCurrent(&m_currentFunction->body())
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	);
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	m_interface->addRule(
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		functionBody,
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		m_predicates.at(m_currentFunction)->currentName() + "_to_" + m_predicates.at(&m_currentFunction->body())->currentName()
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	);
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	pushBlock(predicateBodyCurrent(&m_currentFunction->body()));
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	// We need to re-add the constraints that were created for initialization of variables.
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	m_context.addAssertion(initAssertions);
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	solAssert(m_functionBlocks == 0, "");
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	m_functionBlocks = 2;
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	SMTEncoder::visit(*m_currentFunction);
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	return false;
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}
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void CHC::endVisit(FunctionDefinition const& _function)
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{
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	if (!shouldVisit(_function))
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		return;
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	solAssert(m_currentFunction == &_function, "Inlining internal function calls not yet implemented");
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	// Create Function Exit block.
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	createFunctionBlock(*m_currentFunction);
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	// Rule FunctionBody -> FunctionExit.
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	smt::Expression bodyFunction = smt::Expression::implies(
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		predicateEntry(&_function.body()) && m_context.assertions(),
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		predicateCurrent(&_function)
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	);
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	m_interface->addRule(
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		bodyFunction,
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		m_predicates.at(&_function.body())->currentName() + "_to_" + m_predicates.at(&_function.body())->currentName()
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	);
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	// Rule FunctionExit -> Interface, uses no constraints.
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	smt::Expression functionInterface = smt::Expression::implies(
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		predicateCurrent(&_function),
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		interface()
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	);
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	m_interface->addRule(
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		functionInterface,
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		m_predicates.at(&_function)->currentName() + "_to_" + m_interfacePredicate->currentName()
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	);
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	m_currentFunction = nullptr;
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	solAssert(m_path.size() == m_functionBlocks, "");
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	for (unsigned i = 0; i < m_path.size(); ++i)
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		m_context.popSolver();
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	m_functionBlocks = 0;
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	m_path.clear();
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	SMTEncoder::endVisit(_function);
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}
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bool CHC::visit(IfStatement const& _if)
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{
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	solAssert(m_currentFunction, "");
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	bool unknownFunctionCallWasSeen = m_unknownFunctionCallSeen;
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	m_unknownFunctionCallSeen = false;
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	SMTEncoder::visit(_if);
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	if (m_unknownFunctionCallSeen)
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		eraseKnowledge();
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	m_unknownFunctionCallSeen = unknownFunctionCallWasSeen;
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	return false;
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}
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bool CHC::visit(WhileStatement const& _while)
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{
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	eraseKnowledge();
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	m_context.resetVariables(touchedVariables(_while));
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	return false;
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}
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bool CHC::visit(ForStatement const& _for)
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{
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	eraseKnowledge();
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	m_context.resetVariables(touchedVariables(_for));
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	return false;
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}
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void CHC::endVisit(FunctionCall const& _funCall)
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{
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	solAssert(_funCall.annotation().kind != FunctionCallKind::Unset, "");
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	if (_funCall.annotation().kind != FunctionCallKind::FunctionCall)
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	{
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		SMTEncoder::endVisit(_funCall);
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		return;
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	}
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	FunctionType const& funType = dynamic_cast<FunctionType const&>(*_funCall.expression().annotation().type);
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	switch (funType.kind())
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	{
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	case FunctionType::Kind::Assert:
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		visitAssert(_funCall);
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		SMTEncoder::endVisit(_funCall);
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		break;
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	case FunctionType::Kind::Internal:
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	case FunctionType::Kind::External:
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	case FunctionType::Kind::DelegateCall:
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	case FunctionType::Kind::BareCall:
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	case FunctionType::Kind::BareCallCode:
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	case FunctionType::Kind::BareDelegateCall:
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	case FunctionType::Kind::BareStaticCall:
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	case FunctionType::Kind::Creation:
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	case FunctionType::Kind::KECCAK256:
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	case FunctionType::Kind::ECRecover:
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	case FunctionType::Kind::SHA256:
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	case FunctionType::Kind::RIPEMD160:
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	case FunctionType::Kind::BlockHash:
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	case FunctionType::Kind::AddMod:
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	case FunctionType::Kind::MulMod:
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		SMTEncoder::endVisit(_funCall);
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		unknownFunctionCall(_funCall);
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		break;
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	default:
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		SMTEncoder::endVisit(_funCall);
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		break;
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	}
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	createReturnedExpressions(_funCall);
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}
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void CHC::visitAssert(FunctionCall const& _funCall)
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{
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	auto const& args = _funCall.arguments();
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	solAssert(args.size() == 1, "");
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	solAssert(args.front()->annotation().type->category() == Type::Category::Bool, "");
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	solAssert(!m_path.empty(), "");
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	smt::Expression assertNeg = !(m_context.expression(*args.front())->currentValue());
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	smt::Expression assertionError = smt::Expression::implies(
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		m_path.back() && m_context.assertions() && currentPathConditions() && assertNeg,
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		error()
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	);
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	string predicateName = "assert_" + to_string(_funCall.id());
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	m_interface->addRule(assertionError, predicateName + "_to_error");
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	m_verificationTargets.push_back(&_funCall);
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}
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void CHC::unknownFunctionCall(FunctionCall const&)
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{
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	/// Function calls are not handled at the moment,
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	/// so always erase knowledge.
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	/// TODO remove when function calls get predicates/blocks.
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	eraseKnowledge();
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	/// Used to erase outer scope knowledge in loops and ifs.
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	/// TODO remove when function calls get predicates/blocks.
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	m_unknownFunctionCallSeen = true;
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}
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void CHC::reset()
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{
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	m_stateSorts.clear();
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	m_stateVariables.clear();
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	m_verificationTargets.clear();
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	m_safeAssertions.clear();
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	m_unknownFunctionCallSeen = false;
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}
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void CHC::eraseKnowledge()
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{
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	resetStateVariables();
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	m_context.resetVariables([&](VariableDeclaration const& _variable) { return _variable.hasReferenceOrMappingType(); });
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}
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bool CHC::shouldVisit(ContractDefinition const& _contract) const
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{
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	if (
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		_contract.isLibrary() ||
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		_contract.isInterface()
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	)
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		return false;
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	return true;
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}
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bool CHC::shouldVisit(FunctionDefinition const& _function) const
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{
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	if (
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		_function.isPublic() &&
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		_function.isImplemented()
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	)
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		return true;
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	return false;
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}
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void CHC::pushBlock(smt::Expression const& _block)
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{
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	m_context.pushSolver();
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	m_path.push_back(_block);
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}
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void CHC::popBlock()
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{
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	m_context.popSolver();
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	m_path.pop_back();
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}
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smt::SortPointer CHC::constructorSort()
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{
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	solAssert(m_currentContract, "");
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	auto boolSort = make_shared<smt::Sort>(smt::Kind::Bool);
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	if (!m_currentContract->constructor())
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		return make_shared<smt::FunctionSort>(vector<smt::SortPointer>{}, boolSort);
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	return sort(*m_currentContract->constructor());
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}
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smt::SortPointer CHC::interfaceSort()
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{
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	auto boolSort = make_shared<smt::Sort>(smt::Kind::Bool);
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	return make_shared<smt::FunctionSort>(
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		m_stateSorts,
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		boolSort
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	);
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}
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smt::SortPointer CHC::sort(FunctionDefinition const& _function)
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{
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	if (m_nodeSorts.count(&_function))
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		return m_nodeSorts.at(&_function);
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	auto boolSort = make_shared<smt::Sort>(smt::Kind::Bool);
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	vector<smt::SortPointer> varSorts;
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	for (auto const& var: _function.parameters() + _function.returnParameters())
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		varSorts.push_back(smt::smtSort(*var->type()));
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	auto sort = make_shared<smt::FunctionSort>(
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		m_stateSorts + varSorts,
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		boolSort
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	);
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	return m_nodeSorts[&_function] = move(sort);
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}
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smt::SortPointer CHC::sort(Block const& _block)
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{
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	if (m_nodeSorts.count(&_block))
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		return m_nodeSorts.at(&_block);
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	solAssert(_block.scope() == m_currentFunction, "");
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	auto fSort = dynamic_pointer_cast<smt::FunctionSort>(sort(*m_currentFunction));
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	solAssert(fSort, "");
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	auto boolSort = make_shared<smt::Sort>(smt::Kind::Bool);
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	vector<smt::SortPointer> varSorts;
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	for (auto const& var: m_currentFunction->localVariables())
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		varSorts.push_back(smt::smtSort(*var->type()));
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	auto functionBodySort = make_shared<smt::FunctionSort>(
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		fSort->domain + varSorts,
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		boolSort
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	);
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	return m_nodeSorts[&_block] = move(functionBodySort);
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}
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unique_ptr<smt::SymbolicFunctionVariable> CHC::createBlock(smt::SortPointer _sort, string const& _name)
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{
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	auto block = make_unique<smt::SymbolicFunctionVariable>(
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		_sort,
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		_name,
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		m_context
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	);
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	m_interface->registerRelation(block->currentValue());
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	return block;
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}
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smt::Expression CHC::constructor()
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{
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	solAssert(m_currentContract, "");
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	if (!m_currentContract->constructor())
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		return (*m_constructorPredicate)({});
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	vector<smt::Expression> paramExprs;
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	for (auto const& var: m_currentContract->constructor()->parameters())
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		paramExprs.push_back(m_context.variable(*var)->currentValue());
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	return (*m_constructorPredicate)(paramExprs);
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}
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smt::Expression CHC::interface()
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{
 | 
						|
	vector<smt::Expression> paramExprs;
 | 
						|
	for (auto const& var: m_stateVariables)
 | 
						|
		paramExprs.push_back(m_context.variable(*var)->currentValue());
 | 
						|
	return (*m_interfacePredicate)(paramExprs);
 | 
						|
}
 | 
						|
 | 
						|
smt::Expression CHC::error()
 | 
						|
{
 | 
						|
	return (*m_errorPredicate)({});
 | 
						|
}
 | 
						|
 | 
						|
void CHC::createFunctionBlock(FunctionDefinition const& _function)
 | 
						|
{
 | 
						|
	if (m_predicates.count(&_function))
 | 
						|
	{
 | 
						|
		m_predicates.at(&_function)->increaseIndex();
 | 
						|
		m_interface->registerRelation(m_predicates.at(&_function)->currentValue());
 | 
						|
	}
 | 
						|
	else
 | 
						|
		m_predicates[&_function] = createBlock(
 | 
						|
			sort(_function),
 | 
						|
			predicateName(_function)
 | 
						|
		);
 | 
						|
}
 | 
						|
 | 
						|
void CHC::createFunctionBlock(Block const& _block)
 | 
						|
{
 | 
						|
	solAssert(_block.scope() == m_currentFunction, "");
 | 
						|
	if (m_predicates.count(&_block))
 | 
						|
	{
 | 
						|
		m_predicates.at(&_block)->increaseIndex();
 | 
						|
		m_interface->registerRelation(m_predicates.at(&_block)->currentValue());
 | 
						|
	}
 | 
						|
	else
 | 
						|
		m_predicates[&_block] = createBlock(
 | 
						|
			sort(_block),
 | 
						|
			predicateName(*m_currentFunction) + "_body"
 | 
						|
		);
 | 
						|
}
 | 
						|
 | 
						|
vector<smt::Expression> CHC::currentFunctionVariables()
 | 
						|
{
 | 
						|
	solAssert(m_currentFunction, "");
 | 
						|
	vector<smt::Expression> paramExprs;
 | 
						|
	for (auto const& var: m_stateVariables)
 | 
						|
		paramExprs.push_back(m_context.variable(*var)->currentValue());
 | 
						|
	for (auto const& var: m_currentFunction->parameters() + m_currentFunction->returnParameters())
 | 
						|
		paramExprs.push_back(m_context.variable(*var)->currentValue());
 | 
						|
	return paramExprs;
 | 
						|
}
 | 
						|
 | 
						|
vector<smt::Expression> CHC::currentBlockVariables()
 | 
						|
{
 | 
						|
	solAssert(m_currentFunction, "");
 | 
						|
	vector<smt::Expression> paramExprs;
 | 
						|
	for (auto const& var: m_currentFunction->localVariables())
 | 
						|
		paramExprs.push_back(m_context.variable(*var)->currentValue());
 | 
						|
	return currentFunctionVariables() + paramExprs;
 | 
						|
}
 | 
						|
 | 
						|
string CHC::predicateName(FunctionDefinition const& _function)
 | 
						|
{
 | 
						|
	string functionName = _function.isConstructor() ?
 | 
						|
		"constructor" :
 | 
						|
		_function.isFallback() ?
 | 
						|
			"fallback" :
 | 
						|
			"function_" + _function.name();
 | 
						|
	return functionName + "_" + to_string(_function.id());
 | 
						|
}
 | 
						|
 | 
						|
smt::Expression CHC::predicateCurrent(ASTNode const* _node)
 | 
						|
{
 | 
						|
	return (*m_predicates.at(_node))(currentFunctionVariables());
 | 
						|
}
 | 
						|
 | 
						|
smt::Expression CHC::predicateBodyCurrent(ASTNode const* _node)
 | 
						|
{
 | 
						|
	return (*m_predicates.at(_node))(currentBlockVariables());
 | 
						|
}
 | 
						|
 | 
						|
smt::Expression CHC::predicateEntry(ASTNode const* _node)
 | 
						|
{
 | 
						|
	solAssert(!m_path.empty(), "");
 | 
						|
	return (*m_predicates.at(_node))(m_path.back().arguments);
 | 
						|
}
 | 
						|
 | 
						|
bool CHC::query(smt::Expression const& _query, langutil::SourceLocation const& _location)
 | 
						|
{
 | 
						|
	smt::CheckResult result;
 | 
						|
	vector<string> values;
 | 
						|
	tie(result, values) = m_interface->query(_query);
 | 
						|
	switch (result)
 | 
						|
	{
 | 
						|
	case smt::CheckResult::SATISFIABLE:
 | 
						|
		break;
 | 
						|
	case smt::CheckResult::UNSATISFIABLE:
 | 
						|
		return true;
 | 
						|
	case smt::CheckResult::UNKNOWN:
 | 
						|
		break;
 | 
						|
	case smt::CheckResult::CONFLICTING:
 | 
						|
		m_outerErrorReporter.warning(_location, "At least two SMT solvers provided conflicting answers. Results might not be sound.");
 | 
						|
		break;
 | 
						|
	case smt::CheckResult::ERROR:
 | 
						|
		m_outerErrorReporter.warning(_location, "Error trying to invoke SMT solver.");
 | 
						|
		break;
 | 
						|
	}
 | 
						|
	return false;
 | 
						|
}
 |