mirror of
https://github.com/ethereum/solidity
synced 2023-10-03 13:03:40 +00:00
450 lines
15 KiB
C++
450 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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// SPDX-License-Identifier: GPL-3.0
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/**
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* Common code generator for translating Yul / inline assembly to Wasm.
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*/
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#include <libyul/backends/wasm/WasmCodeTransform.h>
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#include <libyul/backends/wasm/WasmDialect.h>
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#include <libyul/AST.h>
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#include <libyul/Dialect.h>
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#include <libyul/Utilities.h>
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#include <libyul/Exceptions.h>
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#include <liblangutil/Exceptions.h>
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#include <optional>
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#include <limits>
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using namespace std;
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using namespace solidity;
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using namespace solidity::yul;
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using namespace solidity::util;
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wasm::Module WasmCodeTransform::run(Dialect const& _dialect, yul::Block const& _ast)
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{
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wasm::Module module;
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TypeInfo typeInfo(_dialect, _ast);
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WasmCodeTransform transform(_dialect, _ast, typeInfo);
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for (auto const& statement: _ast.statements)
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{
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yulAssert(
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holds_alternative<yul::FunctionDefinition>(statement),
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"Expected only function definitions at the highest level."
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);
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if (holds_alternative<yul::FunctionDefinition>(statement))
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module.functions.emplace_back(transform.translateFunction(std::get<yul::FunctionDefinition>(statement)));
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}
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for (auto& imp: transform.m_functionsToImport)
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module.imports.emplace_back(std::move(imp.second));
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module.globals = transform.m_globalVariables;
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return module;
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}
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wasm::Expression WasmCodeTransform::generateMultiAssignment(
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vector<string> _variableNames,
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unique_ptr<wasm::Expression> _firstValue
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)
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{
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yulAssert(!_variableNames.empty(), "");
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wasm::LocalAssignment assignment{move(_variableNames.front()), std::move(_firstValue)};
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if (_variableNames.size() == 1)
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return { std::move(assignment) };
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vector<wasm::Type> typesForGlobals;
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for (size_t i = 1; i < _variableNames.size(); ++i)
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typesForGlobals.push_back(translatedType(m_typeInfo.typeOfVariable(YulString(_variableNames[i]))));
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vector<size_t> allocatedIndices = allocateGlobals(typesForGlobals);
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yulAssert(allocatedIndices.size() == _variableNames.size() - 1, "");
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wasm::Block block;
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block.statements.emplace_back(move(assignment));
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for (size_t i = 1; i < _variableNames.size(); ++i)
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block.statements.emplace_back(wasm::LocalAssignment{
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move(_variableNames.at(i)),
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make_unique<wasm::Expression>(wasm::GlobalVariable{m_globalVariables.at(allocatedIndices[i - 1]).variableName})
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});
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return { std::move(block) };
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}
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wasm::Expression WasmCodeTransform::operator()(yul::VariableDeclaration const& _varDecl)
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{
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vector<string> variableNames;
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for (auto const& var: _varDecl.variables)
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{
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variableNames.emplace_back(var.name.str());
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m_localVariables.emplace_back(wasm::VariableDeclaration{variableNames.back(), translatedType(var.type)});
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}
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if (_varDecl.value)
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return generateMultiAssignment(move(variableNames), visit(*_varDecl.value));
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else
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return wasm::BuiltinCall{"nop", {}};
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}
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wasm::Expression WasmCodeTransform::operator()(yul::Assignment const& _assignment)
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{
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vector<string> variableNames;
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for (auto const& var: _assignment.variableNames)
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variableNames.emplace_back(var.name.str());
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return generateMultiAssignment(move(variableNames), visit(*_assignment.value));
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}
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wasm::Expression WasmCodeTransform::operator()(yul::ExpressionStatement const& _statement)
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{
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return visitReturnByValue(_statement.expression);
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}
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void WasmCodeTransform::importBuiltinFunction(BuiltinFunction const* _builtin, string const& _module, string const& _externalName, string const& _internalName)
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{
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yulAssert(_builtin, "");
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yulAssert(_builtin->returns.size() <= 1, "");
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// Imported function, use regular call, but mark for import.
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YulString internalName(_internalName);
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if (!m_functionsToImport.count(internalName))
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{
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wasm::FunctionImport imp{
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_module,
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_externalName,
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_internalName,
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{},
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_builtin->returns.empty() ? nullopt : make_optional<wasm::Type>(translatedType(_builtin->returns.front()))
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};
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for (auto const& param: _builtin->parameters)
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imp.paramTypes.emplace_back(translatedType(param));
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m_functionsToImport[internalName] = move(imp);
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}
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}
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wasm::Expression WasmCodeTransform::operator()(yul::FunctionCall const& _call)
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{
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if (BuiltinFunction const* builtin = m_dialect.builtin(_call.functionName.name))
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{
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if (_call.functionName.name.str().substr(0, 6) == "debug.")
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importBuiltinFunction(builtin, "debug", builtin->name.str().substr(6), builtin->name.str());
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else if (_call.functionName.name.str().substr(0, 4) == "eth.")
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importBuiltinFunction(builtin, "ethereum", builtin->name.str().substr(4), builtin->name.str());
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else
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{
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vector<wasm::Expression> arguments;
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for (size_t i = 0; i < _call.arguments.size(); i++)
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if (builtin->literalArgument(i))
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{
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yulAssert(builtin->literalArgument(i) == LiteralKind::String, "");
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arguments.emplace_back(wasm::StringLiteral{std::get<Literal>(_call.arguments[i]).value.str()});
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}
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else
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arguments.emplace_back(visitReturnByValue(_call.arguments[i]));
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return wasm::BuiltinCall{_call.functionName.name.str(), std::move(arguments)};
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}
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}
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// If this function returns multiple values, then the first one will
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// be returned in the expression itself and the others in global variables.
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// The values have to be used right away in an assignment or variable declaration,
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// so it is handled there.
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return wasm::FunctionCall{_call.functionName.name.str(), visit(_call.arguments)};
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}
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wasm::Expression WasmCodeTransform::operator()(yul::Identifier const& _identifier)
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{
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return wasm::LocalVariable{_identifier.name.str()};
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}
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wasm::Expression WasmCodeTransform::operator()(yul::Literal const& _literal)
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{
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return makeLiteral(translatedType(_literal.type), valueOfLiteral(_literal));
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}
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wasm::Expression WasmCodeTransform::operator()(yul::If const& _if)
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{
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yul::Type conditionType = m_typeInfo.typeOf(*_if.condition);
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wasm::Expression condition;
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if (conditionType == "i32"_yulstring)
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condition = visitReturnByValue(*_if.condition);
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else if (conditionType == "i64"_yulstring)
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{
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vector<wasm::Expression> args;
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args.emplace_back(visitReturnByValue(*_if.condition));
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args.emplace_back(makeLiteral(translatedType("i64"_yulstring), 0));
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// NOTE: `if` in wasm requires an i32 argument
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condition = wasm::BuiltinCall{"i64.ne", std::move(args)};
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}
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else
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yulAssert(false, "Invalid condition type");
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return wasm::If{make_unique<wasm::Expression>(move(condition)), visit(_if.body.statements), {}};
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}
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wasm::Expression WasmCodeTransform::operator()(yul::Switch const& _switch)
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{
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yul::Type expressionType = m_typeInfo.typeOf(*_switch.expression);
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YulString eq_instruction = YulString(expressionType.str() + ".eq");
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yulAssert(WasmDialect::instance().builtin(eq_instruction), "");
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wasm::Block block;
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string condition = m_nameDispenser.newName("condition"_yulstring).str();
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m_localVariables.emplace_back(wasm::VariableDeclaration{condition, translatedType(expressionType)});
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block.statements.emplace_back(wasm::LocalAssignment{condition, visit(*_switch.expression)});
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vector<wasm::Expression>* currentBlock = &block.statements;
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for (size_t i = 0; i < _switch.cases.size(); ++i)
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{
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Case const& c = _switch.cases.at(i);
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if (c.value)
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{
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wasm::BuiltinCall comparison{eq_instruction.str(), make_vector<wasm::Expression>(
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wasm::LocalVariable{condition},
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visitReturnByValue(*c.value)
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)};
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wasm::If ifStmnt{
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make_unique<wasm::Expression>(move(comparison)),
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visit(c.body.statements),
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{}
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};
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vector<wasm::Expression>* nextBlock = nullptr;
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if (i != _switch.cases.size() - 1)
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{
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ifStmnt.elseStatements = make_unique<vector<wasm::Expression>>();
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nextBlock = ifStmnt.elseStatements.get();
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}
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currentBlock->emplace_back(move(ifStmnt));
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currentBlock = nextBlock;
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}
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else
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{
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yulAssert(i == _switch.cases.size() - 1, "Default case must be last.");
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*currentBlock += visit(c.body.statements);
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}
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}
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return { std::move(block) };
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}
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wasm::Expression WasmCodeTransform::operator()(yul::FunctionDefinition const&)
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{
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yulAssert(false, "Should not have visited here.");
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return {};
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}
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wasm::Expression WasmCodeTransform::operator()(yul::ForLoop const& _for)
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{
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string breakLabel = newLabel();
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string continueLabel = newLabel();
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m_breakContinueLabelNames.push({breakLabel, continueLabel});
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yul::Type conditionType = m_typeInfo.typeOf(*_for.condition);
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YulString eqz_instruction = YulString(conditionType.str() + ".eqz");
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yulAssert(WasmDialect::instance().builtin(eqz_instruction), "");
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std::vector<wasm::Expression> statements = visit(_for.pre.statements);
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wasm::Loop loop;
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loop.labelName = newLabel();
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loop.statements.emplace_back(wasm::BranchIf{wasm::Label{breakLabel}, make_unique<wasm::Expression>(
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wasm::BuiltinCall{eqz_instruction.str(), make_vector<wasm::Expression>(
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visitReturnByValue(*_for.condition)
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)}
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)});
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loop.statements.emplace_back(wasm::Block{continueLabel, visit(_for.body.statements)});
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loop.statements += visit(_for.post.statements);
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loop.statements.emplace_back(wasm::Branch{wasm::Label{loop.labelName}});
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statements += make_vector<wasm::Expression>(move(loop));
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return wasm::Block{breakLabel, move(statements)};
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}
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wasm::Expression WasmCodeTransform::operator()(yul::Break const&)
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{
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yulAssert(m_breakContinueLabelNames.size() > 0, "");
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return wasm::Branch{wasm::Label{m_breakContinueLabelNames.top().first}};
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}
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wasm::Expression WasmCodeTransform::operator()(yul::Continue const&)
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{
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yulAssert(m_breakContinueLabelNames.size() > 0, "");
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return wasm::Branch{wasm::Label{m_breakContinueLabelNames.top().second}};
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}
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wasm::Expression WasmCodeTransform::operator()(yul::Leave const&)
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{
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yulAssert(!m_functionBodyLabel.empty(), "");
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return wasm::Branch{wasm::Label{m_functionBodyLabel}};
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}
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wasm::Expression WasmCodeTransform::operator()(yul::Block const& _block)
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{
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return wasm::Block{{}, visit(_block.statements)};
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}
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unique_ptr<wasm::Expression> WasmCodeTransform::visit(yul::Expression const& _expression)
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{
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return make_unique<wasm::Expression>(std::visit(*this, _expression));
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}
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wasm::Expression WasmCodeTransform::visitReturnByValue(yul::Expression const& _expression)
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{
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return std::visit(*this, _expression);
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}
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vector<wasm::Expression> WasmCodeTransform::visit(vector<yul::Expression> const& _expressions)
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{
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vector<wasm::Expression> ret;
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for (auto const& e: _expressions)
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ret.emplace_back(visitReturnByValue(e));
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return ret;
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}
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wasm::Expression WasmCodeTransform::visit(yul::Statement const& _statement)
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{
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return std::visit(*this, _statement);
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}
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vector<wasm::Expression> WasmCodeTransform::visit(vector<yul::Statement> const& _statements)
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{
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vector<wasm::Expression> ret;
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for (auto const& s: _statements)
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ret.emplace_back(visit(s));
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return ret;
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}
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wasm::FunctionDefinition WasmCodeTransform::translateFunction(yul::FunctionDefinition const& _fun)
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{
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wasm::FunctionDefinition fun;
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fun.name = _fun.name.str();
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for (auto const& param: _fun.parameters)
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fun.parameters.push_back({param.name.str(), translatedType(param.type)});
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for (auto const& retParam: _fun.returnVariables)
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fun.locals.emplace_back(wasm::VariableDeclaration{retParam.name.str(), translatedType(retParam.type)});
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if (!_fun.returnVariables.empty())
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fun.returnType = translatedType(_fun.returnVariables[0].type);
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yulAssert(m_localVariables.empty(), "");
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yulAssert(m_functionBodyLabel.empty(), "");
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m_functionBodyLabel = newLabel();
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fun.body.emplace_back(wasm::Expression(wasm::Block{
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m_functionBodyLabel,
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visit(_fun.body.statements)
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}));
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fun.locals += m_localVariables;
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m_localVariables.clear();
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m_functionBodyLabel = {};
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if (!_fun.returnVariables.empty())
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{
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// First return variable is returned directly, the others are stored
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// in globals.
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vector<wasm::Type> typesForGlobals;
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for (size_t i = 1; i < _fun.returnVariables.size(); ++i)
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typesForGlobals.push_back(translatedType(_fun.returnVariables[i].type));
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vector<size_t> allocatedIndices = allocateGlobals(typesForGlobals);
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yulAssert(allocatedIndices.size() == _fun.returnVariables.size() - 1, "");
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for (size_t i = 1; i < _fun.returnVariables.size(); ++i)
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fun.body.emplace_back(wasm::GlobalAssignment{
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m_globalVariables.at(allocatedIndices[i - 1]).variableName,
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make_unique<wasm::Expression>(wasm::LocalVariable{_fun.returnVariables.at(i).name.str()})
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});
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fun.body.emplace_back(wasm::LocalVariable{_fun.returnVariables.front().name.str()});
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}
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return fun;
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}
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string WasmCodeTransform::newLabel()
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{
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return m_nameDispenser.newName("label_"_yulstring).str();
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}
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vector<size_t> WasmCodeTransform::allocateGlobals(vector<wasm::Type> const& _typesForGlobals)
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{
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map<wasm::Type, size_t> availableGlobals;
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for (wasm::GlobalVariableDeclaration const& global: m_globalVariables)
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++availableGlobals[global.type];
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map<wasm::Type, size_t> neededGlobals;
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for (wasm::Type const& type: _typesForGlobals)
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++neededGlobals[type];
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for (auto [type, neededGlobalCount]: neededGlobals)
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while (availableGlobals[type] < neededGlobalCount)
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{
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m_globalVariables.emplace_back(wasm::GlobalVariableDeclaration{
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m_nameDispenser.newName("global_"_yulstring).str(),
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type,
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});
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++availableGlobals[type];
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}
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vector<size_t> allocatedIndices;
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map<wasm::Type, size_t> nextGlobal;
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for (wasm::Type const& type: _typesForGlobals)
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{
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while (m_globalVariables[nextGlobal[type]].type != type)
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++nextGlobal[type];
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allocatedIndices.push_back(nextGlobal[type]++);
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}
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yulAssert(all_of(
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allocatedIndices.begin(),
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allocatedIndices.end(),
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[this](size_t index){ return index < m_globalVariables.size(); }
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), "");
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yulAssert(allocatedIndices.size() == set<size_t>(allocatedIndices.begin(), allocatedIndices.end()).size(), "Indices not unique");
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yulAssert(allocatedIndices.size() == _typesForGlobals.size(), "");
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return allocatedIndices;
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}
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wasm::Type WasmCodeTransform::translatedType(yul::Type _yulType)
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{
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if (_yulType == "i32"_yulstring)
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return wasm::Type::i32;
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else if (_yulType == "i64"_yulstring)
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return wasm::Type::i64;
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else
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yulAssert(false, "This Yul type does not have a corresponding type in Wasm.");
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}
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wasm::Literal WasmCodeTransform::makeLiteral(wasm::Type _type, u256 _value)
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{
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if (_type == wasm::Type::i32)
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{
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yulAssert(_value <= numeric_limits<uint32_t>::max(), "Literal too large: " + _value.str());
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return wasm::Literal{static_cast<uint32_t>(_value)};
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}
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else if (_type == wasm::Type::i64)
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{
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yulAssert(_value <= numeric_limits<uint64_t>::max(), "Literal too large: " + _value.str());
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return wasm::Literal{static_cast<uint64_t>(_value)};
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}
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else
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yulAssert(false, "Invalid Wasm literal type");
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}
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