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This patch moves the exception state, call stack and scope stack from Interpreter to VM. I'm doing this to help myself discover what the split between Interpreter and VM should be, by shuffling things around and seeing what falls where. With these changes, we no longer have a persistent lexical environment for the current global object on the Interpreter's call stack. Instead, we push/pop that environment on Interpreter::run() enter/exit. Since it should only be used to find the global "this", and not for variable storage (that goes directly into the global object instead!), I had to insert some short-circuiting when walking the environment parent chain during variable lookup. Note that this is a "stepping stone" commit, not a final design.
397 lines
13 KiB
C++
397 lines
13 KiB
C++
/*
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* Copyright (c) 2020, Andreas Kling <kling@serenityos.org>
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* All rights reserved.
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*
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* Redistribution and use in source and binary forms, with or without
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* modification, are permitted provided that the following conditions are met:
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*
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* 1. Redistributions of source code must retain the above copyright notice, this
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* list of conditions and the following disclaimer.
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*
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* 2. Redistributions in binary form must reproduce the above copyright notice,
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* this list of conditions and the following disclaimer in the documentation
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* and/or other materials provided with the distribution.
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*
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* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
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* AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
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* IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
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* DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE
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* FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
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* DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
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* SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER
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* CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
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* OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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* OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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*/
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#include <AK/StringBuilder.h>
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#include <AK/ScopeGuard.h>
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#include <LibJS/Interpreter.h>
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#include <LibJS/Runtime/Error.h>
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#include <LibJS/Runtime/GlobalObject.h>
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#include <LibJS/Runtime/Reference.h>
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#include <LibJS/Runtime/ScriptFunction.h>
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#include <LibJS/Runtime/Symbol.h>
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#include <LibJS/Runtime/VM.h>
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//#define VM_DEBUG
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namespace JS {
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NonnullRefPtr<VM> VM::create()
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{
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return adopt(*new VM);
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}
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VM::VM()
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: m_heap(*this)
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{
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m_empty_string = m_heap.allocate_without_global_object<PrimitiveString>(String::empty());
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#define __JS_ENUMERATE(SymbolName, snake_name) \
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m_well_known_symbol_##snake_name = js_symbol(*this, "Symbol." #SymbolName, false);
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JS_ENUMERATE_WELL_KNOWN_SYMBOLS
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#undef __JS_ENUMERATE
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}
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VM::~VM()
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{
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}
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Interpreter& VM::interpreter()
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{
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ASSERT(!m_interpreters.is_empty());
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return *m_interpreters.last();
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}
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Interpreter* VM::interpreter_if_exists()
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{
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if (m_interpreters.is_empty())
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return nullptr;
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return m_interpreters.last();
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}
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void VM::push_interpreter(Interpreter& interpreter)
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{
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m_interpreters.append(&interpreter);
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}
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void VM::pop_interpreter(Interpreter& interpreter)
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{
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ASSERT(!m_interpreters.is_empty());
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auto* popped_interpreter = m_interpreters.take_last();
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ASSERT(popped_interpreter == &interpreter);
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}
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VM::InterpreterExecutionScope::InterpreterExecutionScope(Interpreter& interpreter)
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: m_interpreter(interpreter)
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{
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m_interpreter.vm().push_interpreter(m_interpreter);
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}
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VM::InterpreterExecutionScope::~InterpreterExecutionScope()
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{
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m_interpreter.vm().pop_interpreter(m_interpreter);
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}
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void VM::gather_roots(HashTable<Cell*>& roots)
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{
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roots.set(m_empty_string);
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if (m_exception)
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roots.set(m_exception);
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if (m_last_value.is_cell())
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roots.set(m_last_value.as_cell());
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for (auto& call_frame : m_call_stack) {
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if (call_frame.this_value.is_cell())
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roots.set(call_frame.this_value.as_cell());
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for (auto& argument : call_frame.arguments) {
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if (argument.is_cell())
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roots.set(argument.as_cell());
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}
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roots.set(call_frame.environment);
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}
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#define __JS_ENUMERATE(SymbolName, snake_name) \
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roots.set(well_known_symbol_##snake_name());
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JS_ENUMERATE_WELL_KNOWN_SYMBOLS
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#undef __JS_ENUMERATE
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for (auto& symbol : m_global_symbol_map)
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roots.set(symbol.value);
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}
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Symbol* VM::get_global_symbol(const String& description)
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{
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auto result = m_global_symbol_map.get(description);
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if (result.has_value())
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return result.value();
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auto new_global_symbol = js_symbol(*this, description, true);
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m_global_symbol_map.set(description, new_global_symbol);
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return new_global_symbol;
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}
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bool VM::in_strict_mode() const
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{
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if (m_scope_stack.is_empty())
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return true;
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return m_scope_stack.last().scope_node->in_strict_mode();
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}
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void VM::enter_scope(const ScopeNode& scope_node, ArgumentVector arguments, ScopeType scope_type, GlobalObject& global_object)
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{
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for (auto& declaration : scope_node.functions()) {
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auto* function = ScriptFunction::create(global_object, declaration.name(), declaration.body(), declaration.parameters(), declaration.function_length(), current_environment());
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set_variable(declaration.name(), function, global_object);
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}
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if (scope_type == ScopeType::Function) {
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m_scope_stack.append({ scope_type, scope_node, false });
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return;
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}
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HashMap<FlyString, Variable> scope_variables_with_declaration_kind;
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scope_variables_with_declaration_kind.ensure_capacity(16);
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for (auto& declaration : scope_node.variables()) {
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for (auto& declarator : declaration.declarations()) {
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if (scope_node.is_program()) {
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global_object.put(declarator.id().string(), js_undefined());
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if (exception())
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return;
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} else {
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scope_variables_with_declaration_kind.set(declarator.id().string(), { js_undefined(), declaration.declaration_kind() });
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}
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}
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}
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for (auto& argument : arguments) {
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scope_variables_with_declaration_kind.set(argument.name, { argument.value, DeclarationKind::Var });
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}
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bool pushed_lexical_environment = false;
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if (!scope_variables_with_declaration_kind.is_empty()) {
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auto* block_lexical_environment = heap().allocate<LexicalEnvironment>(global_object, move(scope_variables_with_declaration_kind), current_environment());
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m_call_stack.last().environment = block_lexical_environment;
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pushed_lexical_environment = true;
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}
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m_scope_stack.append({ scope_type, scope_node, pushed_lexical_environment });
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}
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void VM::exit_scope(const ScopeNode& scope_node)
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{
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while (!m_scope_stack.is_empty()) {
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auto popped_scope = m_scope_stack.take_last();
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if (popped_scope.pushed_environment)
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m_call_stack.last().environment = m_call_stack.last().environment->parent();
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if (popped_scope.scope_node.ptr() == &scope_node)
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break;
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}
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// If we unwind all the way, just reset m_unwind_until so that future "return" doesn't break.
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if (m_scope_stack.is_empty())
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m_unwind_until = ScopeType::None;
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}
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void VM::set_variable(const FlyString& name, Value value, GlobalObject& global_object, bool first_assignment)
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{
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if (m_call_stack.size()) {
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for (auto* environment = current_environment(); environment; environment = environment->parent()) {
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if (environment->type() == LexicalEnvironment::EnvironmentRecordType::Global)
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break;
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auto possible_match = environment->get(name);
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if (possible_match.has_value()) {
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if (!first_assignment && possible_match.value().declaration_kind == DeclarationKind::Const) {
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throw_exception<TypeError>(global_object, ErrorType::InvalidAssignToConst);
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return;
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}
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environment->set(name, { value, possible_match.value().declaration_kind });
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return;
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}
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}
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}
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global_object.put(move(name), move(value));
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}
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Value VM::get_variable(const FlyString& name, GlobalObject& global_object)
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{
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if (m_call_stack.size()) {
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for (auto* environment = current_environment(); environment; environment = environment->parent()) {
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if (environment->type() == LexicalEnvironment::EnvironmentRecordType::Global)
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break;
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auto possible_match = environment->get(name);
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if (possible_match.has_value())
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return possible_match.value().value;
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}
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}
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auto value = global_object.get(name);
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if (m_underscore_is_last_value && name == "_" && value.is_empty())
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return m_last_value;
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return value;
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}
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Reference VM::get_reference(const FlyString& name)
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{
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if (m_call_stack.size()) {
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for (auto* environment = current_environment(); environment; environment = environment->parent()) {
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if (environment->type() == LexicalEnvironment::EnvironmentRecordType::Global)
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break;
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auto possible_match = environment->get(name);
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if (possible_match.has_value())
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return { Reference::LocalVariable, name };
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}
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}
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return { Reference::GlobalVariable, name };
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}
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Value VM::execute_statement(GlobalObject& global_object, const Statement& statement, ArgumentVector arguments, ScopeType scope_type)
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{
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if (!statement.is_scope_node())
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return statement.execute(interpreter(), global_object);
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auto& block = static_cast<const ScopeNode&>(statement);
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enter_scope(block, move(arguments), scope_type, global_object);
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if (block.children().is_empty())
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m_last_value = js_undefined();
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for (auto& node : block.children()) {
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m_last_value = node.execute(interpreter(), global_object);
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if (should_unwind()) {
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if (!block.label().is_null() && should_unwind_until(ScopeType::Breakable, block.label()))
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stop_unwind();
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break;
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}
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}
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bool did_return = m_unwind_until == ScopeType::Function;
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if (m_unwind_until == scope_type)
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m_unwind_until = ScopeType::None;
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exit_scope(block);
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return did_return ? m_last_value : js_undefined();
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}
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Value VM::construct(Function& function, Function& new_target, Optional<MarkedValueList> arguments, GlobalObject& global_object)
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{
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auto& call_frame = push_call_frame();
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ArmedScopeGuard call_frame_popper = [&] {
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pop_call_frame();
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};
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call_frame.function_name = function.name();
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call_frame.arguments = function.bound_arguments();
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if (arguments.has_value())
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call_frame.arguments.append(arguments.value().values());
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call_frame.environment = function.create_environment();
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current_environment()->set_new_target(&new_target);
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Object* new_object = nullptr;
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if (function.constructor_kind() == Function::ConstructorKind::Base) {
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new_object = Object::create_empty(global_object);
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current_environment()->bind_this_value(new_object);
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if (exception())
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return {};
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auto prototype = new_target.get("prototype");
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if (exception())
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return {};
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if (prototype.is_object()) {
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new_object->set_prototype(&prototype.as_object());
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if (exception())
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return {};
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}
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}
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// If we are a Derived constructor, |this| has not been constructed before super is called.
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Value this_value = function.constructor_kind() == Function::ConstructorKind::Base ? new_object : Value {};
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call_frame.this_value = this_value;
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auto result = function.construct(interpreter(), new_target);
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this_value = current_environment()->get_this_binding();
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pop_call_frame();
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call_frame_popper.disarm();
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// If we are constructing an instance of a derived class,
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// set the prototype on objects created by constructors that return an object (i.e. NativeFunction subclasses).
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if (function.constructor_kind() == Function::ConstructorKind::Base && new_target.constructor_kind() == Function::ConstructorKind::Derived && result.is_object()) {
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current_environment()->replace_this_binding(result);
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auto prototype = new_target.get("prototype");
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if (exception())
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return {};
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if (prototype.is_object()) {
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result.as_object().set_prototype(&prototype.as_object());
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if (exception())
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return {};
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}
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return result;
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}
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if (exception())
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return {};
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if (result.is_object())
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return result;
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return this_value;
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}
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void VM::throw_exception(Exception* exception)
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{
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#ifdef VM_DEBUG
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if (exception->value().is_object() && exception->value().as_object().is_error()) {
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auto& error = static_cast<Error&>(exception->value().as_object());
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dbg() << "Throwing JavaScript Error: " << error.name() << ", " << error.message();
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for (ssize_t i = m_call_stack.size() - 1; i >= 0; --i) {
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auto function_name = m_call_stack[i].function_name;
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if (function_name.is_empty())
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function_name = "<anonymous>";
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dbg() << " " << function_name;
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}
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}
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#endif
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m_exception = exception;
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unwind(ScopeType::Try);
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}
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String VM::join_arguments() const
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{
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StringBuilder joined_arguments;
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for (size_t i = 0; i < argument_count(); ++i) {
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joined_arguments.append(argument(i).to_string_without_side_effects().characters());
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if (i != argument_count() - 1)
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joined_arguments.append(' ');
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}
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return joined_arguments.build();
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}
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Value VM::resolve_this_binding() const
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{
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return get_this_environment()->get_this_binding();
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}
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const LexicalEnvironment* VM::get_this_environment() const
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{
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// We will always return because the Global environment will always be reached, which has a |this| binding.
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for (const LexicalEnvironment* environment = current_environment(); environment; environment = environment->parent()) {
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if (environment->has_this_binding())
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return environment;
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}
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ASSERT_NOT_REACHED();
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}
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Value VM::get_new_target() const
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{
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return get_this_environment()->new_target();
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}
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}
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