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/*
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* Copyright ( c ) 2020 - 2021 , Andreas Kling < kling @ serenityos . org >
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* Copyright ( c ) 2020 - 2021 , Linus Groh < linusg @ serenityos . org >
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* Copyright ( c ) 2021 , David Tuin < davidot @ serenityos . org >
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*
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* SPDX - License - Identifier : BSD - 2 - Clause
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*/
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# include <AK/Demangle.h>
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# include <AK/HashMap.h>
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# include <AK/HashTable.h>
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# include <AK/ScopeGuard.h>
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# include <AK/StringBuilder.h>
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# include <AK/TemporaryChange.h>
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# include <LibCrypto/BigInt/SignedBigInteger.h>
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# include <LibJS/AST.h>
# include <LibJS/Interpreter.h>
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# include <LibJS/Runtime/AbstractOperations.h>
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# include <LibJS/Runtime/Accessor.h>
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# include <LibJS/Runtime/Array.h>
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# include <LibJS/Runtime/BigInt.h>
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# include <LibJS/Runtime/ECMAScriptFunctionObject.h>
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# include <LibJS/Runtime/Error.h>
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# include <LibJS/Runtime/FunctionEnvironment.h>
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# include <LibJS/Runtime/GlobalObject.h>
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# include <LibJS/Runtime/IteratorOperations.h>
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# include <LibJS/Runtime/MarkedValueList.h>
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# include <LibJS/Runtime/NativeFunction.h>
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# include <LibJS/Runtime/ObjectEnvironment.h>
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# include <LibJS/Runtime/PrimitiveString.h>
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# include <LibJS/Runtime/PromiseConstructor.h>
# include <LibJS/Runtime/PromiseReaction.h>
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# include <LibJS/Runtime/Reference.h>
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# include <LibJS/Runtime/RegExpObject.h>
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# include <LibJS/Runtime/Shape.h>
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# include <typeinfo>
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namespace JS {
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class InterpreterNodeScope {
AK_MAKE_NONCOPYABLE ( InterpreterNodeScope ) ;
AK_MAKE_NONMOVABLE ( InterpreterNodeScope ) ;
public :
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InterpreterNodeScope ( Interpreter & interpreter , ASTNode const & node )
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: m_interpreter ( interpreter )
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, m_chain_node { nullptr , node }
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{
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m_interpreter . vm ( ) . running_execution_context ( ) . current_node = & node ;
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m_interpreter . push_ast_node ( m_chain_node ) ;
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}
~ InterpreterNodeScope ( )
{
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m_interpreter . pop_ast_node ( ) ;
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}
private :
Interpreter & m_interpreter ;
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ExecutingASTNodeChain m_chain_node ;
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} ;
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String ASTNode : : class_name ( ) const
{
// NOTE: We strip the "JS::" prefix.
return demangle ( typeid ( * this ) . name ( ) ) . substring ( 4 ) ;
}
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static void update_function_name ( Value value , FlyString const & name )
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{
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if ( ! value . is_function ( ) )
return ;
auto & function = value . as_function ( ) ;
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if ( is < ECMAScriptFunctionObject > ( function ) & & function . name ( ) . is_empty ( ) )
static_cast < ECMAScriptFunctionObject & > ( function ) . set_name ( name ) ;
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}
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static ThrowCompletionOr < String > get_function_name ( GlobalObject & global_object , Value value )
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{
if ( value . is_symbol ( ) )
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return String : : formatted ( " [{}] " , value . as_symbol ( ) . description ( ) ) ;
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if ( value . is_string ( ) )
return value . as_string ( ) . string ( ) ;
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return value . to_string ( global_object ) ;
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}
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Value ScopeNode : : evaluate_statements ( Interpreter & interpreter , GlobalObject & global_object ) const
{
// FIXME: This should use completions but for now we just use the vm to communicate things.
auto & vm = interpreter . vm ( ) ;
Value last_value ;
for ( auto & node : children ( ) ) {
auto value = node . execute ( interpreter , global_object ) ;
if ( ! value . is_empty ( ) )
last_value = value ;
if ( vm . should_unwind ( ) ) {
break ;
}
}
return last_value ;
}
Value FunctionBody : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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// Note: Scoping should have already been setup by whoever is calling this FunctionBody.
auto function_result = evaluate_statements ( interpreter , global_object ) ;
if ( interpreter . exception ( ) )
return { } ;
if ( interpreter . vm ( ) . unwind_until ( ) ! = ScopeType : : Function )
function_result = js_undefined ( ) ;
else
interpreter . vm ( ) . stop_unwind ( ) ;
return function_result ;
}
// 14.2.2 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-block-runtime-semantics-evaluation
Value BlockStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
{
InterpreterNodeScope node_scope { interpreter , * this } ;
auto & vm = interpreter . vm ( ) ;
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Environment * old_environment { nullptr } ;
ArmedScopeGuard restore_environment = [ & ] {
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vm . running_execution_context ( ) . lexical_environment = old_environment ;
} ;
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// Optimization: We only need a new lexical environment if there are any lexical declarations. :^)
if ( has_lexical_declarations ( ) ) {
old_environment = vm . running_execution_context ( ) . lexical_environment ;
auto * block_environment = new_declarative_environment ( * old_environment ) ;
block_declaration_instantiation ( global_object , block_environment ) ;
vm . running_execution_context ( ) . lexical_environment = block_environment ;
} else {
restore_environment . disarm ( ) ;
}
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auto block_value = evaluate_statements ( interpreter , global_object ) ;
if ( ! labels ( ) . is_empty ( ) & & vm . should_unwind_until ( ScopeType : : Breakable , labels ( ) ) )
vm . stop_unwind ( ) ;
if ( vm . exception ( ) )
return { } ;
return block_value ;
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}
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Value Program : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
{
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// FIXME: This tries to be "ScriptEvaluation" and "evaluating scriptBody" at once. It shouldn't.
// Clean this up and update perform_eval() / perform_shadow_realm_eval()
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InterpreterNodeScope node_scope { interpreter , * this } ;
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VERIFY ( interpreter . lexical_environment ( ) & & interpreter . lexical_environment ( ) - > is_global_environment ( ) ) ;
auto & global_env = static_cast < GlobalEnvironment & > ( * interpreter . lexical_environment ( ) ) ;
TRY_OR_DISCARD ( global_declaration_instantiation ( interpreter , global_object , global_env ) ) ;
return evaluate_statements ( interpreter , global_object ) ;
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}
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Value FunctionDeclaration : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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if ( m_is_hoisted ) {
// Perform special annexB steps see step 3 of: https://tc39.es/ecma262/#sec-web-compat-functiondeclarationinstantiation
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auto * variable_environment = interpreter . vm ( ) . running_execution_context ( ) . variable_environment ;
auto * lexical_environment = interpreter . vm ( ) . running_execution_context ( ) . lexical_environment ;
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auto function_object = MUST ( lexical_environment - > get_binding_value ( global_object , name ( ) , false ) ) ;
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MUST ( variable_environment - > set_mutable_binding ( global_object , name ( ) , function_object , false ) ) ;
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}
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return { } ;
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}
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Value FunctionExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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return instantiate_ordinary_function_expression ( interpreter , global_object , name ( ) ) ;
}
// 15.2.5 Runtime Semantics: InstantiateOrdinaryFunctionExpression, https://tc39.es/ecma262/#sec-runtime-semantics-instantiateordinaryfunctionexpression
Value FunctionExpression : : instantiate_ordinary_function_expression ( Interpreter & interpreter , GlobalObject & global_object , FlyString given_name ) const
{
if ( given_name . is_empty ( ) )
given_name = " " ;
auto has_own_name = ! name ( ) . is_empty ( ) ;
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auto const & used_name = has_own_name ? name ( ) : given_name ;
auto * scope = interpreter . lexical_environment ( ) ;
if ( has_own_name ) {
VERIFY ( scope ) ;
scope = new_declarative_environment ( * scope ) ;
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MUST ( scope - > create_immutable_binding ( global_object , name ( ) , false ) ) ;
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}
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auto * private_scope = interpreter . vm ( ) . running_execution_context ( ) . private_environment ;
auto closure = ECMAScriptFunctionObject : : create ( global_object , used_name , body ( ) , parameters ( ) , function_length ( ) , scope , private_scope , kind ( ) , is_strict_mode ( ) , might_need_arguments_object ( ) , contains_direct_call_to_eval ( ) , is_arrow_function ( ) ) ;
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// FIXME: 6. Perform SetFunctionName(closure, name).
// FIXME: 7. Perform MakeConstructor(closure).
if ( has_own_name )
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MUST ( scope - > initialize_binding ( global_object , name ( ) , closure ) ) ;
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return closure ;
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}
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Value ExpressionStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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return m_expression - > execute ( interpreter , global_object ) ;
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}
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CallExpression : : ThisAndCallee CallExpression : : compute_this_and_callee ( Interpreter & interpreter , GlobalObject & global_object , Reference const & callee_reference ) const
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{
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if ( callee_reference . is_property_reference ( ) ) {
auto this_value = callee_reference . get_this_value ( ) ;
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auto callee = TRY_OR_DISCARD ( callee_reference . get_value ( global_object ) ) ;
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return { this_value , callee } ;
}
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// [[Call]] will handle that in non-strict mode the this value becomes the global object
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return {
js_undefined ( ) ,
callee_reference . is_unresolvable ( )
? m_callee - > execute ( interpreter , global_object )
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: TRY_OR_DISCARD ( callee_reference . get_value ( global_object ) )
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} ;
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}
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// 13.3.8.1 Runtime Semantics: ArgumentListEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-argumentlistevaluation
static void argument_list_evaluation ( Interpreter & interpreter , GlobalObject & global_object , Vector < CallExpression : : Argument > const & arguments , MarkedValueList & list )
{
auto & vm = global_object . vm ( ) ;
list . ensure_capacity ( arguments . size ( ) ) ;
for ( auto & argument : arguments ) {
auto value = argument . value - > execute ( interpreter , global_object ) ;
if ( vm . exception ( ) )
return ;
if ( argument . is_spread ) {
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auto result = get_iterator_values ( global_object , value , [ & ] ( Value iterator_value ) - > Optional < Completion > {
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list . append ( iterator_value ) ;
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return { } ;
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} ) ;
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if ( result . is_error ( ) )
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return ;
} else {
list . append ( value ) ;
}
}
}
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Value NewExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto & vm = interpreter . vm ( ) ;
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auto callee_value = m_callee - > execute ( interpreter , global_object ) ;
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if ( vm . exception ( ) )
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return { } ;
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if ( ! callee_value . is_function ( ) | | ! callee_value . as_function ( ) . has_constructor ( ) ) {
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throw_type_error_for_callee ( interpreter , global_object , callee_value , " constructor " sv ) ;
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return { } ;
}
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MarkedValueList arg_list ( vm . heap ( ) ) ;
argument_list_evaluation ( interpreter , global_object , m_arguments , arg_list ) ;
if ( interpreter . exception ( ) )
return { } ;
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auto & function = callee_value . as_function ( ) ;
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return TRY_OR_DISCARD ( construct ( global_object , function , move ( arg_list ) ) ) ;
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}
void CallExpression : : throw_type_error_for_callee ( Interpreter & interpreter , GlobalObject & global_object , Value callee_value , StringView call_type ) const
{
auto & vm = interpreter . vm ( ) ;
if ( is < Identifier > ( * m_callee ) | | is < MemberExpression > ( * m_callee ) ) {
String expression_string ;
if ( is < Identifier > ( * m_callee ) ) {
expression_string = static_cast < Identifier const & > ( * m_callee ) . string ( ) ;
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} else {
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expression_string = static_cast < MemberExpression const & > ( * m_callee ) . to_string_approximation ( ) ;
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}
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vm . throw_exception < TypeError > ( global_object , ErrorType : : IsNotAEvaluatedFrom , callee_value . to_string_without_side_effects ( ) , call_type , expression_string ) ;
} else {
vm . throw_exception < TypeError > ( global_object , ErrorType : : IsNotA , callee_value . to_string_without_side_effects ( ) , call_type ) ;
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}
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}
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Value CallExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
{
InterpreterNodeScope node_scope { interpreter , * this } ;
auto & vm = interpreter . vm ( ) ;
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auto callee_reference = m_callee - > to_reference ( interpreter , global_object ) ;
if ( vm . exception ( ) )
return { } ;
auto [ this_value , callee ] = compute_this_and_callee ( interpreter , global_object , callee_reference ) ;
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if ( vm . exception ( ) )
return { } ;
VERIFY ( ! callee . is_empty ( ) ) ;
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MarkedValueList arg_list ( vm . heap ( ) ) ;
argument_list_evaluation ( interpreter , global_object , m_arguments , arg_list ) ;
if ( interpreter . exception ( ) )
return { } ;
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if ( ! callee . is_function ( ) ) {
throw_type_error_for_callee ( interpreter , global_object , callee , " function " sv ) ;
return { } ;
}
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auto & function = callee . as_function ( ) ;
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if ( & function = = global_object . eval_function ( )
& & callee_reference . is_environment_reference ( )
& & callee_reference . name ( ) . is_string ( )
& & callee_reference . name ( ) . as_string ( ) = = vm . names . eval . as_string ( ) ) {
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auto script_value = arg_list . size ( ) = = 0 ? js_undefined ( ) : arg_list [ 0 ] ;
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return TRY_OR_DISCARD ( perform_eval ( script_value , global_object , vm . in_strict_mode ( ) ? CallerMode : : Strict : CallerMode : : NonStrict , EvalMode : : Direct ) ) ;
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}
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return TRY_OR_DISCARD ( vm . call ( function , this_value , move ( arg_list ) ) ) ;
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}
// 13.3.7.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-super-keyword-runtime-semantics-evaluation
// SuperCall : super Arguments
Value SuperCall : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
{
InterpreterNodeScope node_scope { interpreter , * this } ;
auto & vm = interpreter . vm ( ) ;
// 1. Let newTarget be GetNewTarget().
auto new_target = vm . get_new_target ( ) ;
if ( vm . exception ( ) )
return { } ;
// 2. Assert: Type(newTarget) is Object.
VERIFY ( new_target . is_function ( ) ) ;
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// 3. Let func be ! GetSuperConstructor().
auto * func = get_super_constructor ( interpreter . vm ( ) ) ;
VERIFY ( ! vm . exception ( ) ) ;
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// 4. Let argList be ? ArgumentListEvaluation of Arguments.
MarkedValueList arg_list ( vm . heap ( ) ) ;
argument_list_evaluation ( interpreter , global_object , m_arguments , arg_list ) ;
if ( interpreter . exception ( ) )
return { } ;
// 5. If IsConstructor(func) is false, throw a TypeError exception.
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if ( ! func | | ! Value ( func ) . is_constructor ( ) ) {
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vm . throw_exception < TypeError > ( global_object , ErrorType : : NotAConstructor , " Super constructor " ) ;
return { } ;
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}
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// 6. Let result be ? Construct(func, argList, newTarget).
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auto * result = TRY_OR_DISCARD ( construct ( global_object , static_cast < FunctionObject & > ( * func ) , move ( arg_list ) , & new_target . as_function ( ) ) ) ;
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// 7. Let thisER be GetThisEnvironment().
auto & this_er = verify_cast < FunctionEnvironment > ( get_this_environment ( interpreter . vm ( ) ) ) ;
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// 8. Perform ? thisER.BindThisValue(result).
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TRY_OR_DISCARD ( this_er . bind_this_value ( global_object , result ) ) ;
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// 9. Let F be thisER.[[FunctionObject]].
// 10. Assert: F is an ECMAScript function object. (NOTE: This is implied by the strong C++ type.)
[[maybe_unused]] auto & f = this_er . function_object ( ) ;
// 11. Perform ? InitializeInstanceElements(result, F).
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TRY_OR_DISCARD ( vm . initialize_instance_elements ( * result , f ) ) ;
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// 12. Return result.
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return result ;
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}
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Value YieldExpression : : execute ( Interpreter & , GlobalObject & ) const
{
// This should be transformed to a return.
VERIFY_NOT_REACHED ( ) ;
}
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// 15.8.5 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-async-function-definitions-runtime-semantics-evaluation
Value AwaitExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
{
InterpreterNodeScope node_scope { interpreter , * this } ;
// 1. Let exprRef be the result of evaluating UnaryExpression.
// 2. Let value be ? GetValue(exprRef).
auto value = m_argument - > execute ( interpreter , global_object ) ;
if ( interpreter . exception ( ) )
return { } ;
// 3. Return ? Await(value).
return TRY_OR_DISCARD ( await ( global_object , value ) ) ;
}
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Value ReturnStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto value = argument ( ) ? argument ( ) - > execute ( interpreter , global_object ) : js_undefined ( ) ;
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if ( interpreter . exception ( ) )
return { } ;
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interpreter . vm ( ) . unwind ( ScopeType : : Function ) ;
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return value ;
}
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Value IfStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto predicate_result = m_predicate - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
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if ( predicate_result . to_boolean ( ) )
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return m_consequent - > execute ( interpreter , global_object ) ;
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if ( m_alternate )
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return m_alternate - > execute ( interpreter , global_object ) ;
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return js_undefined ( ) ;
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}
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// 14.11.2 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-with-statement-runtime-semantics-evaluation
// WithStatement : with ( Expression ) Statement
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Value WithStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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// 1. Let value be the result of evaluating Expression.
auto value = m_object - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
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// 2. Let obj be ? ToObject(? GetValue(value)).
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auto * object = TRY_OR_DISCARD ( value . to_object ( global_object ) ) ;
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// 3. Let oldEnv be the running execution context's LexicalEnvironment.
auto * old_environment = interpreter . vm ( ) . running_execution_context ( ) . lexical_environment ;
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// 4. Let newEnv be NewObjectEnvironment(obj, true, oldEnv).
auto * new_environment = new_object_environment ( * object , true , old_environment ) ;
if ( interpreter . exception ( ) )
return { } ;
// 5. Set the running execution context's LexicalEnvironment to newEnv.
interpreter . vm ( ) . running_execution_context ( ) . lexical_environment = new_environment ;
// 6. Let C be the result of evaluating Statement.
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auto result = m_body - > execute ( interpreter , global_object ) . value_or ( js_undefined ( ) ) ;
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// 7. Set the running execution context's LexicalEnvironment to oldEnv.
interpreter . vm ( ) . running_execution_context ( ) . lexical_environment = old_environment ;
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if ( interpreter . exception ( ) )
return { } ;
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// 8. Return Completion(UpdateEmpty(C, undefined)).
return result ;
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}
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Value WhileStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto last_value = js_undefined ( ) ;
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for ( ; ; ) {
auto test_result = m_test - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
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if ( ! test_result . to_boolean ( ) )
break ;
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last_value = m_body - > execute ( interpreter , global_object ) . value_or ( last_value ) ;
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if ( interpreter . exception ( ) )
return { } ;
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if ( interpreter . vm ( ) . should_unwind ( ) ) {
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if ( interpreter . vm ( ) . should_unwind_until ( ScopeType : : Continuable , m_labels ) ) {
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interpreter . vm ( ) . stop_unwind ( ) ;
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} else if ( interpreter . vm ( ) . should_unwind_until ( ScopeType : : Breakable , m_labels ) ) {
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interpreter . vm ( ) . stop_unwind ( ) ;
break ;
} else {
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return last_value ;
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}
}
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}
return last_value ;
}
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Value DoWhileStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto last_value = js_undefined ( ) ;
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for ( ; ; ) {
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if ( interpreter . exception ( ) )
return { } ;
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last_value = m_body - > execute ( interpreter , global_object ) . value_or ( last_value ) ;
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if ( interpreter . exception ( ) )
return { } ;
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if ( interpreter . vm ( ) . should_unwind ( ) ) {
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if ( interpreter . vm ( ) . should_unwind_until ( ScopeType : : Continuable , m_labels ) ) {
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interpreter . vm ( ) . stop_unwind ( ) ;
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} else if ( interpreter . vm ( ) . should_unwind_until ( ScopeType : : Breakable , m_labels ) ) {
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interpreter . vm ( ) . stop_unwind ( ) ;
break ;
} else {
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return last_value ;
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}
}
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auto test_result = m_test - > execute ( interpreter , global_object ) ;
if ( interpreter . exception ( ) )
return { } ;
if ( ! test_result . to_boolean ( ) )
break ;
}
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return last_value ;
}
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Value ForStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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// Note we don't always set a new environment but to use RAII we must do this here.
auto * old_environment = interpreter . lexical_environment ( ) ;
ScopeGuard restore_old_environment = [ & ] {
interpreter . vm ( ) . running_execution_context ( ) . lexical_environment = old_environment ;
} ;
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Vector < FlyString > let_declarations ;
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if ( m_init ) {
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if ( is < VariableDeclaration > ( * m_init ) & & static_cast < VariableDeclaration const & > ( * m_init ) . declaration_kind ( ) ! = DeclarationKind : : Var ) {
auto * loop_environment = new_declarative_environment ( * old_environment ) ;
auto & declaration = static_cast < VariableDeclaration const & > ( * m_init ) ;
declaration . for_each_bound_name ( [ & ] ( auto const & name ) {
if ( declaration . declaration_kind ( ) = = DeclarationKind : : Const ) {
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MUST ( loop_environment - > create_immutable_binding ( global_object , name , true ) ) ;
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} else {
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MUST ( loop_environment - > create_mutable_binding ( global_object , name , false ) ) ;
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let_declarations . append ( name ) ;
}
return IterationDecision : : Continue ;
} ) ;
interpreter . vm ( ) . running_execution_context ( ) . lexical_environment = loop_environment ;
}
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m_init - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
}
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auto last_value = js_undefined ( ) ;
// 14.7.4.4 CreatePerIterationEnvironment ( perIterationBindings ), https://tc39.es/ecma262/#sec-createperiterationenvironment
auto create_per_iteration_environment = [ & ] ( ) - > ThrowCompletionOr < void > {
if ( let_declarations . is_empty ( ) )
return { } ;
auto * last_iteration_env = interpreter . lexical_environment ( ) ;
auto * outer = last_iteration_env - > outer_environment ( ) ;
VERIFY ( outer ) ;
auto * this_iteration_env = new_declarative_environment ( * outer ) ;
for ( auto & name : let_declarations ) {
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MUST ( this_iteration_env - > create_mutable_binding ( global_object , name , false ) ) ;
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auto last_value = TRY ( last_iteration_env - > get_binding_value ( global_object , name , true ) ) ;
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VERIFY ( ! last_value . is_empty ( ) ) ;
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MUST ( this_iteration_env - > initialize_binding ( global_object , name , last_value ) ) ;
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}
interpreter . vm ( ) . running_execution_context ( ) . lexical_environment = this_iteration_env ;
return { } ;
} ;
TRY_OR_DISCARD ( create_per_iteration_environment ( ) ) ;
auto test_empty_or_true = [ & ] {
if ( ! m_test )
return true ;
auto test_result = m_test - > execute ( interpreter , global_object ) ;
if ( interpreter . exception ( ) )
return false ;
return test_result . to_boolean ( ) ;
} ;
while ( true ) {
if ( ! test_empty_or_true ( ) )
break ;
last_value = m_body - > execute ( interpreter , global_object ) . value_or ( last_value ) ;
if ( interpreter . exception ( ) )
return { } ;
if ( interpreter . vm ( ) . should_unwind ( ) ) {
if ( interpreter . vm ( ) . should_unwind_until ( ScopeType : : Continuable , m_labels ) ) {
interpreter . vm ( ) . stop_unwind ( ) ;
} else if ( interpreter . vm ( ) . should_unwind_until ( ScopeType : : Breakable , m_labels ) ) {
interpreter . vm ( ) . stop_unwind ( ) ;
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break ;
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} else {
return last_value ;
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}
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}
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TRY_OR_DISCARD ( create_per_iteration_environment ( ) ) ;
if ( m_update ) {
m_update - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
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}
}
if ( interpreter . exception ( ) )
return { } ;
return last_value ;
}
struct ForInOfHeadState {
explicit ForInOfHeadState ( Variant < NonnullRefPtr < ASTNode > , NonnullRefPtr < BindingPattern > > lhs )
{
lhs . visit (
[ & ] ( NonnullRefPtr < ASTNode > & ast_node ) {
expression_lhs = ast_node . ptr ( ) ;
} ,
[ & ] ( NonnullRefPtr < BindingPattern > & pattern ) {
pattern_lhs = pattern . ptr ( ) ;
destructuring = true ;
lhs_kind = Assignment ;
} ) ;
}
ASTNode * expression_lhs = nullptr ;
BindingPattern * pattern_lhs = nullptr ;
enum LhsKind {
Assignment ,
VarBinding ,
LexicalBinding
} ;
LhsKind lhs_kind = Assignment ;
bool destructuring = false ;
Value rhs_value ;
// 14.7.5.7 ForIn/OfBodyEvaluation ( lhs, stmt, iteratorRecord, iterationKind, lhsKind, labelSet [ , iteratorKind ] ), https://tc39.es/ecma262/#sec-runtime-semantics-forin-div-ofbodyevaluation-lhs-stmt-iterator-lhskind-labelset
// Note: This is only steps 6.g through 6.j of the method because we currently implement for-in without an iterator so to prevent duplicated code we do this part here.
ThrowCompletionOr < void > execute_head ( Interpreter & interpreter , GlobalObject & global_object , Value next_value ) const
{
VERIFY ( ! next_value . is_empty ( ) ) ;
Optional < Reference > lhs_reference ;
Environment * iteration_environment = nullptr ;
// g. If lhsKind is either assignment or varBinding, then
if ( lhs_kind = = Assignment | | lhs_kind = = VarBinding ) {
if ( ! destructuring ) {
VERIFY ( expression_lhs ) ;
if ( is < VariableDeclaration > ( * expression_lhs ) ) {
auto & declaration = static_cast < VariableDeclaration const & > ( * expression_lhs ) ;
VERIFY ( declaration . declarations ( ) . first ( ) . target ( ) . has < NonnullRefPtr < Identifier > > ( ) ) ;
lhs_reference = declaration . declarations ( ) . first ( ) . target ( ) . get < NonnullRefPtr < Identifier > > ( ) - > to_reference ( interpreter , global_object ) ;
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} else {
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VERIFY ( is < Identifier > ( * expression_lhs ) | | is < MemberExpression > ( * expression_lhs ) ) ;
auto & expression = static_cast < Expression const & > ( * expression_lhs ) ;
lhs_reference = expression . to_reference ( interpreter , global_object ) ;
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}
}
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}
// h. Else,
else {
VERIFY ( expression_lhs & & is < VariableDeclaration > ( * expression_lhs ) ) ;
iteration_environment = new_declarative_environment ( * interpreter . lexical_environment ( ) ) ;
auto & for_declaration = static_cast < VariableDeclaration const & > ( * expression_lhs ) ;
for_declaration . for_each_bound_name ( [ & ] ( auto const & name ) {
if ( for_declaration . declaration_kind ( ) = = DeclarationKind : : Const )
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MUST ( iteration_environment - > create_immutable_binding ( global_object , name , false ) ) ;
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else
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MUST ( iteration_environment - > create_mutable_binding ( global_object , name , true ) ) ;
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} ) ;
interpreter . vm ( ) . running_execution_context ( ) . lexical_environment = iteration_environment ;
if ( ! destructuring ) {
VERIFY ( for_declaration . declarations ( ) . first ( ) . target ( ) . has < NonnullRefPtr < Identifier > > ( ) ) ;
lhs_reference = interpreter . vm ( ) . resolve_binding ( for_declaration . declarations ( ) . first ( ) . target ( ) . get < NonnullRefPtr < Identifier > > ( ) - > string ( ) ) ;
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}
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}
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if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
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// i. If destructuring is false, then
if ( ! destructuring ) {
VERIFY ( lhs_reference . has_value ( ) ) ;
if ( lhs_kind = = LexicalBinding )
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return lhs_reference - > initialize_referenced_binding ( global_object , next_value ) ;
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else
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return lhs_reference - > put_value ( global_object , next_value ) ;
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}
// j. Else,
if ( lhs_kind = = Assignment ) {
VERIFY ( pattern_lhs ) ;
return interpreter . vm ( ) . destructuring_assignment_evaluation ( * pattern_lhs , next_value , global_object ) ;
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}
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VERIFY ( expression_lhs & & is < VariableDeclaration > ( * expression_lhs ) ) ;
auto & for_declaration = static_cast < VariableDeclaration const & > ( * expression_lhs ) ;
auto & binding_pattern = for_declaration . declarations ( ) . first ( ) . target ( ) . get < NonnullRefPtr < BindingPattern > > ( ) ;
VERIFY ( lhs_kind = = VarBinding | | iteration_environment ) ;
// At this point iteration_environment is undefined if lhs_kind == VarBinding which means this does both
// branch j.ii and j.iii because ForBindingInitialization is just a forwarding call to BindingInitialization.
return interpreter . vm ( ) . binding_initialization ( binding_pattern , next_value , iteration_environment , global_object ) ;
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}
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} ;
// 14.7.5.5 Runtime Semantics: ForInOfLoopEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-forinofloopevaluation
// 14.7.5.6 ForIn/OfHeadEvaluation ( uninitializedBoundNames, expr, iterationKind ), https://tc39.es/ecma262/#sec-runtime-semantics-forinofheadevaluation
// This method combines ForInOfLoopEvaluation and ForIn/OfHeadEvaluation for similar reason as ForIn/OfBodyEvaluation, to prevent code duplication.
// For the same reason we also skip step 6 and 7 of ForIn/OfHeadEvaluation as this is done by the appropriate for loop type.
static ThrowCompletionOr < ForInOfHeadState > for_in_of_head_execute ( Interpreter & interpreter , GlobalObject & global_object , Variant < NonnullRefPtr < ASTNode > , NonnullRefPtr < BindingPattern > > lhs , Expression const & rhs )
{
ForInOfHeadState state ( lhs ) ;
if ( auto * ast_ptr = lhs . get_pointer < NonnullRefPtr < ASTNode > > ( ) ; ast_ptr & & is < VariableDeclaration > ( * ( * ast_ptr ) ) ) {
// Runtime Semantics: ForInOfLoopEvaluation, for any of:
// ForInOfStatement : for ( var ForBinding in Expression ) Statement
// ForInOfStatement : for ( ForDeclaration in Expression ) Statement
// ForInOfStatement : for ( var ForBinding of AssignmentExpression ) Statement
// ForInOfStatement : for ( ForDeclaration of AssignmentExpression ) Statement
// 14.7.5.6 ForIn/OfHeadEvaluation ( uninitializedBoundNames, expr, iterationKind ), https://tc39.es/ecma262/#sec-runtime-semantics-forinofheadevaluation
Environment * new_environment = nullptr ;
auto & variable_declaration = static_cast < VariableDeclaration const & > ( * ( * ast_ptr ) ) ;
VERIFY ( variable_declaration . declarations ( ) . size ( ) = = 1 ) ;
state . destructuring = variable_declaration . declarations ( ) . first ( ) . target ( ) . has < NonnullRefPtr < BindingPattern > > ( ) ;
if ( variable_declaration . declaration_kind ( ) = = DeclarationKind : : Var ) {
state . lhs_kind = ForInOfHeadState : : VarBinding ;
auto & variable = variable_declaration . declarations ( ) . first ( ) ;
// B.3.5 Initializers in ForIn Statement Heads, https://tc39.es/ecma262/#sec-initializers-in-forin-statement-heads
if ( variable . init ( ) ) {
VERIFY ( variable . target ( ) . has < NonnullRefPtr < Identifier > > ( ) ) ;
auto & binding_id = variable . target ( ) . get < NonnullRefPtr < Identifier > > ( ) - > string ( ) ;
auto reference = interpreter . vm ( ) . resolve_binding ( binding_id ) ;
if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
auto result = TRY ( interpreter . vm ( ) . named_evaluation_if_anonymous_function ( global_object , * variable . init ( ) , binding_id ) ) ;
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TRY ( reference . put_value ( global_object , result ) ) ;
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}
} else {
state . lhs_kind = ForInOfHeadState : : LexicalBinding ;
new_environment = new_declarative_environment ( * interpreter . lexical_environment ( ) ) ;
variable_declaration . for_each_bound_name ( [ & ] ( auto const & name ) {
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MUST ( new_environment - > create_mutable_binding ( global_object , name , false ) ) ;
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} ) ;
}
if ( new_environment ) {
// 2.d Set the running execution context's LexicalEnvironment to newEnv.
TemporaryChange < Environment * > scope_change ( interpreter . vm ( ) . running_execution_context ( ) . lexical_environment , new_environment ) ;
// 3. Let exprRef be the result of evaluating expr.
// 5. Let exprValue be ? GetValue(exprRef).
state . rhs_value = rhs . execute ( interpreter , global_object ) ;
// Note that since a reference stores it's environment it doesn't matter we only reset
// this after step 5. (Also we have no way of separating these steps at this point)
// 4. Set the running execution context's LexicalEnvironment to oldEnv.
} else {
// 3. Let exprRef be the result of evaluating expr.
// 5. Let exprValue be ? GetValue(exprRef).
state . rhs_value = rhs . execute ( interpreter , global_object ) ;
}
if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
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return state ;
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}
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// Runtime Semantics: ForInOfLoopEvaluation, for any of:
// ForInOfStatement : for ( LeftHandSideExpression in Expression ) Statement
// ForInOfStatement : for ( LeftHandSideExpression of AssignmentExpression ) Statement
// 14.7.5.6 ForIn/OfHeadEvaluation ( uninitializedBoundNames, expr, iterationKind ), https://tc39.es/ecma262/#sec-runtime-semantics-forinofheadevaluation
// We can skip step 1, 2 and 4 here (on top of already skipping step 6 and 7).
// 3. Let exprRef be the result of evaluating expr.
// 5. Let exprValue be ? GetValue(exprRef).
state . rhs_value = rhs . execute ( interpreter , global_object ) ;
if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
return state ;
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}
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Value ForInStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto for_in_head_state = TRY_OR_DISCARD ( for_in_of_head_execute ( interpreter , global_object , m_lhs , * m_rhs ) ) ;
auto rhs_result = for_in_head_state . rhs_value ;
// 14.7.5.6 ForIn/OfHeadEvaluation ( uninitializedBoundNames, expr, iterationKind ), https://tc39.es/ecma262/#sec-runtime-semantics-forinofheadevaluation
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if ( rhs_result . is_nullish ( ) )
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return js_undefined ( ) ;
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auto * object = MUST ( rhs_result . to_object ( global_object ) ) ;
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// 14.7.5.7 ForIn/OfBodyEvaluation ( lhs, stmt, iteratorRecord, iterationKind, lhsKind, labelSet [ , iteratorKind ] ), https://tc39.es/ecma262/#sec-runtime-semantics-forin-div-ofbodyevaluation-lhs-stmt-iterator-lhskind-labelset
Environment * old_environment = interpreter . lexical_environment ( ) ;
auto restore_scope = ScopeGuard ( [ & ] {
interpreter . vm ( ) . running_execution_context ( ) . lexical_environment = old_environment ;
} ) ;
auto last_value = js_undefined ( ) ;
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while ( object ) {
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auto property_names = TRY_OR_DISCARD ( object - > enumerable_own_property_names ( Object : : PropertyKind : : Key ) ) ;
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for ( auto & value : property_names ) {
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TRY_OR_DISCARD ( for_in_head_state . execute_head ( interpreter , global_object , value ) ) ;
last_value = m_body - > execute ( interpreter , global_object ) . value_or ( last_value ) ;
interpreter . vm ( ) . running_execution_context ( ) . lexical_environment = old_environment ;
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if ( interpreter . exception ( ) )
return { } ;
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if ( interpreter . vm ( ) . should_unwind ( ) ) {
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if ( interpreter . vm ( ) . should_unwind_until ( ScopeType : : Continuable , m_labels ) ) {
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interpreter . vm ( ) . stop_unwind ( ) ;
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} else if ( interpreter . vm ( ) . should_unwind_until ( ScopeType : : Breakable , m_labels ) ) {
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interpreter . vm ( ) . stop_unwind ( ) ;
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break ;
} else {
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return last_value ;
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}
}
}
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object = TRY_OR_DISCARD ( object - > internal_get_prototype_of ( ) ) ;
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}
return last_value ;
}
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Value ForOfStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto for_of_head_state = TRY_OR_DISCARD ( for_in_of_head_execute ( interpreter , global_object , m_lhs , m_rhs ) ) ;
auto rhs_result = for_of_head_state . rhs_value ;
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auto last_value = js_undefined ( ) ;
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// 14.7.5.7 ForIn/OfBodyEvaluation ( lhs, stmt, iteratorRecord, iterationKind, lhsKind, labelSet [ , iteratorKind ] ), https://tc39.es/ecma262/#sec-runtime-semantics-forin-div-ofbodyevaluation-lhs-stmt-iterator-lhskind-labelset
// We use get_iterator_values which behaves like ForIn/OfBodyEvaluation with iteratorKind iterate.
Environment * old_environment = interpreter . lexical_environment ( ) ;
auto restore_scope = ScopeGuard ( [ & ] {
interpreter . vm ( ) . running_execution_context ( ) . lexical_environment = old_environment ;
} ) ;
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TRY_OR_DISCARD ( get_iterator_values ( global_object , rhs_result , [ & ] ( Value value ) - > Optional < Completion > {
TRY ( for_of_head_state . execute_head ( interpreter , global_object , value ) ) ;
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last_value = m_body - > execute ( interpreter , global_object ) . value_or ( last_value ) ;
interpreter . vm ( ) . running_execution_context ( ) . lexical_environment = old_environment ;
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if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
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if ( interpreter . vm ( ) . should_unwind ( ) ) {
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if ( interpreter . vm ( ) . should_unwind_until ( ScopeType : : Continuable , m_labels ) ) {
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interpreter . vm ( ) . stop_unwind ( ) ;
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} else if ( interpreter . vm ( ) . should_unwind_until ( ScopeType : : Breakable , m_labels ) ) {
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interpreter . vm ( ) . stop_unwind ( ) ;
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return normal_completion ( last_value ) ;
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} else {
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return normal_completion ( last_value ) ;
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}
}
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return { } ;
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} ) ) ;
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return last_value ;
}
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Value ForAwaitOfStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
{
InterpreterNodeScope node_scope { interpreter , * this } ;
// 14.7.5.6 ForIn/OfHeadEvaluation ( uninitializedBoundNames, expr, iterationKind ), https://tc39.es/ecma262/#sec-runtime-semantics-forinofheadevaluation
// Note: Performs only steps 1 through 5.
auto for_of_head_state = TRY_OR_DISCARD ( for_in_of_head_execute ( interpreter , global_object , m_lhs , m_rhs ) ) ;
auto rhs_result = for_of_head_state . rhs_value ;
// NOTE: Perform step 7 from ForIn/OfHeadEvaluation. And since this is always async we only have to do step 7.d.
// d. Return ? GetIterator(exprValue, iteratorHint).
auto * iterator = TRY_OR_DISCARD ( get_iterator ( global_object , rhs_result , IteratorHint : : Async ) ) ;
VERIFY ( iterator ) ;
auto & vm = interpreter . vm ( ) ;
// 14.7.5.7 ForIn/OfBodyEvaluation ( lhs, stmt, iteratorRecord, iterationKind, lhsKind, labelSet [ , iteratorKind ] ), https://tc39.es/ecma262/#sec-runtime-semantics-forin-div-ofbodyevaluation-lhs-stmt-iterator-lhskind-labelset
// NOTE: Here iteratorKind is always async.
// 2. Let oldEnv be the running execution context's LexicalEnvironment.
Environment * old_environment = interpreter . lexical_environment ( ) ;
auto restore_scope = ScopeGuard ( [ & ] {
interpreter . vm ( ) . running_execution_context ( ) . lexical_environment = old_environment ;
} ) ;
// 3. Let V be undefined.
auto last_value = js_undefined ( ) ;
// NOTE: Step 4 and 5 are just extracting properties from the head which is done already in for_in_of_head_execute.
// And these are only used in step 6.g through 6.k which is done with for_of_head_state.execute_head.
// 6. Repeat,
while ( true ) {
// NOTE: Since we don't have iterator records yet we have to extract the function first.
auto next_method = TRY_OR_DISCARD ( iterator - > get ( vm . names . next ) ) ;
if ( ! next_method . is_function ( ) ) {
vm . throw_exception < TypeError > ( global_object , ErrorType : : IterableNextNotAFunction ) ;
return { } ;
}
// a. Let nextResult be ? Call(iteratorRecord.[[NextMethod]], iteratorRecord.[[Iterator]]).
auto next_result = TRY_OR_DISCARD ( call ( global_object , next_method , iterator ) ) ;
// b. If iteratorKind is async, set nextResult to ? Await(nextResult).
next_result = TRY_OR_DISCARD ( await ( global_object , next_result ) ) ;
// c. If Type(nextResult) is not Object, throw a TypeError exception.
if ( ! next_result . is_object ( ) ) {
vm . throw_exception < TypeError > ( global_object , ErrorType : : IterableNextBadReturn ) ;
return { } ;
}
// d. Let done be ? IteratorComplete(nextResult).
auto done = TRY_OR_DISCARD ( iterator_complete ( global_object , next_result . as_object ( ) ) ) ;
// e. If done is true, return NormalCompletion(V).
if ( done )
return last_value ;
// f. Let nextValue be ? IteratorValue(nextResult).
auto next_value = TRY_OR_DISCARD ( iterator_value ( global_object , next_result . as_object ( ) ) ) ;
// NOTE: This performs steps g. through to k.
TRY_OR_DISCARD ( for_of_head_state . execute_head ( interpreter , global_object , next_value ) ) ;
// l. Let result be the result of evaluating stmt.
auto result = m_body - > execute ( interpreter , global_object ) ;
// m. Set the running execution context's LexicalEnvironment to oldEnv.
interpreter . vm ( ) . running_execution_context ( ) . lexical_environment = old_environment ;
// NOTE: Since execute does not return a completion we have to have a number of checks here.
// n. If LoopContinues(result, labelSet) is false, then
if ( auto * exception = vm . exception ( ) ) {
// FIXME: We should return the result of AsyncIteratorClose but cannot return completions yet.
// 3. If iteratorKind is async, return ? AsyncIteratorClose(iteratorRecord, status).
TRY_OR_DISCARD ( async_iterator_close ( * iterator , throw_completion ( exception - > value ( ) ) ) ) ;
return { } ;
}
if ( interpreter . vm ( ) . should_unwind ( ) ) {
if ( interpreter . vm ( ) . should_unwind_until ( ScopeType : : Continuable , m_labels ) ) {
// NOTE: In this case LoopContinues is not actually false so we don't perform step 6.n.ii.3.
interpreter . vm ( ) . stop_unwind ( ) ;
} else if ( interpreter . vm ( ) . should_unwind_until ( ScopeType : : Breakable , m_labels ) ) {
interpreter . vm ( ) . stop_unwind ( ) ;
// 2. Set status to UpdateEmpty(result, V).
if ( ! result . is_empty ( ) )
last_value = result ;
// 3. If iteratorKind is async, return ? AsyncIteratorClose(iteratorRecord, status).
TRY_OR_DISCARD ( async_iterator_close ( * iterator , normal_completion ( last_value ) ) ) ;
return last_value ;
} else {
// 2. Set status to UpdateEmpty(result, V).
if ( ! result . is_empty ( ) )
last_value = result ;
// 3. If iteratorKind is async, return ? AsyncIteratorClose(iteratorRecord, status).
TRY_OR_DISCARD ( async_iterator_close ( * iterator , normal_completion ( last_value ) ) ) ;
return last_value ;
}
}
// o. If result.[[Value]] is not empty, set V to result.[[Value]].
if ( ! result . is_empty ( ) )
last_value = result ;
}
VERIFY_NOT_REACHED ( ) ;
}
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Value BinaryExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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// Special case in which we cannot execute the lhs. RelationalExpression : PrivateIdentifier in ShiftExpression
// RelationalExpression : PrivateIdentifier in ShiftExpression, https://tc39.es/ecma262/#sec-relational-operators-runtime-semantics-evaluation
if ( m_op = = BinaryOp : : In & & is < PrivateIdentifier > ( * m_lhs ) ) {
auto & private_identifier = static_cast < PrivateIdentifier const & > ( * m_lhs ) . string ( ) ;
auto rhs_result = m_rhs - > execute ( interpreter , global_object ) ;
if ( interpreter . exception ( ) )
return { } ;
if ( ! rhs_result . is_object ( ) ) {
interpreter . vm ( ) . throw_exception < TypeError > ( global_object , ErrorType : : InOperatorWithObject ) ;
return { } ;
}
auto * private_environment = interpreter . vm ( ) . running_execution_context ( ) . private_environment ;
VERIFY ( private_environment ) ;
auto private_name = private_environment - > resolve_private_identifier ( private_identifier ) ;
return Value ( rhs_result . as_object ( ) . private_element_find ( private_name ) ! = nullptr ) ;
}
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auto lhs_result = m_lhs - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
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auto rhs_result = m_rhs - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
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switch ( m_op ) {
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case BinaryOp : : Addition :
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return TRY_OR_DISCARD ( add ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : Subtraction :
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return TRY_OR_DISCARD ( sub ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : Multiplication :
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return TRY_OR_DISCARD ( mul ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : Division :
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return TRY_OR_DISCARD ( div ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : Modulo :
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return TRY_OR_DISCARD ( mod ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : Exponentiation :
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return TRY_OR_DISCARD ( exp ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : StrictlyEquals :
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return Value ( is_strictly_equal ( lhs_result , rhs_result ) ) ;
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case BinaryOp : : StrictlyInequals :
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return Value ( ! is_strictly_equal ( lhs_result , rhs_result ) ) ;
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case BinaryOp : : LooselyEquals :
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return Value ( TRY_OR_DISCARD ( is_loosely_equal ( global_object , lhs_result , rhs_result ) ) ) ;
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case BinaryOp : : LooselyInequals :
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return Value ( ! TRY_OR_DISCARD ( is_loosely_equal ( global_object , lhs_result , rhs_result ) ) ) ;
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case BinaryOp : : GreaterThan :
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return TRY_OR_DISCARD ( greater_than ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : GreaterThanEquals :
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return TRY_OR_DISCARD ( greater_than_equals ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : LessThan :
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return TRY_OR_DISCARD ( less_than ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : LessThanEquals :
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return TRY_OR_DISCARD ( less_than_equals ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : BitwiseAnd :
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return TRY_OR_DISCARD ( bitwise_and ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : BitwiseOr :
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return TRY_OR_DISCARD ( bitwise_or ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : BitwiseXor :
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return TRY_OR_DISCARD ( bitwise_xor ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : LeftShift :
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return TRY_OR_DISCARD ( left_shift ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : RightShift :
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return TRY_OR_DISCARD ( right_shift ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : UnsignedRightShift :
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return TRY_OR_DISCARD ( unsigned_right_shift ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : In :
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return TRY_OR_DISCARD ( in ( global_object , lhs_result , rhs_result ) ) ;
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case BinaryOp : : InstanceOf :
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return TRY_OR_DISCARD ( instance_of ( global_object , lhs_result , rhs_result ) ) ;
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}
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VERIFY_NOT_REACHED ( ) ;
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}
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Value LogicalExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto lhs_result = m_lhs - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
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switch ( m_op ) {
case LogicalOp : : And :
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if ( lhs_result . to_boolean ( ) ) {
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auto rhs_result = m_rhs - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
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return rhs_result ;
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}
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return lhs_result ;
case LogicalOp : : Or : {
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if ( lhs_result . to_boolean ( ) )
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return lhs_result ;
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auto rhs_result = m_rhs - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
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return rhs_result ;
}
case LogicalOp : : NullishCoalescing :
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if ( lhs_result . is_nullish ( ) ) {
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auto rhs_result = m_rhs - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
return rhs_result ;
}
return lhs_result ;
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}
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VERIFY_NOT_REACHED ( ) ;
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}
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Reference Expression : : to_reference ( Interpreter & , GlobalObject & ) const
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{
return { } ;
}
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Reference Identifier : : to_reference ( Interpreter & interpreter , GlobalObject & ) const
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{
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if ( m_cached_environment_coordinate . has_value ( ) ) {
auto * environment = interpreter . vm ( ) . running_execution_context ( ) . lexical_environment ;
for ( size_t i = 0 ; i < m_cached_environment_coordinate - > hops ; + + i )
environment = environment - > outer_environment ( ) ;
VERIFY ( environment ) ;
VERIFY ( environment - > is_declarative_environment ( ) ) ;
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if ( ! environment - > is_permanently_screwed_by_eval ( ) ) {
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return Reference { * environment , string ( ) , interpreter . vm ( ) . in_strict_mode ( ) , m_cached_environment_coordinate } ;
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}
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m_cached_environment_coordinate = { } ;
}
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auto reference = interpreter . vm ( ) . resolve_binding ( string ( ) ) ;
if ( reference . environment_coordinate ( ) . has_value ( ) )
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m_cached_environment_coordinate = reference . environment_coordinate ( ) ;
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return reference ;
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}
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Reference MemberExpression : : to_reference ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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// 13.3.7.1 Runtime Semantics: Evaluation
// SuperProperty : super [ Expression ]
// SuperProperty : super . IdentifierName
// https://tc39.es/ecma262/#sec-super-keyword-runtime-semantics-evaluation
if ( is < SuperExpression > ( object ( ) ) ) {
// 1. Let env be GetThisEnvironment().
auto & environment = get_this_environment ( interpreter . vm ( ) ) ;
// 2. Let actualThis be ? env.GetThisBinding().
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auto actual_this = TRY_OR_DISCARD ( environment . get_this_binding ( global_object ) ) ;
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PropertyKey property_key ;
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if ( is_computed ( ) ) {
// SuperProperty : super [ Expression ]
// 3. Let propertyNameReference be the result of evaluating Expression.
// 4. Let propertyNameValue be ? GetValue(propertyNameReference).
auto property_name_value = m_property - > execute ( interpreter , global_object ) ;
if ( interpreter . exception ( ) )
return { } ;
// 5. Let propertyKey be ? ToPropertyKey(propertyNameValue).
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property_key = TRY_OR_DISCARD ( property_name_value . to_property_key ( global_object ) ) ;
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} else {
// SuperProperty : super . IdentifierName
// 3. Let propertyKey be StringValue of IdentifierName.
VERIFY ( is < Identifier > ( property ( ) ) ) ;
property_key = static_cast < Identifier const & > ( property ( ) ) . string ( ) ;
}
// 6. If the code matched by this SuperProperty is strict mode code, let strict be true; else let strict be false.
bool strict = interpreter . vm ( ) . in_strict_mode ( ) ;
// 7. Return ? MakeSuperPropertyReference(actualThis, propertyKey, strict).
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return TRY_OR_DISCARD ( make_super_property_reference ( global_object , actual_this , property_key , strict ) ) ;
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}
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auto base_reference = m_object - > to_reference ( interpreter , global_object ) ;
if ( interpreter . exception ( ) )
return { } ;
Value base_value ;
if ( base_reference . is_valid_reference ( ) )
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base_value = TRY_OR_DISCARD ( base_reference . get_value ( global_object ) ) ;
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else
base_value = m_object - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
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return { } ;
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VERIFY ( ! base_value . is_empty ( ) ) ;
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LibJS: Rewrite most of Object for spec compliance :^)
This is a huge patch, I know. In hindsight this perhaps could've been
done slightly more incremental, but I started and then fixed everything
until it worked, and here we are. I tried splitting of some completely
unrelated changes into separate commits, however. Anyway.
This is a rewrite of most of Object, and by extension large parts of
Array, Proxy, Reflect, String, TypedArray, and some other things.
What we already had worked fine for about 90% of things, but getting the
last 10% right proved to be increasingly difficult with the current code
that sort of grew organically and is only very loosely based on the
spec - this became especially obvious when we started fixing a large
number of test262 failures.
Key changes include:
- 1:1 matching function names and parameters of all object-related
functions, to avoid ambiguity. Previously we had things like put(),
which the spec doesn't have - as a result it wasn't always clear which
need to be used.
- Better separation between object abstract operations and internal
methods - the former are always the same, the latter can be overridden
(and are therefore virtual). The internal methods (i.e. [[Foo]] in the
spec) are now prefixed with 'internal_' for clarity - again, it was
previously not always clear which AO a certain method represents,
get() could've been both Get and [[Get]] (I don't know which one it
was closer to right now).
Note that some of the old names have been kept until all code relying
on them is updated, but they are now simple wrappers around the
closest matching standard abstract operation.
- Simplifications of the storage layer: functions that write values to
storage are now prefixed with 'storage_' to make their purpose clear,
and as they are not part of the spec they should not contain any steps
specified by it. Much functionality is now covered by the layers above
it and was removed (e.g. handling of accessors, attribute checks).
- PropertyAttributes has been greatly simplified, and is being replaced
by PropertyDescriptor - a concept similar to the current
implementation, but more aligned with the actual spec. See the commit
message of the previous commit where it was introduced for details.
- As a bonus, and since I had to look at the spec a whole lot anyway, I
introduced more inline comments with the exact steps from the spec -
this makes it super easy to verify correctness.
- East-const all the things.
As a result of all of this, things are much more correct but a bit
slower now. Retaining speed wasn't a consideration at all, I have done
no profiling of the new code - there might be low hanging fruits, which
we can then harvest separately.
Special thanks to Idan for helping me with this by tracking down bugs,
updating everything outside of LibJS to work with these changes (LibWeb,
Spreadsheet, HackStudio), as well as providing countless patches to fix
regressions I introduced - there still are very few (we got it down to
5), but we also get many new passing test262 tests in return. :^)
Co-authored-by: Idan Horowitz <idan.horowitz@gmail.com>
2021-07-04 18:14:16 +01:00
// From here on equivalent to
// 13.3.4 EvaluatePropertyAccessWithIdentifierKey ( baseValue, identifierName, strict ), https://tc39.es/ecma262/#sec-evaluate-property-access-with-identifier-key
2021-10-24 16:01:24 +02:00
PropertyKey property_name ;
2021-09-22 12:44:56 +02:00
if ( is_computed ( ) ) {
// Weird order which I can't quite find from the specs.
auto value = m_property - > execute ( interpreter , global_object ) ;
if ( interpreter . exception ( ) )
return Reference { } ;
LibJS: Rewrite most of Object for spec compliance :^)
This is a huge patch, I know. In hindsight this perhaps could've been
done slightly more incremental, but I started and then fixed everything
until it worked, and here we are. I tried splitting of some completely
unrelated changes into separate commits, however. Anyway.
This is a rewrite of most of Object, and by extension large parts of
Array, Proxy, Reflect, String, TypedArray, and some other things.
What we already had worked fine for about 90% of things, but getting the
last 10% right proved to be increasingly difficult with the current code
that sort of grew organically and is only very loosely based on the
spec - this became especially obvious when we started fixing a large
number of test262 failures.
Key changes include:
- 1:1 matching function names and parameters of all object-related
functions, to avoid ambiguity. Previously we had things like put(),
which the spec doesn't have - as a result it wasn't always clear which
need to be used.
- Better separation between object abstract operations and internal
methods - the former are always the same, the latter can be overridden
(and are therefore virtual). The internal methods (i.e. [[Foo]] in the
spec) are now prefixed with 'internal_' for clarity - again, it was
previously not always clear which AO a certain method represents,
get() could've been both Get and [[Get]] (I don't know which one it
was closer to right now).
Note that some of the old names have been kept until all code relying
on them is updated, but they are now simple wrappers around the
closest matching standard abstract operation.
- Simplifications of the storage layer: functions that write values to
storage are now prefixed with 'storage_' to make their purpose clear,
and as they are not part of the spec they should not contain any steps
specified by it. Much functionality is now covered by the layers above
it and was removed (e.g. handling of accessors, attribute checks).
- PropertyAttributes has been greatly simplified, and is being replaced
by PropertyDescriptor - a concept similar to the current
implementation, but more aligned with the actual spec. See the commit
message of the previous commit where it was introduced for details.
- As a bonus, and since I had to look at the spec a whole lot anyway, I
introduced more inline comments with the exact steps from the spec -
this makes it super easy to verify correctness.
- East-const all the things.
As a result of all of this, things are much more correct but a bit
slower now. Retaining speed wasn't a consideration at all, I have done
no profiling of the new code - there might be low hanging fruits, which
we can then harvest separately.
Special thanks to Idan for helping me with this by tracking down bugs,
updating everything outside of LibJS to work with these changes (LibWeb,
Spreadsheet, HackStudio), as well as providing countless patches to fix
regressions I introduced - there still are very few (we got it down to
5), but we also get many new passing test262 tests in return. :^)
Co-authored-by: Idan Horowitz <idan.horowitz@gmail.com>
2021-07-04 18:14:16 +01:00
2021-09-22 12:44:56 +02:00
TRY_OR_DISCARD ( require_object_coercible ( global_object , base_value ) ) ;
2021-06-25 16:27:59 +02:00
2021-09-22 12:44:56 +02:00
VERIFY ( ! value . is_empty ( ) ) ;
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property_name = PropertyKey : : from_value ( global_object , value ) ;
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if ( interpreter . exception ( ) )
return Reference { } ;
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} else if ( is < PrivateIdentifier > ( * m_property ) ) {
auto & private_identifier = static_cast < PrivateIdentifier const & > ( * m_property ) ;
return make_private_reference ( interpreter . vm ( ) , base_value , private_identifier . string ( ) ) ;
2021-09-22 12:44:56 +02:00
} else {
property_name = verify_cast < Identifier > ( * m_property ) . string ( ) ;
TRY_OR_DISCARD ( require_object_coercible ( global_object , base_value ) ) ;
}
2020-04-27 12:10:16 +02:00
if ( ! property_name . is_valid ( ) )
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return Reference { } ;
LibJS: Rewrite most of Object for spec compliance :^)
This is a huge patch, I know. In hindsight this perhaps could've been
done slightly more incremental, but I started and then fixed everything
until it worked, and here we are. I tried splitting of some completely
unrelated changes into separate commits, however. Anyway.
This is a rewrite of most of Object, and by extension large parts of
Array, Proxy, Reflect, String, TypedArray, and some other things.
What we already had worked fine for about 90% of things, but getting the
last 10% right proved to be increasingly difficult with the current code
that sort of grew organically and is only very loosely based on the
spec - this became especially obvious when we started fixing a large
number of test262 failures.
Key changes include:
- 1:1 matching function names and parameters of all object-related
functions, to avoid ambiguity. Previously we had things like put(),
which the spec doesn't have - as a result it wasn't always clear which
need to be used.
- Better separation between object abstract operations and internal
methods - the former are always the same, the latter can be overridden
(and are therefore virtual). The internal methods (i.e. [[Foo]] in the
spec) are now prefixed with 'internal_' for clarity - again, it was
previously not always clear which AO a certain method represents,
get() could've been both Get and [[Get]] (I don't know which one it
was closer to right now).
Note that some of the old names have been kept until all code relying
on them is updated, but they are now simple wrappers around the
closest matching standard abstract operation.
- Simplifications of the storage layer: functions that write values to
storage are now prefixed with 'storage_' to make their purpose clear,
and as they are not part of the spec they should not contain any steps
specified by it. Much functionality is now covered by the layers above
it and was removed (e.g. handling of accessors, attribute checks).
- PropertyAttributes has been greatly simplified, and is being replaced
by PropertyDescriptor - a concept similar to the current
implementation, but more aligned with the actual spec. See the commit
message of the previous commit where it was introduced for details.
- As a bonus, and since I had to look at the spec a whole lot anyway, I
introduced more inline comments with the exact steps from the spec -
this makes it super easy to verify correctness.
- East-const all the things.
As a result of all of this, things are much more correct but a bit
slower now. Retaining speed wasn't a consideration at all, I have done
no profiling of the new code - there might be low hanging fruits, which
we can then harvest separately.
Special thanks to Idan for helping me with this by tracking down bugs,
updating everything outside of LibJS to work with these changes (LibWeb,
Spreadsheet, HackStudio), as well as providing countless patches to fix
regressions I introduced - there still are very few (we got it down to
5), but we also get many new passing test262 tests in return. :^)
Co-authored-by: Idan Horowitz <idan.horowitz@gmail.com>
2021-07-04 18:14:16 +01:00
auto strict = interpreter . vm ( ) . in_strict_mode ( ) ;
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return Reference { base_value , move ( property_name ) , { } , strict } ;
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}
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Value UnaryExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto & vm = interpreter . vm ( ) ;
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if ( m_op = = UnaryOp : : Delete ) {
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auto reference = m_lhs - > to_reference ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
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return Value ( TRY_OR_DISCARD ( reference . delete_ ( global_object ) ) ) ;
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}
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Value lhs_result ;
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if ( m_op = = UnaryOp : : Typeof & & is < Identifier > ( * m_lhs ) ) {
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auto reference = m_lhs - > to_reference ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
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return { } ;
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if ( reference . is_unresolvable ( ) )
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lhs_result = js_undefined ( ) ;
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else
lhs_result = TRY_OR_DISCARD ( reference . get_value ( global_object ) ) ;
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VERIFY ( ! lhs_result . is_empty ( ) ) ;
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} else {
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lhs_result = m_lhs - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
}
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switch ( m_op ) {
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case UnaryOp : : BitwiseNot :
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return TRY_OR_DISCARD ( bitwise_not ( global_object , lhs_result ) ) ;
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case UnaryOp : : Not :
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return Value ( ! lhs_result . to_boolean ( ) ) ;
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case UnaryOp : : Plus :
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return TRY_OR_DISCARD ( unary_plus ( global_object , lhs_result ) ) ;
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case UnaryOp : : Minus :
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return TRY_OR_DISCARD ( unary_minus ( global_object , lhs_result ) ) ;
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case UnaryOp : : Typeof :
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return js_string ( vm , lhs_result . typeof ( ) ) ;
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case UnaryOp : : Void :
return js_undefined ( ) ;
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case UnaryOp : : Delete :
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VERIFY_NOT_REACHED ( ) ;
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}
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VERIFY_NOT_REACHED ( ) ;
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}
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Value SuperExpression : : execute ( Interpreter & , GlobalObject & ) const
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{
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// The semantics for SuperExpression are handled in CallExpression and SuperCall.
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VERIFY_NOT_REACHED ( ) ;
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}
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Value ClassElement : : execute ( Interpreter & , GlobalObject & ) const
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{
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// Note: The semantics of class element are handled in class_element_evaluation
VERIFY_NOT_REACHED ( ) ;
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}
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static ThrowCompletionOr < ClassElement : : ClassElementName > class_key_to_property_name ( Interpreter & interpreter , GlobalObject & global_object , Expression const & key )
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{
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if ( is < PrivateIdentifier > ( key ) ) {
auto & private_identifier = static_cast < PrivateIdentifier const & > ( key ) ;
auto * private_environment = interpreter . vm ( ) . running_execution_context ( ) . private_environment ;
VERIFY ( private_environment ) ;
return ClassElement : : ClassElementName { private_environment - > resolve_private_identifier ( private_identifier . string ( ) ) } ;
}
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auto prop_key = key . execute ( interpreter , global_object ) ;
if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
if ( prop_key . is_object ( ) )
prop_key = TRY ( prop_key . to_primitive ( global_object , Value : : PreferredType : : String ) ) ;
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auto property_key = PropertyKey : : from_value ( global_object , prop_key ) ;
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if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
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return ClassElement : : ClassElementName { property_key } ;
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}
// 15.4.5 Runtime Semantics: MethodDefinitionEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-methoddefinitionevaluation
ThrowCompletionOr < ClassElement : : ClassValue > ClassMethod : : class_element_evaluation ( Interpreter & interpreter , GlobalObject & global_object , Object & target ) const
{
auto property_key = TRY ( class_key_to_property_name ( interpreter , global_object , * m_key ) ) ;
auto method_value = m_function - > execute ( interpreter , global_object ) ;
if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
auto & method_function = static_cast < ECMAScriptFunctionObject & > ( method_value . as_function ( ) ) ;
method_function . set_home_object ( & target ) ;
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auto set_function_name = [ & ] ( String prefix = " " ) {
auto property_name = property_key . visit (
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[ & ] ( PropertyKey const & property_name ) - > String {
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if ( property_name . is_symbol ( ) ) {
auto description = property_name . as_symbol ( ) - > description ( ) ;
if ( description . is_empty ( ) )
return " " ;
return String : : formatted ( " [{}] " , description ) ;
} else {
return property_name . to_string ( ) ;
}
} ,
[ & ] ( PrivateName const & private_name ) - > String {
return private_name . description ;
} ) ;
update_function_name ( method_value , String : : formatted ( " {}{}{} " , prefix , prefix . is_empty ( ) ? " " : " " , property_name ) ) ;
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} ;
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if ( property_key . has < PropertyKey > ( ) ) {
auto & property_name = property_key . get < PropertyKey > ( ) ;
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switch ( kind ( ) ) {
case ClassMethod : : Kind : : Method :
set_function_name ( ) ;
TRY ( target . define_property_or_throw ( property_name , { . value = method_value , . writable = true , . enumerable = false , . configurable = true } ) ) ;
break ;
case ClassMethod : : Kind : : Getter :
set_function_name ( " get " ) ;
TRY ( target . define_property_or_throw ( property_name , { . get = & method_function , . enumerable = true , . configurable = true } ) ) ;
break ;
case ClassMethod : : Kind : : Setter :
set_function_name ( " set " ) ;
TRY ( target . define_property_or_throw ( property_name , { . set = & method_function , . enumerable = true , . configurable = true } ) ) ;
break ;
default :
VERIFY_NOT_REACHED ( ) ;
}
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return ClassValue { normal_completion ( { } ) } ;
} else {
auto & private_name = property_key . get < PrivateName > ( ) ;
switch ( kind ( ) ) {
case Kind : : Method :
set_function_name ( ) ;
return ClassValue { PrivateElement { private_name , PrivateElement : : Kind : : Method , method_value } } ;
case Kind : : Getter :
set_function_name ( " get " ) ;
return ClassValue { PrivateElement { private_name , PrivateElement : : Kind : : Accessor , Accessor : : create ( interpreter . vm ( ) , & method_function , nullptr ) } } ;
case Kind : : Setter :
set_function_name ( " set " ) ;
return ClassValue { PrivateElement { private_name , PrivateElement : : Kind : : Accessor , Accessor : : create ( interpreter . vm ( ) , nullptr , & method_function ) } } ;
default :
VERIFY_NOT_REACHED ( ) ;
}
}
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}
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// We use this class to mimic Initializer : = AssignmentExpression of
// 10.2.1.3 Runtime Semantics: EvaluateBody, https://tc39.es/ecma262/#sec-runtime-semantics-evaluatebody
class ClassFieldInitializerStatement : public Statement {
public :
ClassFieldInitializerStatement ( SourceRange source_range , NonnullRefPtr < Expression > expression , FlyString field_name )
: Statement ( source_range )
, m_expression ( move ( expression ) )
, m_class_field_identifier_name ( move ( field_name ) )
{
}
Value execute ( Interpreter & interpreter , GlobalObject & global_object ) const override
{
VERIFY ( interpreter . vm ( ) . argument_count ( ) = = 0 ) ;
VERIFY ( ! m_class_field_identifier_name . is_empty ( ) ) ;
return TRY_OR_DISCARD ( interpreter . vm ( ) . named_evaluation_if_anonymous_function ( global_object , m_expression , m_class_field_identifier_name ) ) ;
}
void dump ( int ) const override
{
// This should not be dumped as it is never part of an actual AST.
VERIFY_NOT_REACHED ( ) ;
}
private :
NonnullRefPtr < Expression > m_expression ;
FlyString m_class_field_identifier_name ; // [[ClassFieldIdentifierName]]
} ;
2021-10-07 01:09:04 +02:00
// 15.7.10 Runtime Semantics: ClassFieldDefinitionEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-classfielddefinitionevaluation
ThrowCompletionOr < ClassElement : : ClassValue > ClassField : : class_element_evaluation ( Interpreter & interpreter , GlobalObject & global_object , Object & target ) const
{
auto property_key = TRY ( class_key_to_property_name ( interpreter , global_object , * m_key ) ) ;
ECMAScriptFunctionObject * initializer = nullptr ;
if ( m_initializer ) {
auto copy_initializer = m_initializer ;
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auto name = property_key . visit (
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[ & ] ( PropertyKey const & property_name ) - > String {
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return property_name . is_number ( ) ? property_name . to_string ( ) : property_name . to_string_or_symbol ( ) . to_display_string ( ) ;
} ,
[ & ] ( PrivateName const & private_name ) - > String {
return private_name . description ;
} ) ;
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// FIXME: A potential optimization is not creating the functions here since these are never directly accessible.
2021-10-13 19:59:38 +02:00
auto function_code = create_ast_node < ClassFieldInitializerStatement > ( m_initializer - > source_range ( ) , copy_initializer . release_nonnull ( ) , name ) ;
initializer = ECMAScriptFunctionObject : : create ( interpreter . global_object ( ) , String : : empty ( ) , * function_code , { } , 0 , interpreter . lexical_environment ( ) , interpreter . vm ( ) . running_execution_context ( ) . private_environment , FunctionKind : : Regular , true , false , m_contains_direct_call_to_eval , false ) ;
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initializer - > set_home_object ( & target ) ;
}
return ClassValue {
ClassFieldDefinition {
property_key ,
initializer ,
}
} ;
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}
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static Optional < FlyString > nullopt_or_private_identifier_description ( Expression const & expression )
{
if ( is < PrivateIdentifier > ( expression ) )
return static_cast < PrivateIdentifier const & > ( expression ) . string ( ) ;
return { } ;
}
Optional < FlyString > ClassField : : private_bound_identifier ( ) const
{
return nullopt_or_private_identifier_description ( * m_key ) ;
}
Optional < FlyString > ClassMethod : : private_bound_identifier ( ) const
{
return nullopt_or_private_identifier_description ( * m_key ) ;
}
2021-10-20 21:29:47 +02:00
// 15.7.11 Runtime Semantics: ClassStaticBlockDefinitionEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-classstaticblockdefinitionevaluation
ThrowCompletionOr < ClassElement : : ClassValue > StaticInitializer : : class_element_evaluation ( Interpreter & interpreter , GlobalObject & global_object , Object & home_object ) const
{
auto * lexical_environment = interpreter . vm ( ) . running_execution_context ( ) . lexical_environment ;
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auto * private_scope = interpreter . vm ( ) . running_execution_context ( ) . private_environment ;
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// Note: The function bodyFunction is never directly accessible to ECMAScript code.
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auto * body_function = ECMAScriptFunctionObject : : create ( global_object , " " , * m_function_body , { } , 0 , lexical_environment , private_scope , FunctionKind : : Regular , true , false , m_contains_direct_call_to_eval , false ) ;
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body_function - > set_home_object ( & home_object ) ;
return ClassValue { normal_completion ( body_function ) } ;
}
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Value ClassExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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// FIXME: Set value.[[SourceText]] to the source text matched by ClassExpression.
return TRY_OR_DISCARD ( class_definition_evaluation ( interpreter , global_object , m_name , m_name . is_null ( ) ? " " : m_name ) ) ;
}
Value ClassDeclaration : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
{
InterpreterNodeScope node_scope { interpreter , * this } ;
auto name = m_class_expression - > name ( ) ;
VERIFY ( ! name . is_empty ( ) ) ;
auto class_constructor = TRY_OR_DISCARD ( m_class_expression - > class_definition_evaluation ( interpreter , global_object , name , name ) ) ;
if ( interpreter . lexical_environment ( ) ) {
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MUST ( interpreter . lexical_environment ( ) - > initialize_binding ( global_object , name , class_constructor ) ) ;
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} else {
auto reference = interpreter . vm ( ) . resolve_binding ( name ) ;
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TRY_OR_DISCARD ( reference . put_value ( global_object , class_constructor ) ) ;
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}
return { } ;
}
// 15.7.14 Runtime Semantics: ClassDefinitionEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-classdefinitionevaluation
ThrowCompletionOr < Value > ClassExpression : : class_definition_evaluation ( Interpreter & interpreter , GlobalObject & global_object , FlyString const & binding_name , FlyString const & class_name ) const
{
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auto & vm = interpreter . vm ( ) ;
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auto * environment = vm . lexical_environment ( ) ;
VERIFY ( environment ) ;
auto * class_scope = new_declarative_environment ( * environment ) ;
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// We might not set the lexical environment but we always want to restore it eventually.
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ArmedScopeGuard restore_environment = [ & ] {
vm . running_execution_context ( ) . lexical_environment = environment ;
} ;
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if ( ! binding_name . is_null ( ) )
MUST ( class_scope - > create_immutable_binding ( global_object , binding_name , true ) ) ;
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auto * outer_private_environment = vm . running_execution_context ( ) . private_environment ;
auto * class_private_environment = new_private_environment ( vm , outer_private_environment ) ;
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for ( auto const & element : m_elements ) {
auto opt_private_name = element . private_bound_identifier ( ) ;
if ( opt_private_name . has_value ( ) )
class_private_environment - > add_private_name ( { } , opt_private_name . release_value ( ) ) ;
}
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auto * proto_parent = vm . current_realm ( ) - > global_object ( ) . object_prototype ( ) ;
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auto * constructor_parent = vm . current_realm ( ) - > global_object ( ) . function_prototype ( ) ;
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if ( ! m_super_class . is_null ( ) ) {
vm . running_execution_context ( ) . lexical_environment = class_scope ;
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// Note: Since our execute does evaluation and GetValue in once we must check for a valid reference first
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Value super_class ;
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auto reference = m_super_class - > to_reference ( interpreter , global_object ) ;
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if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
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if ( reference . is_valid_reference ( ) ) {
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super_class = TRY ( reference . get_value ( global_object ) ) ;
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} else {
super_class = m_super_class - > execute ( interpreter , global_object ) ;
if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
}
vm . running_execution_context ( ) . lexical_environment = environment ;
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if ( super_class . is_null ( ) ) {
proto_parent = nullptr ;
} else if ( ! super_class . is_constructor ( ) ) {
return vm . throw_completion < TypeError > ( global_object , ErrorType : : ClassExtendsValueNotAConstructorOrNull , super_class . to_string_without_side_effects ( ) ) ;
} else {
auto super_class_prototype = TRY ( super_class . get ( global_object , vm . names . prototype ) ) ;
if ( ! super_class_prototype . is_null ( ) & & ! super_class_prototype . is_object ( ) )
return vm . throw_completion < TypeError > ( global_object , ErrorType : : ClassExtendsValueInvalidPrototype , super_class_prototype . to_string_without_side_effects ( ) ) ;
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if ( super_class_prototype . is_null ( ) )
proto_parent = nullptr ;
else
proto_parent = & super_class_prototype . as_object ( ) ;
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constructor_parent = & super_class . as_object ( ) ;
}
}
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auto * prototype = Object : : create ( global_object , proto_parent ) ;
VERIFY ( prototype ) ;
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vm . running_execution_context ( ) . lexical_environment = class_scope ;
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vm . running_execution_context ( ) . private_environment = class_private_environment ;
ScopeGuard restore_private_environment = [ & ] {
vm . running_execution_context ( ) . private_environment = outer_private_environment ;
} ;
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// FIXME: Step 14.a is done in the parser. But maybe it shouldn't?
Value class_constructor_value = m_constructor - > execute ( interpreter , global_object ) ;
if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
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update_function_name ( class_constructor_value , class_name ) ;
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VERIFY ( class_constructor_value . is_function ( ) & & is < ECMAScriptFunctionObject > ( class_constructor_value . as_function ( ) ) ) ;
auto * class_constructor = static_cast < ECMAScriptFunctionObject * > ( & class_constructor_value . as_function ( ) ) ;
class_constructor - > set_home_object ( prototype ) ;
class_constructor - > set_is_class_constructor ( ) ;
class_constructor - > define_direct_property ( vm . names . prototype , prototype , Attribute : : Writable ) ;
TRY ( class_constructor - > internal_set_prototype_of ( constructor_parent ) ) ;
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if ( ! m_super_class . is_null ( ) )
class_constructor - > set_constructor_kind ( ECMAScriptFunctionObject : : ConstructorKind : : Derived ) ;
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prototype - > define_direct_property ( vm . names . constructor , class_constructor , Attribute : : Writable | Attribute : : Configurable ) ;
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using StaticElement = Variant < ClassElement : : ClassFieldDefinition , ECMAScriptFunctionObject * > ;
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Vector < PrivateElement > static_private_methods ;
Vector < PrivateElement > instance_private_methods ;
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Vector < ClassElement : : ClassFieldDefinition > instance_fields ;
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Vector < StaticElement > static_elements ;
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for ( auto const & element : m_elements ) {
// Note: All ClassElementEvaluation start with evaluating the name (or we fake it).
auto element_value = TRY ( element . class_element_evaluation ( interpreter , global_object , element . is_static ( ) ? * class_constructor : * prototype ) ) ;
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if ( element_value . has < PrivateElement > ( ) ) {
auto & container = element . is_static ( ) ? static_private_methods : instance_private_methods ;
auto & private_element = element_value . get < PrivateElement > ( ) ;
auto added_to_existing = false ;
// FIXME: We can skip this loop in most cases.
for ( auto & existing : container ) {
if ( existing . key = = private_element . key ) {
VERIFY ( existing . kind = = PrivateElement : : Kind : : Accessor ) ;
VERIFY ( private_element . kind = = PrivateElement : : Kind : : Accessor ) ;
auto & accessor = private_element . value . as_accessor ( ) ;
if ( ! accessor . getter ( ) )
existing . value . as_accessor ( ) . set_setter ( accessor . setter ( ) ) ;
else
existing . value . as_accessor ( ) . set_getter ( accessor . getter ( ) ) ;
added_to_existing = true ;
}
}
if ( ! added_to_existing )
container . append ( move ( element_value . get < PrivateElement > ( ) ) ) ;
} else if ( auto * class_field_definition_ptr = element_value . get_pointer < ClassElement : : ClassFieldDefinition > ( ) ) {
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if ( element . is_static ( ) )
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static_elements . append ( move ( * class_field_definition_ptr ) ) ;
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else
instance_fields . append ( move ( * class_field_definition_ptr ) ) ;
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} else if ( element . class_element_kind ( ) = = ClassElement : : ElementKind : : StaticInitializer ) {
// We use Completion to hold the ClassStaticBlockDefinition Record.
VERIFY ( element_value . has < Completion > ( ) & & element_value . get < Completion > ( ) . has_value ( ) ) ;
auto element_object = element_value . get < Completion > ( ) . value ( ) ;
VERIFY ( is < ECMAScriptFunctionObject > ( element_object . as_object ( ) ) ) ;
static_elements . append ( static_cast < ECMAScriptFunctionObject * > ( & element_object . as_object ( ) ) ) ;
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}
}
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vm . running_execution_context ( ) . lexical_environment = environment ;
restore_environment . disarm ( ) ;
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if ( ! binding_name . is_null ( ) )
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MUST ( class_scope - > initialize_binding ( global_object , binding_name , class_constructor ) ) ;
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for ( auto & field : instance_fields )
class_constructor - > add_field ( field . name , field . initializer ) ;
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for ( auto & private_method : instance_private_methods )
class_constructor - > add_private_method ( private_method ) ;
for ( auto & method : static_private_methods )
class_constructor - > private_method_or_accessor_add ( move ( method ) ) ;
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for ( auto & element : static_elements ) {
TRY ( element . visit (
[ & ] ( ClassElement : : ClassFieldDefinition const & field ) - > ThrowCompletionOr < void > {
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return TRY ( class_constructor - > define_field ( field . name , field . initializer ) ) ;
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} ,
[ & ] ( ECMAScriptFunctionObject * static_block_function ) - > ThrowCompletionOr < void > {
// We discard any value returned here.
TRY ( call ( global_object , static_block_function , class_constructor_value ) ) ;
return { } ;
} ) ) ;
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}
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return Value ( class_constructor ) ;
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}
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static void print_indent ( int indent )
{
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out ( " {} " , String : : repeated ( ' ' , indent * 2 ) ) ;
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}
void ASTNode : : dump ( int indent ) const
{
print_indent ( indent ) ;
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outln ( " {} " , class_name ( ) ) ;
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}
void ScopeNode : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
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if ( ! m_lexical_declarations . is_empty ( ) ) {
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print_indent ( indent + 1 ) ;
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outln ( " (Lexical declarations) " ) ;
for ( auto & declaration : m_lexical_declarations )
declaration . dump ( indent + 2 ) ;
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}
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if ( ! m_var_declarations . is_empty ( ) ) {
print_indent ( indent + 1 ) ;
outln ( " (Variable declarations) " ) ;
for ( auto & declaration : m_var_declarations )
declaration . dump ( indent + 2 ) ;
}
if ( ! m_functions_hoistable_with_annexB_extension . is_empty ( ) ) {
print_indent ( indent + 1 ) ;
outln ( " (Hoisted functions via annexB extension) " ) ;
for ( auto & declaration : m_functions_hoistable_with_annexB_extension )
declaration . dump ( indent + 2 ) ;
}
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if ( ! m_children . is_empty ( ) ) {
print_indent ( indent + 1 ) ;
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outln ( " (Children) " ) ;
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for ( auto & child : children ( ) )
child . dump ( indent + 2 ) ;
}
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}
void BinaryExpression : : dump ( int indent ) const
{
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const char * op_string = nullptr ;
switch ( m_op ) {
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case BinaryOp : : Addition :
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op_string = " + " ;
break ;
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case BinaryOp : : Subtraction :
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op_string = " - " ;
break ;
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case BinaryOp : : Multiplication :
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op_string = " * " ;
break ;
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case BinaryOp : : Division :
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op_string = " / " ;
break ;
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case BinaryOp : : Modulo :
op_string = " % " ;
break ;
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case BinaryOp : : Exponentiation :
op_string = " ** " ;
break ;
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case BinaryOp : : StrictlyEquals :
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op_string = " === " ;
break ;
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case BinaryOp : : StrictlyInequals :
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op_string = " !== " ;
break ;
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case BinaryOp : : LooselyEquals :
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op_string = " == " ;
break ;
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case BinaryOp : : LooselyInequals :
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op_string = " != " ;
break ;
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case BinaryOp : : GreaterThan :
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op_string = " > " ;
break ;
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case BinaryOp : : GreaterThanEquals :
op_string = " >= " ;
break ;
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case BinaryOp : : LessThan :
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op_string = " < " ;
break ;
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case BinaryOp : : LessThanEquals :
op_string = " <= " ;
break ;
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case BinaryOp : : BitwiseAnd :
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op_string = " & " ;
break ;
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case BinaryOp : : BitwiseOr :
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op_string = " | " ;
break ;
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case BinaryOp : : BitwiseXor :
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op_string = " ^ " ;
break ;
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case BinaryOp : : LeftShift :
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op_string = " << " ;
break ;
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case BinaryOp : : RightShift :
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op_string = " >> " ;
break ;
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case BinaryOp : : UnsignedRightShift :
op_string = " >>> " ;
break ;
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case BinaryOp : : In :
op_string = " in " ;
break ;
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case BinaryOp : : InstanceOf :
op_string = " instanceof " ;
break ;
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}
print_indent ( indent ) ;
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outln ( " {} " , class_name ( ) ) ;
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m_lhs - > dump ( indent + 1 ) ;
print_indent ( indent + 1 ) ;
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outln ( " {} " , op_string ) ;
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m_rhs - > dump ( indent + 1 ) ;
}
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void LogicalExpression : : dump ( int indent ) const
{
const char * op_string = nullptr ;
switch ( m_op ) {
case LogicalOp : : And :
op_string = " && " ;
break ;
case LogicalOp : : Or :
op_string = " || " ;
break ;
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case LogicalOp : : NullishCoalescing :
op_string = " ?? " ;
break ;
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}
print_indent ( indent ) ;
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outln ( " {} " , class_name ( ) ) ;
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m_lhs - > dump ( indent + 1 ) ;
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print_indent ( indent + 1 ) ;
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outln ( " {} " , op_string ) ;
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m_rhs - > dump ( indent + 1 ) ;
}
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void UnaryExpression : : dump ( int indent ) const
{
const char * op_string = nullptr ;
switch ( m_op ) {
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case UnaryOp : : BitwiseNot :
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op_string = " ~ " ;
break ;
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case UnaryOp : : Not :
op_string = " ! " ;
break ;
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case UnaryOp : : Plus :
op_string = " + " ;
break ;
case UnaryOp : : Minus :
op_string = " - " ;
break ;
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case UnaryOp : : Typeof :
op_string = " typeof " ;
break ;
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case UnaryOp : : Void :
op_string = " void " ;
break ;
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case UnaryOp : : Delete :
op_string = " delete " ;
break ;
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}
print_indent ( indent ) ;
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outln ( " {} " , class_name ( ) ) ;
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print_indent ( indent + 1 ) ;
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outln ( " {} " , op_string ) ;
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m_lhs - > dump ( indent + 1 ) ;
}
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void CallExpression : : dump ( int indent ) const
{
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print_indent ( indent ) ;
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if ( is < NewExpression > ( * this ) )
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outln ( " CallExpression [new] " ) ;
else
outln ( " CallExpression " ) ;
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m_callee - > dump ( indent + 1 ) ;
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for ( auto & argument : m_arguments )
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argument . value - > dump ( indent + 1 ) ;
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}
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void SuperCall : : dump ( int indent ) const
{
print_indent ( indent ) ;
outln ( " SuperCall " ) ;
for ( auto & argument : m_arguments )
argument . value - > dump ( indent + 1 ) ;
}
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void ClassDeclaration : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
m_class_expression - > dump ( indent + 1 ) ;
}
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void ClassDeclaration : : for_each_bound_name ( IteratorOrVoidFunction < FlyString const & > callback ) const
{
if ( ! m_class_expression - > name ( ) . is_empty ( ) )
callback ( m_class_expression - > name ( ) ) ;
}
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void ClassExpression : : dump ( int indent ) const
{
print_indent ( indent ) ;
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outln ( " ClassExpression: \" {} \" " , m_name ) ;
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print_indent ( indent ) ;
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outln ( " (Constructor) " ) ;
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m_constructor - > dump ( indent + 1 ) ;
if ( ! m_super_class . is_null ( ) ) {
print_indent ( indent ) ;
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outln ( " (Super Class) " ) ;
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m_super_class - > dump ( indent + 1 ) ;
}
print_indent ( indent ) ;
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outln ( " (Elements) " ) ;
for ( auto & method : m_elements )
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method . dump ( indent + 1 ) ;
}
void ClassMethod : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent ) ;
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outln ( " (Key) " ) ;
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m_key - > dump ( indent + 1 ) ;
const char * kind_string = nullptr ;
switch ( m_kind ) {
case Kind : : Method :
kind_string = " Method " ;
break ;
case Kind : : Getter :
kind_string = " Getter " ;
break ;
case Kind : : Setter :
kind_string = " Setter " ;
break ;
}
print_indent ( indent ) ;
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outln ( " Kind: {} " , kind_string ) ;
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print_indent ( indent ) ;
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outln ( " Static: {} " , is_static ( ) ) ;
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print_indent ( indent ) ;
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outln ( " (Function) " ) ;
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m_function - > dump ( indent + 1 ) ;
}
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void ClassField : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent ) ;
outln ( " (Key) " ) ;
m_key - > dump ( indent + 1 ) ;
print_indent ( indent ) ;
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outln ( " Static: {} " , is_static ( ) ) ;
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if ( m_initializer ) {
print_indent ( indent ) ;
outln ( " (Initializer) " ) ;
m_initializer - > dump ( indent + 1 ) ;
}
}
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void StaticInitializer : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
m_function_body - > dump ( indent + 1 ) ;
}
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void StringLiteral : : dump ( int indent ) const
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{
print_indent ( indent ) ;
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outln ( " StringLiteral \" {} \" " , m_value ) ;
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}
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void SuperExpression : : dump ( int indent ) const
{
print_indent ( indent ) ;
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outln ( " super " ) ;
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}
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void NumericLiteral : : dump ( int indent ) const
{
print_indent ( indent ) ;
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outln ( " NumericLiteral {} " , m_value ) ;
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}
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void BigIntLiteral : : dump ( int indent ) const
{
print_indent ( indent ) ;
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outln ( " BigIntLiteral {} " , m_value ) ;
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}
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void BooleanLiteral : : dump ( int indent ) const
{
print_indent ( indent ) ;
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outln ( " BooleanLiteral {} " , m_value ) ;
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}
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void NullLiteral : : dump ( int indent ) const
{
print_indent ( indent ) ;
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outln ( " null " ) ;
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}
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bool BindingPattern : : contains_expression ( ) const
{
for ( auto & entry : entries ) {
if ( entry . initializer )
return true ;
if ( auto binding_ptr = entry . alias . get_pointer < NonnullRefPtr < BindingPattern > > ( ) ; binding_ptr & & ( * binding_ptr ) - > contains_expression ( ) )
return true ;
}
return false ;
}
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void BindingPattern : : dump ( int indent ) const
{
print_indent ( indent ) ;
outln ( " BindingPattern {} " , kind = = Kind : : Array ? " Array " : " Object " ) ;
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for ( auto & entry : entries ) {
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print_indent ( indent + 1 ) ;
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outln ( " (Property) " ) ;
if ( kind = = Kind : : Object ) {
print_indent ( indent + 2 ) ;
outln ( " (Identifier) " ) ;
if ( entry . name . has < NonnullRefPtr < Identifier > > ( ) ) {
entry . name . get < NonnullRefPtr < Identifier > > ( ) - > dump ( indent + 3 ) ;
} else {
entry . name . get < NonnullRefPtr < Expression > > ( ) - > dump ( indent + 3 ) ;
}
} else if ( entry . is_elision ( ) ) {
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print_indent ( indent + 2 ) ;
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outln ( " (Elision) " ) ;
continue ;
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}
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print_indent ( indent + 2 ) ;
outln ( " (Pattern{}) " , entry . is_rest ? " rest=true " : " " ) ;
if ( entry . alias . has < NonnullRefPtr < Identifier > > ( ) ) {
entry . alias . get < NonnullRefPtr < Identifier > > ( ) - > dump ( indent + 3 ) ;
} else if ( entry . alias . has < NonnullRefPtr < BindingPattern > > ( ) ) {
entry . alias . get < NonnullRefPtr < BindingPattern > > ( ) - > dump ( indent + 3 ) ;
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} else if ( entry . alias . has < NonnullRefPtr < MemberExpression > > ( ) ) {
entry . alias . get < NonnullRefPtr < MemberExpression > > ( ) - > dump ( indent + 3 ) ;
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} else {
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print_indent ( indent + 3 ) ;
outln ( " <empty> " ) ;
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}
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if ( entry . initializer ) {
print_indent ( indent + 2 ) ;
outln ( " (Initializer) " ) ;
entry . initializer - > dump ( indent + 3 ) ;
}
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}
}
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void FunctionNode : : dump ( int indent , String const & class_name ) const
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{
print_indent ( indent ) ;
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auto is_async = m_kind = = FunctionKind : : Async | | m_kind = = FunctionKind : : AsyncGenerator ;
auto is_generator = m_kind = = FunctionKind : : Generator | | m_kind = = FunctionKind : : AsyncGenerator ;
outln ( " {}{}{} '{}' " , class_name , is_async ? " async " : " " , is_generator ? " * " : " " , name ( ) ) ;
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if ( m_contains_direct_call_to_eval ) {
print_indent ( indent + 1 ) ;
outln ( " \033 [31;1m(direct eval) \033 [0m " ) ;
}
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if ( ! m_parameters . is_empty ( ) ) {
print_indent ( indent + 1 ) ;
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outln ( " (Parameters) " ) ;
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for ( auto & parameter : m_parameters ) {
print_indent ( indent + 2 ) ;
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if ( parameter . is_rest )
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out ( " ... " ) ;
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parameter . binding . visit (
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[ & ] ( FlyString const & name ) {
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outln ( " {} " , name ) ;
} ,
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[ & ] ( BindingPattern const & pattern ) {
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pattern . dump ( indent + 2 ) ;
} ) ;
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if ( parameter . default_value )
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parameter . default_value - > dump ( indent + 3 ) ;
}
}
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print_indent ( indent + 1 ) ;
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outln ( " (Body) " ) ;
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body ( ) . dump ( indent + 2 ) ;
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}
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void FunctionDeclaration : : dump ( int indent ) const
{
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FunctionNode : : dump ( indent , class_name ( ) ) ;
}
void FunctionDeclaration : : for_each_bound_name ( IteratorOrVoidFunction < FlyString const & > callback ) const
{
if ( ! name ( ) . is_empty ( ) )
callback ( name ( ) ) ;
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}
void FunctionExpression : : dump ( int indent ) const
{
FunctionNode : : dump ( indent , class_name ( ) ) ;
}
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void YieldExpression : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
if ( argument ( ) )
argument ( ) - > dump ( indent + 1 ) ;
}
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void AwaitExpression : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
m_argument - > dump ( indent + 1 ) ;
}
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void ReturnStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
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if ( argument ( ) )
argument ( ) - > dump ( indent + 1 ) ;
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}
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void IfStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent ) ;
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outln ( " If " ) ;
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predicate ( ) . dump ( indent + 1 ) ;
consequent ( ) . dump ( indent + 1 ) ;
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if ( alternate ( ) ) {
print_indent ( indent ) ;
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outln ( " Else " ) ;
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alternate ( ) - > dump ( indent + 1 ) ;
}
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}
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void WhileStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent ) ;
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outln ( " While " ) ;
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test ( ) . dump ( indent + 1 ) ;
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body ( ) . dump ( indent + 1 ) ;
}
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void WithStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent + 1 ) ;
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outln ( " Object " ) ;
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object ( ) . dump ( indent + 2 ) ;
print_indent ( indent + 1 ) ;
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outln ( " Body " ) ;
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body ( ) . dump ( indent + 2 ) ;
}
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void DoWhileStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent ) ;
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outln ( " DoWhile " ) ;
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test ( ) . dump ( indent + 1 ) ;
body ( ) . dump ( indent + 1 ) ;
}
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void ForStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent ) ;
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outln ( " For " ) ;
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if ( init ( ) )
init ( ) - > dump ( indent + 1 ) ;
if ( test ( ) )
test ( ) - > dump ( indent + 1 ) ;
if ( update ( ) )
update ( ) - > dump ( indent + 1 ) ;
body ( ) . dump ( indent + 1 ) ;
}
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void ForInStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent ) ;
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outln ( " ForIn " ) ;
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lhs ( ) . visit ( [ & ] ( auto & lhs ) { lhs - > dump ( indent + 1 ) ; } ) ;
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rhs ( ) . dump ( indent + 1 ) ;
body ( ) . dump ( indent + 1 ) ;
}
void ForOfStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent ) ;
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outln ( " ForOf " ) ;
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lhs ( ) . visit ( [ & ] ( auto & lhs ) { lhs - > dump ( indent + 1 ) ; } ) ;
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rhs ( ) . dump ( indent + 1 ) ;
body ( ) . dump ( indent + 1 ) ;
}
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void ForAwaitOfStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent ) ;
outln ( " ForAwaitOf " ) ;
m_lhs . visit ( [ & ] ( auto & lhs ) { lhs - > dump ( indent + 1 ) ; } ) ;
m_rhs - > dump ( indent + 1 ) ;
m_body - > dump ( indent + 1 ) ;
}
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Value Identifier : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto reference = to_reference ( interpreter , global_object ) ;
LibJS: Rewrite most of Object for spec compliance :^)
This is a huge patch, I know. In hindsight this perhaps could've been
done slightly more incremental, but I started and then fixed everything
until it worked, and here we are. I tried splitting of some completely
unrelated changes into separate commits, however. Anyway.
This is a rewrite of most of Object, and by extension large parts of
Array, Proxy, Reflect, String, TypedArray, and some other things.
What we already had worked fine for about 90% of things, but getting the
last 10% right proved to be increasingly difficult with the current code
that sort of grew organically and is only very loosely based on the
spec - this became especially obvious when we started fixing a large
number of test262 failures.
Key changes include:
- 1:1 matching function names and parameters of all object-related
functions, to avoid ambiguity. Previously we had things like put(),
which the spec doesn't have - as a result it wasn't always clear which
need to be used.
- Better separation between object abstract operations and internal
methods - the former are always the same, the latter can be overridden
(and are therefore virtual). The internal methods (i.e. [[Foo]] in the
spec) are now prefixed with 'internal_' for clarity - again, it was
previously not always clear which AO a certain method represents,
get() could've been both Get and [[Get]] (I don't know which one it
was closer to right now).
Note that some of the old names have been kept until all code relying
on them is updated, but they are now simple wrappers around the
closest matching standard abstract operation.
- Simplifications of the storage layer: functions that write values to
storage are now prefixed with 'storage_' to make their purpose clear,
and as they are not part of the spec they should not contain any steps
specified by it. Much functionality is now covered by the layers above
it and was removed (e.g. handling of accessors, attribute checks).
- PropertyAttributes has been greatly simplified, and is being replaced
by PropertyDescriptor - a concept similar to the current
implementation, but more aligned with the actual spec. See the commit
message of the previous commit where it was introduced for details.
- As a bonus, and since I had to look at the spec a whole lot anyway, I
introduced more inline comments with the exact steps from the spec -
this makes it super easy to verify correctness.
- East-const all the things.
As a result of all of this, things are much more correct but a bit
slower now. Retaining speed wasn't a consideration at all, I have done
no profiling of the new code - there might be low hanging fruits, which
we can then harvest separately.
Special thanks to Idan for helping me with this by tracking down bugs,
updating everything outside of LibJS to work with these changes (LibWeb,
Spreadsheet, HackStudio), as well as providing countless patches to fix
regressions I introduced - there still are very few (we got it down to
5), but we also get many new passing test262 tests in return. :^)
Co-authored-by: Idan Horowitz <idan.horowitz@gmail.com>
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if ( interpreter . exception ( ) )
return { } ;
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return TRY_OR_DISCARD ( reference . get_value ( global_object ) ) ;
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}
void Identifier : : dump ( int indent ) const
{
print_indent ( indent ) ;
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outln ( " Identifier \" {} \" " , m_string ) ;
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}
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Value PrivateIdentifier : : execute ( Interpreter & , GlobalObject & ) const
{
// Note: This should be handled by either the member expression this is part of
// or the binary expression in the case of `#foo in bar`.
VERIFY_NOT_REACHED ( ) ;
}
void PrivateIdentifier : : dump ( int indent ) const
{
print_indent ( indent ) ;
outln ( " PrivateIdentifier \" {} \" " , m_string ) ;
}
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void SpreadExpression : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
m_target - > dump ( indent + 1 ) ;
}
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Value SpreadExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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return m_target - > execute ( interpreter , global_object ) ;
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}
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Value ThisExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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return interpreter . vm ( ) . resolve_this_binding ( global_object ) ;
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}
void ThisExpression : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
}
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// 13.15.2 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-assignment-operators-runtime-semantics-evaluation
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Value AssignmentExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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if ( m_op = = AssignmentOp : : Assignment ) {
// AssignmentExpression : LeftHandSideExpression = AssignmentExpression
return m_lhs . visit (
[ & ] ( NonnullRefPtr < Expression > & lhs ) - > JS : : Value {
auto reference = lhs - > to_reference ( interpreter , global_object ) ;
if ( interpreter . exception ( ) )
return { } ;
Value rhs_result ;
if ( lhs - > is_identifier ( ) ) {
auto & identifier_name = static_cast < Identifier const & > ( * lhs ) . string ( ) ;
rhs_result = TRY_OR_DISCARD ( interpreter . vm ( ) . named_evaluation_if_anonymous_function ( global_object , m_rhs , identifier_name ) ) ;
} else {
rhs_result = m_rhs - > execute ( interpreter , global_object ) ;
}
if ( interpreter . exception ( ) )
return { } ;
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TRY_OR_DISCARD ( reference . put_value ( global_object , rhs_result ) ) ;
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return rhs_result ;
} ,
[ & ] ( NonnullRefPtr < BindingPattern > & pattern ) - > JS : : Value {
Value rhs_result = m_rhs - > execute ( interpreter , global_object ) ;
if ( interpreter . exception ( ) )
return { } ;
TRY_OR_DISCARD ( interpreter . vm ( ) . destructuring_assignment_evaluation ( pattern , rhs_result , global_object ) ) ;
return rhs_result ;
} ) ;
}
VERIFY ( m_lhs . has < NonnullRefPtr < Expression > > ( ) ) ;
auto & lhs_expression = * m_lhs . get < NonnullRefPtr < Expression > > ( ) ;
auto reference = lhs_expression . to_reference ( interpreter , global_object ) ;
if ( interpreter . exception ( ) )
return { } ;
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auto lhs_result = TRY_OR_DISCARD ( reference . get_value ( global_object ) ) ;
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// AssignmentExpression : LeftHandSideExpression {&&=, ||=, ??=} AssignmentExpression
if ( m_op = = AssignmentOp : : AndAssignment | | m_op = = AssignmentOp : : OrAssignment | | m_op = = AssignmentOp : : NullishAssignment ) {
switch ( m_op ) {
case AssignmentOp : : AndAssignment :
if ( ! lhs_result . to_boolean ( ) )
return lhs_result ;
break ;
case AssignmentOp : : OrAssignment :
if ( lhs_result . to_boolean ( ) )
return lhs_result ;
break ;
case AssignmentOp : : NullishAssignment :
if ( ! lhs_result . is_nullish ( ) )
return lhs_result ;
break ;
default :
VERIFY_NOT_REACHED ( ) ;
}
Value rhs_result ;
if ( lhs_expression . is_identifier ( ) ) {
auto & identifier_name = static_cast < Identifier const & > ( lhs_expression ) . string ( ) ;
rhs_result = TRY_OR_DISCARD ( interpreter . vm ( ) . named_evaluation_if_anonymous_function ( global_object , m_rhs , identifier_name ) ) ;
} else {
rhs_result = m_rhs - > execute ( interpreter , global_object ) ;
if ( interpreter . exception ( ) )
return { } ;
}
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TRY_OR_DISCARD ( reference . put_value ( global_object , rhs_result ) ) ;
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return rhs_result ;
}
// AssignmentExpression : LeftHandSideExpression AssignmentOperator AssignmentExpression
auto rhs_result = m_rhs - > execute ( interpreter , global_object ) ;
if ( interpreter . exception ( ) )
return { } ;
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switch ( m_op ) {
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case AssignmentOp : : AdditionAssignment :
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rhs_result = TRY_OR_DISCARD ( add ( global_object , lhs_result , rhs_result ) ) ;
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break ;
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case AssignmentOp : : SubtractionAssignment :
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rhs_result = TRY_OR_DISCARD ( sub ( global_object , lhs_result , rhs_result ) ) ;
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break ;
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case AssignmentOp : : MultiplicationAssignment :
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rhs_result = TRY_OR_DISCARD ( mul ( global_object , lhs_result , rhs_result ) ) ;
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break ;
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case AssignmentOp : : DivisionAssignment :
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rhs_result = TRY_OR_DISCARD ( div ( global_object , lhs_result , rhs_result ) ) ;
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break ;
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case AssignmentOp : : ModuloAssignment :
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rhs_result = TRY_OR_DISCARD ( mod ( global_object , lhs_result , rhs_result ) ) ;
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break ;
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case AssignmentOp : : ExponentiationAssignment :
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rhs_result = TRY_OR_DISCARD ( exp ( global_object , lhs_result , rhs_result ) ) ;
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break ;
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case AssignmentOp : : BitwiseAndAssignment :
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rhs_result = TRY_OR_DISCARD ( bitwise_and ( global_object , lhs_result , rhs_result ) ) ;
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break ;
case AssignmentOp : : BitwiseOrAssignment :
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rhs_result = TRY_OR_DISCARD ( bitwise_or ( global_object , lhs_result , rhs_result ) ) ;
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break ;
case AssignmentOp : : BitwiseXorAssignment :
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rhs_result = TRY_OR_DISCARD ( bitwise_xor ( global_object , lhs_result , rhs_result ) ) ;
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break ;
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case AssignmentOp : : LeftShiftAssignment :
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rhs_result = TRY_OR_DISCARD ( left_shift ( global_object , lhs_result , rhs_result ) ) ;
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break ;
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case AssignmentOp : : RightShiftAssignment :
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rhs_result = TRY_OR_DISCARD ( right_shift ( global_object , lhs_result , rhs_result ) ) ;
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break ;
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case AssignmentOp : : UnsignedRightShiftAssignment :
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rhs_result = TRY_OR_DISCARD ( unsigned_right_shift ( global_object , lhs_result , rhs_result ) ) ;
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break ;
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case AssignmentOp : : Assignment :
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case AssignmentOp : : AndAssignment :
case AssignmentOp : : OrAssignment :
case AssignmentOp : : NullishAssignment :
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VERIFY_NOT_REACHED ( ) ;
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}
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TRY_OR_DISCARD ( reference . put_value ( global_object , rhs_result ) ) ;
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return rhs_result ;
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}
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Value UpdateExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto reference = m_argument - > to_reference ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
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auto old_value = TRY_OR_DISCARD ( reference . get_value ( global_object ) ) ;
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old_value = TRY_OR_DISCARD ( old_value . to_numeric ( global_object ) ) ;
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Value new_value ;
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switch ( m_op ) {
case UpdateOp : : Increment :
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if ( old_value . is_number ( ) )
new_value = Value ( old_value . as_double ( ) + 1 ) ;
else
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new_value = js_bigint ( interpreter . heap ( ) , old_value . as_bigint ( ) . big_integer ( ) . plus ( Crypto : : SignedBigInteger { 1 } ) ) ;
2020-03-12 13:45:45 +02:00
break ;
case UpdateOp : : Decrement :
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if ( old_value . is_number ( ) )
new_value = Value ( old_value . as_double ( ) - 1 ) ;
else
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new_value = js_bigint ( interpreter . heap ( ) , old_value . as_bigint ( ) . big_integer ( ) . minus ( Crypto : : SignedBigInteger { 1 } ) ) ;
2020-03-12 14:24:34 +02:00
break ;
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default :
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VERIFY_NOT_REACHED ( ) ;
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}
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TRY_OR_DISCARD ( reference . put_value ( global_object , new_value ) ) ;
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return m_prefixed ? new_value : old_value ;
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}
2020-03-09 21:13:55 +01:00
void AssignmentExpression : : dump ( int indent ) const
{
const char * op_string = nullptr ;
switch ( m_op ) {
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case AssignmentOp : : Assignment :
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op_string = " = " ;
break ;
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case AssignmentOp : : AdditionAssignment :
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op_string = " += " ;
break ;
2020-03-12 13:54:56 +01:00
case AssignmentOp : : SubtractionAssignment :
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op_string = " -= " ;
break ;
2020-03-12 13:54:56 +01:00
case AssignmentOp : : MultiplicationAssignment :
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op_string = " *= " ;
break ;
2020-03-12 13:54:56 +01:00
case AssignmentOp : : DivisionAssignment :
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op_string = " /= " ;
break ;
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case AssignmentOp : : ModuloAssignment :
op_string = " %= " ;
break ;
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case AssignmentOp : : ExponentiationAssignment :
op_string = " **= " ;
break ;
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case AssignmentOp : : BitwiseAndAssignment :
op_string = " &= " ;
break ;
case AssignmentOp : : BitwiseOrAssignment :
op_string = " |= " ;
break ;
case AssignmentOp : : BitwiseXorAssignment :
op_string = " ^= " ;
break ;
2020-04-23 13:36:14 +01:00
case AssignmentOp : : LeftShiftAssignment :
op_string = " <<= " ;
break ;
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case AssignmentOp : : RightShiftAssignment :
op_string = " >>= " ;
break ;
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case AssignmentOp : : UnsignedRightShiftAssignment :
op_string = " >>>= " ;
break ;
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case AssignmentOp : : AndAssignment :
op_string = " &&= " ;
break ;
case AssignmentOp : : OrAssignment :
op_string = " ||= " ;
break ;
case AssignmentOp : : NullishAssignment :
op_string = " \ ? \ ?= " ;
break ;
2020-03-09 21:13:55 +01:00
}
ASTNode : : dump ( indent ) ;
print_indent ( indent + 1 ) ;
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outln ( " {} " , op_string ) ;
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m_lhs . visit ( [ & ] ( auto & lhs ) { lhs - > dump ( indent + 1 ) ; } ) ;
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m_rhs - > dump ( indent + 1 ) ;
}
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void UpdateExpression : : dump ( int indent ) const
{
const char * op_string = nullptr ;
switch ( m_op ) {
case UpdateOp : : Increment :
op_string = " ++ " ;
break ;
case UpdateOp : : Decrement :
op_string = " -- " ;
break ;
}
ASTNode : : dump ( indent ) ;
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if ( m_prefixed ) {
print_indent ( indent + 1 ) ;
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outln ( " {} " , op_string ) ;
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}
2020-03-12 13:45:45 +02:00
m_argument - > dump ( indent + 1 ) ;
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if ( ! m_prefixed ) {
print_indent ( indent + 1 ) ;
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outln ( " {} " , op_string ) ;
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}
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}
2020-06-08 20:57:54 +02:00
Value VariableDeclaration : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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2020-04-04 21:46:25 +02:00
for ( auto & declarator : m_declarations ) {
if ( auto * init = declarator . init ( ) ) {
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TRY_OR_DISCARD ( declarator . target ( ) . visit (
[ & ] ( NonnullRefPtr < Identifier > const & id ) - > ThrowCompletionOr < void > {
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auto reference = id - > to_reference ( interpreter , global_object ) ;
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if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
auto initializer_result = TRY_OR_DISCARD ( interpreter . vm ( ) . named_evaluation_if_anonymous_function ( global_object , * init , id - > string ( ) ) ) ;
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VERIFY ( ! initializer_result . is_empty ( ) ) ;
if ( m_declaration_kind = = DeclarationKind : : Var )
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return reference . put_value ( global_object , initializer_result ) ;
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else
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return reference . initialize_referenced_binding ( global_object , initializer_result ) ;
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} ,
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[ & ] ( NonnullRefPtr < BindingPattern > const & pattern ) - > ThrowCompletionOr < void > {
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auto initializer_result = init - > execute ( interpreter , global_object ) ;
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if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
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Environment * environment = m_declaration_kind = = DeclarationKind : : Var ? nullptr : interpreter . lexical_environment ( ) ;
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return interpreter . vm ( ) . binding_initialization ( pattern , initializer_result , environment , global_object ) ;
} ) ) ;
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} else if ( m_declaration_kind ! = DeclarationKind : : Var ) {
VERIFY ( declarator . target ( ) . has < NonnullRefPtr < Identifier > > ( ) ) ;
auto & identifier = declarator . target ( ) . get < NonnullRefPtr < Identifier > > ( ) ;
auto reference = identifier - > to_reference ( interpreter , global_object ) ;
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TRY_OR_DISCARD ( reference . initialize_referenced_binding ( global_object , js_undefined ( ) ) ) ;
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}
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}
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return { } ;
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}
2020-12-28 20:45:22 +03:30
Value VariableDeclarator : : execute ( Interpreter & interpreter , GlobalObject & ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
2020-12-28 20:45:22 +03:30
2020-10-18 17:44:55 +01:00
// NOTE: VariableDeclarator execution is handled by VariableDeclaration.
2021-02-23 20:42:32 +01:00
VERIFY_NOT_REACHED ( ) ;
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}
2021-09-22 12:44:56 +02:00
void VariableDeclaration : : for_each_bound_name ( IteratorOrVoidFunction < FlyString const & > callback ) const
{
for ( auto & entry : declarations ( ) ) {
entry . target ( ) . template visit (
[ & ] ( const NonnullRefPtr < Identifier > & id ) {
callback ( id - > string ( ) ) ;
} ,
[ & ] ( const NonnullRefPtr < BindingPattern > & binding ) {
binding - > for_each_bound_name ( [ & ] ( const auto & name ) {
callback ( name ) ;
} ) ;
} ) ;
}
}
2020-03-09 21:13:55 +01:00
void VariableDeclaration : : dump ( int indent ) const
{
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const char * declaration_kind_string = nullptr ;
switch ( m_declaration_kind ) {
case DeclarationKind : : Let :
declaration_kind_string = " Let " ;
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break ;
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case DeclarationKind : : Var :
declaration_kind_string = " Var " ;
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break ;
2020-04-08 11:59:18 +02:00
case DeclarationKind : : Const :
declaration_kind_string = " Const " ;
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break ;
}
2020-03-09 21:13:55 +01:00
ASTNode : : dump ( indent ) ;
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print_indent ( indent + 1 ) ;
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outln ( " {} " , declaration_kind_string ) ;
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for ( auto & declarator : m_declarations )
declarator . dump ( indent + 1 ) ;
}
void VariableDeclarator : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
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m_target . visit ( [ indent ] ( const auto & value ) { value - > dump ( indent + 1 ) ; } ) ;
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if ( m_init )
m_init - > dump ( indent + 1 ) ;
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}
2020-04-23 19:37:53 +01:00
void ObjectProperty : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
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if ( m_property_type = = Type : : Spread ) {
print_indent ( indent + 1 ) ;
outln ( " ...Spreading " ) ;
m_key - > dump ( indent + 1 ) ;
} else {
m_key - > dump ( indent + 1 ) ;
m_value - > dump ( indent + 1 ) ;
}
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}
2020-03-09 21:28:31 +01:00
void ObjectExpression : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
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for ( auto & property : m_properties ) {
property . dump ( indent + 1 ) ;
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}
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}
2020-03-11 19:27:43 +01:00
void ExpressionStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
m_expression - > dump ( indent + 1 ) ;
}
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Value ObjectProperty : : execute ( Interpreter & interpreter , GlobalObject & ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
2020-12-28 20:45:22 +03:30
2020-04-23 19:37:53 +01:00
// NOTE: ObjectProperty execution is handled by ObjectExpression.
2021-02-23 20:42:32 +01:00
VERIFY_NOT_REACHED ( ) ;
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}
2020-06-08 20:57:54 +02:00
Value ObjectExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
2021-03-16 10:51:55 +01:00
InterpreterNodeScope node_scope { interpreter , * this } ;
2020-12-28 20:45:22 +03:30
2021-06-16 20:52:30 +01:00
auto * object = Object : : create ( global_object , global_object . object_prototype ( ) ) ;
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for ( auto & property : m_properties ) {
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auto key = property . key ( ) . execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
2020-04-27 21:52:47 -07:00
2020-05-21 17:28:28 -07:00
if ( property . type ( ) = = ObjectProperty : : Type : : Spread ) {
2021-07-05 18:58:51 +01:00
if ( key . is_object ( ) & & is < Array > ( key . as_object ( ) ) ) {
2020-07-07 21:38:46 -07:00
auto & array_to_spread = static_cast < Array & > ( key . as_object ( ) ) ;
LibJS: Object index properties have descriptors; Handle sparse indices
This patch adds an IndexedProperties object for storing indexed
properties within an Object. This accomplishes two goals: indexed
properties now have an associated descriptor, and objects now gracefully
handle sparse properties.
The IndexedProperties class is a wrapper around two other classes, one
for simple indexed properties storage, and one for general indexed
property storage. Simple indexed property storage is the common-case,
and is simply a vector of properties which all have attributes of
default_attributes (writable, enumerable, and configurable).
General indexed property storage is for a collection of indexed
properties where EITHER one or more properties have attributes other
than default_attributes OR there is a property with a large index (in
particular, large is '200' or higher).
Indexed properties are now treated relatively the same as storage within
the various Object methods. Additionally, there is a custom iterator
class for IndexedProperties which makes iteration easy. The iterator
skips empty values by default, but can be configured otherwise.
Likewise, it evaluates getters by default, but can be set not to.
2020-05-27 11:35:09 -07:00
for ( auto & entry : array_to_spread . indexed_properties ( ) ) {
2021-10-02 23:52:27 +01:00
auto value = TRY_OR_DISCARD ( array_to_spread . get ( entry . index ( ) ) ) ;
LibJS: Rewrite most of Object for spec compliance :^)
This is a huge patch, I know. In hindsight this perhaps could've been
done slightly more incremental, but I started and then fixed everything
until it worked, and here we are. I tried splitting of some completely
unrelated changes into separate commits, however. Anyway.
This is a rewrite of most of Object, and by extension large parts of
Array, Proxy, Reflect, String, TypedArray, and some other things.
What we already had worked fine for about 90% of things, but getting the
last 10% right proved to be increasingly difficult with the current code
that sort of grew organically and is only very loosely based on the
spec - this became especially obvious when we started fixing a large
number of test262 failures.
Key changes include:
- 1:1 matching function names and parameters of all object-related
functions, to avoid ambiguity. Previously we had things like put(),
which the spec doesn't have - as a result it wasn't always clear which
need to be used.
- Better separation between object abstract operations and internal
methods - the former are always the same, the latter can be overridden
(and are therefore virtual). The internal methods (i.e. [[Foo]] in the
spec) are now prefixed with 'internal_' for clarity - again, it was
previously not always clear which AO a certain method represents,
get() could've been both Get and [[Get]] (I don't know which one it
was closer to right now).
Note that some of the old names have been kept until all code relying
on them is updated, but they are now simple wrappers around the
closest matching standard abstract operation.
- Simplifications of the storage layer: functions that write values to
storage are now prefixed with 'storage_' to make their purpose clear,
and as they are not part of the spec they should not contain any steps
specified by it. Much functionality is now covered by the layers above
it and was removed (e.g. handling of accessors, attribute checks).
- PropertyAttributes has been greatly simplified, and is being replaced
by PropertyDescriptor - a concept similar to the current
implementation, but more aligned with the actual spec. See the commit
message of the previous commit where it was introduced for details.
- As a bonus, and since I had to look at the spec a whole lot anyway, I
introduced more inline comments with the exact steps from the spec -
this makes it super easy to verify correctness.
- East-const all the things.
As a result of all of this, things are much more correct but a bit
slower now. Retaining speed wasn't a consideration at all, I have done
no profiling of the new code - there might be low hanging fruits, which
we can then harvest separately.
Special thanks to Idan for helping me with this by tracking down bugs,
updating everything outside of LibJS to work with these changes (LibWeb,
Spreadsheet, HackStudio), as well as providing countless patches to fix
regressions I introduced - there still are very few (we got it down to
5), but we also get many new passing test262 tests in return. :^)
Co-authored-by: Idan Horowitz <idan.horowitz@gmail.com>
2021-07-04 18:14:16 +01:00
object - > indexed_properties ( ) . put ( entry . index ( ) , value ) ;
LibJS: Object index properties have descriptors; Handle sparse indices
This patch adds an IndexedProperties object for storing indexed
properties within an Object. This accomplishes two goals: indexed
properties now have an associated descriptor, and objects now gracefully
handle sparse properties.
The IndexedProperties class is a wrapper around two other classes, one
for simple indexed properties storage, and one for general indexed
property storage. Simple indexed property storage is the common-case,
and is simply a vector of properties which all have attributes of
default_attributes (writable, enumerable, and configurable).
General indexed property storage is for a collection of indexed
properties where EITHER one or more properties have attributes other
than default_attributes OR there is a property with a large index (in
particular, large is '200' or higher).
Indexed properties are now treated relatively the same as storage within
the various Object methods. Additionally, there is a custom iterator
class for IndexedProperties which makes iteration easy. The iterator
skips empty values by default, but can be configured otherwise.
Likewise, it evaluates getters by default, but can be set not to.
2020-05-27 11:35:09 -07:00
if ( interpreter . exception ( ) )
return { } ;
2020-04-27 21:52:47 -07:00
}
2020-07-07 21:38:46 -07:00
} else if ( key . is_object ( ) ) {
auto & obj_to_spread = key . as_object ( ) ;
2020-04-27 21:52:47 -07:00
2020-04-28 19:19:31 -07:00
for ( auto & it : obj_to_spread . shape ( ) . property_table_ordered ( ) ) {
2020-06-07 10:53:14 -07:00
if ( it . value . attributes . is_enumerable ( ) ) {
2021-10-02 23:52:27 +01:00
object - > define_direct_property ( it . key , TRY_OR_DISCARD ( obj_to_spread . get ( it . key ) ) , JS : : default_attributes ) ;
2020-06-07 10:53:14 -07:00
if ( interpreter . exception ( ) )
return { } ;
}
2020-04-27 21:52:47 -07:00
}
2020-07-07 21:38:46 -07:00
} else if ( key . is_string ( ) ) {
auto & str_to_spread = key . as_string ( ) . string ( ) ;
2020-04-27 21:52:47 -07:00
for ( size_t i = 0 ; i < str_to_spread . length ( ) ; i + + ) {
2021-07-06 02:15:08 +03:00
object - > define_direct_property ( i , js_string ( interpreter . heap ( ) , str_to_spread . substring ( i , 1 ) ) , JS : : default_attributes ) ;
2020-06-07 10:53:14 -07:00
if ( interpreter . exception ( ) )
return { } ;
2020-04-27 21:52:47 -07:00
}
}
continue ;
}
2020-06-08 20:57:54 +02:00
auto value = property . value ( ) . execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
2020-05-21 17:28:28 -07:00
2020-06-08 13:31:21 -05:00
if ( value . is_function ( ) & & property . is_method ( ) )
2021-09-24 23:49:24 +02:00
static_cast < ECMAScriptFunctionObject & > ( value . as_function ( ) ) . set_home_object ( object ) ;
2020-06-08 13:31:21 -05:00
2021-10-12 17:49:01 +01:00
auto name = TRY_OR_DISCARD ( get_function_name ( global_object , key ) ) ;
2020-05-21 17:28:28 -07:00
if ( property . type ( ) = = ObjectProperty : : Type : : Getter ) {
2020-10-04 15:18:52 +01:00
name = String : : formatted ( " get {} " , name ) ;
2020-05-21 17:28:28 -07:00
} else if ( property . type ( ) = = ObjectProperty : : Type : : Setter ) {
2020-10-04 15:18:52 +01:00
name = String : : formatted ( " set {} " , name ) ;
2020-05-21 17:28:28 -07:00
}
update_function_name ( value , name ) ;
LibJS: Update Object::define_accessor() to take both getter and setter
This replaces the current 'function plus boolean indicating the type'
API, which makes it easier to set both getter and setter at once.
This was already possible before but required two calls of this
function, which wasn't intuitive:
define_accessor(name, getter, true, ...);
define_accessor(name, setter, false, ...);
Which now becomes:
define_accessor(name, getter, setter, ...);
2021-04-10 18:35:29 +02:00
switch ( property . type ( ) ) {
case ObjectProperty : : Type : : Getter :
2021-02-23 20:42:32 +01:00
VERIFY ( value . is_function ( ) ) ;
2021-10-24 16:01:24 +02:00
object - > define_direct_accessor ( PropertyKey : : from_value ( global_object , key ) , & value . as_function ( ) , nullptr , Attribute : : Configurable | Attribute : : Enumerable ) ;
LibJS: Update Object::define_accessor() to take both getter and setter
This replaces the current 'function plus boolean indicating the type'
API, which makes it easier to set both getter and setter at once.
This was already possible before but required two calls of this
function, which wasn't intuitive:
define_accessor(name, getter, true, ...);
define_accessor(name, setter, false, ...);
Which now becomes:
define_accessor(name, getter, setter, ...);
2021-04-10 18:35:29 +02:00
break ;
case ObjectProperty : : Type : : Setter :
VERIFY ( value . is_function ( ) ) ;
2021-10-24 16:01:24 +02:00
object - > define_direct_accessor ( PropertyKey : : from_value ( global_object , key ) , nullptr , & value . as_function ( ) , Attribute : : Configurable | Attribute : : Enumerable ) ;
LibJS: Update Object::define_accessor() to take both getter and setter
This replaces the current 'function plus boolean indicating the type'
API, which makes it easier to set both getter and setter at once.
This was already possible before but required two calls of this
function, which wasn't intuitive:
define_accessor(name, getter, true, ...);
define_accessor(name, setter, false, ...);
Which now becomes:
define_accessor(name, getter, setter, ...);
2021-04-10 18:35:29 +02:00
break ;
case ObjectProperty : : Type : : KeyValue :
2021-10-24 16:01:24 +02:00
object - > define_direct_property ( PropertyKey : : from_value ( global_object , key ) , value , JS : : default_attributes ) ;
LibJS: Update Object::define_accessor() to take both getter and setter
This replaces the current 'function plus boolean indicating the type'
API, which makes it easier to set both getter and setter at once.
This was already possible before but required two calls of this
function, which wasn't intuitive:
define_accessor(name, getter, true, ...);
define_accessor(name, setter, false, ...);
Which now becomes:
define_accessor(name, getter, setter, ...);
2021-04-10 18:35:29 +02:00
break ;
case ObjectProperty : : Type : : Spread :
default :
VERIFY_NOT_REACHED ( ) ;
2020-05-21 17:28:28 -07:00
}
LibJS: Update Object::define_accessor() to take both getter and setter
This replaces the current 'function plus boolean indicating the type'
API, which makes it easier to set both getter and setter at once.
This was already possible before but required two calls of this
function, which wasn't intuitive:
define_accessor(name, getter, true, ...);
define_accessor(name, setter, false, ...);
Which now becomes:
define_accessor(name, getter, setter, ...);
2021-04-10 18:35:29 +02:00
if ( interpreter . exception ( ) )
return { } ;
2020-03-27 15:35:35 +01:00
}
2020-03-21 02:29:00 +02:00
return object ;
2020-03-09 21:28:31 +01:00
}
2020-03-11 18:58:19 +01:00
void MemberExpression : : dump ( int indent ) const
{
2020-03-20 20:51:03 +01:00
print_indent ( indent ) ;
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outln ( " {}(computed={}) " , class_name ( ) , is_computed ( ) ) ;
2020-03-11 18:58:19 +01:00
m_object - > dump ( indent + 1 ) ;
m_property - > dump ( indent + 1 ) ;
}
2021-10-24 16:01:24 +02:00
PropertyKey MemberExpression : : computed_property_name ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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if ( ! is_computed ( ) )
return verify_cast < Identifier > ( * m_property ) . string ( ) ;
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auto value = m_property - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
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VERIFY ( ! value . is_empty ( ) ) ;
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return PropertyKey : : from_value ( global_object , value ) ;
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}
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String MemberExpression : : to_string_approximation ( ) const
{
String object_string = " <object> " ;
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if ( is < Identifier > ( * m_object ) )
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object_string = static_cast < Identifier const & > ( * m_object ) . string ( ) ;
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if ( is_computed ( ) )
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return String : : formatted ( " {}[<computed>] " , object_string ) ;
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return String : : formatted ( " {}.{} " , object_string , verify_cast < Identifier > ( * m_property ) . string ( ) ) ;
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}
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Value MemberExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto reference = to_reference ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
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return TRY_OR_DISCARD ( reference . get_value ( global_object ) ) ;
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}
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bool MemberExpression : : ends_in_private_name ( ) const
{
if ( is_computed ( ) )
return false ;
if ( is < PrivateIdentifier > ( * m_property ) )
return true ;
if ( is < MemberExpression > ( * m_property ) )
return static_cast < MemberExpression const & > ( * m_property ) . ends_in_private_name ( ) ;
return false ;
}
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void OptionalChain : : dump ( int indent ) const
{
print_indent ( indent ) ;
outln ( " {} " , class_name ( ) ) ;
m_base - > dump ( indent + 1 ) ;
for ( auto & reference : m_references ) {
reference . visit (
[ & ] ( Call const & call ) {
print_indent ( indent + 1 ) ;
outln ( " Call({}) " , call . mode = = Mode : : Optional ? " Optional " : " Not Optional " ) ;
for ( auto & argument : call . arguments )
argument . value - > dump ( indent + 2 ) ;
} ,
[ & ] ( ComputedReference const & ref ) {
print_indent ( indent + 1 ) ;
outln ( " ComputedReference({}) " , ref . mode = = Mode : : Optional ? " Optional " : " Not Optional " ) ;
ref . expression - > dump ( indent + 2 ) ;
} ,
[ & ] ( MemberReference const & ref ) {
print_indent ( indent + 1 ) ;
outln ( " MemberReference({}) " , ref . mode = = Mode : : Optional ? " Optional " : " Not Optional " ) ;
ref . identifier - > dump ( indent + 2 ) ;
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} ,
[ & ] ( PrivateMemberReference const & ref ) {
print_indent ( indent + 1 ) ;
outln ( " PrivateMemberReference({}) " , ref . mode = = Mode : : Optional ? " Optional " : " Not Optional " ) ;
ref . private_identifier - > dump ( indent + 2 ) ;
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} ) ;
}
}
Optional < OptionalChain : : ReferenceAndValue > OptionalChain : : to_reference_and_value ( JS : : Interpreter & interpreter , JS : : GlobalObject & global_object ) const
{
// Note: This is wrapped in an optional to allow base_reference = ...
Optional < JS : : Reference > base_reference = m_base - > to_reference ( interpreter , global_object ) ;
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auto base = base_reference - > is_unresolvable ( ) ? m_base - > execute ( interpreter , global_object ) : TRY_OR_DISCARD ( base_reference - > get_value ( global_object ) ) ;
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if ( interpreter . exception ( ) )
return { } ;
for ( auto & reference : m_references ) {
auto is_optional = reference . visit ( [ ] ( auto & ref ) { return ref . mode ; } ) = = Mode : : Optional ;
if ( is_optional & & base . is_nullish ( ) )
return ReferenceAndValue { { } , js_undefined ( ) } ;
auto expression = reference . visit (
[ & ] ( Call const & call ) - > NonnullRefPtr < Expression > {
return create_ast_node < CallExpression > ( source_range ( ) ,
create_ast_node < SyntheticReferenceExpression > ( source_range ( ) , * base_reference , base ) ,
call . arguments ) ;
} ,
[ & ] ( ComputedReference const & ref ) - > NonnullRefPtr < Expression > {
return create_ast_node < MemberExpression > ( source_range ( ) ,
create_ast_node < SyntheticReferenceExpression > ( source_range ( ) , * base_reference , base ) ,
ref . expression ,
true ) ;
} ,
[ & ] ( MemberReference const & ref ) - > NonnullRefPtr < Expression > {
return create_ast_node < MemberExpression > ( source_range ( ) ,
create_ast_node < SyntheticReferenceExpression > ( source_range ( ) , * base_reference , base ) ,
ref . identifier ,
false ) ;
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} ,
[ & ] ( PrivateMemberReference const & ref ) - > NonnullRefPtr < Expression > {
return create_ast_node < MemberExpression > ( source_range ( ) ,
create_ast_node < SyntheticReferenceExpression > ( source_range ( ) , * base_reference , base ) ,
ref . private_identifier ,
false ) ;
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} ) ;
if ( is < CallExpression > ( * expression ) ) {
base_reference = JS : : Reference { } ;
base = expression - > execute ( interpreter , global_object ) ;
} else {
base_reference = expression - > to_reference ( interpreter , global_object ) ;
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base = TRY_OR_DISCARD ( base_reference - > get_value ( global_object ) ) ;
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}
if ( interpreter . exception ( ) )
return { } ;
}
return ReferenceAndValue { base_reference . release_value ( ) , base } ;
}
Value OptionalChain : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
{
InterpreterNodeScope node_scope { interpreter , * this } ;
if ( auto result = to_reference_and_value ( interpreter , global_object ) ; result . has_value ( ) )
return result . release_value ( ) . value ;
return { } ;
}
JS : : Reference OptionalChain : : to_reference ( Interpreter & interpreter , GlobalObject & global_object ) const
{
if ( auto result = to_reference_and_value ( interpreter , global_object ) ; result . has_value ( ) )
return result . release_value ( ) . reference ;
return { } ;
}
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void MetaProperty : : dump ( int indent ) const
{
String name ;
if ( m_type = = MetaProperty : : Type : : NewTarget )
name = " new.target " ;
else if ( m_type = = MetaProperty : : Type : : ImportMeta )
name = " import.meta " ;
else
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VERIFY_NOT_REACHED ( ) ;
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print_indent ( indent ) ;
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outln ( " {} {} " , class_name ( ) , name ) ;
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}
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Value MetaProperty : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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if ( m_type = = MetaProperty : : Type : : NewTarget )
return interpreter . vm ( ) . get_new_target ( ) . value_or ( js_undefined ( ) ) ;
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if ( m_type = = MetaProperty : : Type : : ImportMeta ) {
interpreter . vm ( ) . throw_exception < InternalError > ( global_object , ErrorType : : NotImplemented , " 'import.meta' in modules " ) ;
return { } ;
}
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VERIFY_NOT_REACHED ( ) ;
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}
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void ImportCall : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent ) ;
outln ( " (Specifier) " ) ;
m_specifier - > dump ( indent + 1 ) ;
if ( m_options ) {
outln ( " (Options) " ) ;
m_options - > dump ( indent + 1 ) ;
}
}
Value ImportCall : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
{
InterpreterNodeScope node_scope { interpreter , * this } ;
interpreter . vm ( ) . throw_exception < InternalError > ( global_object , ErrorType : : NotImplemented , " 'import(...)' in modules " ) ;
return { } ;
}
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Value StringLiteral : : execute ( Interpreter & interpreter , GlobalObject & ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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return js_string ( interpreter . heap ( ) , m_value ) ;
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}
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Value NumericLiteral : : execute ( Interpreter & interpreter , GlobalObject & ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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return Value ( m_value ) ;
}
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Value BigIntLiteral : : execute ( Interpreter & interpreter , GlobalObject & ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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Crypto : : SignedBigInteger integer ;
if ( m_value [ 0 ] = = ' 0 ' & & m_value . length ( ) > = 3 ) {
if ( m_value [ 1 ] = = ' x ' | | m_value [ 1 ] = = ' X ' ) {
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return js_bigint ( interpreter . heap ( ) , Crypto : : SignedBigInteger : : from_base ( 16 , m_value . substring ( 2 , m_value . length ( ) - 3 ) ) ) ;
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} else if ( m_value [ 1 ] = = ' o ' | | m_value [ 1 ] = = ' O ' ) {
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return js_bigint ( interpreter . heap ( ) , Crypto : : SignedBigInteger : : from_base ( 8 , m_value . substring ( 2 , m_value . length ( ) - 3 ) ) ) ;
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} else if ( m_value [ 1 ] = = ' b ' | | m_value [ 1 ] = = ' B ' ) {
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return js_bigint ( interpreter . heap ( ) , Crypto : : SignedBigInteger : : from_base ( 2 , m_value . substring ( 2 , m_value . length ( ) - 3 ) ) ) ;
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}
}
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return js_bigint ( interpreter . heap ( ) , Crypto : : SignedBigInteger : : from_base ( 10 , m_value . substring ( 0 , m_value . length ( ) - 1 ) ) ) ;
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}
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Value BooleanLiteral : : execute ( Interpreter & interpreter , GlobalObject & ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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return Value ( m_value ) ;
}
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Value NullLiteral : : execute ( Interpreter & interpreter , GlobalObject & ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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return js_null ( ) ;
}
2020-06-03 16:05:49 -07:00
void RegExpLiteral : : dump ( int indent ) const
{
print_indent ( indent ) ;
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outln ( " {} (/{}/{}) " , class_name ( ) , pattern ( ) , flags ( ) ) ;
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}
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Value RegExpLiteral : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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Regex < ECMA262 > regex ( parsed_regex ( ) , parsed_pattern ( ) , parsed_flags ( ) ) ;
return RegExpObject : : create ( global_object , move ( regex ) , pattern ( ) , flags ( ) ) ;
2020-06-03 16:05:49 -07:00
}
2020-03-20 20:29:57 +01:00
void ArrayExpression : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
for ( auto & element : m_elements ) {
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if ( element ) {
element - > dump ( indent + 1 ) ;
} else {
print_indent ( indent + 1 ) ;
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outln ( " <empty> " ) ;
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}
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}
}
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Value ArrayExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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2021-10-22 01:34:06 +03:00
auto * array = MUST ( Array : : create ( global_object , 0 ) ) ;
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array - > indexed_properties ( ) ;
size_t index = 0 ;
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for ( auto & element : m_elements ) {
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auto value = Value ( ) ;
if ( element ) {
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value = element - > execute ( interpreter , global_object ) ;
2020-04-15 20:09:06 +01:00
if ( interpreter . exception ( ) )
return { } ;
2020-04-26 23:05:37 -07:00
2021-01-01 19:34:07 +01:00
if ( is < SpreadExpression > ( * element ) ) {
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TRY_OR_DISCARD ( get_iterator_values ( global_object , value , [ & ] ( Value iterator_value ) - > Optional < Completion > {
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array - > indexed_properties ( ) . put ( index + + , iterator_value , default_attributes ) ;
2020-07-13 08:27:20 -07:00
return { } ;
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} ) ) ;
2020-07-13 08:27:20 -07:00
continue ;
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}
2020-04-15 20:09:06 +01:00
}
2021-09-06 03:29:52 +04:30
array - > indexed_properties ( ) . put ( index + + , value , default_attributes ) ;
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}
return array ;
}
LibJS: Add template literals
Adds fully functioning template literals. Because template literals
contain expressions, most of the work has to be done in the Lexer rather
than the Parser. And because of the complexity of template literals
(expressions, nesting, escapes, etc), the Lexer needs to have some
template-related state.
When entering a new template literal, a TemplateLiteralStart token is
emitted. When inside a literal, all text will be parsed up until a '${'
or '`' (or EOF, but that's a syntax error) is seen, and then a
TemplateLiteralExprStart token is emitted. At this point, the Lexer
proceeds as normal, however it keeps track of the number of opening
and closing curly braces it has seen in order to determine the close
of the expression. Once it finds a matching curly brace for the '${',
a TemplateLiteralExprEnd token is emitted and the state is updated
accordingly.
When the Lexer is inside of a template literal, but not an expression,
and sees a '`', this must be the closing grave: a TemplateLiteralEnd
token is emitted.
The state required to correctly parse template strings consists of a
vector (for nesting) of two pieces of information: whether or not we
are in a template expression (as opposed to a template string); and
the count of the number of unmatched open curly braces we have seen
(only applicable if the Lexer is currently in a template expression).
TODO: Add support for template literal newlines in the JS REPL (this will
cause a syntax error currently):
> `foo
> bar`
'foo
bar'
2020-05-03 15:41:14 -07:00
void TemplateLiteral : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
2020-05-06 10:17:35 +01:00
for ( auto & expression : m_expressions )
LibJS: Add template literals
Adds fully functioning template literals. Because template literals
contain expressions, most of the work has to be done in the Lexer rather
than the Parser. And because of the complexity of template literals
(expressions, nesting, escapes, etc), the Lexer needs to have some
template-related state.
When entering a new template literal, a TemplateLiteralStart token is
emitted. When inside a literal, all text will be parsed up until a '${'
or '`' (or EOF, but that's a syntax error) is seen, and then a
TemplateLiteralExprStart token is emitted. At this point, the Lexer
proceeds as normal, however it keeps track of the number of opening
and closing curly braces it has seen in order to determine the close
of the expression. Once it finds a matching curly brace for the '${',
a TemplateLiteralExprEnd token is emitted and the state is updated
accordingly.
When the Lexer is inside of a template literal, but not an expression,
and sees a '`', this must be the closing grave: a TemplateLiteralEnd
token is emitted.
The state required to correctly parse template strings consists of a
vector (for nesting) of two pieces of information: whether or not we
are in a template expression (as opposed to a template string); and
the count of the number of unmatched open curly braces we have seen
(only applicable if the Lexer is currently in a template expression).
TODO: Add support for template literal newlines in the JS REPL (this will
cause a syntax error currently):
> `foo
> bar`
'foo
bar'
2020-05-03 15:41:14 -07:00
expression . dump ( indent + 1 ) ;
}
2020-06-08 20:57:54 +02:00
Value TemplateLiteral : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
LibJS: Add template literals
Adds fully functioning template literals. Because template literals
contain expressions, most of the work has to be done in the Lexer rather
than the Parser. And because of the complexity of template literals
(expressions, nesting, escapes, etc), the Lexer needs to have some
template-related state.
When entering a new template literal, a TemplateLiteralStart token is
emitted. When inside a literal, all text will be parsed up until a '${'
or '`' (or EOF, but that's a syntax error) is seen, and then a
TemplateLiteralExprStart token is emitted. At this point, the Lexer
proceeds as normal, however it keeps track of the number of opening
and closing curly braces it has seen in order to determine the close
of the expression. Once it finds a matching curly brace for the '${',
a TemplateLiteralExprEnd token is emitted and the state is updated
accordingly.
When the Lexer is inside of a template literal, but not an expression,
and sees a '`', this must be the closing grave: a TemplateLiteralEnd
token is emitted.
The state required to correctly parse template strings consists of a
vector (for nesting) of two pieces of information: whether or not we
are in a template expression (as opposed to a template string); and
the count of the number of unmatched open curly braces we have seen
(only applicable if the Lexer is currently in a template expression).
TODO: Add support for template literal newlines in the JS REPL (this will
cause a syntax error currently):
> `foo
> bar`
'foo
bar'
2020-05-03 15:41:14 -07:00
{
2021-03-16 10:51:55 +01:00
InterpreterNodeScope node_scope { interpreter , * this } ;
2020-12-28 20:45:22 +03:30
LibJS: Add template literals
Adds fully functioning template literals. Because template literals
contain expressions, most of the work has to be done in the Lexer rather
than the Parser. And because of the complexity of template literals
(expressions, nesting, escapes, etc), the Lexer needs to have some
template-related state.
When entering a new template literal, a TemplateLiteralStart token is
emitted. When inside a literal, all text will be parsed up until a '${'
or '`' (or EOF, but that's a syntax error) is seen, and then a
TemplateLiteralExprStart token is emitted. At this point, the Lexer
proceeds as normal, however it keeps track of the number of opening
and closing curly braces it has seen in order to determine the close
of the expression. Once it finds a matching curly brace for the '${',
a TemplateLiteralExprEnd token is emitted and the state is updated
accordingly.
When the Lexer is inside of a template literal, but not an expression,
and sees a '`', this must be the closing grave: a TemplateLiteralEnd
token is emitted.
The state required to correctly parse template strings consists of a
vector (for nesting) of two pieces of information: whether or not we
are in a template expression (as opposed to a template string); and
the count of the number of unmatched open curly braces we have seen
(only applicable if the Lexer is currently in a template expression).
TODO: Add support for template literal newlines in the JS REPL (this will
cause a syntax error currently):
> `foo
> bar`
'foo
bar'
2020-05-03 15:41:14 -07:00
StringBuilder string_builder ;
2020-05-06 10:17:35 +01:00
for ( auto & expression : m_expressions ) {
2020-06-08 20:57:54 +02:00
auto expr = expression . execute ( interpreter , global_object ) ;
LibJS: Add template literals
Adds fully functioning template literals. Because template literals
contain expressions, most of the work has to be done in the Lexer rather
than the Parser. And because of the complexity of template literals
(expressions, nesting, escapes, etc), the Lexer needs to have some
template-related state.
When entering a new template literal, a TemplateLiteralStart token is
emitted. When inside a literal, all text will be parsed up until a '${'
or '`' (or EOF, but that's a syntax error) is seen, and then a
TemplateLiteralExprStart token is emitted. At this point, the Lexer
proceeds as normal, however it keeps track of the number of opening
and closing curly braces it has seen in order to determine the close
of the expression. Once it finds a matching curly brace for the '${',
a TemplateLiteralExprEnd token is emitted and the state is updated
accordingly.
When the Lexer is inside of a template literal, but not an expression,
and sees a '`', this must be the closing grave: a TemplateLiteralEnd
token is emitted.
The state required to correctly parse template strings consists of a
vector (for nesting) of two pieces of information: whether or not we
are in a template expression (as opposed to a template string); and
the count of the number of unmatched open curly braces we have seen
(only applicable if the Lexer is currently in a template expression).
TODO: Add support for template literal newlines in the JS REPL (this will
cause a syntax error currently):
> `foo
> bar`
'foo
bar'
2020-05-03 15:41:14 -07:00
if ( interpreter . exception ( ) )
return { } ;
2021-10-12 17:49:01 +01:00
auto string = TRY_OR_DISCARD ( expr . to_string ( global_object ) ) ;
2020-05-15 13:39:24 +02:00
string_builder . append ( string ) ;
LibJS: Add template literals
Adds fully functioning template literals. Because template literals
contain expressions, most of the work has to be done in the Lexer rather
than the Parser. And because of the complexity of template literals
(expressions, nesting, escapes, etc), the Lexer needs to have some
template-related state.
When entering a new template literal, a TemplateLiteralStart token is
emitted. When inside a literal, all text will be parsed up until a '${'
or '`' (or EOF, but that's a syntax error) is seen, and then a
TemplateLiteralExprStart token is emitted. At this point, the Lexer
proceeds as normal, however it keeps track of the number of opening
and closing curly braces it has seen in order to determine the close
of the expression. Once it finds a matching curly brace for the '${',
a TemplateLiteralExprEnd token is emitted and the state is updated
accordingly.
When the Lexer is inside of a template literal, but not an expression,
and sees a '`', this must be the closing grave: a TemplateLiteralEnd
token is emitted.
The state required to correctly parse template strings consists of a
vector (for nesting) of two pieces of information: whether or not we
are in a template expression (as opposed to a template string); and
the count of the number of unmatched open curly braces we have seen
(only applicable if the Lexer is currently in a template expression).
TODO: Add support for template literal newlines in the JS REPL (this will
cause a syntax error currently):
> `foo
> bar`
'foo
bar'
2020-05-03 15:41:14 -07:00
}
2020-09-27 20:03:42 +02:00
return js_string ( interpreter . heap ( ) , string_builder . build ( ) ) ;
LibJS: Add template literals
Adds fully functioning template literals. Because template literals
contain expressions, most of the work has to be done in the Lexer rather
than the Parser. And because of the complexity of template literals
(expressions, nesting, escapes, etc), the Lexer needs to have some
template-related state.
When entering a new template literal, a TemplateLiteralStart token is
emitted. When inside a literal, all text will be parsed up until a '${'
or '`' (or EOF, but that's a syntax error) is seen, and then a
TemplateLiteralExprStart token is emitted. At this point, the Lexer
proceeds as normal, however it keeps track of the number of opening
and closing curly braces it has seen in order to determine the close
of the expression. Once it finds a matching curly brace for the '${',
a TemplateLiteralExprEnd token is emitted and the state is updated
accordingly.
When the Lexer is inside of a template literal, but not an expression,
and sees a '`', this must be the closing grave: a TemplateLiteralEnd
token is emitted.
The state required to correctly parse template strings consists of a
vector (for nesting) of two pieces of information: whether or not we
are in a template expression (as opposed to a template string); and
the count of the number of unmatched open curly braces we have seen
(only applicable if the Lexer is currently in a template expression).
TODO: Add support for template literal newlines in the JS REPL (this will
cause a syntax error currently):
> `foo
> bar`
'foo
bar'
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}
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void TaggedTemplateLiteral : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent + 1 ) ;
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outln ( " (Tag) " ) ;
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m_tag - > dump ( indent + 2 ) ;
print_indent ( indent + 1 ) ;
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outln ( " (Template Literal) " ) ;
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m_template_literal - > dump ( indent + 2 ) ;
}
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Value TaggedTemplateLiteral : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto & vm = interpreter . vm ( ) ;
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auto tag = m_tag - > execute ( interpreter , global_object ) ;
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if ( vm . exception ( ) )
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return { } ;
if ( ! tag . is_function ( ) ) {
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vm . throw_exception < TypeError > ( global_object , ErrorType : : NotAFunction , tag . to_string_without_side_effects ( ) ) ;
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return { } ;
}
auto & tag_function = tag . as_function ( ) ;
auto & expressions = m_template_literal - > expressions ( ) ;
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auto * strings = MUST ( Array : : create ( global_object , 0 ) ) ;
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MarkedValueList arguments ( vm . heap ( ) ) ;
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arguments . append ( strings ) ;
for ( size_t i = 0 ; i < expressions . size ( ) ; + + i ) {
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auto value = expressions [ i ] . execute ( interpreter , global_object ) ;
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if ( vm . exception ( ) )
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return { } ;
// tag`${foo}` -> "", foo, "" -> tag(["", ""], foo)
// tag`foo${bar}baz${qux}` -> "foo", bar, "baz", qux, "" -> tag(["foo", "baz", ""], bar, qux)
LibJS: Object index properties have descriptors; Handle sparse indices
This patch adds an IndexedProperties object for storing indexed
properties within an Object. This accomplishes two goals: indexed
properties now have an associated descriptor, and objects now gracefully
handle sparse properties.
The IndexedProperties class is a wrapper around two other classes, one
for simple indexed properties storage, and one for general indexed
property storage. Simple indexed property storage is the common-case,
and is simply a vector of properties which all have attributes of
default_attributes (writable, enumerable, and configurable).
General indexed property storage is for a collection of indexed
properties where EITHER one or more properties have attributes other
than default_attributes OR there is a property with a large index (in
particular, large is '200' or higher).
Indexed properties are now treated relatively the same as storage within
the various Object methods. Additionally, there is a custom iterator
class for IndexedProperties which makes iteration easy. The iterator
skips empty values by default, but can be configured otherwise.
Likewise, it evaluates getters by default, but can be set not to.
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if ( i % 2 = = 0 ) {
strings - > indexed_properties ( ) . append ( value ) ;
} else {
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arguments . append ( value ) ;
LibJS: Object index properties have descriptors; Handle sparse indices
This patch adds an IndexedProperties object for storing indexed
properties within an Object. This accomplishes two goals: indexed
properties now have an associated descriptor, and objects now gracefully
handle sparse properties.
The IndexedProperties class is a wrapper around two other classes, one
for simple indexed properties storage, and one for general indexed
property storage. Simple indexed property storage is the common-case,
and is simply a vector of properties which all have attributes of
default_attributes (writable, enumerable, and configurable).
General indexed property storage is for a collection of indexed
properties where EITHER one or more properties have attributes other
than default_attributes OR there is a property with a large index (in
particular, large is '200' or higher).
Indexed properties are now treated relatively the same as storage within
the various Object methods. Additionally, there is a custom iterator
class for IndexedProperties which makes iteration easy. The iterator
skips empty values by default, but can be configured otherwise.
Likewise, it evaluates getters by default, but can be set not to.
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}
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}
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auto * raw_strings = MUST ( Array : : create ( global_object , 0 ) ) ;
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for ( auto & raw_string : m_template_literal - > raw_strings ( ) ) {
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auto value = raw_string . execute ( interpreter , global_object ) ;
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if ( vm . exception ( ) )
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return { } ;
LibJS: Object index properties have descriptors; Handle sparse indices
This patch adds an IndexedProperties object for storing indexed
properties within an Object. This accomplishes two goals: indexed
properties now have an associated descriptor, and objects now gracefully
handle sparse properties.
The IndexedProperties class is a wrapper around two other classes, one
for simple indexed properties storage, and one for general indexed
property storage. Simple indexed property storage is the common-case,
and is simply a vector of properties which all have attributes of
default_attributes (writable, enumerable, and configurable).
General indexed property storage is for a collection of indexed
properties where EITHER one or more properties have attributes other
than default_attributes OR there is a property with a large index (in
particular, large is '200' or higher).
Indexed properties are now treated relatively the same as storage within
the various Object methods. Additionally, there is a custom iterator
class for IndexedProperties which makes iteration easy. The iterator
skips empty values by default, but can be configured otherwise.
Likewise, it evaluates getters by default, but can be set not to.
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raw_strings - > indexed_properties ( ) . append ( value ) ;
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}
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strings - > define_direct_property ( vm . names . raw , raw_strings , 0 ) ;
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return TRY_OR_DISCARD ( vm . call ( tag_function , js_undefined ( ) , move ( arguments ) ) ) ;
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}
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void TryStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent ) ;
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outln ( " (Block) " ) ;
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block ( ) . dump ( indent + 1 ) ;
if ( handler ( ) ) {
print_indent ( indent ) ;
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outln ( " (Handler) " ) ;
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handler ( ) - > dump ( indent + 1 ) ;
}
if ( finalizer ( ) ) {
print_indent ( indent ) ;
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outln ( " (Finalizer) " ) ;
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finalizer ( ) - > dump ( indent + 1 ) ;
}
}
void CatchClause : : dump ( int indent ) const
{
print_indent ( indent ) ;
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m_parameter . visit (
[ & ] ( FlyString const & parameter ) {
if ( parameter . is_null ( ) )
outln ( " CatchClause " ) ;
else
outln ( " CatchClause ({}) " , parameter ) ;
} ,
[ & ] ( NonnullRefPtr < BindingPattern > const & pattern ) {
outln ( " CatchClause " ) ;
print_indent ( indent ) ;
outln ( " (Parameter) " ) ;
pattern - > dump ( indent + 2 ) ;
} ) ;
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body ( ) . dump ( indent + 1 ) ;
}
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void ThrowStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
argument ( ) . dump ( indent + 1 ) ;
}
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void TryStatement : : add_label ( FlyString string )
{
m_block - > add_label ( move ( string ) ) ;
}
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Value TryStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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// FIXME: Use Completions here to be closer to the spec.
auto result = m_block - > execute ( interpreter , global_object ) ;
if ( interpreter . vm ( ) . unwind_until ( ) = = ScopeType : : Try )
interpreter . vm ( ) . stop_unwind ( ) ;
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if ( auto * exception = interpreter . exception ( ) ) {
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// 14.15.2 Runtime Semantics: CatchClauseEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-catchclauseevaluation
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if ( m_handler ) {
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interpreter . vm ( ) . clear_exception ( ) ;
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auto * catch_scope = new_declarative_environment ( * interpreter . lexical_environment ( ) ) ;
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m_handler - > parameter ( ) . visit (
[ & ] ( FlyString const & parameter ) {
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MUST ( catch_scope - > create_mutable_binding ( global_object , parameter , false ) ) ;
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} ,
[ & ] ( NonnullRefPtr < BindingPattern > const & pattern ) {
pattern - > for_each_bound_name ( [ & ] ( auto & name ) {
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MUST ( catch_scope - > create_mutable_binding ( global_object , name , false ) ) ;
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} ) ;
} ) ;
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TemporaryChange < Environment * > scope_change ( interpreter . vm ( ) . running_execution_context ( ) . lexical_environment , catch_scope ) ;
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m_handler - > parameter ( ) . visit (
[ & ] ( FlyString const & parameter ) {
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( void ) catch_scope - > initialize_binding ( global_object , parameter , exception - > value ( ) ) ;
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} ,
[ & ] ( NonnullRefPtr < BindingPattern > const & pattern ) {
( void ) interpreter . vm ( ) . binding_initialization ( pattern , exception - > value ( ) , catch_scope , global_object ) ;
} ) ;
if ( ! interpreter . exception ( ) )
result = m_handler - > body ( ) . execute ( interpreter , global_object ) ;
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}
}
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if ( m_finalizer ) {
// Keep, if any, and then clear the current exception so we can
// execute() the finalizer without an exception in our way.
auto * previous_exception = interpreter . exception ( ) ;
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interpreter . vm ( ) . clear_exception ( ) ;
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// Remember what scope type we were unwinding to, and temporarily
// clear it as well (e.g. return from handler).
auto unwind_until = interpreter . vm ( ) . unwind_until ( ) ;
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interpreter . vm ( ) . stop_unwind ( ) ;
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auto finalizer_result = m_finalizer - > execute ( interpreter , global_object ) ;
if ( interpreter . vm ( ) . should_unwind ( ) ) {
// This was NOT a 'normal' completion (e.g. return from finalizer).
result = finalizer_result ;
} else {
// Continue unwinding to whatever we found ourselves unwinding
// to when the finalizer was entered (e.g. return from handler,
// which is unaffected by normal completion from finalizer).
interpreter . vm ( ) . unwind ( unwind_until ) ;
// If we previously had an exception and the finalizer didn't
// throw a new one, restore the old one.
if ( previous_exception & & ! interpreter . exception ( ) )
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interpreter . vm ( ) . set_exception ( * previous_exception ) ;
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}
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}
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return result . value_or ( js_undefined ( ) ) ;
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}
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Value CatchClause : : execute ( Interpreter & interpreter , GlobalObject & ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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// NOTE: CatchClause execution is handled by TryStatement.
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VERIFY_NOT_REACHED ( ) ;
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return { } ;
}
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Value ThrowStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto value = m_argument - > execute ( interpreter , global_object ) ;
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if ( interpreter . vm ( ) . exception ( ) )
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return { } ;
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interpreter . vm ( ) . throw_exception ( global_object , value ) ;
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return { } ;
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}
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// 14.12.2 Runtime Semantics: CaseBlockEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-caseblockevaluation
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Value SwitchStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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// FIXME: This needs a massive refactoring, ideally once we start using continue, break, and return completions.
// Instead of having an optional test expression, SwitchCase should be split into CaseClause and DefaultClause.
// https://tc39.es/ecma262/#sec-switch-statement
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto discriminant_result = m_discriminant - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
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// Optimization: Avoid creating a lexical environment if there are no lexical declarations.
Optional < TemporaryChange < Environment * > > lexical_environment_changer ;
if ( has_lexical_declarations ( ) ) {
auto * old_environment = interpreter . lexical_environment ( ) ;
auto * block_environment = new_declarative_environment ( * old_environment ) ;
block_declaration_instantiation ( global_object , block_environment ) ;
lexical_environment_changer . emplace ( interpreter . vm ( ) . running_execution_context ( ) . lexical_environment , block_environment ) ;
}
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Optional < size_t > first_passing_case ;
for ( size_t i = 0 ; i < m_cases . size ( ) ; + + i ) {
auto & switch_case = m_cases [ i ] ;
if ( switch_case . test ( ) ) {
auto test_result = switch_case . test ( ) - > execute ( interpreter , global_object ) ;
if ( interpreter . exception ( ) )
return { } ;
if ( is_strictly_equal ( discriminant_result , test_result ) ) {
first_passing_case = i ;
break ;
}
}
}
// FIXME: we could optimize and store the location of the default case in a member variable.
if ( ! first_passing_case . has_value ( ) ) {
for ( size_t i = 0 ; i < m_cases . size ( ) ; + + i ) {
auto & switch_case = m_cases [ i ] ;
if ( ! switch_case . test ( ) ) {
first_passing_case = i ;
break ;
}
}
}
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auto last_value = js_undefined ( ) ;
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if ( ! first_passing_case . has_value ( ) ) {
return last_value ;
}
VERIFY ( first_passing_case . value ( ) < m_cases . size ( ) ) ;
for ( size_t i = first_passing_case . value ( ) ; i < m_cases . size ( ) ; + + i ) {
auto & switch_case = m_cases [ i ] ;
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for ( auto & statement : switch_case . children ( ) ) {
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auto value = statement . execute ( interpreter , global_object ) ;
if ( ! value . is_empty ( ) )
last_value = value ;
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if ( interpreter . exception ( ) )
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return { } ;
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if ( interpreter . vm ( ) . should_unwind ( ) ) {
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if ( interpreter . vm ( ) . should_unwind_until ( ScopeType : : Continuable , m_labels ) ) {
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// No stop_unwind(), the outer loop will handle that - we just need to break out of the switch/case.
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return last_value ;
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} else if ( interpreter . vm ( ) . should_unwind_until ( ScopeType : : Breakable , m_labels ) ) {
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interpreter . vm ( ) . stop_unwind ( ) ;
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return last_value ;
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} else {
return last_value ;
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}
}
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}
}
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return last_value ;
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}
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Value SwitchCase : : execute ( Interpreter & interpreter , GlobalObject & ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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// NOTE: SwitchCase execution is handled by SwitchStatement.
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VERIFY_NOT_REACHED ( ) ;
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return { } ;
}
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Value BreakStatement : : execute ( Interpreter & interpreter , GlobalObject & ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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interpreter . vm ( ) . unwind ( ScopeType : : Breakable , m_target_label ) ;
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return { } ;
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}
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Value ContinueStatement : : execute ( Interpreter & interpreter , GlobalObject & ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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interpreter . vm ( ) . unwind ( ScopeType : : Continuable , m_target_label ) ;
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return { } ;
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}
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void SwitchStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
m_discriminant - > dump ( indent + 1 ) ;
for ( auto & switch_case : m_cases ) {
switch_case . dump ( indent + 1 ) ;
}
}
void SwitchCase : : dump ( int indent ) const
{
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print_indent ( indent + 1 ) ;
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if ( m_test ) {
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outln ( " (Test) " ) ;
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m_test - > dump ( indent + 2 ) ;
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} else {
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outln ( " (Default) " ) ;
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}
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print_indent ( indent + 1 ) ;
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outln ( " (Consequent) " ) ;
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ScopeNode : : dump ( indent + 2 ) ;
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}
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Value ConditionalExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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auto test_result = m_test - > execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
Value result ;
if ( test_result . to_boolean ( ) ) {
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result = m_consequent - > execute ( interpreter , global_object ) ;
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} else {
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result = m_alternate - > execute ( interpreter , global_object ) ;
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}
if ( interpreter . exception ( ) )
return { } ;
return result ;
}
void ConditionalExpression : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
LibJS: Add template literals
Adds fully functioning template literals. Because template literals
contain expressions, most of the work has to be done in the Lexer rather
than the Parser. And because of the complexity of template literals
(expressions, nesting, escapes, etc), the Lexer needs to have some
template-related state.
When entering a new template literal, a TemplateLiteralStart token is
emitted. When inside a literal, all text will be parsed up until a '${'
or '`' (or EOF, but that's a syntax error) is seen, and then a
TemplateLiteralExprStart token is emitted. At this point, the Lexer
proceeds as normal, however it keeps track of the number of opening
and closing curly braces it has seen in order to determine the close
of the expression. Once it finds a matching curly brace for the '${',
a TemplateLiteralExprEnd token is emitted and the state is updated
accordingly.
When the Lexer is inside of a template literal, but not an expression,
and sees a '`', this must be the closing grave: a TemplateLiteralEnd
token is emitted.
The state required to correctly parse template strings consists of a
vector (for nesting) of two pieces of information: whether or not we
are in a template expression (as opposed to a template string); and
the count of the number of unmatched open curly braces we have seen
(only applicable if the Lexer is currently in a template expression).
TODO: Add support for template literal newlines in the JS REPL (this will
cause a syntax error currently):
> `foo
> bar`
'foo
bar'
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print_indent ( indent + 1 ) ;
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outln ( " (Test) " ) ;
LibJS: Add template literals
Adds fully functioning template literals. Because template literals
contain expressions, most of the work has to be done in the Lexer rather
than the Parser. And because of the complexity of template literals
(expressions, nesting, escapes, etc), the Lexer needs to have some
template-related state.
When entering a new template literal, a TemplateLiteralStart token is
emitted. When inside a literal, all text will be parsed up until a '${'
or '`' (or EOF, but that's a syntax error) is seen, and then a
TemplateLiteralExprStart token is emitted. At this point, the Lexer
proceeds as normal, however it keeps track of the number of opening
and closing curly braces it has seen in order to determine the close
of the expression. Once it finds a matching curly brace for the '${',
a TemplateLiteralExprEnd token is emitted and the state is updated
accordingly.
When the Lexer is inside of a template literal, but not an expression,
and sees a '`', this must be the closing grave: a TemplateLiteralEnd
token is emitted.
The state required to correctly parse template strings consists of a
vector (for nesting) of two pieces of information: whether or not we
are in a template expression (as opposed to a template string); and
the count of the number of unmatched open curly braces we have seen
(only applicable if the Lexer is currently in a template expression).
TODO: Add support for template literal newlines in the JS REPL (this will
cause a syntax error currently):
> `foo
> bar`
'foo
bar'
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m_test - > dump ( indent + 2 ) ;
print_indent ( indent + 1 ) ;
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outln ( " (Consequent) " ) ;
LibJS: Add template literals
Adds fully functioning template literals. Because template literals
contain expressions, most of the work has to be done in the Lexer rather
than the Parser. And because of the complexity of template literals
(expressions, nesting, escapes, etc), the Lexer needs to have some
template-related state.
When entering a new template literal, a TemplateLiteralStart token is
emitted. When inside a literal, all text will be parsed up until a '${'
or '`' (or EOF, but that's a syntax error) is seen, and then a
TemplateLiteralExprStart token is emitted. At this point, the Lexer
proceeds as normal, however it keeps track of the number of opening
and closing curly braces it has seen in order to determine the close
of the expression. Once it finds a matching curly brace for the '${',
a TemplateLiteralExprEnd token is emitted and the state is updated
accordingly.
When the Lexer is inside of a template literal, but not an expression,
and sees a '`', this must be the closing grave: a TemplateLiteralEnd
token is emitted.
The state required to correctly parse template strings consists of a
vector (for nesting) of two pieces of information: whether or not we
are in a template expression (as opposed to a template string); and
the count of the number of unmatched open curly braces we have seen
(only applicable if the Lexer is currently in a template expression).
TODO: Add support for template literal newlines in the JS REPL (this will
cause a syntax error currently):
> `foo
> bar`
'foo
bar'
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m_consequent - > dump ( indent + 2 ) ;
print_indent ( indent + 1 ) ;
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outln ( " (Alternate) " ) ;
LibJS: Add template literals
Adds fully functioning template literals. Because template literals
contain expressions, most of the work has to be done in the Lexer rather
than the Parser. And because of the complexity of template literals
(expressions, nesting, escapes, etc), the Lexer needs to have some
template-related state.
When entering a new template literal, a TemplateLiteralStart token is
emitted. When inside a literal, all text will be parsed up until a '${'
or '`' (or EOF, but that's a syntax error) is seen, and then a
TemplateLiteralExprStart token is emitted. At this point, the Lexer
proceeds as normal, however it keeps track of the number of opening
and closing curly braces it has seen in order to determine the close
of the expression. Once it finds a matching curly brace for the '${',
a TemplateLiteralExprEnd token is emitted and the state is updated
accordingly.
When the Lexer is inside of a template literal, but not an expression,
and sees a '`', this must be the closing grave: a TemplateLiteralEnd
token is emitted.
The state required to correctly parse template strings consists of a
vector (for nesting) of two pieces of information: whether or not we
are in a template expression (as opposed to a template string); and
the count of the number of unmatched open curly braces we have seen
(only applicable if the Lexer is currently in a template expression).
TODO: Add support for template literal newlines in the JS REPL (this will
cause a syntax error currently):
> `foo
> bar`
'foo
bar'
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m_alternate - > dump ( indent + 2 ) ;
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}
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void SequenceExpression : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
for ( auto & expression : m_expressions )
expression . dump ( indent + 1 ) ;
}
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Value SequenceExpression : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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Value last_value ;
for ( auto & expression : m_expressions ) {
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last_value = expression . execute ( interpreter , global_object ) ;
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if ( interpreter . exception ( ) )
return { } ;
}
return last_value ;
}
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Value DebuggerStatement : : execute ( Interpreter & interpreter , GlobalObject & ) const
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{
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InterpreterNodeScope node_scope { interpreter , * this } ;
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// Sorry, no JavaScript debugger available (yet)!
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return { } ;
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}
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void ScopeNode : : for_each_lexically_scoped_declaration ( IteratorOrVoidFunction < Declaration const & > & & callback ) const
{
for ( auto & declaration : m_lexical_declarations ) {
if ( callback ( declaration ) = = IterationDecision : : Break )
break ;
}
}
void ScopeNode : : for_each_lexically_declared_name ( IteratorOrVoidFunction < FlyString const & > & & callback ) const
{
auto running = true ;
for ( auto & declaration : m_lexical_declarations ) {
declaration . for_each_bound_name ( [ & ] ( auto const & name ) {
if ( callback ( name ) = = IterationDecision : : Break ) {
running = false ;
return IterationDecision : : Break ;
}
return IterationDecision : : Continue ;
} ) ;
if ( ! running )
break ;
}
}
void ScopeNode : : for_each_var_declared_name ( IteratorOrVoidFunction < FlyString const & > & & callback ) const
{
auto running = true ;
for ( auto & declaration : m_var_declarations ) {
declaration . for_each_bound_name ( [ & ] ( auto const & name ) {
if ( callback ( name ) = = IterationDecision : : Break ) {
running = false ;
return IterationDecision : : Break ;
}
return IterationDecision : : Continue ;
} ) ;
if ( ! running )
break ;
}
}
void ScopeNode : : for_each_var_function_declaration_in_reverse_order ( IteratorOrVoidFunction < FunctionDeclaration const & > & & callback ) const
{
for ( ssize_t i = m_var_declarations . size ( ) - 1 ; i > = 0 ; i - - ) {
auto & declaration = m_var_declarations [ i ] ;
if ( is < FunctionDeclaration > ( declaration ) ) {
if ( callback ( static_cast < FunctionDeclaration const & > ( declaration ) ) = = IterationDecision : : Break )
break ;
}
}
}
void ScopeNode : : for_each_var_scoped_variable_declaration ( IteratorOrVoidFunction < VariableDeclaration const & > & & callback ) const
{
for ( auto & declaration : m_var_declarations ) {
if ( ! is < FunctionDeclaration > ( declaration ) ) {
VERIFY ( is < VariableDeclaration > ( declaration ) ) ;
if ( callback ( static_cast < VariableDeclaration const & > ( declaration ) ) = = IterationDecision : : Break )
break ;
}
}
}
void ScopeNode : : for_each_function_hoistable_with_annexB_extension ( IteratorOrVoidFunction < FunctionDeclaration & > & & callback ) const
{
for ( auto & function : m_functions_hoistable_with_annexB_extension ) {
// We need const_cast here since it might have to set a property on function declaration.
if ( callback ( const_cast < FunctionDeclaration & > ( function ) ) = = IterationDecision : : Break )
break ;
}
}
void ScopeNode : : add_lexical_declaration ( NonnullRefPtr < Declaration > declaration )
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{
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m_lexical_declarations . append ( move ( declaration ) ) ;
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}
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void ScopeNode : : add_var_scoped_declaration ( NonnullRefPtr < Declaration > declaration )
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{
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m_var_declarations . append ( move ( declaration ) ) ;
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}
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void ScopeNode : : add_hoisted_function ( NonnullRefPtr < FunctionDeclaration > declaration )
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{
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m_functions_hoistable_with_annexB_extension . append ( move ( declaration ) ) ;
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}
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Value ImportStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
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{
InterpreterNodeScope node_scope { interpreter , * this } ;
dbgln ( " Modules are not fully supported yet! " ) ;
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interpreter . vm ( ) . throw_exception < InternalError > ( global_object , ErrorType : : NotImplemented , " 'import' in modules " ) ;
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return { } ;
}
Value ExportStatement : : execute ( Interpreter & interpreter , GlobalObject & global_object ) const
{
InterpreterNodeScope node_scope { interpreter , * this } ;
if ( m_statement )
return m_statement - > execute ( interpreter , global_object ) ;
return { } ;
}
void ExportStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent + 1 ) ;
outln ( " (ExportEntries) " ) ;
auto string_or_null = [ ] ( String const & string ) - > String {
if ( string . is_empty ( ) ) {
return " null " ;
}
return String : : formatted ( " \" {} \" " , string ) ;
} ;
for ( auto & entry : m_entries ) {
print_indent ( indent + 2 ) ;
outln ( " ModuleRequest: {}, ImportName: {}, LocalName: {}, ExportName: {} " , string_or_null ( entry . module_request ) , entry . kind = = ExportEntry : : ModuleRequest ? string_or_null ( entry . local_or_import_name ) : " null " , entry . kind ! = ExportEntry : : ModuleRequest ? string_or_null ( entry . local_or_import_name ) : " null " , string_or_null ( entry . export_name ) ) ;
}
}
void ImportStatement : : dump ( int indent ) const
{
ASTNode : : dump ( indent ) ;
print_indent ( indent + 1 ) ;
if ( m_entries . is_empty ( ) ) {
// direct from "module" import
outln ( " Entire module '{}' " , m_module_request ) ;
} else {
outln ( " (ExportEntries) from {} " , m_module_request ) ;
for ( auto & entry : m_entries ) {
print_indent ( indent + 2 ) ;
outln ( " ImportName: {}, LocalName: {} " , entry . import_name , entry . local_name ) ;
}
}
}
bool ExportStatement : : has_export ( StringView export_name ) const
{
return any_of ( m_entries . begin ( ) , m_entries . end ( ) , [ & ] ( auto & entry ) {
return entry . export_name = = export_name ;
} ) ;
}
bool ImportStatement : : has_bound_name ( StringView name ) const
{
return any_of ( m_entries . begin ( ) , m_entries . end ( ) , [ & ] ( auto & entry ) {
return entry . local_name = = name ;
} ) ;
}
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// 14.2.3 BlockDeclarationInstantiation ( code, env ), https://tc39.es/ecma262/#sec-blockdeclarationinstantiation
void ScopeNode : : block_declaration_instantiation ( GlobalObject & global_object , Environment * environment ) const
{
// See also B.3.2.6 Changes to BlockDeclarationInstantiation, https://tc39.es/ecma262/#sec-web-compat-blockdeclarationinstantiation
VERIFY ( environment ) ;
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auto * private_environment = global_object . vm ( ) . running_execution_context ( ) . private_environment ;
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for_each_lexically_scoped_declaration ( [ & ] ( Declaration const & declaration ) {
auto is_constant_declaration = declaration . is_constant_declaration ( ) ;
declaration . for_each_bound_name ( [ & ] ( auto const & name ) {
if ( is_constant_declaration ) {
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MUST ( environment - > create_immutable_binding ( global_object , name , true ) ) ;
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} else {
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if ( ! MUST ( environment - > has_binding ( name ) ) )
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MUST ( environment - > create_mutable_binding ( global_object , name , false ) ) ;
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}
} ) ;
if ( is < FunctionDeclaration > ( declaration ) ) {
auto & function_declaration = static_cast < FunctionDeclaration const & > ( declaration ) ;
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auto * function = ECMAScriptFunctionObject : : create ( global_object , function_declaration . name ( ) , function_declaration . body ( ) , function_declaration . parameters ( ) , function_declaration . function_length ( ) , environment , private_environment , function_declaration . kind ( ) , function_declaration . is_strict_mode ( ) , function_declaration . might_need_arguments_object ( ) , function_declaration . contains_direct_call_to_eval ( ) ) ;
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VERIFY ( is < DeclarativeEnvironment > ( * environment ) ) ;
static_cast < DeclarativeEnvironment & > ( * environment ) . initialize_or_set_mutable_binding ( { } , global_object , function_declaration . name ( ) , function ) ;
}
} ) ;
}
// 16.1.7 GlobalDeclarationInstantiation ( script, env ), https://tc39.es/ecma262/#sec-globaldeclarationinstantiation
ThrowCompletionOr < void > Program : : global_declaration_instantiation ( Interpreter & interpreter , GlobalObject & global_object , GlobalEnvironment & global_environment ) const
{
for_each_lexically_declared_name ( [ & ] ( FlyString const & name ) {
if ( global_environment . has_var_declaration ( name ) | | global_environment . has_lexical_declaration ( name ) ) {
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interpreter . vm ( ) . throw_exception < SyntaxError > ( global_object , ErrorType : : TopLevelVariableAlreadyDeclared , name ) ;
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return IterationDecision : : Break ;
}
auto restricted_global = global_environment . has_restricted_global_property ( name ) ;
if ( interpreter . exception ( ) )
return IterationDecision : : Break ;
if ( restricted_global )
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interpreter . vm ( ) . throw_exception < SyntaxError > ( global_object , ErrorType : : RestrictedGlobalProperty , name ) ;
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return IterationDecision : : Continue ;
} ) ;
if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
for_each_var_declared_name ( [ & ] ( auto const & name ) {
if ( global_environment . has_lexical_declaration ( name ) ) {
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interpreter . vm ( ) . throw_exception < SyntaxError > ( global_object , ErrorType : : TopLevelVariableAlreadyDeclared , name ) ;
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return IterationDecision : : Break ;
}
return IterationDecision : : Continue ;
} ) ;
if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
HashTable < FlyString > declared_function_names ;
Vector < FunctionDeclaration const & > functions_to_initialize ;
for_each_var_function_declaration_in_reverse_order ( [ & ] ( FunctionDeclaration const & function ) {
if ( declared_function_names . set ( function . name ( ) ) ! = AK : : HashSetResult : : InsertedNewEntry )
return IterationDecision : : Continue ;
auto function_definable = global_environment . can_declare_global_function ( function . name ( ) ) ;
if ( interpreter . exception ( ) )
return IterationDecision : : Break ;
if ( ! function_definable ) {
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interpreter . vm ( ) . throw_exception < TypeError > ( global_object , ErrorType : : CannotDeclareGlobalFunction , function . name ( ) ) ;
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return IterationDecision : : Break ;
}
functions_to_initialize . append ( function ) ;
return IterationDecision : : Continue ;
} ) ;
if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
HashTable < FlyString > declared_var_names ;
for_each_var_scoped_variable_declaration ( [ & ] ( Declaration const & declaration ) {
declaration . for_each_bound_name ( [ & ] ( auto const & name ) {
if ( declared_function_names . contains ( name ) )
return IterationDecision : : Continue ;
auto var_definable = global_environment . can_declare_global_var ( name ) ;
if ( interpreter . exception ( ) )
return IterationDecision : : Break ;
if ( ! var_definable ) {
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interpreter . vm ( ) . throw_exception < TypeError > ( global_object , ErrorType : : CannotDeclareGlobalVariable , name ) ;
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return IterationDecision : : Break ;
}
declared_var_names . set ( name ) ;
return IterationDecision : : Continue ;
} ) ;
if ( interpreter . exception ( ) )
return IterationDecision : : Break ;
return IterationDecision : : Continue ;
} ) ;
if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
if ( ! m_is_strict_mode ) {
for_each_function_hoistable_with_annexB_extension ( [ & ] ( FunctionDeclaration & function_declaration ) {
auto & function_name = function_declaration . name ( ) ;
if ( global_environment . has_lexical_declaration ( function_name ) )
return IterationDecision : : Continue ;
auto function_definable = global_environment . can_declare_global_function ( function_name ) ;
if ( interpreter . exception ( ) )
return IterationDecision : : Break ;
if ( ! function_definable ) {
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interpreter . vm ( ) . throw_exception < TypeError > ( global_object , ErrorType : : CannotDeclareGlobalFunction , function_name ) ;
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return IterationDecision : : Break ;
}
if ( ! declared_function_names . contains ( function_name ) & & ! declared_var_names . contains ( function_name ) ) {
global_environment . create_global_var_binding ( function_name , false ) ;
if ( interpreter . exception ( ) )
return IterationDecision : : Break ;
declared_function_names . set ( function_name ) ;
}
function_declaration . set_should_do_additional_annexB_steps ( ) ;
return IterationDecision : : Continue ;
} ) ;
if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
// We should not use declared function names below here anymore since these functions are not in there in the spec.
declared_function_names . clear ( ) ;
}
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PrivateEnvironment * private_environment = nullptr ;
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for_each_lexically_scoped_declaration ( [ & ] ( Declaration const & declaration ) {
declaration . for_each_bound_name ( [ & ] ( auto const & name ) {
if ( declaration . is_constant_declaration ( ) )
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( void ) global_environment . create_immutable_binding ( global_object , name , true ) ;
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else
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( void ) global_environment . create_mutable_binding ( global_object , name , false ) ;
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if ( interpreter . exception ( ) )
return IterationDecision : : Break ;
return IterationDecision : : Continue ;
} ) ;
if ( interpreter . exception ( ) )
return IterationDecision : : Break ;
return IterationDecision : : Continue ;
} ) ;
for ( auto & declaration : functions_to_initialize ) {
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auto * function = ECMAScriptFunctionObject : : create ( global_object , declaration . name ( ) , declaration . body ( ) , declaration . parameters ( ) , declaration . function_length ( ) , & global_environment , private_environment , declaration . kind ( ) , declaration . is_strict_mode ( ) , declaration . might_need_arguments_object ( ) , declaration . contains_direct_call_to_eval ( ) ) ;
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global_environment . create_global_function_binding ( declaration . name ( ) , function , false ) ;
if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
}
for ( auto & var_name : declared_var_names ) {
global_environment . create_global_var_binding ( var_name , false ) ;
if ( auto * exception = interpreter . exception ( ) )
return throw_completion ( exception - > value ( ) ) ;
}
return { } ;
}
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}