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	Similar to the scoped continue and break, the only two differences between these functions is the scope that is scanned for a matching label, and the specific handling of a continue/break boundary.
		
			
				
	
	
		
			529 lines
		
	
	
	
		
			21 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			529 lines
		
	
	
	
		
			21 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
/*
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 * Copyright (c) 2021, Andreas Kling <kling@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 <LibJS/AST.h>
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#include <LibJS/Bytecode/BasicBlock.h>
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#include <LibJS/Bytecode/Generator.h>
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#include <LibJS/Bytecode/Instruction.h>
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#include <LibJS/Bytecode/Op.h>
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#include <LibJS/Bytecode/Register.h>
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namespace JS::Bytecode {
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Generator::Generator()
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    : m_string_table(make<StringTable>())
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    , m_identifier_table(make<IdentifierTable>())
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    , m_regex_table(make<RegexTable>())
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{
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}
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CodeGenerationErrorOr<NonnullOwnPtr<Executable>> Generator::generate(ASTNode const& node, FunctionKind enclosing_function_kind)
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{
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    Generator generator;
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    generator.switch_to_basic_block(generator.make_block());
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    generator.m_enclosing_function_kind = enclosing_function_kind;
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    if (generator.is_in_generator_or_async_function()) {
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        // Immediately yield with no value.
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        auto& start_block = generator.make_block();
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        generator.emit<Bytecode::Op::Yield>(Label { start_block });
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        generator.switch_to_basic_block(start_block);
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        // NOTE: This doesn't have to handle received throw/return completions, as GeneratorObject::resume_abrupt
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        //       will not enter the generator from the SuspendedStart state and immediately completes the generator.
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    }
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    TRY(node.generate_bytecode(generator));
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    if (generator.is_in_generator_or_async_function()) {
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        // Terminate all unterminated blocks with yield return
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        for (auto& block : generator.m_root_basic_blocks) {
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            if (block->is_terminated())
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                continue;
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            generator.switch_to_basic_block(*block);
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            generator.emit<Bytecode::Op::LoadImmediate>(js_undefined());
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            generator.emit<Bytecode::Op::Yield>(nullptr);
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        }
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    }
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    bool is_strict_mode = false;
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    if (is<Program>(node))
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        is_strict_mode = static_cast<Program const&>(node).is_strict_mode();
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    else if (is<FunctionBody>(node))
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        is_strict_mode = static_cast<FunctionBody const&>(node).in_strict_mode();
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    else if (is<FunctionDeclaration>(node))
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        is_strict_mode = static_cast<FunctionDeclaration const&>(node).is_strict_mode();
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    else if (is<FunctionExpression>(node))
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        is_strict_mode = static_cast<FunctionExpression const&>(node).is_strict_mode();
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    Vector<PropertyLookupCache> property_lookup_caches;
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    property_lookup_caches.resize(generator.m_next_property_lookup_cache);
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    Vector<GlobalVariableCache> global_variable_caches;
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    global_variable_caches.resize(generator.m_next_global_variable_cache);
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    return adopt_own(*new Executable {
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        .name = {},
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        .property_lookup_caches = move(property_lookup_caches),
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        .global_variable_caches = move(global_variable_caches),
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        .basic_blocks = move(generator.m_root_basic_blocks),
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        .string_table = move(generator.m_string_table),
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        .identifier_table = move(generator.m_identifier_table),
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        .regex_table = move(generator.m_regex_table),
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        .number_of_registers = generator.m_next_register,
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        .is_strict_mode = is_strict_mode,
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    });
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}
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void Generator::grow(size_t additional_size)
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{
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    VERIFY(m_current_basic_block);
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    m_current_basic_block->grow(additional_size);
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}
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void* Generator::next_slot()
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{
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    VERIFY(m_current_basic_block);
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    return m_current_basic_block->next_slot();
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}
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Register Generator::allocate_register()
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{
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    VERIFY(m_next_register != NumericLimits<u32>::max());
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    return Register { m_next_register++ };
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}
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Label Generator::nearest_continuable_scope() const
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{
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    return m_continuable_scopes.last().bytecode_target;
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}
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void Generator::block_declaration_instantiation(ScopeNode const& scope_node)
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{
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    start_boundary(BlockBoundaryType::LeaveLexicalEnvironment);
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    emit<Bytecode::Op::BlockDeclarationInstantiation>(scope_node);
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}
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void Generator::begin_variable_scope()
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{
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    start_boundary(BlockBoundaryType::LeaveLexicalEnvironment);
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    emit<Bytecode::Op::CreateLexicalEnvironment>();
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}
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void Generator::end_variable_scope()
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{
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    end_boundary(BlockBoundaryType::LeaveLexicalEnvironment);
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    if (!m_current_basic_block->is_terminated()) {
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        emit<Bytecode::Op::LeaveLexicalEnvironment>();
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    }
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}
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void Generator::begin_continuable_scope(Label continue_target, Vector<DeprecatedFlyString> const& language_label_set)
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{
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    m_continuable_scopes.append({ continue_target, language_label_set });
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    start_boundary(BlockBoundaryType::Continue);
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}
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void Generator::end_continuable_scope()
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{
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    m_continuable_scopes.take_last();
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    end_boundary(BlockBoundaryType::Continue);
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}
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Label Generator::nearest_breakable_scope() const
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{
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    return m_breakable_scopes.last().bytecode_target;
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}
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void Generator::begin_breakable_scope(Label breakable_target, Vector<DeprecatedFlyString> const& language_label_set)
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{
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    m_breakable_scopes.append({ breakable_target, language_label_set });
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    start_boundary(BlockBoundaryType::Break);
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}
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void Generator::end_breakable_scope()
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{
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    m_breakable_scopes.take_last();
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    end_boundary(BlockBoundaryType::Break);
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}
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CodeGenerationErrorOr<Generator::ReferenceRegisters> Generator::emit_super_reference(MemberExpression const& expression)
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{
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    VERIFY(is<SuperExpression>(expression.object()));
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    // https://tc39.es/ecma262/#sec-super-keyword-runtime-semantics-evaluation
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    // 1. Let env be GetThisEnvironment().
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    // 2. Let actualThis be ? env.GetThisBinding().
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    auto actual_this_register = allocate_register();
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    emit<Bytecode::Op::ResolveThisBinding>();
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    emit<Bytecode::Op::Store>(actual_this_register);
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    Optional<Bytecode::Register> computed_property_value_register;
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    if (expression.is_computed()) {
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        // SuperProperty : super [ Expression ]
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        // 3. Let propertyNameReference be ? Evaluation of Expression.
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        // 4. Let propertyNameValue be ? GetValue(propertyNameReference).
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        TRY(expression.property().generate_bytecode(*this));
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        computed_property_value_register = allocate_register();
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        emit<Bytecode::Op::Store>(*computed_property_value_register);
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    }
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    // 5/7. Return ? MakeSuperPropertyReference(actualThis, propertyKey, strict).
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    // https://tc39.es/ecma262/#sec-makesuperpropertyreference
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    // 1. Let env be GetThisEnvironment().
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    // 2. Assert: env.HasSuperBinding() is true.
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    // 3. Let baseValue be ? env.GetSuperBase().
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    auto super_base_register = allocate_register();
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    emit<Bytecode::Op::ResolveSuperBase>();
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    emit<Bytecode::Op::Store>(super_base_register);
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    // 4. Return the Reference Record { [[Base]]: baseValue, [[ReferencedName]]: propertyKey, [[Strict]]: strict, [[ThisValue]]: actualThis }.
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    return ReferenceRegisters {
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        .base = super_base_register,
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        .referenced_name = move(computed_property_value_register),
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        .this_value = actual_this_register,
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    };
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}
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CodeGenerationErrorOr<void> Generator::emit_load_from_reference(JS::ASTNode const& node)
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{
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    if (is<Identifier>(node)) {
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        auto& identifier = static_cast<Identifier const&>(node);
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        TRY(identifier.generate_bytecode(*this));
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        return {};
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    }
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    if (is<MemberExpression>(node)) {
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        auto& expression = static_cast<MemberExpression const&>(node);
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        // https://tc39.es/ecma262/#sec-super-keyword-runtime-semantics-evaluation
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        if (is<SuperExpression>(expression.object())) {
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            auto super_reference = TRY(emit_super_reference(expression));
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            if (super_reference.referenced_name.has_value()) {
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                // 5. Let propertyKey be ? ToPropertyKey(propertyNameValue).
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                // FIXME: This does ToPropertyKey out of order, which is observable by Symbol.toPrimitive!
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                emit<Bytecode::Op::Load>(*super_reference.referenced_name);
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                emit<Bytecode::Op::GetByValueWithThis>(super_reference.base, super_reference.this_value);
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            } else {
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                // 3. Let propertyKey be StringValue of IdentifierName.
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                auto identifier_table_ref = intern_identifier(verify_cast<Identifier>(expression.property()).string());
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                emit_get_by_id_with_this(identifier_table_ref, super_reference.this_value);
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            }
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        } else {
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            TRY(expression.object().generate_bytecode(*this));
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            if (expression.is_computed()) {
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                auto object_reg = allocate_register();
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                emit<Bytecode::Op::Store>(object_reg);
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                TRY(expression.property().generate_bytecode(*this));
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                emit<Bytecode::Op::GetByValue>(object_reg);
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            } else if (expression.property().is_identifier()) {
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                auto identifier_table_ref = intern_identifier(verify_cast<Identifier>(expression.property()).string());
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                emit_get_by_id(identifier_table_ref);
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            } else if (expression.property().is_private_identifier()) {
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                auto identifier_table_ref = intern_identifier(verify_cast<PrivateIdentifier>(expression.property()).string());
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                emit<Bytecode::Op::GetPrivateById>(identifier_table_ref);
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            } else {
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                return CodeGenerationError {
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                    &expression,
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                    "Unimplemented non-computed member expression"sv
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                };
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            }
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        }
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        return {};
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    }
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    VERIFY_NOT_REACHED();
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}
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CodeGenerationErrorOr<void> Generator::emit_store_to_reference(JS::ASTNode const& node)
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{
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    if (is<Identifier>(node)) {
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        auto& identifier = static_cast<Identifier const&>(node);
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        emit_set_variable(identifier);
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        return {};
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    }
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    if (is<MemberExpression>(node)) {
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        // NOTE: The value is in the accumulator, so we have to store that away first.
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        auto value_reg = allocate_register();
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        emit<Bytecode::Op::Store>(value_reg);
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        auto& expression = static_cast<MemberExpression const&>(node);
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        // https://tc39.es/ecma262/#sec-super-keyword-runtime-semantics-evaluation
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        if (is<SuperExpression>(expression.object())) {
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            auto super_reference = TRY(emit_super_reference(expression));
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            emit<Bytecode::Op::Load>(value_reg);
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            // 4. Return the Reference Record { [[Base]]: baseValue, [[ReferencedName]]: propertyKey, [[Strict]]: strict, [[ThisValue]]: actualThis }.
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            if (super_reference.referenced_name.has_value()) {
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                // 5. Let propertyKey be ? ToPropertyKey(propertyNameValue).
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                // FIXME: This does ToPropertyKey out of order, which is observable by Symbol.toPrimitive!
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                emit<Bytecode::Op::PutByValueWithThis>(super_reference.base, *super_reference.referenced_name, super_reference.this_value);
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            } else {
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                // 3. Let propertyKey be StringValue of IdentifierName.
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                auto identifier_table_ref = intern_identifier(verify_cast<Identifier>(expression.property()).string());
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                emit<Bytecode::Op::PutByIdWithThis>(super_reference.base, super_reference.this_value, identifier_table_ref);
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            }
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        } else {
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            TRY(expression.object().generate_bytecode(*this));
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            auto object_reg = allocate_register();
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            emit<Bytecode::Op::Store>(object_reg);
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            if (expression.is_computed()) {
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                TRY(expression.property().generate_bytecode(*this));
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                auto property_reg = allocate_register();
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                emit<Bytecode::Op::Store>(property_reg);
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                emit<Bytecode::Op::Load>(value_reg);
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                emit<Bytecode::Op::PutByValue>(object_reg, property_reg);
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            } else if (expression.property().is_identifier()) {
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                emit<Bytecode::Op::Load>(value_reg);
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                auto identifier_table_ref = intern_identifier(verify_cast<Identifier>(expression.property()).string());
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                emit<Bytecode::Op::PutById>(object_reg, identifier_table_ref);
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            } else if (expression.property().is_private_identifier()) {
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                emit<Bytecode::Op::Load>(value_reg);
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                auto identifier_table_ref = intern_identifier(verify_cast<PrivateIdentifier>(expression.property()).string());
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                emit<Bytecode::Op::PutPrivateById>(object_reg, identifier_table_ref);
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            } else {
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                return CodeGenerationError {
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                    &expression,
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                    "Unimplemented non-computed member expression"sv
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                };
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            }
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        }
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        return {};
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    }
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    return CodeGenerationError {
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        &node,
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        "Unimplemented/invalid node used a reference"sv
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    };
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}
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CodeGenerationErrorOr<void> Generator::emit_delete_reference(JS::ASTNode const& node)
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{
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    if (is<Identifier>(node)) {
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        auto& identifier = static_cast<Identifier const&>(node);
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        if (identifier.is_local())
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            emit<Bytecode::Op::LoadImmediate>(Value(false));
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        else
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            emit<Bytecode::Op::DeleteVariable>(intern_identifier(identifier.string()));
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        return {};
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    }
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    if (is<MemberExpression>(node)) {
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        auto& expression = static_cast<MemberExpression const&>(node);
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        // https://tc39.es/ecma262/#sec-super-keyword-runtime-semantics-evaluation
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        if (is<SuperExpression>(expression.object())) {
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            auto super_reference = TRY(emit_super_reference(expression));
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            if (super_reference.referenced_name.has_value()) {
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                emit<Bytecode::Op::DeleteByValueWithThis>(super_reference.this_value, *super_reference.referenced_name);
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            } else {
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                auto identifier_table_ref = intern_identifier(verify_cast<Identifier>(expression.property()).string());
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                emit<Bytecode::Op::DeleteByIdWithThis>(super_reference.this_value, identifier_table_ref);
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            }
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            return {};
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        }
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        TRY(expression.object().generate_bytecode(*this));
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        if (expression.is_computed()) {
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            auto object_reg = allocate_register();
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            emit<Bytecode::Op::Store>(object_reg);
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            TRY(expression.property().generate_bytecode(*this));
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            emit<Bytecode::Op::DeleteByValue>(object_reg);
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        } else if (expression.property().is_identifier()) {
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            auto identifier_table_ref = intern_identifier(verify_cast<Identifier>(expression.property()).string());
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            emit<Bytecode::Op::DeleteById>(identifier_table_ref);
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        } else {
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            // NOTE: Trying to delete a private field generates a SyntaxError in the parser.
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            return CodeGenerationError {
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                &expression,
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                "Unimplemented non-computed member expression"sv
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            };
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        }
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        return {};
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    }
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    // Though this will have no deletion effect, we still have to evaluate the node as it can have side effects.
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    // For example: delete a(); delete ++c.b; etc.
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    // 13.5.1.2 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-delete-operator-runtime-semantics-evaluation
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    // 1. Let ref be the result of evaluating UnaryExpression.
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    // 2. ReturnIfAbrupt(ref).
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    TRY(node.generate_bytecode(*this));
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    // 3. If ref is not a Reference Record, return true.
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    emit<Bytecode::Op::LoadImmediate>(Value(true));
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    // NOTE: The rest of the steps are handled by Delete{Variable,ByValue,Id}.
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    return {};
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}
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void Generator::emit_set_variable(JS::Identifier const& identifier, Bytecode::Op::SetVariable::InitializationMode initialization_mode, Bytecode::Op::EnvironmentMode mode)
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{
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    if (identifier.is_local()) {
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        emit<Bytecode::Op::SetLocal>(identifier.local_variable_index());
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    } else {
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        emit<Bytecode::Op::SetVariable>(intern_identifier(identifier.string()), initialization_mode, mode);
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    }
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}
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void Generator::generate_scoped_jump(JumpType type)
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{
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    bool last_was_finally = false;
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    for (size_t i = m_boundaries.size(); i > 0; --i) {
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        auto boundary = m_boundaries[i - 1];
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        using enum BlockBoundaryType;
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        switch (boundary) {
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        case Break:
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            if (type == JumpType::Break) {
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                emit<Op::Jump>().set_targets(nearest_breakable_scope(), {});
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                return;
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            }
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            break;
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        case Continue:
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            if (type == JumpType::Continue) {
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                emit<Op::Jump>().set_targets(nearest_continuable_scope(), {});
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                return;
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            }
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            break;
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        case Unwind:
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						|
            if (!last_was_finally)
 | 
						|
                emit<Bytecode::Op::LeaveUnwindContext>();
 | 
						|
            last_was_finally = false;
 | 
						|
            break;
 | 
						|
        case LeaveLexicalEnvironment:
 | 
						|
            emit<Bytecode::Op::LeaveLexicalEnvironment>();
 | 
						|
            break;
 | 
						|
        case ReturnToFinally: {
 | 
						|
            auto jump_type_name = type == JumpType::Break ? "break"sv : "continue"sv;
 | 
						|
            auto& block = make_block(DeprecatedString::formatted("{}.{}", current_block().name(), jump_type_name));
 | 
						|
            emit<Op::ScheduleJump>(Label { block });
 | 
						|
            switch_to_basic_block(block);
 | 
						|
            last_was_finally = true;
 | 
						|
            break;
 | 
						|
        };
 | 
						|
        }
 | 
						|
    }
 | 
						|
    VERIFY_NOT_REACHED();
 | 
						|
}
 | 
						|
 | 
						|
void Generator::generate_labelled_jump(JumpType type, DeprecatedFlyString const& label)
 | 
						|
{
 | 
						|
    size_t current_boundary = m_boundaries.size();
 | 
						|
    bool last_was_finally = false;
 | 
						|
 | 
						|
    auto const& jumpable_scopes = type == JumpType::Continue ? m_continuable_scopes : m_breakable_scopes;
 | 
						|
 | 
						|
    for (auto const& jumpable_scope : jumpable_scopes.in_reverse()) {
 | 
						|
        for (; current_boundary > 0; --current_boundary) {
 | 
						|
            auto boundary = m_boundaries[current_boundary - 1];
 | 
						|
            if (boundary == BlockBoundaryType::Unwind) {
 | 
						|
                if (!last_was_finally)
 | 
						|
                    emit<Bytecode::Op::LeaveUnwindContext>();
 | 
						|
                last_was_finally = false;
 | 
						|
            } else if (boundary == BlockBoundaryType::LeaveLexicalEnvironment) {
 | 
						|
                emit<Bytecode::Op::LeaveLexicalEnvironment>();
 | 
						|
            } else if (boundary == BlockBoundaryType::ReturnToFinally) {
 | 
						|
                auto jump_type_name = type == JumpType::Break ? "break"sv : "continue"sv;
 | 
						|
                auto& block = make_block(DeprecatedString::formatted("{}.{}", current_block().name(), jump_type_name));
 | 
						|
                emit<Op::ScheduleJump>(Label { block });
 | 
						|
                switch_to_basic_block(block);
 | 
						|
                last_was_finally = true;
 | 
						|
            } else if ((type == JumpType::Continue && boundary == BlockBoundaryType::Continue) || (type == JumpType::Break && boundary == BlockBoundaryType::Break)) {
 | 
						|
                // Make sure we don't process this boundary twice if the current jumpable scope doesn't contain the target label.
 | 
						|
                --current_boundary;
 | 
						|
                break;
 | 
						|
            }
 | 
						|
        }
 | 
						|
 | 
						|
        if (jumpable_scope.language_label_set.contains_slow(label)) {
 | 
						|
            emit<Op::Jump>().set_targets(jumpable_scope.bytecode_target, {});
 | 
						|
            return;
 | 
						|
        }
 | 
						|
    }
 | 
						|
 | 
						|
    // We must have a jumpable scope available that contains the label, as this should be enforced by the parser.
 | 
						|
    VERIFY_NOT_REACHED();
 | 
						|
}
 | 
						|
 | 
						|
void Generator::generate_break()
 | 
						|
{
 | 
						|
    generate_scoped_jump(JumpType::Break);
 | 
						|
}
 | 
						|
 | 
						|
void Generator::generate_break(DeprecatedFlyString const& break_label)
 | 
						|
{
 | 
						|
    generate_labelled_jump(JumpType::Break, break_label);
 | 
						|
}
 | 
						|
 | 
						|
void Generator::generate_continue()
 | 
						|
{
 | 
						|
    generate_scoped_jump(JumpType::Continue);
 | 
						|
}
 | 
						|
 | 
						|
void Generator::generate_continue(DeprecatedFlyString const& continue_label)
 | 
						|
{
 | 
						|
    generate_labelled_jump(JumpType::Continue, continue_label);
 | 
						|
}
 | 
						|
 | 
						|
void Generator::push_home_object(Register register_)
 | 
						|
{
 | 
						|
    m_home_objects.append(register_);
 | 
						|
}
 | 
						|
 | 
						|
void Generator::pop_home_object()
 | 
						|
{
 | 
						|
    m_home_objects.take_last();
 | 
						|
}
 | 
						|
 | 
						|
void Generator::emit_new_function(FunctionExpression const& function_node, Optional<IdentifierTableIndex> lhs_name)
 | 
						|
{
 | 
						|
    if (m_home_objects.is_empty())
 | 
						|
        emit<Op::NewFunction>(function_node, lhs_name);
 | 
						|
    else
 | 
						|
        emit<Op::NewFunction>(function_node, lhs_name, m_home_objects.last());
 | 
						|
}
 | 
						|
 | 
						|
CodeGenerationErrorOr<void> Generator::emit_named_evaluation_if_anonymous_function(Expression const& expression, Optional<IdentifierTableIndex> lhs_name)
 | 
						|
{
 | 
						|
    if (is<FunctionExpression>(expression)) {
 | 
						|
        auto const& function_expression = static_cast<FunctionExpression const&>(expression);
 | 
						|
        if (!function_expression.has_name()) {
 | 
						|
            TRY(function_expression.generate_bytecode_with_lhs_name(*this, move(lhs_name)));
 | 
						|
            return {};
 | 
						|
        }
 | 
						|
    }
 | 
						|
 | 
						|
    if (is<ClassExpression>(expression)) {
 | 
						|
        auto const& class_expression = static_cast<ClassExpression const&>(expression);
 | 
						|
        if (!class_expression.has_name()) {
 | 
						|
            TRY(class_expression.generate_bytecode_with_lhs_name(*this, move(lhs_name)));
 | 
						|
            return {};
 | 
						|
        }
 | 
						|
    }
 | 
						|
 | 
						|
    TRY(expression.generate_bytecode(*this));
 | 
						|
    return {};
 | 
						|
}
 | 
						|
 | 
						|
void Generator::emit_get_by_id(IdentifierTableIndex id)
 | 
						|
{
 | 
						|
    emit<Op::GetById>(id, m_next_property_lookup_cache++);
 | 
						|
}
 | 
						|
 | 
						|
void Generator::emit_get_by_id_with_this(IdentifierTableIndex id, Register this_reg)
 | 
						|
{
 | 
						|
    emit<Op::GetByIdWithThis>(id, this_reg, m_next_property_lookup_cache++);
 | 
						|
}
 | 
						|
 | 
						|
}
 |