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			264 lines
		
	
	
		
			6.6 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			264 lines
		
	
	
		
			6.6 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/EncodingContext.h>
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#include <libsolidity/formal/SymbolicTypes.h>
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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::smt;
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EncodingContext::EncodingContext():
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	m_thisAddress(make_unique<SymbolicAddressVariable>("this", *this))
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{
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	auto sort = make_shared<ArraySort>(
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		make_shared<Sort>(Kind::Int),
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		make_shared<Sort>(Kind::Int)
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	);
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	m_balances = make_unique<SymbolicVariable>(sort, "balances", *this);
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}
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void EncodingContext::reset()
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{
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	resetAllVariables();
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	m_expressions.clear();
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	m_globalContext.clear();
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	m_thisAddress->resetIndex();
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	m_balances->resetIndex();
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	m_assertions.clear();
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}
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void EncodingContext::clear()
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{
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	m_variables.clear();
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	reset();
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}
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/// Variables.
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shared_ptr<SymbolicVariable> EncodingContext::variable(frontend::VariableDeclaration const& _varDecl)
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{
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	solAssert(knownVariable(_varDecl), "");
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	return m_variables[&_varDecl];
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}
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bool EncodingContext::createVariable(frontend::VariableDeclaration const& _varDecl)
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{
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	solAssert(!knownVariable(_varDecl), "");
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	auto const& type = _varDecl.type();
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	auto result = newSymbolicVariable(*type, _varDecl.name() + "_" + to_string(_varDecl.id()), *this);
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	m_variables.emplace(&_varDecl, result.second);
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	return result.first;
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}
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bool EncodingContext::knownVariable(frontend::VariableDeclaration const& _varDecl)
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{
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	return m_variables.count(&_varDecl);
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}
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void EncodingContext::resetVariable(frontend::VariableDeclaration const& _variable)
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{
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	newValue(_variable);
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	setUnknownValue(_variable);
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}
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void EncodingContext::resetVariables(set<frontend::VariableDeclaration const*> const& _variables)
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{
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	for (auto const* decl: _variables)
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		resetVariable(*decl);
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}
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void EncodingContext::resetVariables(function<bool(frontend::VariableDeclaration const&)> const& _filter)
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{
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	for_each(begin(m_variables), end(m_variables), [&](auto _variable)
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	{
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		if (_filter(*_variable.first))
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			this->resetVariable(*_variable.first);
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	});
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}
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void EncodingContext::resetAllVariables()
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{
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	resetVariables([&](frontend::VariableDeclaration const&) { return true; });
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}
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Expression EncodingContext::newValue(frontend::VariableDeclaration const& _decl)
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{
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	solAssert(knownVariable(_decl), "");
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	return m_variables.at(&_decl)->increaseIndex();
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}
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void EncodingContext::setZeroValue(frontend::VariableDeclaration const& _decl)
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{
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	solAssert(knownVariable(_decl), "");
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	setZeroValue(*m_variables.at(&_decl));
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}
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void EncodingContext::setZeroValue(SymbolicVariable& _variable)
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{
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	setSymbolicZeroValue(_variable, *this);
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}
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void EncodingContext::setUnknownValue(frontend::VariableDeclaration const& _decl)
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{
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	solAssert(knownVariable(_decl), "");
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	setUnknownValue(*m_variables.at(&_decl));
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}
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void EncodingContext::setUnknownValue(SymbolicVariable& _variable)
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{
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	setSymbolicUnknownValue(_variable, *this);
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}
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/// Expressions
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shared_ptr<SymbolicVariable> EncodingContext::expression(frontend::Expression const& _e)
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{
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	if (!knownExpression(_e))
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		createExpression(_e);
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	return m_expressions.at(&_e);
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}
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bool EncodingContext::createExpression(frontend::Expression const& _e, shared_ptr<SymbolicVariable> _symbVar)
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{
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	solAssert(_e.annotation().type, "");
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	if (knownExpression(_e))
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	{
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		expression(_e)->increaseIndex();
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		return false;
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	}
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	else if (_symbVar)
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	{
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		m_expressions.emplace(&_e, _symbVar);
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		return false;
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	}
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	else
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	{
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		auto result = newSymbolicVariable(*_e.annotation().type, "expr_" + to_string(_e.id()), *this);
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		m_expressions.emplace(&_e, result.second);
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		return result.first;
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	}
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}
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bool EncodingContext::knownExpression(frontend::Expression const& _e) const
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{
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	return m_expressions.count(&_e);
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}
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/// Global variables and functions.
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shared_ptr<SymbolicVariable> EncodingContext::globalSymbol(string const& _name)
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{
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	solAssert(knownGlobalSymbol(_name), "");
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	return m_globalContext.at(_name);
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}
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bool EncodingContext::createGlobalSymbol(string const& _name, frontend::Expression const& _expr)
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{
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	solAssert(!knownGlobalSymbol(_name), "");
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	auto result = newSymbolicVariable(*_expr.annotation().type, _name, *this);
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	m_globalContext.emplace(_name, result.second);
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	setUnknownValue(*result.second);
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	return result.first;
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}
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bool EncodingContext::knownGlobalSymbol(string const& _var) const
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{
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	return m_globalContext.count(_var);
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}
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// Blockchain
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Expression EncodingContext::thisAddress()
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{
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	return m_thisAddress->currentValue();
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}
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Expression EncodingContext::balance()
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{
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	return balance(m_thisAddress->currentValue());
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}
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Expression EncodingContext::balance(Expression _address)
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{
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	return Expression::select(m_balances->currentValue(), move(_address));
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}
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void EncodingContext::transfer(Expression _from, Expression _to, Expression _value)
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{
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	unsigned indexBefore = m_balances->index();
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	addBalance(_from, 0 - _value);
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	addBalance(_to, move(_value));
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	unsigned indexAfter = m_balances->index();
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	solAssert(indexAfter > indexBefore, "");
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	m_balances->increaseIndex();
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	/// Do not apply the transfer operation if _from == _to.
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	auto newBalances = Expression::ite(
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		move(_from) == move(_to),
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		m_balances->valueAtIndex(indexBefore),
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		m_balances->valueAtIndex(indexAfter)
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	);
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	addAssertion(m_balances->currentValue() == newBalances);
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}
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/// Solver.
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Expression EncodingContext::assertions()
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{
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	if (m_assertions.empty())
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		return Expression(true);
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	return m_assertions.back();
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}
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void EncodingContext::pushSolver()
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{
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	if (m_accumulateAssertions)
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		m_assertions.push_back(assertions());
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	else
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		m_assertions.push_back(smt::Expression(true));
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}
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void EncodingContext::popSolver()
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{
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	solAssert(!m_assertions.empty(), "");
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	m_assertions.pop_back();
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}
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void EncodingContext::addAssertion(Expression const& _expr)
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{
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	if (m_assertions.empty())
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		m_assertions.push_back(_expr);
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	else
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		m_assertions.back() = _expr && move(m_assertions.back());
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}
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/// Private helpers.
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void EncodingContext::addBalance(Expression _address, Expression _value)
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{
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	auto newBalances = Expression::store(
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		m_balances->currentValue(),
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		_address,
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		balance(_address) + move(_value)
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	);
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	m_balances->increaseIndex();
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	addAssertion(newBalances == m_balances->currentValue());
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}
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