AST.cpp 188 KB

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  1. /*
  2. * Copyright (c) 2020-2021, Andreas Kling <kling@serenityos.org>
  3. * Copyright (c) 2020-2022, Linus Groh <linusg@serenityos.org>
  4. * Copyright (c) 2021-2022, David Tuin <davidot@serenityos.org>
  5. *
  6. * SPDX-License-Identifier: BSD-2-Clause
  7. */
  8. #include <AK/Demangle.h>
  9. #include <AK/HashMap.h>
  10. #include <AK/HashTable.h>
  11. #include <AK/QuickSort.h>
  12. #include <AK/ScopeGuard.h>
  13. #include <AK/StringBuilder.h>
  14. #include <AK/TemporaryChange.h>
  15. #include <LibCrypto/BigInt/SignedBigInteger.h>
  16. #include <LibJS/AST.h>
  17. #include <LibJS/Heap/MarkedVector.h>
  18. #include <LibJS/Interpreter.h>
  19. #include <LibJS/Runtime/AbstractOperations.h>
  20. #include <LibJS/Runtime/Accessor.h>
  21. #include <LibJS/Runtime/Array.h>
  22. #include <LibJS/Runtime/BigInt.h>
  23. #include <LibJS/Runtime/ECMAScriptFunctionObject.h>
  24. #include <LibJS/Runtime/Error.h>
  25. #include <LibJS/Runtime/FunctionEnvironment.h>
  26. #include <LibJS/Runtime/GlobalObject.h>
  27. #include <LibJS/Runtime/IteratorOperations.h>
  28. #include <LibJS/Runtime/NativeFunction.h>
  29. #include <LibJS/Runtime/ObjectEnvironment.h>
  30. #include <LibJS/Runtime/PrimitiveString.h>
  31. #include <LibJS/Runtime/PromiseConstructor.h>
  32. #include <LibJS/Runtime/PromiseReaction.h>
  33. #include <LibJS/Runtime/Reference.h>
  34. #include <LibJS/Runtime/RegExpObject.h>
  35. #include <LibJS/Runtime/Shape.h>
  36. #include <typeinfo>
  37. namespace JS {
  38. class InterpreterNodeScope {
  39. AK_MAKE_NONCOPYABLE(InterpreterNodeScope);
  40. AK_MAKE_NONMOVABLE(InterpreterNodeScope);
  41. public:
  42. InterpreterNodeScope(Interpreter& interpreter, ASTNode const& node)
  43. : m_interpreter(interpreter)
  44. , m_chain_node { nullptr, node }
  45. {
  46. m_interpreter.vm().running_execution_context().current_node = &node;
  47. m_interpreter.push_ast_node(m_chain_node);
  48. }
  49. ~InterpreterNodeScope()
  50. {
  51. m_interpreter.pop_ast_node();
  52. }
  53. private:
  54. Interpreter& m_interpreter;
  55. ExecutingASTNodeChain m_chain_node;
  56. };
  57. String ASTNode::class_name() const
  58. {
  59. // NOTE: We strip the "JS::" prefix.
  60. auto const* typename_ptr = typeid(*this).name();
  61. return demangle({ typename_ptr, strlen(typename_ptr) }).substring(4);
  62. }
  63. static void print_indent(int indent)
  64. {
  65. out("{}", String::repeated(' ', indent * 2));
  66. }
  67. static void update_function_name(Value value, FlyString const& name)
  68. {
  69. if (!value.is_function())
  70. return;
  71. auto& function = value.as_function();
  72. if (is<ECMAScriptFunctionObject>(function) && function.name().is_empty())
  73. static_cast<ECMAScriptFunctionObject&>(function).set_name(name);
  74. }
  75. static ThrowCompletionOr<String> get_function_property_name(PropertyKey key)
  76. {
  77. if (key.is_symbol())
  78. return String::formatted("[{}]", key.as_symbol()->description());
  79. return key.to_string();
  80. }
  81. // 14.2.2 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-block-runtime-semantics-evaluation
  82. // StatementList : StatementList StatementListItem
  83. Completion ScopeNode::evaluate_statements(Interpreter& interpreter, GlobalObject& global_object) const
  84. {
  85. auto completion = normal_completion({});
  86. for (auto const& node : children()) {
  87. completion = node.execute(interpreter, global_object).update_empty(completion.value());
  88. if (completion.is_abrupt())
  89. break;
  90. }
  91. return completion;
  92. }
  93. // 14.13.4 Runtime Semantics: LabelledEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-labelledevaluation
  94. // BreakableStatement : IterationStatement
  95. static Completion labelled_evaluation(Interpreter& interpreter, GlobalObject& global_object, IterationStatement const& statement, Vector<FlyString> const& label_set)
  96. {
  97. // 1. Let stmtResult be Completion(LoopEvaluation of IterationStatement with argument labelSet).
  98. auto result = statement.loop_evaluation(interpreter, global_object, label_set);
  99. // 2. If stmtResult.[[Type]] is break, then
  100. if (result.type() == Completion::Type::Break) {
  101. // a. If stmtResult.[[Target]] is empty, then
  102. if (!result.target().has_value()) {
  103. // i. If stmtResult.[[Value]] is empty, set stmtResult to NormalCompletion(undefined).
  104. // ii. Else, set stmtResult to NormalCompletion(stmtResult.[[Value]]).
  105. result = normal_completion(result.value().value_or(js_undefined()));
  106. }
  107. }
  108. // 3. Return ? stmtResult.
  109. return result;
  110. }
  111. // 14.13.4 Runtime Semantics: LabelledEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-labelledevaluation
  112. // BreakableStatement : SwitchStatement
  113. static Completion labelled_evaluation(Interpreter& interpreter, GlobalObject& global_object, SwitchStatement const& statement, Vector<FlyString> const&)
  114. {
  115. // 1. Let stmtResult be the result of evaluating SwitchStatement.
  116. auto result = statement.execute_impl(interpreter, global_object);
  117. // 2. If stmtResult.[[Type]] is break, then
  118. if (result.type() == Completion::Type::Break) {
  119. // a. If stmtResult.[[Target]] is empty, then
  120. if (!result.target().has_value()) {
  121. // i. If stmtResult.[[Value]] is empty, set stmtResult to NormalCompletion(undefined).
  122. // ii. Else, set stmtResult to NormalCompletion(stmtResult.[[Value]]).
  123. result = normal_completion(result.value().value_or(js_undefined()));
  124. }
  125. }
  126. // 3. Return ? stmtResult.
  127. return result;
  128. }
  129. // 14.13.4 Runtime Semantics: LabelledEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-labelledevaluation
  130. // LabelledStatement : LabelIdentifier : LabelledItem
  131. static Completion labelled_evaluation(Interpreter& interpreter, GlobalObject& global_object, LabelledStatement const& statement, Vector<FlyString> const& label_set)
  132. {
  133. auto const& labelled_item = *statement.labelled_item();
  134. // 1. Let label be the StringValue of LabelIdentifier.
  135. auto const& label = statement.label();
  136. // 2. Let newLabelSet be the list-concatenation of labelSet and « label ».
  137. // Optimization: Avoid vector copy if possible.
  138. Optional<Vector<FlyString>> new_label_set;
  139. if (is<IterationStatement>(labelled_item) || is<SwitchStatement>(labelled_item) || is<LabelledStatement>(labelled_item)) {
  140. new_label_set = label_set;
  141. new_label_set->append(label);
  142. }
  143. // 3. Let stmtResult be Completion(LabelledEvaluation of LabelledItem with argument newLabelSet).
  144. Completion result;
  145. if (is<IterationStatement>(labelled_item))
  146. result = labelled_evaluation(interpreter, global_object, static_cast<IterationStatement const&>(labelled_item), *new_label_set);
  147. else if (is<SwitchStatement>(labelled_item))
  148. result = labelled_evaluation(interpreter, global_object, static_cast<SwitchStatement const&>(labelled_item), *new_label_set);
  149. else if (is<LabelledStatement>(labelled_item))
  150. result = labelled_evaluation(interpreter, global_object, static_cast<LabelledStatement const&>(labelled_item), *new_label_set);
  151. else
  152. result = labelled_item.execute(interpreter, global_object);
  153. // 4. If stmtResult.[[Type]] is break and SameValue(stmtResult.[[Target]], label) is true, then
  154. if (result.type() == Completion::Type::Break && result.target() == label) {
  155. // a. Set stmtResult to NormalCompletion(stmtResult.[[Value]]).
  156. result = normal_completion(result.value());
  157. }
  158. // 5. Return ? stmtResult.
  159. return result;
  160. }
  161. // 14.13.3 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-labelled-statements-runtime-semantics-evaluation
  162. Completion LabelledStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  163. {
  164. InterpreterNodeScope node_scope { interpreter, *this };
  165. // 1. Return ? LabelledEvaluation of this LabelledStatement with argument « ».
  166. return labelled_evaluation(interpreter, global_object, *this, {});
  167. }
  168. void LabelledStatement::dump(int indent) const
  169. {
  170. ASTNode::dump(indent);
  171. print_indent(indent + 1);
  172. outln("(Label)");
  173. print_indent(indent + 2);
  174. outln("\"{}\"", m_label);
  175. print_indent(indent + 1);
  176. outln("(Labelled item)");
  177. m_labelled_item->dump(indent + 2);
  178. }
  179. // 10.2.1.3 Runtime Semantics: EvaluateBody, https://tc39.es/ecma262/#sec-runtime-semantics-evaluatebody
  180. Completion FunctionBody::execute(Interpreter& interpreter, GlobalObject& global_object) const
  181. {
  182. InterpreterNodeScope node_scope { interpreter, *this };
  183. // Note: Scoping should have already been set up by whoever is calling this FunctionBody.
  184. // 1. Return ? EvaluateFunctionBody of FunctionBody with arguments functionObject and argumentsList.
  185. return evaluate_statements(interpreter, global_object);
  186. }
  187. // 14.2.2 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-block-runtime-semantics-evaluation
  188. Completion BlockStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  189. {
  190. InterpreterNodeScope node_scope { interpreter, *this };
  191. auto& vm = interpreter.vm();
  192. Environment* old_environment { nullptr };
  193. ArmedScopeGuard restore_environment = [&] {
  194. vm.running_execution_context().lexical_environment = old_environment;
  195. };
  196. // Optimization: We only need a new lexical environment if there are any lexical declarations. :^)
  197. if (has_lexical_declarations()) {
  198. old_environment = vm.running_execution_context().lexical_environment;
  199. auto* block_environment = new_declarative_environment(*old_environment);
  200. block_declaration_instantiation(global_object, block_environment);
  201. vm.running_execution_context().lexical_environment = block_environment;
  202. } else {
  203. restore_environment.disarm();
  204. }
  205. return evaluate_statements(interpreter, global_object);
  206. }
  207. Completion Program::execute(Interpreter& interpreter, GlobalObject& global_object) const
  208. {
  209. InterpreterNodeScope node_scope { interpreter, *this };
  210. return evaluate_statements(interpreter, global_object);
  211. }
  212. // 15.2.6 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-function-definitions-runtime-semantics-evaluation
  213. Completion FunctionDeclaration::execute(Interpreter& interpreter, GlobalObject& global_object) const
  214. {
  215. InterpreterNodeScope node_scope { interpreter, *this };
  216. if (m_is_hoisted) {
  217. // Perform special annexB steps see step 3 of: https://tc39.es/ecma262/#sec-web-compat-functiondeclarationinstantiation
  218. // i. Let genv be the running execution context's VariableEnvironment.
  219. auto* variable_environment = interpreter.vm().running_execution_context().variable_environment;
  220. // ii. Let benv be the running execution context's LexicalEnvironment.
  221. auto* lexical_environment = interpreter.vm().running_execution_context().lexical_environment;
  222. // iii. Let fobj be ! benv.GetBindingValue(F, false).
  223. auto function_object = MUST(lexical_environment->get_binding_value(global_object, name(), false));
  224. // iv. Perform ? genv.SetMutableBinding(F, fobj, false).
  225. TRY(variable_environment->set_mutable_binding(global_object, name(), function_object, false));
  226. // v. Return unused.
  227. return Optional<Value> {};
  228. }
  229. // 1. Return unused.
  230. return Optional<Value> {};
  231. }
  232. // 15.2.6 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-function-definitions-runtime-semantics-evaluation
  233. Completion FunctionExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  234. {
  235. InterpreterNodeScope node_scope { interpreter, *this };
  236. // 1. Return InstantiateOrdinaryFunctionExpression of FunctionExpression.
  237. return instantiate_ordinary_function_expression(interpreter, global_object, name());
  238. }
  239. // 15.2.5 Runtime Semantics: InstantiateOrdinaryFunctionExpression, https://tc39.es/ecma262/#sec-runtime-semantics-instantiateordinaryfunctionexpression
  240. Value FunctionExpression::instantiate_ordinary_function_expression(Interpreter& interpreter, GlobalObject& global_object, FlyString given_name) const
  241. {
  242. if (given_name.is_empty())
  243. given_name = "";
  244. auto has_own_name = !name().is_empty();
  245. auto const& used_name = has_own_name ? name() : given_name;
  246. auto* environment = interpreter.lexical_environment();
  247. if (has_own_name) {
  248. VERIFY(environment);
  249. environment = new_declarative_environment(*environment);
  250. MUST(environment->create_immutable_binding(global_object, name(), false));
  251. }
  252. auto* private_environment = interpreter.vm().running_execution_context().private_environment;
  253. auto closure = ECMAScriptFunctionObject::create(global_object, used_name, source_text(), body(), parameters(), function_length(), environment, private_environment, kind(), is_strict_mode(), might_need_arguments_object(), contains_direct_call_to_eval(), is_arrow_function());
  254. // FIXME: 6. Perform SetFunctionName(closure, name).
  255. // FIXME: 7. Perform MakeConstructor(closure).
  256. if (has_own_name)
  257. MUST(environment->initialize_binding(global_object, name(), closure));
  258. return closure;
  259. }
  260. // 14.4.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-empty-statement-runtime-semantics-evaluation
  261. Completion EmptyStatement::execute(Interpreter&, GlobalObject&) const
  262. {
  263. // 1. Return empty.
  264. return Optional<Value> {};
  265. }
  266. // 14.5.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-expression-statement-runtime-semantics-evaluation
  267. Completion ExpressionStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  268. {
  269. InterpreterNodeScope node_scope { interpreter, *this };
  270. // 1. Let exprRef be the result of evaluating Expression.
  271. // 2. Return ? GetValue(exprRef).
  272. return m_expression->execute(interpreter, global_object);
  273. }
  274. // TODO: This shouldn't exist. Refactor into EvaluateCall.
  275. ThrowCompletionOr<CallExpression::ThisAndCallee> CallExpression::compute_this_and_callee(Interpreter& interpreter, GlobalObject& global_object, Reference const& callee_reference) const
  276. {
  277. if (callee_reference.is_property_reference()) {
  278. auto this_value = callee_reference.get_this_value();
  279. auto callee = TRY(callee_reference.get_value(global_object));
  280. return ThisAndCallee { this_value, callee };
  281. }
  282. // [[Call]] will handle that in non-strict mode the this value becomes the global object
  283. return ThisAndCallee {
  284. js_undefined(),
  285. callee_reference.is_unresolvable()
  286. ? TRY(m_callee->execute(interpreter, global_object)).release_value()
  287. : TRY(callee_reference.get_value(global_object))
  288. };
  289. }
  290. // 13.3.8.1 Runtime Semantics: ArgumentListEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-argumentlistevaluation
  291. static ThrowCompletionOr<void> argument_list_evaluation(Interpreter& interpreter, GlobalObject& global_object, Vector<CallExpression::Argument> const& arguments, MarkedVector<Value>& list)
  292. {
  293. list.ensure_capacity(arguments.size());
  294. for (auto& argument : arguments) {
  295. auto value = TRY(argument.value->execute(interpreter, global_object)).release_value();
  296. if (argument.is_spread) {
  297. auto result = TRY(get_iterator_values(global_object, value, [&](Value iterator_value) -> Optional<Completion> {
  298. list.append(iterator_value);
  299. return {};
  300. }));
  301. } else {
  302. list.append(value);
  303. }
  304. }
  305. return {};
  306. }
  307. // 13.3.5.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-new-operator-runtime-semantics-evaluation
  308. // 13.3.5.1.1 EvaluateNew ( constructExpr, arguments ), https://tc39.es/ecma262/#sec-evaluatenew
  309. Completion NewExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  310. {
  311. InterpreterNodeScope node_scope { interpreter, *this };
  312. auto& vm = interpreter.vm();
  313. // 1. Let ref be the result of evaluating constructExpr.
  314. // 2. Let constructor be ? GetValue(ref).
  315. auto constructor = TRY(m_callee->execute(interpreter, global_object)).release_value();
  316. // 3. If arguments is empty, let argList be a new empty List.
  317. // 4. Else,
  318. // a. Let argList be ? ArgumentListEvaluation of arguments.
  319. MarkedVector<Value> arg_list(vm.heap());
  320. TRY(argument_list_evaluation(interpreter, global_object, m_arguments, arg_list));
  321. // 5. If IsConstructor(constructor) is false, throw a TypeError exception.
  322. if (!constructor.is_constructor())
  323. return throw_type_error_for_callee(interpreter, global_object, constructor, "constructor"sv);
  324. // 6. Return ? Construct(constructor, argList).
  325. return Value { TRY(construct(global_object, constructor.as_function(), move(arg_list))) };
  326. }
  327. Completion CallExpression::throw_type_error_for_callee(Interpreter& interpreter, GlobalObject& global_object, Value callee_value, StringView call_type) const
  328. {
  329. auto& vm = interpreter.vm();
  330. if (is<Identifier>(*m_callee) || is<MemberExpression>(*m_callee)) {
  331. String expression_string;
  332. if (is<Identifier>(*m_callee)) {
  333. expression_string = static_cast<Identifier const&>(*m_callee).string();
  334. } else {
  335. expression_string = static_cast<MemberExpression const&>(*m_callee).to_string_approximation();
  336. }
  337. return vm.throw_completion<TypeError>(global_object, ErrorType::IsNotAEvaluatedFrom, callee_value.to_string_without_side_effects(), call_type, expression_string);
  338. } else {
  339. return vm.throw_completion<TypeError>(global_object, ErrorType::IsNotA, callee_value.to_string_without_side_effects(), call_type);
  340. }
  341. }
  342. // 13.3.6.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-function-calls-runtime-semantics-evaluation
  343. Completion CallExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  344. {
  345. InterpreterNodeScope node_scope { interpreter, *this };
  346. auto& vm = interpreter.vm();
  347. auto callee_reference = TRY(m_callee->to_reference(interpreter, global_object));
  348. auto [this_value, callee] = TRY(compute_this_and_callee(interpreter, global_object, callee_reference));
  349. VERIFY(!callee.is_empty());
  350. MarkedVector<Value> arg_list(vm.heap());
  351. TRY(argument_list_evaluation(interpreter, global_object, m_arguments, arg_list));
  352. if (!callee.is_function())
  353. return throw_type_error_for_callee(interpreter, global_object, callee, "function"sv);
  354. auto& function = callee.as_function();
  355. if (&function == global_object.eval_function()
  356. && callee_reference.is_environment_reference()
  357. && callee_reference.name().is_string()
  358. && callee_reference.name().as_string() == vm.names.eval.as_string()) {
  359. auto script_value = arg_list.size() == 0 ? js_undefined() : arg_list[0];
  360. return perform_eval(global_object, script_value, vm.in_strict_mode() ? CallerMode::Strict : CallerMode::NonStrict, EvalMode::Direct);
  361. }
  362. return call(global_object, function, this_value, move(arg_list));
  363. }
  364. // 13.3.7.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-super-keyword-runtime-semantics-evaluation
  365. // SuperCall : super Arguments
  366. Completion SuperCall::execute(Interpreter& interpreter, GlobalObject& global_object) const
  367. {
  368. InterpreterNodeScope node_scope { interpreter, *this };
  369. auto& vm = interpreter.vm();
  370. // 1. Let newTarget be GetNewTarget().
  371. auto new_target = vm.get_new_target();
  372. // 2. Assert: Type(newTarget) is Object.
  373. VERIFY(new_target.is_function());
  374. // 3. Let func be GetSuperConstructor().
  375. auto* func = get_super_constructor(interpreter.vm());
  376. // 4. Let argList be ? ArgumentListEvaluation of Arguments.
  377. MarkedVector<Value> arg_list(vm.heap());
  378. TRY(argument_list_evaluation(interpreter, global_object, m_arguments, arg_list));
  379. // 5. If IsConstructor(func) is false, throw a TypeError exception.
  380. if (!func || !Value(func).is_constructor())
  381. return vm.throw_completion<TypeError>(global_object, ErrorType::NotAConstructor, "Super constructor");
  382. // 6. Let result be ? Construct(func, argList, newTarget).
  383. auto* result = TRY(construct(global_object, static_cast<FunctionObject&>(*func), move(arg_list), &new_target.as_function()));
  384. // 7. Let thisER be GetThisEnvironment().
  385. auto& this_er = verify_cast<FunctionEnvironment>(get_this_environment(interpreter.vm()));
  386. // 8. Perform ? thisER.BindThisValue(result).
  387. TRY(this_er.bind_this_value(global_object, result));
  388. // 9. Let F be thisER.[[FunctionObject]].
  389. // 10. Assert: F is an ECMAScript function object.
  390. // NOTE: This is implied by the strong C++ type.
  391. [[maybe_unused]] auto& f = this_er.function_object();
  392. // 11. Perform ? InitializeInstanceElements(result, F).
  393. TRY(vm.initialize_instance_elements(*result, f));
  394. // 12. Return result.
  395. return Value { result };
  396. }
  397. // 15.5.5 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-generator-function-definitions-runtime-semantics-evaluation
  398. Completion YieldExpression::execute(Interpreter&, GlobalObject&) const
  399. {
  400. // This should be transformed to a return.
  401. VERIFY_NOT_REACHED();
  402. }
  403. // 15.8.5 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-async-function-definitions-runtime-semantics-evaluation
  404. Completion AwaitExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  405. {
  406. InterpreterNodeScope node_scope { interpreter, *this };
  407. // 1. Let exprRef be the result of evaluating UnaryExpression.
  408. // 2. Let value be ? GetValue(exprRef).
  409. auto value = TRY(m_argument->execute(interpreter, global_object)).release_value();
  410. // 3. Return ? Await(value).
  411. return await(global_object, value);
  412. }
  413. // 14.10.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-return-statement-runtime-semantics-evaluation
  414. Completion ReturnStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  415. {
  416. InterpreterNodeScope node_scope { interpreter, *this };
  417. // ReturnStatement : return ;
  418. if (!m_argument) {
  419. // 1. Return Completion Record { [[Type]]: return, [[Value]]: undefined, [[Target]]: empty }.
  420. return { Completion::Type::Return, js_undefined(), {} };
  421. }
  422. // ReturnStatement : return Expression ;
  423. // 1. Let exprRef be the result of evaluating Expression.
  424. // 2. Let exprValue be ? GetValue(exprRef).
  425. auto value = TRY(m_argument->execute(interpreter, global_object));
  426. // NOTE: Generators are not supported in the AST interpreter
  427. // 3. If GetGeneratorKind() is async, set exprValue to ? Await(exprValue).
  428. // 4. Return Completion Record { [[Type]]: return, [[Value]]: exprValue, [[Target]]: empty }.
  429. return { Completion::Type::Return, value, {} };
  430. }
  431. // 14.6.2 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-if-statement-runtime-semantics-evaluation
  432. Completion IfStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  433. {
  434. InterpreterNodeScope node_scope { interpreter, *this };
  435. // IfStatement : if ( Expression ) Statement else Statement
  436. // 1. Let exprRef be the result of evaluating Expression.
  437. // 2. Let exprValue be ToBoolean(? GetValue(exprRef)).
  438. auto predicate_result = TRY(m_predicate->execute(interpreter, global_object)).release_value();
  439. // 3. If exprValue is true, then
  440. if (predicate_result.to_boolean()) {
  441. // a. Let stmtCompletion be the result of evaluating the first Statement.
  442. // 5. Return ? UpdateEmpty(stmtCompletion, undefined).
  443. return m_consequent->execute(interpreter, global_object).update_empty(js_undefined());
  444. }
  445. // 4. Else,
  446. if (m_alternate) {
  447. // a. Let stmtCompletion be the result of evaluating the second Statement.
  448. // 5. Return ? UpdateEmpty(stmtCompletion, undefined).
  449. return m_alternate->execute(interpreter, global_object).update_empty(js_undefined());
  450. }
  451. // IfStatement : if ( Expression ) Statement
  452. // 3. If exprValue is false, then
  453. // a. Return undefined.
  454. return js_undefined();
  455. }
  456. // 14.11.2 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-with-statement-runtime-semantics-evaluation
  457. // WithStatement : with ( Expression ) Statement
  458. Completion WithStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  459. {
  460. InterpreterNodeScope node_scope { interpreter, *this };
  461. // 1. Let value be the result of evaluating Expression.
  462. auto value = TRY(m_object->execute(interpreter, global_object)).release_value();
  463. // 2. Let obj be ? ToObject(? GetValue(value)).
  464. auto* object = TRY(value.to_object(global_object));
  465. // 3. Let oldEnv be the running execution context's LexicalEnvironment.
  466. auto* old_environment = interpreter.vm().running_execution_context().lexical_environment;
  467. // 4. Let newEnv be NewObjectEnvironment(obj, true, oldEnv).
  468. auto* new_environment = new_object_environment(*object, true, old_environment);
  469. // 5. Set the running execution context's LexicalEnvironment to newEnv.
  470. interpreter.vm().running_execution_context().lexical_environment = new_environment;
  471. // 6. Let C be the result of evaluating Statement.
  472. auto result = m_body->execute(interpreter, global_object);
  473. // 7. Set the running execution context's LexicalEnvironment to oldEnv.
  474. interpreter.vm().running_execution_context().lexical_environment = old_environment;
  475. // 8. Return ? UpdateEmpty(C, undefined).
  476. return result.update_empty(js_undefined());
  477. }
  478. // 14.7.1.1 LoopContinues ( completion, labelSet ), https://tc39.es/ecma262/#sec-loopcontinues
  479. static bool loop_continues(Completion const& completion, Vector<FlyString> const& label_set)
  480. {
  481. // 1. If completion.[[Type]] is normal, return true.
  482. if (completion.type() == Completion::Type::Normal)
  483. return true;
  484. // 2. If completion.[[Type]] is not continue, return false.
  485. if (completion.type() != Completion::Type::Continue)
  486. return false;
  487. // 3. If completion.[[Target]] is empty, return true.
  488. if (!completion.target().has_value())
  489. return true;
  490. // 4. If completion.[[Target]] is an element of labelSet, return true.
  491. if (label_set.contains_slow(*completion.target()))
  492. return true;
  493. // 5. Return false.
  494. return false;
  495. }
  496. // 14.1.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-statement-semantics-runtime-semantics-evaluation
  497. // BreakableStatement : IterationStatement
  498. Completion WhileStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  499. {
  500. // 1. Let newLabelSet be a new empty List.
  501. // 2. Return ? LabelledEvaluation of this BreakableStatement with argument newLabelSet.
  502. return labelled_evaluation(interpreter, global_object, *this, {});
  503. }
  504. // 14.7.3.2 Runtime Semantics: WhileLoopEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-whileloopevaluation
  505. Completion WhileStatement::loop_evaluation(Interpreter& interpreter, GlobalObject& global_object, Vector<FlyString> const& label_set) const
  506. {
  507. InterpreterNodeScope node_scope { interpreter, *this };
  508. // 1. Let V be undefined.
  509. auto last_value = js_undefined();
  510. // 2. Repeat,
  511. for (;;) {
  512. // a. Let exprRef be the result of evaluating Expression.
  513. // b. Let exprValue be ? GetValue(exprRef).
  514. auto test_result = TRY(m_test->execute(interpreter, global_object)).release_value();
  515. // c. If ToBoolean(exprValue) is false, return V.
  516. if (!test_result.to_boolean())
  517. return last_value;
  518. // d. Let stmtResult be the result of evaluating Statement.
  519. auto body_result = m_body->execute(interpreter, global_object);
  520. // e. If LoopContinues(stmtResult, labelSet) is false, return ? UpdateEmpty(stmtResult, V).
  521. if (!loop_continues(body_result, label_set))
  522. return body_result.update_empty(last_value);
  523. // f. If stmtResult.[[Value]] is not empty, set V to stmtResult.[[Value]].
  524. if (body_result.value().has_value())
  525. last_value = *body_result.value();
  526. }
  527. VERIFY_NOT_REACHED();
  528. }
  529. // 14.1.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-statement-semantics-runtime-semantics-evaluation
  530. // BreakableStatement : IterationStatement
  531. Completion DoWhileStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  532. {
  533. // 1. Let newLabelSet be a new empty List.
  534. // 2. Return ? LabelledEvaluation of this BreakableStatement with argument newLabelSet.
  535. return labelled_evaluation(interpreter, global_object, *this, {});
  536. }
  537. // 14.7.2.2 Runtime Semantics: DoWhileLoopEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-dowhileloopevaluation
  538. Completion DoWhileStatement::loop_evaluation(Interpreter& interpreter, GlobalObject& global_object, Vector<FlyString> const& label_set) const
  539. {
  540. InterpreterNodeScope node_scope { interpreter, *this };
  541. // 1. Let V be undefined.
  542. auto last_value = js_undefined();
  543. // 2. Repeat,
  544. for (;;) {
  545. // a. Let stmtResult be the result of evaluating Statement.
  546. auto body_result = m_body->execute(interpreter, global_object);
  547. // b. If LoopContinues(stmtResult, labelSet) is false, return ? UpdateEmpty(stmtResult, V).
  548. if (!loop_continues(body_result, label_set))
  549. return body_result.update_empty(last_value);
  550. // c. If stmtResult.[[Value]] is not empty, set V to stmtResult.[[Value]].
  551. if (body_result.value().has_value())
  552. last_value = *body_result.value();
  553. // d. Let exprRef be the result of evaluating Expression.
  554. // e. Let exprValue be ? GetValue(exprRef).
  555. auto test_result = TRY(m_test->execute(interpreter, global_object)).release_value();
  556. // f. If ToBoolean(exprValue) is false, return V.
  557. if (!test_result.to_boolean())
  558. return last_value;
  559. }
  560. VERIFY_NOT_REACHED();
  561. }
  562. // 14.1.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-statement-semantics-runtime-semantics-evaluation
  563. // BreakableStatement : IterationStatement
  564. Completion ForStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  565. {
  566. // 1. Let newLabelSet be a new empty List.
  567. // 2. Return ? LabelledEvaluation of this BreakableStatement with argument newLabelSet.
  568. return labelled_evaluation(interpreter, global_object, *this, {});
  569. }
  570. // 14.7.4.2 Runtime Semantics: ForLoopEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-forloopevaluation
  571. Completion ForStatement::loop_evaluation(Interpreter& interpreter, GlobalObject& global_object, Vector<FlyString> const& label_set) const
  572. {
  573. InterpreterNodeScope node_scope { interpreter, *this };
  574. // Note we don't always set a new environment but to use RAII we must do this here.
  575. auto* old_environment = interpreter.lexical_environment();
  576. ScopeGuard restore_old_environment = [&] {
  577. interpreter.vm().running_execution_context().lexical_environment = old_environment;
  578. };
  579. size_t per_iteration_bindings_size = 0;
  580. if (m_init) {
  581. if (is<VariableDeclaration>(*m_init) && static_cast<VariableDeclaration const&>(*m_init).declaration_kind() != DeclarationKind::Var) {
  582. auto* loop_environment = new_declarative_environment(*old_environment);
  583. auto& declaration = static_cast<VariableDeclaration const&>(*m_init);
  584. declaration.for_each_bound_name([&](auto const& name) {
  585. if (declaration.declaration_kind() == DeclarationKind::Const) {
  586. MUST(loop_environment->create_immutable_binding(global_object, name, true));
  587. } else {
  588. MUST(loop_environment->create_mutable_binding(global_object, name, false));
  589. ++per_iteration_bindings_size;
  590. }
  591. });
  592. interpreter.vm().running_execution_context().lexical_environment = loop_environment;
  593. }
  594. (void)TRY(m_init->execute(interpreter, global_object));
  595. }
  596. // 14.7.4.4 CreatePerIterationEnvironment ( perIterationBindings ), https://tc39.es/ecma262/#sec-createperiterationenvironment
  597. // NOTE: Our implementation of this AO is heavily dependent on DeclarativeEnvironment using a Vector with constant indices.
  598. // For performance, we can take advantage of the fact that the declarations of the initialization statement are created
  599. // in the same order each time CreatePerIterationEnvironment is invoked.
  600. auto create_per_iteration_environment = [&]() {
  601. // 1. If perIterationBindings has any elements, then
  602. if (per_iteration_bindings_size == 0)
  603. return;
  604. // a. Let lastIterationEnv be the running execution context's LexicalEnvironment.
  605. auto* last_iteration_env = verify_cast<DeclarativeEnvironment>(interpreter.lexical_environment());
  606. // b. Let outer be lastIterationEnv.[[OuterEnv]].
  607. // c. Assert: outer is not null.
  608. VERIFY(last_iteration_env->outer_environment());
  609. // d. Let thisIterationEnv be NewDeclarativeEnvironment(outer).
  610. auto this_iteration_env = DeclarativeEnvironment::create_for_per_iteration_bindings({}, *last_iteration_env, per_iteration_bindings_size);
  611. // e. For each element bn of perIterationBindings, do
  612. // i. Perform ! thisIterationEnv.CreateMutableBinding(bn, false).
  613. // ii. Let lastValue be ? lastIterationEnv.GetBindingValue(bn, true).
  614. // iii. Perform ! thisIterationEnv.InitializeBinding(bn, lastValue).
  615. //
  616. // NOTE: This is handled by DeclarativeEnvironment::create_for_per_iteration_bindings. Step e.ii indicates it may throw,
  617. // but that is not possible. The potential for throwing was added to accommodate support for do-expressions in the
  618. // initialization statement, but that idea was dropped: https://github.com/tc39/ecma262/issues/299#issuecomment-172950045
  619. // f. Set the running execution context's LexicalEnvironment to thisIterationEnv.
  620. interpreter.vm().running_execution_context().lexical_environment = this_iteration_env;
  621. // 2. Return unused.
  622. };
  623. // 14.7.4.3 ForBodyEvaluation ( test, increment, stmt, perIterationBindings, labelSet ), https://tc39.es/ecma262/#sec-forbodyevaluation
  624. // 1. Let V be undefined.
  625. auto last_value = js_undefined();
  626. // 2. Perform ? CreatePerIterationEnvironment(perIterationBindings).
  627. create_per_iteration_environment();
  628. // 3. Repeat,
  629. while (true) {
  630. // a. If test is not [empty], then
  631. if (m_test) {
  632. // i. Let testRef be the result of evaluating test.
  633. // ii. Let testValue be ? GetValue(testRef).
  634. auto test_value = TRY(m_test->execute(interpreter, global_object)).release_value();
  635. // iii. If ToBoolean(testValue) is false, return V.
  636. if (!test_value.to_boolean())
  637. return last_value;
  638. }
  639. // b. Let result be the result of evaluating stmt.
  640. auto result = m_body->execute(interpreter, global_object);
  641. // c. If LoopContinues(result, labelSet) is false, return ? UpdateEmpty(result, V).
  642. if (!loop_continues(result, label_set))
  643. return result.update_empty(last_value);
  644. // d. If result.[[Value]] is not empty, set V to result.[[Value]].
  645. if (result.value().has_value())
  646. last_value = *result.value();
  647. // e. Perform ? CreatePerIterationEnvironment(perIterationBindings).
  648. create_per_iteration_environment();
  649. // f. If increment is not [empty], then
  650. if (m_update) {
  651. // i. Let incRef be the result of evaluating increment.
  652. // ii. Perform ? GetValue(incRef).
  653. (void)TRY(m_update->execute(interpreter, global_object));
  654. }
  655. }
  656. VERIFY_NOT_REACHED();
  657. }
  658. struct ForInOfHeadState {
  659. explicit ForInOfHeadState(Variant<NonnullRefPtr<ASTNode>, NonnullRefPtr<BindingPattern>> lhs)
  660. {
  661. lhs.visit(
  662. [&](NonnullRefPtr<ASTNode>& ast_node) {
  663. expression_lhs = ast_node.ptr();
  664. },
  665. [&](NonnullRefPtr<BindingPattern>& pattern) {
  666. pattern_lhs = pattern.ptr();
  667. destructuring = true;
  668. lhs_kind = Assignment;
  669. });
  670. }
  671. ASTNode* expression_lhs = nullptr;
  672. BindingPattern* pattern_lhs = nullptr;
  673. enum LhsKind {
  674. Assignment,
  675. VarBinding,
  676. LexicalBinding
  677. };
  678. LhsKind lhs_kind = Assignment;
  679. bool destructuring = false;
  680. Value rhs_value;
  681. // 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
  682. // 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.
  683. ThrowCompletionOr<void> execute_head(Interpreter& interpreter, GlobalObject& global_object, Value next_value) const
  684. {
  685. VERIFY(!next_value.is_empty());
  686. Optional<Reference> lhs_reference;
  687. Environment* iteration_environment = nullptr;
  688. // g. If lhsKind is either assignment or varBinding, then
  689. if (lhs_kind == Assignment || lhs_kind == VarBinding) {
  690. if (!destructuring) {
  691. VERIFY(expression_lhs);
  692. if (is<VariableDeclaration>(*expression_lhs)) {
  693. auto& declaration = static_cast<VariableDeclaration const&>(*expression_lhs);
  694. VERIFY(declaration.declarations().first().target().has<NonnullRefPtr<Identifier>>());
  695. lhs_reference = TRY(declaration.declarations().first().target().get<NonnullRefPtr<Identifier>>()->to_reference(interpreter, global_object));
  696. } else {
  697. VERIFY(is<Identifier>(*expression_lhs) || is<MemberExpression>(*expression_lhs) || is<CallExpression>(*expression_lhs));
  698. auto& expression = static_cast<Expression const&>(*expression_lhs);
  699. lhs_reference = TRY(expression.to_reference(interpreter, global_object));
  700. }
  701. }
  702. }
  703. // h. Else,
  704. else {
  705. VERIFY(expression_lhs && is<VariableDeclaration>(*expression_lhs));
  706. iteration_environment = new_declarative_environment(*interpreter.lexical_environment());
  707. auto& for_declaration = static_cast<VariableDeclaration const&>(*expression_lhs);
  708. for_declaration.for_each_bound_name([&](auto const& name) {
  709. if (for_declaration.declaration_kind() == DeclarationKind::Const)
  710. MUST(iteration_environment->create_immutable_binding(global_object, name, false));
  711. else
  712. MUST(iteration_environment->create_mutable_binding(global_object, name, true));
  713. });
  714. interpreter.vm().running_execution_context().lexical_environment = iteration_environment;
  715. if (!destructuring) {
  716. VERIFY(for_declaration.declarations().first().target().has<NonnullRefPtr<Identifier>>());
  717. lhs_reference = MUST(interpreter.vm().resolve_binding(for_declaration.declarations().first().target().get<NonnullRefPtr<Identifier>>()->string()));
  718. }
  719. }
  720. // i. If destructuring is false, then
  721. if (!destructuring) {
  722. VERIFY(lhs_reference.has_value());
  723. if (lhs_kind == LexicalBinding)
  724. return lhs_reference->initialize_referenced_binding(global_object, next_value);
  725. else
  726. return lhs_reference->put_value(global_object, next_value);
  727. }
  728. // j. Else,
  729. if (lhs_kind == Assignment) {
  730. VERIFY(pattern_lhs);
  731. return interpreter.vm().destructuring_assignment_evaluation(*pattern_lhs, next_value, global_object);
  732. }
  733. VERIFY(expression_lhs && is<VariableDeclaration>(*expression_lhs));
  734. auto& for_declaration = static_cast<VariableDeclaration const&>(*expression_lhs);
  735. auto& binding_pattern = for_declaration.declarations().first().target().get<NonnullRefPtr<BindingPattern>>();
  736. VERIFY(lhs_kind == VarBinding || iteration_environment);
  737. // At this point iteration_environment is undefined if lhs_kind == VarBinding which means this does both
  738. // branch j.ii and j.iii because ForBindingInitialization is just a forwarding call to BindingInitialization.
  739. return interpreter.vm().binding_initialization(binding_pattern, next_value, iteration_environment, global_object);
  740. }
  741. };
  742. // 14.7.5.5 Runtime Semantics: ForInOfLoopEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-forinofloopevaluation
  743. // 14.7.5.6 ForIn/OfHeadEvaluation ( uninitializedBoundNames, expr, iterationKind ), https://tc39.es/ecma262/#sec-runtime-semantics-forinofheadevaluation
  744. // This method combines ForInOfLoopEvaluation and ForIn/OfHeadEvaluation for similar reason as ForIn/OfBodyEvaluation, to prevent code duplication.
  745. // For the same reason we also skip step 6 and 7 of ForIn/OfHeadEvaluation as this is done by the appropriate for loop type.
  746. static ThrowCompletionOr<ForInOfHeadState> for_in_of_head_execute(Interpreter& interpreter, GlobalObject& global_object, Variant<NonnullRefPtr<ASTNode>, NonnullRefPtr<BindingPattern>> lhs, Expression const& rhs)
  747. {
  748. ForInOfHeadState state(lhs);
  749. if (auto* ast_ptr = lhs.get_pointer<NonnullRefPtr<ASTNode>>(); ast_ptr && is<VariableDeclaration>(*(*ast_ptr))) {
  750. // Runtime Semantics: ForInOfLoopEvaluation, for any of:
  751. // ForInOfStatement : for ( var ForBinding in Expression ) Statement
  752. // ForInOfStatement : for ( ForDeclaration in Expression ) Statement
  753. // ForInOfStatement : for ( var ForBinding of AssignmentExpression ) Statement
  754. // ForInOfStatement : for ( ForDeclaration of AssignmentExpression ) Statement
  755. // 14.7.5.6 ForIn/OfHeadEvaluation ( uninitializedBoundNames, expr, iterationKind ), https://tc39.es/ecma262/#sec-runtime-semantics-forinofheadevaluation
  756. Environment* new_environment = nullptr;
  757. auto& variable_declaration = static_cast<VariableDeclaration const&>(*(*ast_ptr));
  758. VERIFY(variable_declaration.declarations().size() == 1);
  759. state.destructuring = variable_declaration.declarations().first().target().has<NonnullRefPtr<BindingPattern>>();
  760. if (variable_declaration.declaration_kind() == DeclarationKind::Var) {
  761. state.lhs_kind = ForInOfHeadState::VarBinding;
  762. auto& variable = variable_declaration.declarations().first();
  763. // B.3.5 Initializers in ForIn Statement Heads, https://tc39.es/ecma262/#sec-initializers-in-forin-statement-heads
  764. if (variable.init()) {
  765. VERIFY(variable.target().has<NonnullRefPtr<Identifier>>());
  766. auto& binding_id = variable.target().get<NonnullRefPtr<Identifier>>()->string();
  767. auto reference = TRY(interpreter.vm().resolve_binding(binding_id));
  768. auto result = TRY(interpreter.vm().named_evaluation_if_anonymous_function(global_object, *variable.init(), binding_id));
  769. TRY(reference.put_value(global_object, result));
  770. }
  771. } else {
  772. state.lhs_kind = ForInOfHeadState::LexicalBinding;
  773. new_environment = new_declarative_environment(*interpreter.lexical_environment());
  774. variable_declaration.for_each_bound_name([&](auto const& name) {
  775. MUST(new_environment->create_mutable_binding(global_object, name, false));
  776. });
  777. }
  778. if (new_environment) {
  779. // 2.d Set the running execution context's LexicalEnvironment to newEnv.
  780. TemporaryChange<Environment*> scope_change(interpreter.vm().running_execution_context().lexical_environment, new_environment);
  781. // 3. Let exprRef be the result of evaluating expr.
  782. // 5. Let exprValue be ? GetValue(exprRef).
  783. state.rhs_value = TRY(rhs.execute(interpreter, global_object)).release_value();
  784. // Note that since a reference stores its environment it doesn't matter we only reset
  785. // this after step 5. (Also we have no way of separating these steps at this point)
  786. // 4. Set the running execution context's LexicalEnvironment to oldEnv.
  787. } else {
  788. // 3. Let exprRef be the result of evaluating expr.
  789. // 5. Let exprValue be ? GetValue(exprRef).
  790. state.rhs_value = TRY(rhs.execute(interpreter, global_object)).release_value();
  791. }
  792. return state;
  793. }
  794. // Runtime Semantics: ForInOfLoopEvaluation, for any of:
  795. // ForInOfStatement : for ( LeftHandSideExpression in Expression ) Statement
  796. // ForInOfStatement : for ( LeftHandSideExpression of AssignmentExpression ) Statement
  797. // 14.7.5.6 ForIn/OfHeadEvaluation ( uninitializedBoundNames, expr, iterationKind ), https://tc39.es/ecma262/#sec-runtime-semantics-forinofheadevaluation
  798. // We can skip step 1, 2 and 4 here (on top of already skipping step 6 and 7).
  799. // 3. Let exprRef be the result of evaluating expr.
  800. // 5. Let exprValue be ? GetValue(exprRef).
  801. state.rhs_value = TRY(rhs.execute(interpreter, global_object)).release_value();
  802. return state;
  803. }
  804. // 14.1.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-statement-semantics-runtime-semantics-evaluation
  805. // BreakableStatement : IterationStatement
  806. Completion ForInStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  807. {
  808. // 1. Let newLabelSet be a new empty List.
  809. // 2. Return ? LabelledEvaluation of this BreakableStatement with argument newLabelSet.
  810. return labelled_evaluation(interpreter, global_object, *this, {});
  811. }
  812. // 14.7.5.5 Runtime Semantics: ForInOfLoopEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-forinofloopevaluation
  813. Completion ForInStatement::loop_evaluation(Interpreter& interpreter, GlobalObject& global_object, Vector<FlyString> const& label_set) const
  814. {
  815. InterpreterNodeScope node_scope { interpreter, *this };
  816. auto for_in_head_state = TRY(for_in_of_head_execute(interpreter, global_object, m_lhs, *m_rhs));
  817. auto rhs_result = for_in_head_state.rhs_value;
  818. // 14.7.5.6 ForIn/OfHeadEvaluation ( uninitializedBoundNames, expr, iterationKind ), https://tc39.es/ecma262/#sec-runtime-semantics-forinofheadevaluation
  819. // a. If exprValue is undefined or null, then
  820. if (rhs_result.is_nullish()) {
  821. // i. Return Completion Record { [[Type]]: break, [[Value]]: empty, [[Target]]: empty }.
  822. return { Completion::Type::Break, {}, {} };
  823. }
  824. // b. Let obj be ! ToObject(exprValue).
  825. auto* object = MUST(rhs_result.to_object(global_object));
  826. // 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
  827. // 2. Let oldEnv be the running execution context's LexicalEnvironment.
  828. Environment* old_environment = interpreter.lexical_environment();
  829. auto restore_scope = ScopeGuard([&] {
  830. interpreter.vm().running_execution_context().lexical_environment = old_environment;
  831. });
  832. // 3. Let V be undefined.
  833. auto last_value = js_undefined();
  834. auto result = object->enumerate_object_properties([&](auto value) -> Optional<Completion> {
  835. TRY(for_in_head_state.execute_head(interpreter, global_object, value));
  836. // l. Let result be the result of evaluating stmt.
  837. auto result = m_body->execute(interpreter, global_object);
  838. // m. Set the running execution context's LexicalEnvironment to oldEnv.
  839. interpreter.vm().running_execution_context().lexical_environment = old_environment;
  840. // n. If LoopContinues(result, labelSet) is false, then
  841. if (!loop_continues(result, label_set)) {
  842. // 1. Return UpdateEmpty(result, V).
  843. return result.update_empty(last_value);
  844. }
  845. // o. If result.[[Value]] is not empty, set V to result.[[Value]].
  846. if (result.value().has_value())
  847. last_value = *result.value();
  848. return {};
  849. });
  850. return result.value_or(last_value);
  851. }
  852. // 14.1.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-statement-semantics-runtime-semantics-evaluation
  853. // BreakableStatement : IterationStatement
  854. Completion ForOfStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  855. {
  856. // 1. Let newLabelSet be a new empty List.
  857. // 2. Return ? LabelledEvaluation of this BreakableStatement with argument newLabelSet.
  858. return labelled_evaluation(interpreter, global_object, *this, {});
  859. }
  860. // 14.7.5.5 Runtime Semantics: ForInOfLoopEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-forinofloopevaluation
  861. Completion ForOfStatement::loop_evaluation(Interpreter& interpreter, GlobalObject& global_object, Vector<FlyString> const& label_set) const
  862. {
  863. InterpreterNodeScope node_scope { interpreter, *this };
  864. auto for_of_head_state = TRY(for_in_of_head_execute(interpreter, global_object, m_lhs, m_rhs));
  865. auto rhs_result = for_of_head_state.rhs_value;
  866. // 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
  867. // We use get_iterator_values which behaves like ForIn/OfBodyEvaluation with iteratorKind iterate.
  868. // 2. Let oldEnv be the running execution context's LexicalEnvironment.
  869. Environment* old_environment = interpreter.lexical_environment();
  870. auto restore_scope = ScopeGuard([&] {
  871. interpreter.vm().running_execution_context().lexical_environment = old_environment;
  872. });
  873. // 3. Let V be undefined.
  874. auto last_value = js_undefined();
  875. Optional<Completion> status;
  876. (void)TRY(get_iterator_values(global_object, rhs_result, [&](Value value) -> Optional<Completion> {
  877. TRY(for_of_head_state.execute_head(interpreter, global_object, value));
  878. // l. Let result be the result of evaluating stmt.
  879. auto result = m_body->execute(interpreter, global_object);
  880. // m. Set the running execution context's LexicalEnvironment to oldEnv.
  881. interpreter.vm().running_execution_context().lexical_environment = old_environment;
  882. // n. If LoopContinues(result, labelSet) is false, then
  883. if (!loop_continues(result, label_set)) {
  884. // 2. Set status to UpdateEmpty(result, V).
  885. status = result.update_empty(last_value);
  886. // 4. Return ? IteratorClose(iteratorRecord, status).
  887. // NOTE: This is done by returning a completion from the callback.
  888. return status;
  889. }
  890. // o. If result.[[Value]] is not empty, set V to result.[[Value]].
  891. if (result.value().has_value())
  892. last_value = *result.value();
  893. return {};
  894. }));
  895. // Return `status` set during step n.2. in the callback, or...
  896. // e. If done is true, return V.
  897. return status.value_or(last_value);
  898. }
  899. // 14.1.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-statement-semantics-runtime-semantics-evaluation
  900. // BreakableStatement : IterationStatement
  901. Completion ForAwaitOfStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  902. {
  903. // 1. Let newLabelSet be a new empty List.
  904. // 2. Return ? LabelledEvaluation of this BreakableStatement with argument newLabelSet.
  905. return labelled_evaluation(interpreter, global_object, *this, {});
  906. }
  907. // 14.7.5.5 Runtime Semantics: ForInOfLoopEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-forinofloopevaluation
  908. Completion ForAwaitOfStatement::loop_evaluation(Interpreter& interpreter, GlobalObject& global_object, Vector<FlyString> const& label_set) const
  909. {
  910. InterpreterNodeScope node_scope { interpreter, *this };
  911. // 14.7.5.6 ForIn/OfHeadEvaluation ( uninitializedBoundNames, expr, iterationKind ), https://tc39.es/ecma262/#sec-runtime-semantics-forinofheadevaluation
  912. // Note: Performs only steps 1 through 5.
  913. auto for_of_head_state = TRY(for_in_of_head_execute(interpreter, global_object, m_lhs, m_rhs));
  914. auto rhs_result = for_of_head_state.rhs_value;
  915. // NOTE: Perform step 7 from ForIn/OfHeadEvaluation. And since this is always async we only have to do step 7.d.
  916. // d. Return ? GetIterator(exprValue, iteratorHint).
  917. auto iterator = TRY(get_iterator(global_object, rhs_result, IteratorHint::Async));
  918. auto& vm = interpreter.vm();
  919. // 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
  920. // NOTE: Here iteratorKind is always async.
  921. // 2. Let oldEnv be the running execution context's LexicalEnvironment.
  922. Environment* old_environment = interpreter.lexical_environment();
  923. auto restore_scope = ScopeGuard([&] {
  924. interpreter.vm().running_execution_context().lexical_environment = old_environment;
  925. });
  926. // 3. Let V be undefined.
  927. auto last_value = js_undefined();
  928. // NOTE: Step 4 and 5 are just extracting properties from the head which is done already in for_in_of_head_execute.
  929. // And these are only used in step 6.g through 6.k which is done with for_of_head_state.execute_head.
  930. // 6. Repeat,
  931. while (true) {
  932. // a. Let nextResult be ? Call(iteratorRecord.[[NextMethod]], iteratorRecord.[[Iterator]]).
  933. auto next_result = TRY(call(global_object, iterator.next_method, iterator.iterator));
  934. // b. If iteratorKind is async, set nextResult to ? Await(nextResult).
  935. next_result = TRY(await(global_object, next_result));
  936. // c. If Type(nextResult) is not Object, throw a TypeError exception.
  937. if (!next_result.is_object())
  938. return vm.throw_completion<TypeError>(global_object, ErrorType::IterableNextBadReturn);
  939. // d. Let done be ? IteratorComplete(nextResult).
  940. auto done = TRY(iterator_complete(global_object, next_result.as_object()));
  941. // e. If done is true, return V.
  942. if (done)
  943. return last_value;
  944. // f. Let nextValue be ? IteratorValue(nextResult).
  945. auto next_value = TRY(iterator_value(global_object, next_result.as_object()));
  946. // NOTE: This performs steps g. through to k.
  947. TRY(for_of_head_state.execute_head(interpreter, global_object, next_value));
  948. // l. Let result be the result of evaluating stmt.
  949. auto result = m_body->execute(interpreter, global_object);
  950. // m. Set the running execution context's LexicalEnvironment to oldEnv.
  951. interpreter.vm().running_execution_context().lexical_environment = old_environment;
  952. // n. If LoopContinues(result, labelSet) is false, then
  953. if (!loop_continues(result, label_set)) {
  954. // 2. Set status to UpdateEmpty(result, V).
  955. auto status = result.update_empty(last_value);
  956. // 3. If iteratorKind is async, return ? AsyncIteratorClose(iteratorRecord, status).
  957. return async_iterator_close(global_object, iterator, move(status));
  958. }
  959. // o. If result.[[Value]] is not empty, set V to result.[[Value]].
  960. if (result.value().has_value())
  961. last_value = *result.value();
  962. }
  963. VERIFY_NOT_REACHED();
  964. }
  965. // 13.6.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-exp-operator-runtime-semantics-evaluation
  966. // 13.7.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-multiplicative-operators-runtime-semantics-evaluation
  967. // 13.8.1.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-addition-operator-plus-runtime-semantics-evaluation
  968. // 13.8.2.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-subtraction-operator-minus-runtime-semantics-evaluation
  969. // 13.9.1.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-left-shift-operator-runtime-semantics-evaluation
  970. // 13.9.2.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-signed-right-shift-operator-runtime-semantics-evaluation
  971. // 13.9.3.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-unsigned-right-shift-operator-runtime-semantics-evaluation
  972. // 13.10.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-relational-operators-runtime-semantics-evaluation
  973. // 13.11.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-equality-operators-runtime-semantics-evaluation
  974. Completion BinaryExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  975. {
  976. InterpreterNodeScope node_scope { interpreter, *this };
  977. // Special case in which we cannot execute the lhs. RelationalExpression : PrivateIdentifier in ShiftExpression
  978. // RelationalExpression : PrivateIdentifier in ShiftExpression, https://tc39.es/ecma262/#sec-relational-operators-runtime-semantics-evaluation
  979. if (m_op == BinaryOp::In && is<PrivateIdentifier>(*m_lhs)) {
  980. auto& private_identifier = static_cast<PrivateIdentifier const&>(*m_lhs).string();
  981. auto rhs_result = TRY(m_rhs->execute(interpreter, global_object)).release_value();
  982. if (!rhs_result.is_object())
  983. return interpreter.vm().throw_completion<TypeError>(global_object, ErrorType::InOperatorWithObject);
  984. auto* private_environment = interpreter.vm().running_execution_context().private_environment;
  985. VERIFY(private_environment);
  986. auto private_name = private_environment->resolve_private_identifier(private_identifier);
  987. return Value(rhs_result.as_object().private_element_find(private_name) != nullptr);
  988. }
  989. auto lhs_result = TRY(m_lhs->execute(interpreter, global_object)).release_value();
  990. auto rhs_result = TRY(m_rhs->execute(interpreter, global_object)).release_value();
  991. switch (m_op) {
  992. case BinaryOp::Addition:
  993. return TRY(add(global_object, lhs_result, rhs_result));
  994. case BinaryOp::Subtraction:
  995. return TRY(sub(global_object, lhs_result, rhs_result));
  996. case BinaryOp::Multiplication:
  997. return TRY(mul(global_object, lhs_result, rhs_result));
  998. case BinaryOp::Division:
  999. return TRY(div(global_object, lhs_result, rhs_result));
  1000. case BinaryOp::Modulo:
  1001. return TRY(mod(global_object, lhs_result, rhs_result));
  1002. case BinaryOp::Exponentiation:
  1003. return TRY(exp(global_object, lhs_result, rhs_result));
  1004. case BinaryOp::StrictlyEquals:
  1005. return Value(is_strictly_equal(lhs_result, rhs_result));
  1006. case BinaryOp::StrictlyInequals:
  1007. return Value(!is_strictly_equal(lhs_result, rhs_result));
  1008. case BinaryOp::LooselyEquals:
  1009. return Value(TRY(is_loosely_equal(global_object, lhs_result, rhs_result)));
  1010. case BinaryOp::LooselyInequals:
  1011. return Value(!TRY(is_loosely_equal(global_object, lhs_result, rhs_result)));
  1012. case BinaryOp::GreaterThan:
  1013. return TRY(greater_than(global_object, lhs_result, rhs_result));
  1014. case BinaryOp::GreaterThanEquals:
  1015. return TRY(greater_than_equals(global_object, lhs_result, rhs_result));
  1016. case BinaryOp::LessThan:
  1017. return TRY(less_than(global_object, lhs_result, rhs_result));
  1018. case BinaryOp::LessThanEquals:
  1019. return TRY(less_than_equals(global_object, lhs_result, rhs_result));
  1020. case BinaryOp::BitwiseAnd:
  1021. return TRY(bitwise_and(global_object, lhs_result, rhs_result));
  1022. case BinaryOp::BitwiseOr:
  1023. return TRY(bitwise_or(global_object, lhs_result, rhs_result));
  1024. case BinaryOp::BitwiseXor:
  1025. return TRY(bitwise_xor(global_object, lhs_result, rhs_result));
  1026. case BinaryOp::LeftShift:
  1027. return TRY(left_shift(global_object, lhs_result, rhs_result));
  1028. case BinaryOp::RightShift:
  1029. return TRY(right_shift(global_object, lhs_result, rhs_result));
  1030. case BinaryOp::UnsignedRightShift:
  1031. return TRY(unsigned_right_shift(global_object, lhs_result, rhs_result));
  1032. case BinaryOp::In:
  1033. return TRY(in(global_object, lhs_result, rhs_result));
  1034. case BinaryOp::InstanceOf:
  1035. return TRY(instance_of(global_object, lhs_result, rhs_result));
  1036. }
  1037. VERIFY_NOT_REACHED();
  1038. }
  1039. // 13.13.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-binary-logical-operators-runtime-semantics-evaluation
  1040. Completion LogicalExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  1041. {
  1042. InterpreterNodeScope node_scope { interpreter, *this };
  1043. // 1. Let lref be the result of evaluating <Expression>.
  1044. // 2. Let lval be ? GetValue(lref).
  1045. auto lhs_result = TRY(m_lhs->execute(interpreter, global_object)).release_value();
  1046. switch (m_op) {
  1047. // LogicalANDExpression : LogicalANDExpression && BitwiseORExpression
  1048. case LogicalOp::And:
  1049. // 3. Let lbool be ToBoolean(lval).
  1050. // 4. If lbool is false, return lval.
  1051. if (!lhs_result.to_boolean())
  1052. return lhs_result;
  1053. // 5. Let rref be the result of evaluating BitwiseORExpression.
  1054. // 6. Return ? GetValue(rref).
  1055. return m_rhs->execute(interpreter, global_object);
  1056. // LogicalORExpression : LogicalORExpression || LogicalANDExpression
  1057. case LogicalOp::Or:
  1058. // 3. Let lbool be ToBoolean(lval).
  1059. // 4. If lbool is true, return lval.
  1060. if (lhs_result.to_boolean())
  1061. return lhs_result;
  1062. // 5. Let rref be the result of evaluating LogicalANDExpression.
  1063. // 6. Return ? GetValue(rref).
  1064. return m_rhs->execute(interpreter, global_object);
  1065. // CoalesceExpression : CoalesceExpressionHead ?? BitwiseORExpression
  1066. case LogicalOp::NullishCoalescing:
  1067. // 3. If lval is undefined or null, then
  1068. if (lhs_result.is_nullish()) {
  1069. // a. Let rref be the result of evaluating BitwiseORExpression.
  1070. // b. Return ? GetValue(rref).
  1071. return m_rhs->execute(interpreter, global_object);
  1072. }
  1073. // 4. Otherwise, return lval.
  1074. return lhs_result;
  1075. }
  1076. VERIFY_NOT_REACHED();
  1077. }
  1078. ThrowCompletionOr<Reference> Expression::to_reference(Interpreter&, GlobalObject&) const
  1079. {
  1080. return Reference {};
  1081. }
  1082. ThrowCompletionOr<Reference> Identifier::to_reference(Interpreter& interpreter, GlobalObject&) const
  1083. {
  1084. if (m_cached_environment_coordinate.has_value()) {
  1085. auto* environment = interpreter.vm().running_execution_context().lexical_environment;
  1086. for (size_t i = 0; i < m_cached_environment_coordinate->hops; ++i)
  1087. environment = environment->outer_environment();
  1088. VERIFY(environment);
  1089. VERIFY(environment->is_declarative_environment());
  1090. if (!environment->is_permanently_screwed_by_eval()) {
  1091. return Reference { *environment, string(), interpreter.vm().in_strict_mode(), m_cached_environment_coordinate };
  1092. }
  1093. m_cached_environment_coordinate = {};
  1094. }
  1095. auto reference = TRY(interpreter.vm().resolve_binding(string()));
  1096. if (reference.environment_coordinate().has_value())
  1097. m_cached_environment_coordinate = reference.environment_coordinate();
  1098. return reference;
  1099. }
  1100. ThrowCompletionOr<Reference> MemberExpression::to_reference(Interpreter& interpreter, GlobalObject& global_object) const
  1101. {
  1102. // 13.3.7.1 Runtime Semantics: Evaluation
  1103. // SuperProperty : super [ Expression ]
  1104. // SuperProperty : super . IdentifierName
  1105. // https://tc39.es/ecma262/#sec-super-keyword-runtime-semantics-evaluation
  1106. if (is<SuperExpression>(object())) {
  1107. // 1. Let env be GetThisEnvironment().
  1108. auto& environment = get_this_environment(interpreter.vm());
  1109. // 2. Let actualThis be ? env.GetThisBinding().
  1110. auto actual_this = TRY(environment.get_this_binding(global_object));
  1111. PropertyKey property_key;
  1112. if (is_computed()) {
  1113. // SuperProperty : super [ Expression ]
  1114. // 3. Let propertyNameReference be the result of evaluating Expression.
  1115. // 4. Let propertyNameValue be ? GetValue(propertyNameReference).
  1116. auto property_name_value = TRY(m_property->execute(interpreter, global_object)).release_value();
  1117. // 5. Let propertyKey be ? ToPropertyKey(propertyNameValue).
  1118. property_key = TRY(property_name_value.to_property_key(global_object));
  1119. } else {
  1120. // SuperProperty : super . IdentifierName
  1121. // 3. Let propertyKey be StringValue of IdentifierName.
  1122. VERIFY(is<Identifier>(property()));
  1123. property_key = static_cast<Identifier const&>(property()).string();
  1124. }
  1125. // 6. If the source text matched by this SuperProperty is strict mode code, let strict be true; else let strict be false.
  1126. bool strict = interpreter.vm().in_strict_mode();
  1127. // 7. Return ? MakeSuperPropertyReference(actualThis, propertyKey, strict).
  1128. return TRY(make_super_property_reference(global_object, actual_this, property_key, strict));
  1129. }
  1130. auto base_reference = TRY(m_object->to_reference(interpreter, global_object));
  1131. Value base_value;
  1132. if (base_reference.is_valid_reference())
  1133. base_value = TRY(base_reference.get_value(global_object));
  1134. else
  1135. base_value = TRY(m_object->execute(interpreter, global_object)).release_value();
  1136. VERIFY(!base_value.is_empty());
  1137. // From here on equivalent to
  1138. // 13.3.4 EvaluatePropertyAccessWithIdentifierKey ( baseValue, identifierName, strict ), https://tc39.es/ecma262/#sec-evaluate-property-access-with-identifier-key
  1139. PropertyKey property_key;
  1140. if (is_computed()) {
  1141. // Weird order which I can't quite find from the specs.
  1142. auto value = TRY(m_property->execute(interpreter, global_object)).release_value();
  1143. VERIFY(!value.is_empty());
  1144. TRY(require_object_coercible(global_object, base_value));
  1145. property_key = TRY(PropertyKey::from_value(global_object, value));
  1146. } else if (is<PrivateIdentifier>(*m_property)) {
  1147. auto& private_identifier = static_cast<PrivateIdentifier const&>(*m_property);
  1148. return make_private_reference(interpreter.vm(), base_value, private_identifier.string());
  1149. } else {
  1150. property_key = verify_cast<Identifier>(*m_property).string();
  1151. TRY(require_object_coercible(global_object, base_value));
  1152. }
  1153. if (!property_key.is_valid())
  1154. return Reference {};
  1155. auto strict = interpreter.vm().in_strict_mode();
  1156. return Reference { base_value, move(property_key), {}, strict };
  1157. }
  1158. // 13.5.1.2 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-delete-operator-runtime-semantics-evaluation
  1159. // 13.5.2.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-void-operator-runtime-semantics-evaluation
  1160. // 13.5.3.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-typeof-operator-runtime-semantics-evaluation
  1161. // 13.5.4.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-unary-plus-operator-runtime-semantics-evaluation
  1162. // 13.5.5.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-unary-minus-operator-runtime-semantics-evaluation
  1163. // 13.5.6.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-bitwise-not-operator-runtime-semantics-evaluation
  1164. // 13.5.7.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-logical-not-operator-runtime-semantics-evaluation
  1165. Completion UnaryExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  1166. {
  1167. InterpreterNodeScope node_scope { interpreter, *this };
  1168. auto& vm = interpreter.vm();
  1169. if (m_op == UnaryOp::Delete) {
  1170. auto reference = TRY(m_lhs->to_reference(interpreter, global_object));
  1171. return Value(TRY(reference.delete_(global_object)));
  1172. }
  1173. Value lhs_result;
  1174. if (m_op == UnaryOp::Typeof && is<Identifier>(*m_lhs)) {
  1175. auto reference = TRY(m_lhs->to_reference(interpreter, global_object));
  1176. if (reference.is_unresolvable())
  1177. lhs_result = js_undefined();
  1178. else
  1179. lhs_result = TRY(reference.get_value(global_object));
  1180. VERIFY(!lhs_result.is_empty());
  1181. } else {
  1182. // 1. Let expr be the result of evaluating UnaryExpression.
  1183. lhs_result = TRY(m_lhs->execute(interpreter, global_object)).release_value();
  1184. }
  1185. switch (m_op) {
  1186. case UnaryOp::BitwiseNot:
  1187. return TRY(bitwise_not(global_object, lhs_result));
  1188. case UnaryOp::Not:
  1189. return Value(!lhs_result.to_boolean());
  1190. case UnaryOp::Plus:
  1191. return TRY(unary_plus(global_object, lhs_result));
  1192. case UnaryOp::Minus:
  1193. return TRY(unary_minus(global_object, lhs_result));
  1194. case UnaryOp::Typeof:
  1195. return Value { js_string(vm, lhs_result.typeof()) };
  1196. case UnaryOp::Void:
  1197. return js_undefined();
  1198. case UnaryOp::Delete:
  1199. VERIFY_NOT_REACHED();
  1200. }
  1201. VERIFY_NOT_REACHED();
  1202. }
  1203. Completion SuperExpression::execute(Interpreter&, GlobalObject&) const
  1204. {
  1205. // The semantics for SuperExpression are handled in CallExpression and SuperCall.
  1206. VERIFY_NOT_REACHED();
  1207. }
  1208. Completion ClassElement::execute(Interpreter&, GlobalObject&) const
  1209. {
  1210. // Note: The semantics of class element are handled in class_element_evaluation
  1211. VERIFY_NOT_REACHED();
  1212. }
  1213. static ThrowCompletionOr<ClassElementName> class_key_to_property_name(Interpreter& interpreter, GlobalObject& global_object, Expression const& key)
  1214. {
  1215. if (is<PrivateIdentifier>(key)) {
  1216. auto& private_identifier = static_cast<PrivateIdentifier const&>(key);
  1217. auto* private_environment = interpreter.vm().running_execution_context().private_environment;
  1218. VERIFY(private_environment);
  1219. return ClassElementName { private_environment->resolve_private_identifier(private_identifier.string()) };
  1220. }
  1221. auto prop_key = TRY(key.execute(interpreter, global_object)).release_value();
  1222. if (prop_key.is_object())
  1223. prop_key = TRY(prop_key.to_primitive(global_object, Value::PreferredType::String));
  1224. auto property_key = TRY(PropertyKey::from_value(global_object, prop_key));
  1225. return ClassElementName { property_key };
  1226. }
  1227. // 15.4.5 Runtime Semantics: MethodDefinitionEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-methoddefinitionevaluation
  1228. ThrowCompletionOr<ClassElement::ClassValue> ClassMethod::class_element_evaluation(Interpreter& interpreter, GlobalObject& global_object, Object& target) const
  1229. {
  1230. auto property_key_or_private_name = TRY(class_key_to_property_name(interpreter, global_object, *m_key));
  1231. auto method_value = TRY(m_function->execute(interpreter, global_object)).release_value();
  1232. auto function_handle = make_handle(&method_value.as_function());
  1233. auto& method_function = static_cast<ECMAScriptFunctionObject&>(method_value.as_function());
  1234. method_function.make_method(target);
  1235. auto set_function_name = [&](String prefix = "") {
  1236. auto name = property_key_or_private_name.visit(
  1237. [&](PropertyKey const& property_key) -> String {
  1238. if (property_key.is_symbol()) {
  1239. auto description = property_key.as_symbol()->description();
  1240. if (description.is_empty())
  1241. return "";
  1242. return String::formatted("[{}]", description);
  1243. } else {
  1244. return property_key.to_string();
  1245. }
  1246. },
  1247. [&](PrivateName const& private_name) -> String {
  1248. return private_name.description;
  1249. });
  1250. update_function_name(method_value, String::formatted("{}{}{}", prefix, prefix.is_empty() ? "" : " ", name));
  1251. };
  1252. if (property_key_or_private_name.has<PropertyKey>()) {
  1253. auto& property_key = property_key_or_private_name.get<PropertyKey>();
  1254. switch (kind()) {
  1255. case ClassMethod::Kind::Method:
  1256. set_function_name();
  1257. TRY(target.define_property_or_throw(property_key, { .value = method_value, .writable = true, .enumerable = false, .configurable = true }));
  1258. break;
  1259. case ClassMethod::Kind::Getter:
  1260. set_function_name("get");
  1261. TRY(target.define_property_or_throw(property_key, { .get = &method_function, .enumerable = true, .configurable = true }));
  1262. break;
  1263. case ClassMethod::Kind::Setter:
  1264. set_function_name("set");
  1265. TRY(target.define_property_or_throw(property_key, { .set = &method_function, .enumerable = true, .configurable = true }));
  1266. break;
  1267. default:
  1268. VERIFY_NOT_REACHED();
  1269. }
  1270. return ClassValue { normal_completion({}) };
  1271. } else {
  1272. auto& private_name = property_key_or_private_name.get<PrivateName>();
  1273. switch (kind()) {
  1274. case Kind::Method:
  1275. set_function_name();
  1276. return ClassValue { PrivateElement { private_name, PrivateElement::Kind::Method, method_value } };
  1277. case Kind::Getter:
  1278. set_function_name("get");
  1279. return ClassValue { PrivateElement { private_name, PrivateElement::Kind::Accessor, Accessor::create(interpreter.vm(), &method_function, nullptr) } };
  1280. case Kind::Setter:
  1281. set_function_name("set");
  1282. return ClassValue { PrivateElement { private_name, PrivateElement::Kind::Accessor, Accessor::create(interpreter.vm(), nullptr, &method_function) } };
  1283. default:
  1284. VERIFY_NOT_REACHED();
  1285. }
  1286. }
  1287. }
  1288. // We use this class to mimic Initializer : = AssignmentExpression of
  1289. // 10.2.1.3 Runtime Semantics: EvaluateBody, https://tc39.es/ecma262/#sec-runtime-semantics-evaluatebody
  1290. class ClassFieldInitializerStatement : public Statement {
  1291. public:
  1292. ClassFieldInitializerStatement(SourceRange source_range, NonnullRefPtr<Expression> expression, FlyString field_name)
  1293. : Statement(source_range)
  1294. , m_expression(move(expression))
  1295. , m_class_field_identifier_name(move(field_name))
  1296. {
  1297. }
  1298. Completion execute(Interpreter& interpreter, GlobalObject& global_object) const override
  1299. {
  1300. // 1. Assert: argumentsList is empty.
  1301. VERIFY(interpreter.vm().argument_count() == 0);
  1302. // 2. Assert: functionObject.[[ClassFieldInitializerName]] is not empty.
  1303. VERIFY(!m_class_field_identifier_name.is_empty());
  1304. // 3. If IsAnonymousFunctionDefinition(AssignmentExpression) is true, then
  1305. // a. Let value be ? NamedEvaluation of Initializer with argument functionObject.[[ClassFieldInitializerName]].
  1306. // 4. Else,
  1307. // a. Let rhs be the result of evaluating AssignmentExpression.
  1308. // b. Let value be ? GetValue(rhs).
  1309. auto value = TRY(interpreter.vm().named_evaluation_if_anonymous_function(global_object, m_expression, m_class_field_identifier_name));
  1310. // 5. Return Completion Record { [[Type]]: return, [[Value]]: value, [[Target]]: empty }.
  1311. return { Completion::Type::Return, value, {} };
  1312. }
  1313. void dump(int) const override
  1314. {
  1315. // This should not be dumped as it is never part of an actual AST.
  1316. VERIFY_NOT_REACHED();
  1317. }
  1318. private:
  1319. NonnullRefPtr<Expression> m_expression;
  1320. FlyString m_class_field_identifier_name; // [[ClassFieldIdentifierName]]
  1321. };
  1322. // 15.7.10 Runtime Semantics: ClassFieldDefinitionEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-classfielddefinitionevaluation
  1323. ThrowCompletionOr<ClassElement::ClassValue> ClassField::class_element_evaluation(Interpreter& interpreter, GlobalObject& global_object, Object& target) const
  1324. {
  1325. auto property_key_or_private_name = TRY(class_key_to_property_name(interpreter, global_object, *m_key));
  1326. Handle<ECMAScriptFunctionObject> initializer {};
  1327. if (m_initializer) {
  1328. auto copy_initializer = m_initializer;
  1329. auto name = property_key_or_private_name.visit(
  1330. [&](PropertyKey const& property_key) -> String {
  1331. return property_key.is_number() ? property_key.to_string() : property_key.to_string_or_symbol().to_display_string();
  1332. },
  1333. [&](PrivateName const& private_name) -> String {
  1334. return private_name.description;
  1335. });
  1336. // FIXME: A potential optimization is not creating the functions here since these are never directly accessible.
  1337. auto function_code = create_ast_node<ClassFieldInitializerStatement>(m_initializer->source_range(), copy_initializer.release_nonnull(), name);
  1338. initializer = make_handle(ECMAScriptFunctionObject::create(interpreter.global_object(), String::empty(), String::empty(), *function_code, {}, 0, interpreter.lexical_environment(), interpreter.vm().running_execution_context().private_environment, FunctionKind::Normal, true, false, m_contains_direct_call_to_eval, false, property_key_or_private_name));
  1339. initializer->make_method(target);
  1340. }
  1341. return ClassValue {
  1342. ClassFieldDefinition {
  1343. move(property_key_or_private_name),
  1344. move(initializer),
  1345. }
  1346. };
  1347. }
  1348. static Optional<FlyString> nullopt_or_private_identifier_description(Expression const& expression)
  1349. {
  1350. if (is<PrivateIdentifier>(expression))
  1351. return static_cast<PrivateIdentifier const&>(expression).string();
  1352. return {};
  1353. }
  1354. Optional<FlyString> ClassField::private_bound_identifier() const
  1355. {
  1356. return nullopt_or_private_identifier_description(*m_key);
  1357. }
  1358. Optional<FlyString> ClassMethod::private_bound_identifier() const
  1359. {
  1360. return nullopt_or_private_identifier_description(*m_key);
  1361. }
  1362. // 15.7.11 Runtime Semantics: ClassStaticBlockDefinitionEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-classstaticblockdefinitionevaluation
  1363. ThrowCompletionOr<ClassElement::ClassValue> StaticInitializer::class_element_evaluation(Interpreter& interpreter, GlobalObject& global_object, Object& home_object) const
  1364. {
  1365. // 1. Let lex be the running execution context's LexicalEnvironment.
  1366. auto* lexical_environment = interpreter.vm().running_execution_context().lexical_environment;
  1367. // 2. Let privateEnv be the running execution context's PrivateEnvironment.
  1368. auto* private_environment = interpreter.vm().running_execution_context().private_environment;
  1369. // 3. Let sourceText be the empty sequence of Unicode code points.
  1370. // 4. Let formalParameters be an instance of the production FormalParameters : [empty] .
  1371. // 5. Let bodyFunction be OrdinaryFunctionCreate(%Function.prototype%, sourceText, formalParameters, ClassStaticBlockBody, non-lexical-this, lex, privateEnv).
  1372. // Note: The function bodyFunction is never directly accessible to ECMAScript code.
  1373. auto* body_function = ECMAScriptFunctionObject::create(global_object, String::empty(), String::empty(), *m_function_body, {}, 0, lexical_environment, private_environment, FunctionKind::Normal, true, false, m_contains_direct_call_to_eval, false);
  1374. // 6. Perform MakeMethod(bodyFunction, homeObject).
  1375. body_function->make_method(home_object);
  1376. // 7. Return the ClassStaticBlockDefinition Record { [[BodyFunction]]: bodyFunction }.
  1377. return ClassValue { normal_completion(body_function) };
  1378. }
  1379. // 15.7.16 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-class-definitions-runtime-semantics-evaluation
  1380. // ClassExpression : class BindingIdentifier ClassTail
  1381. Completion ClassExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  1382. {
  1383. InterpreterNodeScope node_scope { interpreter, *this };
  1384. // 1. Let className be StringValue of BindingIdentifier.
  1385. // 2. Let value be ? ClassDefinitionEvaluation of ClassTail with arguments className and className.
  1386. auto* value = TRY(class_definition_evaluation(interpreter, global_object, m_name, m_name.is_null() ? "" : m_name));
  1387. // 3. Set value.[[SourceText]] to the source text matched by ClassExpression.
  1388. value->set_source_text(m_source_text);
  1389. // 4. Return value.
  1390. return Value { value };
  1391. }
  1392. // 15.7.15 Runtime Semantics: BindingClassDeclarationEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-bindingclassdeclarationevaluation
  1393. static ThrowCompletionOr<Value> binding_class_declaration_evaluation(Interpreter& interpreter, GlobalObject& global_object, ClassExpression const& class_expression)
  1394. {
  1395. // ClassDeclaration : class ClassTail
  1396. if (!class_expression.has_name()) {
  1397. // 1. Let value be ? ClassDefinitionEvaluation of ClassTail with arguments undefined and "default".
  1398. auto value = TRY(class_expression.class_definition_evaluation(interpreter, global_object, {}, "default"));
  1399. // 2. Set value.[[SourceText]] to the source text matched by ClassDeclaration.
  1400. value->set_source_text(class_expression.source_text());
  1401. // 3. Return value.
  1402. return value;
  1403. }
  1404. // ClassDeclaration : class BindingIdentifier ClassTail
  1405. // 1. Let className be StringValue of BindingIdentifier.
  1406. auto class_name = class_expression.name();
  1407. VERIFY(!class_name.is_empty());
  1408. // 2. Let value be ? ClassDefinitionEvaluation of ClassTail with arguments className and className.
  1409. auto value = TRY(class_expression.class_definition_evaluation(interpreter, global_object, class_name, class_name));
  1410. // 3. Set value.[[SourceText]] to the source text matched by ClassDeclaration.
  1411. value->set_source_text(class_expression.source_text());
  1412. // 4. Let env be the running execution context's LexicalEnvironment.
  1413. auto* env = interpreter.lexical_environment();
  1414. // 5. Perform ? InitializeBoundName(className, value, env).
  1415. TRY(initialize_bound_name(global_object, class_name, value, env));
  1416. // 6. Return value.
  1417. return value;
  1418. }
  1419. // 15.7.16 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-class-definitions-runtime-semantics-evaluation
  1420. // ClassDeclaration : class BindingIdentifier ClassTail
  1421. Completion ClassDeclaration::execute(Interpreter& interpreter, GlobalObject& global_object) const
  1422. {
  1423. InterpreterNodeScope node_scope { interpreter, *this };
  1424. // 1. Perform ? BindingClassDeclarationEvaluation of this ClassDeclaration.
  1425. (void)TRY(binding_class_declaration_evaluation(interpreter, global_object, m_class_expression));
  1426. // 2. Return empty.
  1427. return Optional<Value> {};
  1428. }
  1429. // 15.7.14 Runtime Semantics: ClassDefinitionEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-classdefinitionevaluation
  1430. ThrowCompletionOr<ECMAScriptFunctionObject*> ClassExpression::class_definition_evaluation(Interpreter& interpreter, GlobalObject& global_object, FlyString const& binding_name, FlyString const& class_name) const
  1431. {
  1432. auto& vm = interpreter.vm();
  1433. auto* environment = vm.lexical_environment();
  1434. VERIFY(environment);
  1435. auto* class_environment = new_declarative_environment(*environment);
  1436. // We might not set the lexical environment but we always want to restore it eventually.
  1437. ArmedScopeGuard restore_environment = [&] {
  1438. vm.running_execution_context().lexical_environment = environment;
  1439. };
  1440. if (!binding_name.is_null())
  1441. MUST(class_environment->create_immutable_binding(global_object, binding_name, true));
  1442. auto* outer_private_environment = vm.running_execution_context().private_environment;
  1443. auto* class_private_environment = new_private_environment(vm, outer_private_environment);
  1444. for (auto const& element : m_elements) {
  1445. auto opt_private_name = element.private_bound_identifier();
  1446. if (opt_private_name.has_value())
  1447. class_private_environment->add_private_name({}, opt_private_name.release_value());
  1448. }
  1449. auto* proto_parent = vm.current_realm()->global_object().object_prototype();
  1450. auto* constructor_parent = vm.current_realm()->global_object().function_prototype();
  1451. if (!m_super_class.is_null()) {
  1452. vm.running_execution_context().lexical_environment = class_environment;
  1453. // Note: Since our execute does evaluation and GetValue in once we must check for a valid reference first
  1454. Value super_class;
  1455. auto reference = TRY(m_super_class->to_reference(interpreter, global_object));
  1456. if (reference.is_valid_reference()) {
  1457. super_class = TRY(reference.get_value(global_object));
  1458. } else {
  1459. super_class = TRY(m_super_class->execute(interpreter, global_object)).release_value();
  1460. }
  1461. vm.running_execution_context().lexical_environment = environment;
  1462. if (super_class.is_null()) {
  1463. proto_parent = nullptr;
  1464. } else if (!super_class.is_constructor()) {
  1465. return vm.throw_completion<TypeError>(global_object, ErrorType::ClassExtendsValueNotAConstructorOrNull, super_class.to_string_without_side_effects());
  1466. } else {
  1467. auto super_class_prototype = TRY(super_class.get(global_object, vm.names.prototype));
  1468. if (!super_class_prototype.is_null() && !super_class_prototype.is_object())
  1469. return vm.throw_completion<TypeError>(global_object, ErrorType::ClassExtendsValueInvalidPrototype, super_class_prototype.to_string_without_side_effects());
  1470. if (super_class_prototype.is_null())
  1471. proto_parent = nullptr;
  1472. else
  1473. proto_parent = &super_class_prototype.as_object();
  1474. constructor_parent = &super_class.as_object();
  1475. }
  1476. }
  1477. auto* prototype = Object::create(global_object, proto_parent);
  1478. VERIFY(prototype);
  1479. vm.running_execution_context().lexical_environment = class_environment;
  1480. vm.running_execution_context().private_environment = class_private_environment;
  1481. ScopeGuard restore_private_environment = [&] {
  1482. vm.running_execution_context().private_environment = outer_private_environment;
  1483. };
  1484. // FIXME: Step 14.a is done in the parser. But maybe it shouldn't?
  1485. auto class_constructor_value = TRY(m_constructor->execute(interpreter, global_object)).release_value();
  1486. update_function_name(class_constructor_value, class_name);
  1487. VERIFY(class_constructor_value.is_function() && is<ECMAScriptFunctionObject>(class_constructor_value.as_function()));
  1488. auto* class_constructor = static_cast<ECMAScriptFunctionObject*>(&class_constructor_value.as_function());
  1489. class_constructor->set_home_object(prototype);
  1490. class_constructor->set_is_class_constructor();
  1491. class_constructor->define_direct_property(vm.names.prototype, prototype, Attribute::Writable);
  1492. TRY(class_constructor->internal_set_prototype_of(constructor_parent));
  1493. if (!m_super_class.is_null())
  1494. class_constructor->set_constructor_kind(ECMAScriptFunctionObject::ConstructorKind::Derived);
  1495. prototype->define_direct_property(vm.names.constructor, class_constructor, Attribute::Writable | Attribute::Configurable);
  1496. using StaticElement = Variant<ClassFieldDefinition, Handle<ECMAScriptFunctionObject>>;
  1497. Vector<PrivateElement> static_private_methods;
  1498. Vector<PrivateElement> instance_private_methods;
  1499. Vector<ClassFieldDefinition> instance_fields;
  1500. Vector<StaticElement> static_elements;
  1501. for (auto const& element : m_elements) {
  1502. // Note: All ClassElementEvaluation start with evaluating the name (or we fake it).
  1503. auto element_value = TRY(element.class_element_evaluation(interpreter, global_object, element.is_static() ? *class_constructor : *prototype));
  1504. if (element_value.has<PrivateElement>()) {
  1505. auto& container = element.is_static() ? static_private_methods : instance_private_methods;
  1506. auto& private_element = element_value.get<PrivateElement>();
  1507. auto added_to_existing = false;
  1508. // FIXME: We can skip this loop in most cases.
  1509. for (auto& existing : container) {
  1510. if (existing.key == private_element.key) {
  1511. VERIFY(existing.kind == PrivateElement::Kind::Accessor);
  1512. VERIFY(private_element.kind == PrivateElement::Kind::Accessor);
  1513. auto& accessor = private_element.value.as_accessor();
  1514. if (!accessor.getter())
  1515. existing.value.as_accessor().set_setter(accessor.setter());
  1516. else
  1517. existing.value.as_accessor().set_getter(accessor.getter());
  1518. added_to_existing = true;
  1519. }
  1520. }
  1521. if (!added_to_existing)
  1522. container.append(move(element_value.get<PrivateElement>()));
  1523. } else if (auto* class_field_definition_ptr = element_value.get_pointer<ClassFieldDefinition>()) {
  1524. if (element.is_static())
  1525. static_elements.append(move(*class_field_definition_ptr));
  1526. else
  1527. instance_fields.append(move(*class_field_definition_ptr));
  1528. } else if (element.class_element_kind() == ClassElement::ElementKind::StaticInitializer) {
  1529. // We use Completion to hold the ClassStaticBlockDefinition Record.
  1530. VERIFY(element_value.has<Completion>() && element_value.get<Completion>().value().has_value());
  1531. auto& element_object = element_value.get<Completion>().value()->as_object();
  1532. VERIFY(is<ECMAScriptFunctionObject>(element_object));
  1533. static_elements.append(make_handle(static_cast<ECMAScriptFunctionObject*>(&element_object)));
  1534. }
  1535. }
  1536. vm.running_execution_context().lexical_environment = environment;
  1537. restore_environment.disarm();
  1538. if (!binding_name.is_null())
  1539. MUST(class_environment->initialize_binding(global_object, binding_name, class_constructor));
  1540. for (auto& field : instance_fields)
  1541. class_constructor->add_field(field);
  1542. for (auto& private_method : instance_private_methods)
  1543. class_constructor->add_private_method(private_method);
  1544. for (auto& method : static_private_methods)
  1545. class_constructor->private_method_or_accessor_add(move(method));
  1546. for (auto& element : static_elements) {
  1547. TRY(element.visit(
  1548. [&](ClassFieldDefinition& field) -> ThrowCompletionOr<void> {
  1549. return TRY(class_constructor->define_field(field));
  1550. },
  1551. [&](Handle<ECMAScriptFunctionObject> static_block_function) -> ThrowCompletionOr<void> {
  1552. VERIFY(!static_block_function.is_null());
  1553. // We discard any value returned here.
  1554. TRY(call(global_object, *static_block_function.cell(), class_constructor_value));
  1555. return {};
  1556. }));
  1557. }
  1558. return class_constructor;
  1559. }
  1560. void ASTNode::dump(int indent) const
  1561. {
  1562. print_indent(indent);
  1563. outln("{}", class_name());
  1564. }
  1565. void ScopeNode::dump(int indent) const
  1566. {
  1567. ASTNode::dump(indent);
  1568. if (!m_lexical_declarations.is_empty()) {
  1569. print_indent(indent + 1);
  1570. outln("(Lexical declarations)");
  1571. for (auto& declaration : m_lexical_declarations)
  1572. declaration.dump(indent + 2);
  1573. }
  1574. if (!m_var_declarations.is_empty()) {
  1575. print_indent(indent + 1);
  1576. outln("(Variable declarations)");
  1577. for (auto& declaration : m_var_declarations)
  1578. declaration.dump(indent + 2);
  1579. }
  1580. if (!m_functions_hoistable_with_annexB_extension.is_empty()) {
  1581. print_indent(indent + 1);
  1582. outln("(Hoisted functions via annexB extension)");
  1583. for (auto& declaration : m_functions_hoistable_with_annexB_extension)
  1584. declaration.dump(indent + 2);
  1585. }
  1586. if (!m_children.is_empty()) {
  1587. print_indent(indent + 1);
  1588. outln("(Children)");
  1589. for (auto& child : children())
  1590. child.dump(indent + 2);
  1591. }
  1592. }
  1593. void BinaryExpression::dump(int indent) const
  1594. {
  1595. char const* op_string = nullptr;
  1596. switch (m_op) {
  1597. case BinaryOp::Addition:
  1598. op_string = "+";
  1599. break;
  1600. case BinaryOp::Subtraction:
  1601. op_string = "-";
  1602. break;
  1603. case BinaryOp::Multiplication:
  1604. op_string = "*";
  1605. break;
  1606. case BinaryOp::Division:
  1607. op_string = "/";
  1608. break;
  1609. case BinaryOp::Modulo:
  1610. op_string = "%";
  1611. break;
  1612. case BinaryOp::Exponentiation:
  1613. op_string = "**";
  1614. break;
  1615. case BinaryOp::StrictlyEquals:
  1616. op_string = "===";
  1617. break;
  1618. case BinaryOp::StrictlyInequals:
  1619. op_string = "!==";
  1620. break;
  1621. case BinaryOp::LooselyEquals:
  1622. op_string = "==";
  1623. break;
  1624. case BinaryOp::LooselyInequals:
  1625. op_string = "!=";
  1626. break;
  1627. case BinaryOp::GreaterThan:
  1628. op_string = ">";
  1629. break;
  1630. case BinaryOp::GreaterThanEquals:
  1631. op_string = ">=";
  1632. break;
  1633. case BinaryOp::LessThan:
  1634. op_string = "<";
  1635. break;
  1636. case BinaryOp::LessThanEquals:
  1637. op_string = "<=";
  1638. break;
  1639. case BinaryOp::BitwiseAnd:
  1640. op_string = "&";
  1641. break;
  1642. case BinaryOp::BitwiseOr:
  1643. op_string = "|";
  1644. break;
  1645. case BinaryOp::BitwiseXor:
  1646. op_string = "^";
  1647. break;
  1648. case BinaryOp::LeftShift:
  1649. op_string = "<<";
  1650. break;
  1651. case BinaryOp::RightShift:
  1652. op_string = ">>";
  1653. break;
  1654. case BinaryOp::UnsignedRightShift:
  1655. op_string = ">>>";
  1656. break;
  1657. case BinaryOp::In:
  1658. op_string = "in";
  1659. break;
  1660. case BinaryOp::InstanceOf:
  1661. op_string = "instanceof";
  1662. break;
  1663. }
  1664. print_indent(indent);
  1665. outln("{}", class_name());
  1666. m_lhs->dump(indent + 1);
  1667. print_indent(indent + 1);
  1668. outln("{}", op_string);
  1669. m_rhs->dump(indent + 1);
  1670. }
  1671. void LogicalExpression::dump(int indent) const
  1672. {
  1673. char const* op_string = nullptr;
  1674. switch (m_op) {
  1675. case LogicalOp::And:
  1676. op_string = "&&";
  1677. break;
  1678. case LogicalOp::Or:
  1679. op_string = "||";
  1680. break;
  1681. case LogicalOp::NullishCoalescing:
  1682. op_string = "??";
  1683. break;
  1684. }
  1685. print_indent(indent);
  1686. outln("{}", class_name());
  1687. m_lhs->dump(indent + 1);
  1688. print_indent(indent + 1);
  1689. outln("{}", op_string);
  1690. m_rhs->dump(indent + 1);
  1691. }
  1692. void UnaryExpression::dump(int indent) const
  1693. {
  1694. char const* op_string = nullptr;
  1695. switch (m_op) {
  1696. case UnaryOp::BitwiseNot:
  1697. op_string = "~";
  1698. break;
  1699. case UnaryOp::Not:
  1700. op_string = "!";
  1701. break;
  1702. case UnaryOp::Plus:
  1703. op_string = "+";
  1704. break;
  1705. case UnaryOp::Minus:
  1706. op_string = "-";
  1707. break;
  1708. case UnaryOp::Typeof:
  1709. op_string = "typeof ";
  1710. break;
  1711. case UnaryOp::Void:
  1712. op_string = "void ";
  1713. break;
  1714. case UnaryOp::Delete:
  1715. op_string = "delete ";
  1716. break;
  1717. }
  1718. print_indent(indent);
  1719. outln("{}", class_name());
  1720. print_indent(indent + 1);
  1721. outln("{}", op_string);
  1722. m_lhs->dump(indent + 1);
  1723. }
  1724. void CallExpression::dump(int indent) const
  1725. {
  1726. print_indent(indent);
  1727. if (is<NewExpression>(*this))
  1728. outln("CallExpression [new]");
  1729. else
  1730. outln("CallExpression");
  1731. m_callee->dump(indent + 1);
  1732. for (auto& argument : m_arguments)
  1733. argument.value->dump(indent + 1);
  1734. }
  1735. void SuperCall::dump(int indent) const
  1736. {
  1737. print_indent(indent);
  1738. outln("SuperCall");
  1739. for (auto& argument : m_arguments)
  1740. argument.value->dump(indent + 1);
  1741. }
  1742. void ClassDeclaration::dump(int indent) const
  1743. {
  1744. ASTNode::dump(indent);
  1745. m_class_expression->dump(indent + 1);
  1746. }
  1747. ThrowCompletionOr<void> ClassDeclaration::for_each_bound_name(ThrowCompletionOrVoidCallback<FlyString const&>&& callback) const
  1748. {
  1749. if (m_class_expression->name().is_empty())
  1750. return {};
  1751. return callback(m_class_expression->name());
  1752. }
  1753. void ClassExpression::dump(int indent) const
  1754. {
  1755. print_indent(indent);
  1756. outln("ClassExpression: \"{}\"", m_name);
  1757. print_indent(indent);
  1758. outln("(Constructor)");
  1759. m_constructor->dump(indent + 1);
  1760. if (!m_super_class.is_null()) {
  1761. print_indent(indent);
  1762. outln("(Super Class)");
  1763. m_super_class->dump(indent + 1);
  1764. }
  1765. print_indent(indent);
  1766. outln("(Elements)");
  1767. for (auto& method : m_elements)
  1768. method.dump(indent + 1);
  1769. }
  1770. void ClassMethod::dump(int indent) const
  1771. {
  1772. ASTNode::dump(indent);
  1773. print_indent(indent);
  1774. outln("(Key)");
  1775. m_key->dump(indent + 1);
  1776. char const* kind_string = nullptr;
  1777. switch (m_kind) {
  1778. case Kind::Method:
  1779. kind_string = "Method";
  1780. break;
  1781. case Kind::Getter:
  1782. kind_string = "Getter";
  1783. break;
  1784. case Kind::Setter:
  1785. kind_string = "Setter";
  1786. break;
  1787. }
  1788. print_indent(indent);
  1789. outln("Kind: {}", kind_string);
  1790. print_indent(indent);
  1791. outln("Static: {}", is_static());
  1792. print_indent(indent);
  1793. outln("(Function)");
  1794. m_function->dump(indent + 1);
  1795. }
  1796. void ClassField::dump(int indent) const
  1797. {
  1798. ASTNode::dump(indent);
  1799. print_indent(indent);
  1800. outln("(Key)");
  1801. m_key->dump(indent + 1);
  1802. print_indent(indent);
  1803. outln("Static: {}", is_static());
  1804. if (m_initializer) {
  1805. print_indent(indent);
  1806. outln("(Initializer)");
  1807. m_initializer->dump(indent + 1);
  1808. }
  1809. }
  1810. void StaticInitializer::dump(int indent) const
  1811. {
  1812. ASTNode::dump(indent);
  1813. m_function_body->dump(indent + 1);
  1814. }
  1815. void StringLiteral::dump(int indent) const
  1816. {
  1817. print_indent(indent);
  1818. outln("StringLiteral \"{}\"", m_value);
  1819. }
  1820. void SuperExpression::dump(int indent) const
  1821. {
  1822. print_indent(indent);
  1823. outln("super");
  1824. }
  1825. void NumericLiteral::dump(int indent) const
  1826. {
  1827. print_indent(indent);
  1828. outln("NumericLiteral {}", m_value);
  1829. }
  1830. void BigIntLiteral::dump(int indent) const
  1831. {
  1832. print_indent(indent);
  1833. outln("BigIntLiteral {}", m_value);
  1834. }
  1835. void BooleanLiteral::dump(int indent) const
  1836. {
  1837. print_indent(indent);
  1838. outln("BooleanLiteral {}", m_value);
  1839. }
  1840. void NullLiteral::dump(int indent) const
  1841. {
  1842. print_indent(indent);
  1843. outln("null");
  1844. }
  1845. bool BindingPattern::contains_expression() const
  1846. {
  1847. for (auto& entry : entries) {
  1848. if (entry.initializer)
  1849. return true;
  1850. if (auto binding_ptr = entry.alias.get_pointer<NonnullRefPtr<BindingPattern>>(); binding_ptr && (*binding_ptr)->contains_expression())
  1851. return true;
  1852. }
  1853. return false;
  1854. }
  1855. ThrowCompletionOr<void> BindingPattern::for_each_bound_name(ThrowCompletionOrVoidCallback<FlyString const&>&& callback) const
  1856. {
  1857. for (auto const& entry : entries) {
  1858. auto const& alias = entry.alias;
  1859. if (alias.has<NonnullRefPtr<Identifier>>()) {
  1860. TRY(callback(alias.get<NonnullRefPtr<Identifier>>()->string()));
  1861. } else if (alias.has<NonnullRefPtr<BindingPattern>>()) {
  1862. TRY(alias.get<NonnullRefPtr<BindingPattern>>()->for_each_bound_name(forward<decltype(callback)>(callback)));
  1863. } else {
  1864. auto const& name = entry.name;
  1865. if (name.has<NonnullRefPtr<Identifier>>())
  1866. TRY(callback(name.get<NonnullRefPtr<Identifier>>()->string()));
  1867. }
  1868. }
  1869. return {};
  1870. }
  1871. void BindingPattern::dump(int indent) const
  1872. {
  1873. print_indent(indent);
  1874. outln("BindingPattern {}", kind == Kind::Array ? "Array" : "Object");
  1875. for (auto& entry : entries) {
  1876. print_indent(indent + 1);
  1877. outln("(Property)");
  1878. if (kind == Kind::Object) {
  1879. print_indent(indent + 2);
  1880. outln("(Identifier)");
  1881. if (entry.name.has<NonnullRefPtr<Identifier>>()) {
  1882. entry.name.get<NonnullRefPtr<Identifier>>()->dump(indent + 3);
  1883. } else {
  1884. entry.name.get<NonnullRefPtr<Expression>>()->dump(indent + 3);
  1885. }
  1886. } else if (entry.is_elision()) {
  1887. print_indent(indent + 2);
  1888. outln("(Elision)");
  1889. continue;
  1890. }
  1891. print_indent(indent + 2);
  1892. outln("(Pattern{})", entry.is_rest ? " rest=true" : "");
  1893. if (entry.alias.has<NonnullRefPtr<Identifier>>()) {
  1894. entry.alias.get<NonnullRefPtr<Identifier>>()->dump(indent + 3);
  1895. } else if (entry.alias.has<NonnullRefPtr<BindingPattern>>()) {
  1896. entry.alias.get<NonnullRefPtr<BindingPattern>>()->dump(indent + 3);
  1897. } else if (entry.alias.has<NonnullRefPtr<MemberExpression>>()) {
  1898. entry.alias.get<NonnullRefPtr<MemberExpression>>()->dump(indent + 3);
  1899. } else {
  1900. print_indent(indent + 3);
  1901. outln("<empty>");
  1902. }
  1903. if (entry.initializer) {
  1904. print_indent(indent + 2);
  1905. outln("(Initializer)");
  1906. entry.initializer->dump(indent + 3);
  1907. }
  1908. }
  1909. }
  1910. void FunctionNode::dump(int indent, String const& class_name) const
  1911. {
  1912. print_indent(indent);
  1913. auto is_async = m_kind == FunctionKind::Async || m_kind == FunctionKind::AsyncGenerator;
  1914. auto is_generator = m_kind == FunctionKind::Generator || m_kind == FunctionKind::AsyncGenerator;
  1915. outln("{}{}{} '{}'", class_name, is_async ? " async" : "", is_generator ? "*" : "", name());
  1916. if (m_contains_direct_call_to_eval) {
  1917. print_indent(indent + 1);
  1918. outln("\033[31;1m(direct eval)\033[0m");
  1919. }
  1920. if (!m_parameters.is_empty()) {
  1921. print_indent(indent + 1);
  1922. outln("(Parameters)");
  1923. for (auto& parameter : m_parameters) {
  1924. print_indent(indent + 2);
  1925. if (parameter.is_rest)
  1926. out("...");
  1927. parameter.binding.visit(
  1928. [&](FlyString const& name) {
  1929. outln("{}", name);
  1930. },
  1931. [&](BindingPattern const& pattern) {
  1932. pattern.dump(indent + 2);
  1933. });
  1934. if (parameter.default_value)
  1935. parameter.default_value->dump(indent + 3);
  1936. }
  1937. }
  1938. print_indent(indent + 1);
  1939. outln("(Body)");
  1940. body().dump(indent + 2);
  1941. }
  1942. void FunctionDeclaration::dump(int indent) const
  1943. {
  1944. FunctionNode::dump(indent, class_name());
  1945. }
  1946. ThrowCompletionOr<void> FunctionDeclaration::for_each_bound_name(ThrowCompletionOrVoidCallback<FlyString const&>&& callback) const
  1947. {
  1948. if (name().is_empty())
  1949. return {};
  1950. return callback(name());
  1951. }
  1952. void FunctionExpression::dump(int indent) const
  1953. {
  1954. FunctionNode::dump(indent, class_name());
  1955. }
  1956. void YieldExpression::dump(int indent) const
  1957. {
  1958. ASTNode::dump(indent);
  1959. if (argument())
  1960. argument()->dump(indent + 1);
  1961. }
  1962. void AwaitExpression::dump(int indent) const
  1963. {
  1964. ASTNode::dump(indent);
  1965. m_argument->dump(indent + 1);
  1966. }
  1967. void ReturnStatement::dump(int indent) const
  1968. {
  1969. ASTNode::dump(indent);
  1970. if (argument())
  1971. argument()->dump(indent + 1);
  1972. }
  1973. void IfStatement::dump(int indent) const
  1974. {
  1975. ASTNode::dump(indent);
  1976. print_indent(indent);
  1977. outln("If");
  1978. predicate().dump(indent + 1);
  1979. consequent().dump(indent + 1);
  1980. if (alternate()) {
  1981. print_indent(indent);
  1982. outln("Else");
  1983. alternate()->dump(indent + 1);
  1984. }
  1985. }
  1986. void WhileStatement::dump(int indent) const
  1987. {
  1988. ASTNode::dump(indent);
  1989. print_indent(indent);
  1990. outln("While");
  1991. test().dump(indent + 1);
  1992. body().dump(indent + 1);
  1993. }
  1994. void WithStatement::dump(int indent) const
  1995. {
  1996. ASTNode::dump(indent);
  1997. print_indent(indent + 1);
  1998. outln("Object");
  1999. object().dump(indent + 2);
  2000. print_indent(indent + 1);
  2001. outln("Body");
  2002. body().dump(indent + 2);
  2003. }
  2004. void DoWhileStatement::dump(int indent) const
  2005. {
  2006. ASTNode::dump(indent);
  2007. print_indent(indent);
  2008. outln("DoWhile");
  2009. test().dump(indent + 1);
  2010. body().dump(indent + 1);
  2011. }
  2012. void ForStatement::dump(int indent) const
  2013. {
  2014. ASTNode::dump(indent);
  2015. print_indent(indent);
  2016. outln("For");
  2017. if (init())
  2018. init()->dump(indent + 1);
  2019. if (test())
  2020. test()->dump(indent + 1);
  2021. if (update())
  2022. update()->dump(indent + 1);
  2023. body().dump(indent + 1);
  2024. }
  2025. void ForInStatement::dump(int indent) const
  2026. {
  2027. ASTNode::dump(indent);
  2028. print_indent(indent);
  2029. outln("ForIn");
  2030. lhs().visit([&](auto& lhs) { lhs->dump(indent + 1); });
  2031. rhs().dump(indent + 1);
  2032. body().dump(indent + 1);
  2033. }
  2034. void ForOfStatement::dump(int indent) const
  2035. {
  2036. ASTNode::dump(indent);
  2037. print_indent(indent);
  2038. outln("ForOf");
  2039. lhs().visit([&](auto& lhs) { lhs->dump(indent + 1); });
  2040. rhs().dump(indent + 1);
  2041. body().dump(indent + 1);
  2042. }
  2043. void ForAwaitOfStatement::dump(int indent) const
  2044. {
  2045. ASTNode::dump(indent);
  2046. print_indent(indent);
  2047. outln("ForAwaitOf");
  2048. m_lhs.visit([&](auto& lhs) { lhs->dump(indent + 1); });
  2049. m_rhs->dump(indent + 1);
  2050. m_body->dump(indent + 1);
  2051. }
  2052. // 13.1.3 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-identifiers-runtime-semantics-evaluation
  2053. Completion Identifier::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2054. {
  2055. InterpreterNodeScope node_scope { interpreter, *this };
  2056. // 1. Return ? ResolveBinding(StringValue of Identifier).
  2057. auto reference = TRY(interpreter.vm().resolve_binding(m_string));
  2058. // NOTE: The spec wants us to return the reference directly; this is not possible with ASTNode::execute() (short of letting it return a variant).
  2059. // So, instead of calling GetValue at the call site, we do it here.
  2060. return TRY(reference.get_value(global_object));
  2061. }
  2062. void Identifier::dump(int indent) const
  2063. {
  2064. print_indent(indent);
  2065. outln("Identifier \"{}\"", m_string);
  2066. }
  2067. Completion PrivateIdentifier::execute(Interpreter&, GlobalObject&) const
  2068. {
  2069. // Note: This should be handled by either the member expression this is part of
  2070. // or the binary expression in the case of `#foo in bar`.
  2071. VERIFY_NOT_REACHED();
  2072. }
  2073. void PrivateIdentifier::dump(int indent) const
  2074. {
  2075. print_indent(indent);
  2076. outln("PrivateIdentifier \"{}\"", m_string);
  2077. }
  2078. void SpreadExpression::dump(int indent) const
  2079. {
  2080. ASTNode::dump(indent);
  2081. m_target->dump(indent + 1);
  2082. }
  2083. Completion SpreadExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2084. {
  2085. InterpreterNodeScope node_scope { interpreter, *this };
  2086. return m_target->execute(interpreter, global_object);
  2087. }
  2088. // 13.2.1.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-this-keyword-runtime-semantics-evaluation
  2089. Completion ThisExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2090. {
  2091. InterpreterNodeScope node_scope { interpreter, *this };
  2092. // 1. Return ? ResolveThisBinding().
  2093. return interpreter.vm().resolve_this_binding(global_object);
  2094. }
  2095. void ThisExpression::dump(int indent) const
  2096. {
  2097. ASTNode::dump(indent);
  2098. }
  2099. // 13.15.2 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-assignment-operators-runtime-semantics-evaluation
  2100. Completion AssignmentExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2101. {
  2102. InterpreterNodeScope node_scope { interpreter, *this };
  2103. if (m_op == AssignmentOp::Assignment) {
  2104. // AssignmentExpression : LeftHandSideExpression = AssignmentExpression
  2105. return m_lhs.visit(
  2106. // 1. If LeftHandSideExpression is neither an ObjectLiteral nor an ArrayLiteral, then
  2107. [&](NonnullRefPtr<Expression> const& lhs) -> ThrowCompletionOr<Value> {
  2108. // a. Let lref be the result of evaluating LeftHandSideExpression.
  2109. // b. ReturnIfAbrupt(lref).
  2110. auto reference = TRY(lhs->to_reference(interpreter, global_object));
  2111. Value rhs_result;
  2112. // c. If IsAnonymousFunctionDefinition(AssignmentExpression) and IsIdentifierRef of LeftHandSideExpression are both true, then
  2113. if (lhs->is_identifier()) {
  2114. // i. Let rval be ? NamedEvaluation of AssignmentExpression with argument lref.[[ReferencedName]].
  2115. auto& identifier_name = static_cast<Identifier const&>(*lhs).string();
  2116. rhs_result = TRY(interpreter.vm().named_evaluation_if_anonymous_function(global_object, m_rhs, identifier_name));
  2117. }
  2118. // d. Else,
  2119. else {
  2120. // i. Let rref be the result of evaluating AssignmentExpression.
  2121. // ii. Let rval be ? GetValue(rref).
  2122. rhs_result = TRY(m_rhs->execute(interpreter, global_object)).release_value();
  2123. }
  2124. // e. Perform ? PutValue(lref, rval).
  2125. TRY(reference.put_value(global_object, rhs_result));
  2126. // f. Return rval.
  2127. return rhs_result;
  2128. },
  2129. // 2. Let assignmentPattern be the AssignmentPattern that is covered by LeftHandSideExpression.
  2130. [&](NonnullRefPtr<BindingPattern> const& pattern) -> ThrowCompletionOr<Value> {
  2131. // 3. Let rref be the result of evaluating AssignmentExpression.
  2132. // 4. Let rval be ? GetValue(rref).
  2133. auto rhs_result = TRY(m_rhs->execute(interpreter, global_object)).release_value();
  2134. // 5. Perform ? DestructuringAssignmentEvaluation of assignmentPattern with argument rval.
  2135. TRY(interpreter.vm().destructuring_assignment_evaluation(pattern, rhs_result, global_object));
  2136. // 6. Return rval.
  2137. return rhs_result;
  2138. });
  2139. }
  2140. VERIFY(m_lhs.has<NonnullRefPtr<Expression>>());
  2141. // 1. Let lref be the result of evaluating LeftHandSideExpression.
  2142. auto& lhs_expression = *m_lhs.get<NonnullRefPtr<Expression>>();
  2143. auto reference = TRY(lhs_expression.to_reference(interpreter, global_object));
  2144. // 2. Let lval be ? GetValue(lref).
  2145. auto lhs_result = TRY(reference.get_value(global_object));
  2146. // AssignmentExpression : LeftHandSideExpression {&&=, ||=, ??=} AssignmentExpression
  2147. if (m_op == AssignmentOp::AndAssignment || m_op == AssignmentOp::OrAssignment || m_op == AssignmentOp::NullishAssignment) {
  2148. switch (m_op) {
  2149. // AssignmentExpression : LeftHandSideExpression &&= AssignmentExpression
  2150. case AssignmentOp::AndAssignment:
  2151. // 3. Let lbool be ToBoolean(lval).
  2152. // 4. If lbool is false, return lval.
  2153. if (!lhs_result.to_boolean())
  2154. return lhs_result;
  2155. break;
  2156. // AssignmentExpression : LeftHandSideExpression ||= AssignmentExpression
  2157. case AssignmentOp::OrAssignment:
  2158. // 3. Let lbool be ToBoolean(lval).
  2159. // 4. If lbool is true, return lval.
  2160. if (lhs_result.to_boolean())
  2161. return lhs_result;
  2162. break;
  2163. // AssignmentExpression : LeftHandSideExpression ??= AssignmentExpression
  2164. case AssignmentOp::NullishAssignment:
  2165. // 3. If lval is neither undefined nor null, return lval.
  2166. if (!lhs_result.is_nullish())
  2167. return lhs_result;
  2168. break;
  2169. default:
  2170. VERIFY_NOT_REACHED();
  2171. }
  2172. Value rhs_result;
  2173. // 5. If IsAnonymousFunctionDefinition(AssignmentExpression) is true and IsIdentifierRef of LeftHandSideExpression is true, then
  2174. if (lhs_expression.is_identifier()) {
  2175. // a. Let rval be ? NamedEvaluation of AssignmentExpression with argument lref.[[ReferencedName]].
  2176. auto& identifier_name = static_cast<Identifier const&>(lhs_expression).string();
  2177. rhs_result = TRY(interpreter.vm().named_evaluation_if_anonymous_function(global_object, m_rhs, identifier_name));
  2178. }
  2179. // 6. Else,
  2180. else {
  2181. // a. Let rref be the result of evaluating AssignmentExpression.
  2182. // b. Let rval be ? GetValue(rref).
  2183. rhs_result = TRY(m_rhs->execute(interpreter, global_object)).release_value();
  2184. }
  2185. // 7. Perform ? PutValue(lref, rval).
  2186. TRY(reference.put_value(global_object, rhs_result));
  2187. // 8. Return rval.
  2188. return rhs_result;
  2189. }
  2190. // AssignmentExpression : LeftHandSideExpression AssignmentOperator AssignmentExpression
  2191. // 3. Let rref be the result of evaluating AssignmentExpression.
  2192. // 4. Let rval be ? GetValue(rref).
  2193. auto rhs_result = TRY(m_rhs->execute(interpreter, global_object)).release_value();
  2194. // 5. Let assignmentOpText be the source text matched by AssignmentOperator.
  2195. // 6. Let opText be the sequence of Unicode code points associated with assignmentOpText in the following table:
  2196. // 7. Let r be ? ApplyStringOrNumericBinaryOperator(lval, opText, rval).
  2197. switch (m_op) {
  2198. case AssignmentOp::AdditionAssignment:
  2199. rhs_result = TRY(add(global_object, lhs_result, rhs_result));
  2200. break;
  2201. case AssignmentOp::SubtractionAssignment:
  2202. rhs_result = TRY(sub(global_object, lhs_result, rhs_result));
  2203. break;
  2204. case AssignmentOp::MultiplicationAssignment:
  2205. rhs_result = TRY(mul(global_object, lhs_result, rhs_result));
  2206. break;
  2207. case AssignmentOp::DivisionAssignment:
  2208. rhs_result = TRY(div(global_object, lhs_result, rhs_result));
  2209. break;
  2210. case AssignmentOp::ModuloAssignment:
  2211. rhs_result = TRY(mod(global_object, lhs_result, rhs_result));
  2212. break;
  2213. case AssignmentOp::ExponentiationAssignment:
  2214. rhs_result = TRY(exp(global_object, lhs_result, rhs_result));
  2215. break;
  2216. case AssignmentOp::BitwiseAndAssignment:
  2217. rhs_result = TRY(bitwise_and(global_object, lhs_result, rhs_result));
  2218. break;
  2219. case AssignmentOp::BitwiseOrAssignment:
  2220. rhs_result = TRY(bitwise_or(global_object, lhs_result, rhs_result));
  2221. break;
  2222. case AssignmentOp::BitwiseXorAssignment:
  2223. rhs_result = TRY(bitwise_xor(global_object, lhs_result, rhs_result));
  2224. break;
  2225. case AssignmentOp::LeftShiftAssignment:
  2226. rhs_result = TRY(left_shift(global_object, lhs_result, rhs_result));
  2227. break;
  2228. case AssignmentOp::RightShiftAssignment:
  2229. rhs_result = TRY(right_shift(global_object, lhs_result, rhs_result));
  2230. break;
  2231. case AssignmentOp::UnsignedRightShiftAssignment:
  2232. rhs_result = TRY(unsigned_right_shift(global_object, lhs_result, rhs_result));
  2233. break;
  2234. case AssignmentOp::Assignment:
  2235. case AssignmentOp::AndAssignment:
  2236. case AssignmentOp::OrAssignment:
  2237. case AssignmentOp::NullishAssignment:
  2238. VERIFY_NOT_REACHED();
  2239. }
  2240. // 8. Perform ? PutValue(lref, r).
  2241. TRY(reference.put_value(global_object, rhs_result));
  2242. // 9. Return r.
  2243. return rhs_result;
  2244. }
  2245. // 13.4.2.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-postfix-increment-operator-runtime-semantics-evaluation
  2246. // 13.4.3.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-postfix-decrement-operator-runtime-semantics-evaluation
  2247. // 13.4.4.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-prefix-increment-operator-runtime-semantics-evaluation
  2248. // 13.4.5.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-prefix-decrement-operator-runtime-semantics-evaluation
  2249. Completion UpdateExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2250. {
  2251. InterpreterNodeScope node_scope { interpreter, *this };
  2252. // 1. Let expr be the result of evaluating <Expression>.
  2253. auto reference = TRY(m_argument->to_reference(interpreter, global_object));
  2254. // 2. Let oldValue be ? ToNumeric(? GetValue(expr)).
  2255. auto old_value = TRY(reference.get_value(global_object));
  2256. old_value = TRY(old_value.to_numeric(global_object));
  2257. Value new_value;
  2258. switch (m_op) {
  2259. case UpdateOp::Increment:
  2260. // 3. If Type(oldValue) is Number, then
  2261. if (old_value.is_number()) {
  2262. // a. Let newValue be Number::add(oldValue, 1𝔽).
  2263. new_value = Value(old_value.as_double() + 1);
  2264. }
  2265. // 4. Else,
  2266. else {
  2267. // a. Assert: Type(oldValue) is BigInt.
  2268. // b. Let newValue be BigInt::add(oldValue, 1ℤ).
  2269. new_value = js_bigint(interpreter.heap(), old_value.as_bigint().big_integer().plus(Crypto::SignedBigInteger { 1 }));
  2270. }
  2271. break;
  2272. case UpdateOp::Decrement:
  2273. // 3. If Type(oldValue) is Number, then
  2274. if (old_value.is_number()) {
  2275. // a. Let newValue be Number::subtract(oldValue, 1𝔽).
  2276. new_value = Value(old_value.as_double() - 1);
  2277. }
  2278. // 4. Else,
  2279. else {
  2280. // a. Assert: Type(oldValue) is BigInt.
  2281. // b. Let newValue be BigInt::subtract(oldValue, 1ℤ).
  2282. new_value = js_bigint(interpreter.heap(), old_value.as_bigint().big_integer().minus(Crypto::SignedBigInteger { 1 }));
  2283. }
  2284. break;
  2285. default:
  2286. VERIFY_NOT_REACHED();
  2287. }
  2288. // 5. Perform ? PutValue(expr, newValue).
  2289. TRY(reference.put_value(global_object, new_value));
  2290. // 6. Return newValue.
  2291. // 6. Return oldValue.
  2292. return m_prefixed ? new_value : old_value;
  2293. }
  2294. void AssignmentExpression::dump(int indent) const
  2295. {
  2296. char const* op_string = nullptr;
  2297. switch (m_op) {
  2298. case AssignmentOp::Assignment:
  2299. op_string = "=";
  2300. break;
  2301. case AssignmentOp::AdditionAssignment:
  2302. op_string = "+=";
  2303. break;
  2304. case AssignmentOp::SubtractionAssignment:
  2305. op_string = "-=";
  2306. break;
  2307. case AssignmentOp::MultiplicationAssignment:
  2308. op_string = "*=";
  2309. break;
  2310. case AssignmentOp::DivisionAssignment:
  2311. op_string = "/=";
  2312. break;
  2313. case AssignmentOp::ModuloAssignment:
  2314. op_string = "%=";
  2315. break;
  2316. case AssignmentOp::ExponentiationAssignment:
  2317. op_string = "**=";
  2318. break;
  2319. case AssignmentOp::BitwiseAndAssignment:
  2320. op_string = "&=";
  2321. break;
  2322. case AssignmentOp::BitwiseOrAssignment:
  2323. op_string = "|=";
  2324. break;
  2325. case AssignmentOp::BitwiseXorAssignment:
  2326. op_string = "^=";
  2327. break;
  2328. case AssignmentOp::LeftShiftAssignment:
  2329. op_string = "<<=";
  2330. break;
  2331. case AssignmentOp::RightShiftAssignment:
  2332. op_string = ">>=";
  2333. break;
  2334. case AssignmentOp::UnsignedRightShiftAssignment:
  2335. op_string = ">>>=";
  2336. break;
  2337. case AssignmentOp::AndAssignment:
  2338. op_string = "&&=";
  2339. break;
  2340. case AssignmentOp::OrAssignment:
  2341. op_string = "||=";
  2342. break;
  2343. case AssignmentOp::NullishAssignment:
  2344. op_string = "\?\?=";
  2345. break;
  2346. }
  2347. ASTNode::dump(indent);
  2348. print_indent(indent + 1);
  2349. outln("{}", op_string);
  2350. m_lhs.visit([&](auto& lhs) { lhs->dump(indent + 1); });
  2351. m_rhs->dump(indent + 1);
  2352. }
  2353. void UpdateExpression::dump(int indent) const
  2354. {
  2355. char const* op_string = nullptr;
  2356. switch (m_op) {
  2357. case UpdateOp::Increment:
  2358. op_string = "++";
  2359. break;
  2360. case UpdateOp::Decrement:
  2361. op_string = "--";
  2362. break;
  2363. }
  2364. ASTNode::dump(indent);
  2365. if (m_prefixed) {
  2366. print_indent(indent + 1);
  2367. outln("{}", op_string);
  2368. }
  2369. m_argument->dump(indent + 1);
  2370. if (!m_prefixed) {
  2371. print_indent(indent + 1);
  2372. outln("{}", op_string);
  2373. }
  2374. }
  2375. // 14.3.1.2 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-let-and-const-declarations-runtime-semantics-evaluation
  2376. // 14.3.2.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-variable-statement-runtime-semantics-evaluation
  2377. Completion VariableDeclaration::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2378. {
  2379. InterpreterNodeScope node_scope { interpreter, *this };
  2380. for (auto& declarator : m_declarations) {
  2381. if (auto* init = declarator.init()) {
  2382. TRY(declarator.target().visit(
  2383. [&](NonnullRefPtr<Identifier> const& id) -> ThrowCompletionOr<void> {
  2384. auto reference = TRY(id->to_reference(interpreter, global_object));
  2385. auto initializer_result = TRY(interpreter.vm().named_evaluation_if_anonymous_function(global_object, *init, id->string()));
  2386. VERIFY(!initializer_result.is_empty());
  2387. if (m_declaration_kind == DeclarationKind::Var)
  2388. return reference.put_value(global_object, initializer_result);
  2389. else
  2390. return reference.initialize_referenced_binding(global_object, initializer_result);
  2391. },
  2392. [&](NonnullRefPtr<BindingPattern> const& pattern) -> ThrowCompletionOr<void> {
  2393. auto initializer_result = TRY(init->execute(interpreter, global_object)).release_value();
  2394. Environment* environment = m_declaration_kind == DeclarationKind::Var ? nullptr : interpreter.lexical_environment();
  2395. return interpreter.vm().binding_initialization(pattern, initializer_result, environment, global_object);
  2396. }));
  2397. } else if (m_declaration_kind != DeclarationKind::Var) {
  2398. VERIFY(declarator.target().has<NonnullRefPtr<Identifier>>());
  2399. auto& identifier = declarator.target().get<NonnullRefPtr<Identifier>>();
  2400. auto reference = TRY(identifier->to_reference(interpreter, global_object));
  2401. TRY(reference.initialize_referenced_binding(global_object, js_undefined()));
  2402. }
  2403. }
  2404. return normal_completion({});
  2405. }
  2406. Completion VariableDeclarator::execute(Interpreter& interpreter, GlobalObject&) const
  2407. {
  2408. InterpreterNodeScope node_scope { interpreter, *this };
  2409. // NOTE: VariableDeclarator execution is handled by VariableDeclaration.
  2410. VERIFY_NOT_REACHED();
  2411. }
  2412. ThrowCompletionOr<void> VariableDeclaration::for_each_bound_name(ThrowCompletionOrVoidCallback<FlyString const&>&& callback) const
  2413. {
  2414. for (auto const& entry : declarations()) {
  2415. TRY(entry.target().visit(
  2416. [&](NonnullRefPtr<Identifier> const& id) {
  2417. return callback(id->string());
  2418. },
  2419. [&](NonnullRefPtr<BindingPattern> const& binding) {
  2420. return binding->for_each_bound_name([&](auto const& name) {
  2421. return callback(name);
  2422. });
  2423. }));
  2424. }
  2425. return {};
  2426. }
  2427. void VariableDeclaration::dump(int indent) const
  2428. {
  2429. char const* declaration_kind_string = nullptr;
  2430. switch (m_declaration_kind) {
  2431. case DeclarationKind::Let:
  2432. declaration_kind_string = "Let";
  2433. break;
  2434. case DeclarationKind::Var:
  2435. declaration_kind_string = "Var";
  2436. break;
  2437. case DeclarationKind::Const:
  2438. declaration_kind_string = "Const";
  2439. break;
  2440. }
  2441. ASTNode::dump(indent);
  2442. print_indent(indent + 1);
  2443. outln("{}", declaration_kind_string);
  2444. for (auto& declarator : m_declarations)
  2445. declarator.dump(indent + 1);
  2446. }
  2447. void VariableDeclarator::dump(int indent) const
  2448. {
  2449. ASTNode::dump(indent);
  2450. m_target.visit([indent](auto const& value) { value->dump(indent + 1); });
  2451. if (m_init)
  2452. m_init->dump(indent + 1);
  2453. }
  2454. void ObjectProperty::dump(int indent) const
  2455. {
  2456. ASTNode::dump(indent);
  2457. if (m_property_type == Type::Spread) {
  2458. print_indent(indent + 1);
  2459. outln("...Spreading");
  2460. m_key->dump(indent + 1);
  2461. } else {
  2462. m_key->dump(indent + 1);
  2463. m_value->dump(indent + 1);
  2464. }
  2465. }
  2466. void ObjectExpression::dump(int indent) const
  2467. {
  2468. ASTNode::dump(indent);
  2469. for (auto& property : m_properties) {
  2470. property.dump(indent + 1);
  2471. }
  2472. }
  2473. void ExpressionStatement::dump(int indent) const
  2474. {
  2475. ASTNode::dump(indent);
  2476. m_expression->dump(indent + 1);
  2477. }
  2478. Completion ObjectProperty::execute(Interpreter& interpreter, GlobalObject&) const
  2479. {
  2480. InterpreterNodeScope node_scope { interpreter, *this };
  2481. // NOTE: ObjectProperty execution is handled by ObjectExpression.
  2482. VERIFY_NOT_REACHED();
  2483. }
  2484. // 13.2.5.4 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-object-initializer-runtime-semantics-evaluation
  2485. Completion ObjectExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2486. {
  2487. InterpreterNodeScope node_scope { interpreter, *this };
  2488. // 1. Let obj be OrdinaryObjectCreate(%Object.prototype%).
  2489. auto* object = Object::create(global_object, global_object.object_prototype());
  2490. // 2. Perform ? PropertyDefinitionEvaluation of PropertyDefinitionList with argument obj.
  2491. for (auto& property : m_properties) {
  2492. auto key = TRY(property.key().execute(interpreter, global_object)).release_value();
  2493. // PropertyDefinition : ... AssignmentExpression
  2494. if (property.type() == ObjectProperty::Type::Spread) {
  2495. // 4. Perform ? CopyDataProperties(object, fromValue, excludedNames).
  2496. TRY(object->copy_data_properties(key, {}, global_object));
  2497. // 5. Return unused.
  2498. continue;
  2499. }
  2500. auto value = TRY(property.value().execute(interpreter, global_object)).release_value();
  2501. // 8. If isProtoSetter is true, then
  2502. if (property.type() == ObjectProperty::Type::ProtoSetter) {
  2503. // a. If Type(propValue) is either Object or Null, then
  2504. if (value.is_object() || value.is_null()) {
  2505. // i. Perform ! object.[[SetPrototypeOf]](propValue).
  2506. MUST(object->internal_set_prototype_of(value.is_object() ? &value.as_object() : nullptr));
  2507. }
  2508. // b. Return unused.
  2509. continue;
  2510. }
  2511. if (value.is_function() && property.is_method())
  2512. static_cast<ECMAScriptFunctionObject&>(value.as_function()).set_home_object(object);
  2513. auto property_key = TRY(PropertyKey::from_value(global_object, key));
  2514. auto name = TRY(get_function_property_name(property_key));
  2515. if (property.type() == ObjectProperty::Type::Getter) {
  2516. name = String::formatted("get {}", name);
  2517. } else if (property.type() == ObjectProperty::Type::Setter) {
  2518. name = String::formatted("set {}", name);
  2519. }
  2520. update_function_name(value, name);
  2521. switch (property.type()) {
  2522. case ObjectProperty::Type::Getter:
  2523. VERIFY(value.is_function());
  2524. object->define_direct_accessor(property_key, &value.as_function(), nullptr, Attribute::Configurable | Attribute::Enumerable);
  2525. break;
  2526. case ObjectProperty::Type::Setter:
  2527. VERIFY(value.is_function());
  2528. object->define_direct_accessor(property_key, nullptr, &value.as_function(), Attribute::Configurable | Attribute::Enumerable);
  2529. break;
  2530. case ObjectProperty::Type::KeyValue:
  2531. object->define_direct_property(property_key, value, default_attributes);
  2532. break;
  2533. case ObjectProperty::Type::Spread:
  2534. default:
  2535. VERIFY_NOT_REACHED();
  2536. }
  2537. }
  2538. // 3. Return obj.
  2539. return Value { object };
  2540. }
  2541. void MemberExpression::dump(int indent) const
  2542. {
  2543. print_indent(indent);
  2544. outln("{}(computed={})", class_name(), is_computed());
  2545. m_object->dump(indent + 1);
  2546. m_property->dump(indent + 1);
  2547. }
  2548. String MemberExpression::to_string_approximation() const
  2549. {
  2550. String object_string = "<object>";
  2551. if (is<Identifier>(*m_object))
  2552. object_string = static_cast<Identifier const&>(*m_object).string();
  2553. if (is_computed())
  2554. return String::formatted("{}[<computed>]", object_string);
  2555. return String::formatted("{}.{}", object_string, verify_cast<Identifier>(*m_property).string());
  2556. }
  2557. // 13.3.2.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-property-accessors-runtime-semantics-evaluation
  2558. Completion MemberExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2559. {
  2560. InterpreterNodeScope node_scope { interpreter, *this };
  2561. auto reference = TRY(to_reference(interpreter, global_object));
  2562. return TRY(reference.get_value(global_object));
  2563. }
  2564. bool MemberExpression::ends_in_private_name() const
  2565. {
  2566. if (is_computed())
  2567. return false;
  2568. if (is<PrivateIdentifier>(*m_property))
  2569. return true;
  2570. if (is<MemberExpression>(*m_property))
  2571. return static_cast<MemberExpression const&>(*m_property).ends_in_private_name();
  2572. return false;
  2573. }
  2574. void OptionalChain::dump(int indent) const
  2575. {
  2576. print_indent(indent);
  2577. outln("{}", class_name());
  2578. m_base->dump(indent + 1);
  2579. for (auto& reference : m_references) {
  2580. reference.visit(
  2581. [&](Call const& call) {
  2582. print_indent(indent + 1);
  2583. outln("Call({})", call.mode == Mode::Optional ? "Optional" : "Not Optional");
  2584. for (auto& argument : call.arguments)
  2585. argument.value->dump(indent + 2);
  2586. },
  2587. [&](ComputedReference const& ref) {
  2588. print_indent(indent + 1);
  2589. outln("ComputedReference({})", ref.mode == Mode::Optional ? "Optional" : "Not Optional");
  2590. ref.expression->dump(indent + 2);
  2591. },
  2592. [&](MemberReference const& ref) {
  2593. print_indent(indent + 1);
  2594. outln("MemberReference({})", ref.mode == Mode::Optional ? "Optional" : "Not Optional");
  2595. ref.identifier->dump(indent + 2);
  2596. },
  2597. [&](PrivateMemberReference const& ref) {
  2598. print_indent(indent + 1);
  2599. outln("PrivateMemberReference({})", ref.mode == Mode::Optional ? "Optional" : "Not Optional");
  2600. ref.private_identifier->dump(indent + 2);
  2601. });
  2602. }
  2603. }
  2604. ThrowCompletionOr<OptionalChain::ReferenceAndValue> OptionalChain::to_reference_and_value(Interpreter& interpreter, GlobalObject& global_object) const
  2605. {
  2606. auto base_reference = TRY(m_base->to_reference(interpreter, global_object));
  2607. auto base = base_reference.is_unresolvable()
  2608. ? TRY(m_base->execute(interpreter, global_object)).release_value()
  2609. : TRY(base_reference.get_value(global_object));
  2610. for (auto& reference : m_references) {
  2611. auto is_optional = reference.visit([](auto& ref) { return ref.mode; }) == Mode::Optional;
  2612. if (is_optional && base.is_nullish())
  2613. return ReferenceAndValue { {}, js_undefined() };
  2614. auto expression = reference.visit(
  2615. [&](Call const& call) -> NonnullRefPtr<Expression> {
  2616. return create_ast_node<CallExpression>(source_range(),
  2617. create_ast_node<SyntheticReferenceExpression>(source_range(), base_reference, base),
  2618. call.arguments);
  2619. },
  2620. [&](ComputedReference const& ref) -> NonnullRefPtr<Expression> {
  2621. return create_ast_node<MemberExpression>(source_range(),
  2622. create_ast_node<SyntheticReferenceExpression>(source_range(), base_reference, base),
  2623. ref.expression,
  2624. true);
  2625. },
  2626. [&](MemberReference const& ref) -> NonnullRefPtr<Expression> {
  2627. return create_ast_node<MemberExpression>(source_range(),
  2628. create_ast_node<SyntheticReferenceExpression>(source_range(), base_reference, base),
  2629. ref.identifier,
  2630. false);
  2631. },
  2632. [&](PrivateMemberReference const& ref) -> NonnullRefPtr<Expression> {
  2633. return create_ast_node<MemberExpression>(source_range(),
  2634. create_ast_node<SyntheticReferenceExpression>(source_range(), base_reference, base),
  2635. ref.private_identifier,
  2636. false);
  2637. });
  2638. if (is<CallExpression>(*expression)) {
  2639. base_reference = JS::Reference {};
  2640. base = TRY(expression->execute(interpreter, global_object)).release_value();
  2641. } else {
  2642. base_reference = TRY(expression->to_reference(interpreter, global_object));
  2643. base = TRY(base_reference.get_value(global_object));
  2644. }
  2645. }
  2646. return ReferenceAndValue { move(base_reference), base };
  2647. }
  2648. // 13.3.9.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-optional-chaining-evaluation
  2649. Completion OptionalChain::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2650. {
  2651. InterpreterNodeScope node_scope { interpreter, *this };
  2652. return TRY(to_reference_and_value(interpreter, global_object)).value;
  2653. }
  2654. ThrowCompletionOr<JS::Reference> OptionalChain::to_reference(Interpreter& interpreter, GlobalObject& global_object) const
  2655. {
  2656. return TRY(to_reference_and_value(interpreter, global_object)).reference;
  2657. }
  2658. void MetaProperty::dump(int indent) const
  2659. {
  2660. String name;
  2661. if (m_type == MetaProperty::Type::NewTarget)
  2662. name = "new.target";
  2663. else if (m_type == MetaProperty::Type::ImportMeta)
  2664. name = "import.meta";
  2665. else
  2666. VERIFY_NOT_REACHED();
  2667. print_indent(indent);
  2668. outln("{} {}", class_name(), name);
  2669. }
  2670. // 13.3.12.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-meta-properties-runtime-semantics-evaluation
  2671. Completion MetaProperty::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2672. {
  2673. InterpreterNodeScope node_scope { interpreter, *this };
  2674. // NewTarget : new . target
  2675. if (m_type == MetaProperty::Type::NewTarget) {
  2676. // 1. Return GetNewTarget().
  2677. return interpreter.vm().get_new_target();
  2678. }
  2679. // ImportMeta : import . meta
  2680. if (m_type == MetaProperty::Type::ImportMeta) {
  2681. // 1. Let module be GetActiveScriptOrModule().
  2682. auto script_or_module = interpreter.vm().get_active_script_or_module();
  2683. // 2. Assert: module is a Source Text Module Record.
  2684. VERIFY(script_or_module.has<WeakPtr<Module>>());
  2685. VERIFY(script_or_module.get<WeakPtr<Module>>());
  2686. VERIFY(is<SourceTextModule>(*script_or_module.get<WeakPtr<Module>>()));
  2687. auto& module = static_cast<SourceTextModule&>(*script_or_module.get<WeakPtr<Module>>());
  2688. // 3. Let importMeta be module.[[ImportMeta]].
  2689. auto* import_meta = module.import_meta();
  2690. // 4. If importMeta is empty, then
  2691. if (import_meta == nullptr) {
  2692. // a. Set importMeta to OrdinaryObjectCreate(null).
  2693. import_meta = Object::create(global_object, nullptr);
  2694. // b. Let importMetaValues be HostGetImportMetaProperties(module).
  2695. auto import_meta_values = interpreter.vm().host_get_import_meta_properties(module);
  2696. // c. For each Record { [[Key]], [[Value]] } p of importMetaValues, do
  2697. for (auto& entry : import_meta_values) {
  2698. // i. Perform ! CreateDataPropertyOrThrow(importMeta, p.[[Key]], p.[[Value]]).
  2699. MUST(import_meta->create_data_property_or_throw(entry.key, entry.value));
  2700. }
  2701. // d. Perform HostFinalizeImportMeta(importMeta, module).
  2702. interpreter.vm().host_finalize_import_meta(import_meta, module);
  2703. // e. Set module.[[ImportMeta]] to importMeta.
  2704. module.set_import_meta({}, import_meta);
  2705. // f. Return importMeta.
  2706. return Value { import_meta };
  2707. }
  2708. // 5. Else,
  2709. else {
  2710. // a. Assert: Type(importMeta) is Object.
  2711. // Note: This is always true by the type.
  2712. // b. Return importMeta.
  2713. return Value { import_meta };
  2714. }
  2715. }
  2716. VERIFY_NOT_REACHED();
  2717. }
  2718. void ImportCall::dump(int indent) const
  2719. {
  2720. ASTNode::dump(indent);
  2721. print_indent(indent);
  2722. outln("(Specifier)");
  2723. m_specifier->dump(indent + 1);
  2724. if (m_options) {
  2725. outln("(Options)");
  2726. m_options->dump(indent + 1);
  2727. }
  2728. }
  2729. // 13.3.10.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-import-call-runtime-semantics-evaluation
  2730. // Also includes assertions from proposal: https://tc39.es/proposal-import-assertions/#sec-import-call-runtime-semantics-evaluation
  2731. Completion ImportCall::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2732. {
  2733. InterpreterNodeScope node_scope { interpreter, *this };
  2734. // 2.1.1.1 EvaluateImportCall ( specifierExpression [ , optionsExpression ] ), https://tc39.es/proposal-import-assertions/#sec-evaluate-import-call
  2735. // 1. Let referencingScriptOrModule be GetActiveScriptOrModule().
  2736. auto referencing_script_or_module = interpreter.vm().get_active_script_or_module();
  2737. // 2. Let specifierRef be the result of evaluating specifierExpression.
  2738. // 3. Let specifier be ? GetValue(specifierRef).
  2739. auto specifier = TRY(m_specifier->execute(interpreter, global_object));
  2740. auto options_value = js_undefined();
  2741. // 4. If optionsExpression is present, then
  2742. if (m_options) {
  2743. // a. Let optionsRef be the result of evaluating optionsExpression.
  2744. // b. Let options be ? GetValue(optionsRef).
  2745. options_value = TRY(m_options->execute(interpreter, global_object)).release_value();
  2746. }
  2747. // 5. Else,
  2748. // a. Let options be undefined.
  2749. // Note: options_value is undefined by default.
  2750. // 6. Let promiseCapability be ! NewPromiseCapability(%Promise%).
  2751. auto promise_capability = MUST(new_promise_capability(global_object, global_object.promise_constructor()));
  2752. // 7. Let specifierString be Completion(ToString(specifier)).
  2753. // 8. IfAbruptRejectPromise(specifierString, promiseCapability).
  2754. auto specifier_string = TRY_OR_REJECT_WITH_VALUE(global_object, promise_capability, specifier->to_string(global_object));
  2755. // 9. Let assertions be a new empty List.
  2756. Vector<ModuleRequest::Assertion> assertions;
  2757. // 10. If options is not undefined, then
  2758. if (!options_value.is_undefined()) {
  2759. // a. If Type(options) is not Object,
  2760. if (!options_value.is_object()) {
  2761. auto* error = TypeError::create(global_object, String::formatted(ErrorType::NotAnObject.message(), "ImportOptions"));
  2762. // i. Perform ! Call(promiseCapability.[[Reject]], undefined, « a newly created TypeError object »).
  2763. MUST(call(global_object, *promise_capability.reject, js_undefined(), error));
  2764. // ii. Return promiseCapability.[[Promise]].
  2765. return Value { promise_capability.promise };
  2766. }
  2767. // b. Let assertionsObj be Get(options, "assert").
  2768. // c. IfAbruptRejectPromise(assertionsObj, promiseCapability).
  2769. auto assertion_object = TRY_OR_REJECT_WITH_VALUE(global_object, promise_capability, options_value.get(global_object, interpreter.vm().names.assert));
  2770. // d. If assertionsObj is not undefined,
  2771. if (!assertion_object.is_undefined()) {
  2772. // i. If Type(assertionsObj) is not Object,
  2773. if (!assertion_object.is_object()) {
  2774. auto* error = TypeError::create(global_object, String::formatted(ErrorType::NotAnObject.message(), "ImportOptionsAssertions"));
  2775. // 1. Perform ! Call(promiseCapability.[[Reject]], undefined, « a newly created TypeError object »).
  2776. MUST(call(global_object, *promise_capability.reject, js_undefined(), error));
  2777. // 2. Return promiseCapability.[[Promise]].
  2778. return Value { promise_capability.promise };
  2779. }
  2780. // ii. Let keys be EnumerableOwnPropertyNames(assertionsObj, key).
  2781. // iii. IfAbruptRejectPromise(keys, promiseCapability).
  2782. auto keys = TRY_OR_REJECT_WITH_VALUE(global_object, promise_capability, assertion_object.as_object().enumerable_own_property_names(Object::PropertyKind::Key));
  2783. // iv. Let supportedAssertions be ! HostGetSupportedImportAssertions().
  2784. auto supported_assertions = interpreter.vm().host_get_supported_import_assertions();
  2785. // v. For each String key of keys,
  2786. for (auto const& key : keys) {
  2787. auto property_key = MUST(key.to_property_key(global_object));
  2788. // 1. Let value be Get(assertionsObj, key).
  2789. // 2. IfAbruptRejectPromise(value, promiseCapability).
  2790. auto value = TRY_OR_REJECT_WITH_VALUE(global_object, promise_capability, assertion_object.get(global_object, property_key));
  2791. // 3. If Type(value) is not String, then
  2792. if (!value.is_string()) {
  2793. auto* error = TypeError::create(global_object, String::formatted(ErrorType::NotAString.message(), "Import Assertion option value"));
  2794. // a. Perform ! Call(promiseCapability.[[Reject]], undefined, « a newly created TypeError object »).
  2795. MUST(call(global_object, *promise_capability.reject, js_undefined(), error));
  2796. // b. Return promiseCapability.[[Promise]].
  2797. return Value { promise_capability.promise };
  2798. }
  2799. // 4. If supportedAssertions contains key, then
  2800. if (supported_assertions.contains_slow(property_key.to_string())) {
  2801. // a. Append { [[Key]]: key, [[Value]]: value } to assertions.
  2802. assertions.empend(property_key.to_string(), value.as_string().string());
  2803. }
  2804. }
  2805. }
  2806. // e. Sort assertions by the code point order of the [[Key]] of each element. NOTE: This sorting is observable only in that hosts are prohibited from distinguishing among assertions by the order they occur in.
  2807. // Note: This is done when constructing the ModuleRequest.
  2808. }
  2809. // 11. Let moduleRequest be a new ModuleRequest Record { [[Specifier]]: specifierString, [[Assertions]]: assertions }.
  2810. ModuleRequest request { specifier_string, assertions };
  2811. // 12. Perform HostImportModuleDynamically(referencingScriptOrModule, moduleRequest, promiseCapability).
  2812. interpreter.vm().host_import_module_dynamically(referencing_script_or_module, move(request), promise_capability);
  2813. // 13. Return promiseCapability.[[Promise]].
  2814. return Value { promise_capability.promise };
  2815. }
  2816. // 13.2.3.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-literals-runtime-semantics-evaluation
  2817. Completion StringLiteral::execute(Interpreter& interpreter, GlobalObject&) const
  2818. {
  2819. InterpreterNodeScope node_scope { interpreter, *this };
  2820. // 1. Return the SV of StringLiteral as defined in 12.8.4.2.
  2821. return Value { js_string(interpreter.heap(), m_value) };
  2822. }
  2823. // 13.2.3.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-literals-runtime-semantics-evaluation
  2824. Completion NumericLiteral::execute(Interpreter& interpreter, GlobalObject&) const
  2825. {
  2826. InterpreterNodeScope node_scope { interpreter, *this };
  2827. // 1. Return the NumericValue of NumericLiteral as defined in 12.8.3.
  2828. return Value(m_value);
  2829. }
  2830. // 13.2.3.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-literals-runtime-semantics-evaluation
  2831. Completion BigIntLiteral::execute(Interpreter& interpreter, GlobalObject&) const
  2832. {
  2833. InterpreterNodeScope node_scope { interpreter, *this };
  2834. // 1. Return the NumericValue of NumericLiteral as defined in 12.8.3.
  2835. Crypto::SignedBigInteger integer;
  2836. if (m_value[0] == '0' && m_value.length() >= 3) {
  2837. if (m_value[1] == 'x' || m_value[1] == 'X') {
  2838. return Value { js_bigint(interpreter.heap(), Crypto::SignedBigInteger::from_base(16, m_value.substring(2, m_value.length() - 3))) };
  2839. } else if (m_value[1] == 'o' || m_value[1] == 'O') {
  2840. return Value { js_bigint(interpreter.heap(), Crypto::SignedBigInteger::from_base(8, m_value.substring(2, m_value.length() - 3))) };
  2841. } else if (m_value[1] == 'b' || m_value[1] == 'B') {
  2842. return Value { js_bigint(interpreter.heap(), Crypto::SignedBigInteger::from_base(2, m_value.substring(2, m_value.length() - 3))) };
  2843. }
  2844. }
  2845. return Value { js_bigint(interpreter.heap(), Crypto::SignedBigInteger::from_base(10, m_value.substring(0, m_value.length() - 1))) };
  2846. }
  2847. // 13.2.3.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-literals-runtime-semantics-evaluation
  2848. Completion BooleanLiteral::execute(Interpreter& interpreter, GlobalObject&) const
  2849. {
  2850. InterpreterNodeScope node_scope { interpreter, *this };
  2851. // 1. If BooleanLiteral is the token false, return false.
  2852. // 2. If BooleanLiteral is the token true, return true.
  2853. return Value(m_value);
  2854. }
  2855. // 13.2.3.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-literals-runtime-semantics-evaluation
  2856. Completion NullLiteral::execute(Interpreter& interpreter, GlobalObject&) const
  2857. {
  2858. InterpreterNodeScope node_scope { interpreter, *this };
  2859. // 1. Return null.
  2860. return js_null();
  2861. }
  2862. void RegExpLiteral::dump(int indent) const
  2863. {
  2864. print_indent(indent);
  2865. outln("{} (/{}/{})", class_name(), pattern(), flags());
  2866. }
  2867. // 13.2.7.3 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-regular-expression-literals-runtime-semantics-evaluation
  2868. Completion RegExpLiteral::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2869. {
  2870. InterpreterNodeScope node_scope { interpreter, *this };
  2871. // 1. Let pattern be CodePointsToString(BodyText of RegularExpressionLiteral).
  2872. auto pattern = this->pattern();
  2873. // 2. Let flags be CodePointsToString(FlagText of RegularExpressionLiteral).
  2874. auto flags = this->flags();
  2875. // 3. Return ! RegExpCreate(pattern, flags).
  2876. Regex<ECMA262> regex(parsed_regex(), parsed_pattern(), parsed_flags());
  2877. return Value { RegExpObject::create(global_object, move(regex), move(pattern), move(flags)) };
  2878. }
  2879. void ArrayExpression::dump(int indent) const
  2880. {
  2881. ASTNode::dump(indent);
  2882. for (auto& element : m_elements) {
  2883. if (element) {
  2884. element->dump(indent + 1);
  2885. } else {
  2886. print_indent(indent + 1);
  2887. outln("<empty>");
  2888. }
  2889. }
  2890. }
  2891. // 13.2.4.2 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-array-initializer-runtime-semantics-evaluation
  2892. Completion ArrayExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2893. {
  2894. InterpreterNodeScope node_scope { interpreter, *this };
  2895. // 1. Let array be ! ArrayCreate(0).
  2896. auto* array = MUST(Array::create(global_object, 0));
  2897. // 2. Perform ? ArrayAccumulation of ElementList with arguments array and 0.
  2898. array->indexed_properties();
  2899. size_t index = 0;
  2900. for (auto& element : m_elements) {
  2901. auto value = Value();
  2902. if (element) {
  2903. value = TRY(element->execute(interpreter, global_object)).release_value();
  2904. if (is<SpreadExpression>(*element)) {
  2905. (void)TRY(get_iterator_values(global_object, value, [&](Value iterator_value) -> Optional<Completion> {
  2906. array->indexed_properties().put(index++, iterator_value, default_attributes);
  2907. return {};
  2908. }));
  2909. continue;
  2910. }
  2911. }
  2912. array->indexed_properties().put(index++, value, default_attributes);
  2913. }
  2914. // 3. Return array.
  2915. return Value { array };
  2916. }
  2917. void TemplateLiteral::dump(int indent) const
  2918. {
  2919. ASTNode::dump(indent);
  2920. for (auto& expression : m_expressions)
  2921. expression.dump(indent + 1);
  2922. }
  2923. // 13.2.8.5 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-template-literals-runtime-semantics-evaluation
  2924. Completion TemplateLiteral::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2925. {
  2926. InterpreterNodeScope node_scope { interpreter, *this };
  2927. StringBuilder string_builder;
  2928. for (auto& expression : m_expressions) {
  2929. // 1. Let head be the TV of TemplateHead as defined in 12.8.6.
  2930. // 2. Let subRef be the result of evaluating Expression.
  2931. // 3. Let sub be ? GetValue(subRef).
  2932. auto sub = TRY(expression.execute(interpreter, global_object)).release_value();
  2933. // 4. Let middle be ? ToString(sub).
  2934. auto string = TRY(sub.to_string(global_object));
  2935. string_builder.append(string);
  2936. // 5. Let tail be the result of evaluating TemplateSpans.
  2937. // 6. ReturnIfAbrupt(tail).
  2938. }
  2939. // 7. Return the string-concatenation of head, middle, and tail.
  2940. return Value { js_string(interpreter.heap(), string_builder.build()) };
  2941. }
  2942. void TaggedTemplateLiteral::dump(int indent) const
  2943. {
  2944. ASTNode::dump(indent);
  2945. print_indent(indent + 1);
  2946. outln("(Tag)");
  2947. m_tag->dump(indent + 2);
  2948. print_indent(indent + 1);
  2949. outln("(Template Literal)");
  2950. m_template_literal->dump(indent + 2);
  2951. }
  2952. // 13.3.11.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-tagged-templates-runtime-semantics-evaluation
  2953. Completion TaggedTemplateLiteral::execute(Interpreter& interpreter, GlobalObject& global_object) const
  2954. {
  2955. InterpreterNodeScope node_scope { interpreter, *this };
  2956. auto& vm = interpreter.vm();
  2957. auto tag = TRY(m_tag->execute(interpreter, global_object)).release_value();
  2958. auto& expressions = m_template_literal->expressions();
  2959. auto* strings = MUST(Array::create(global_object, 0));
  2960. MarkedVector<Value> arguments(vm.heap());
  2961. arguments.append(strings);
  2962. for (size_t i = 0; i < expressions.size(); ++i) {
  2963. auto value = TRY(expressions[i].execute(interpreter, global_object)).release_value();
  2964. // tag`${foo}` -> "", foo, "" -> tag(["", ""], foo)
  2965. // tag`foo${bar}baz${qux}` -> "foo", bar, "baz", qux, "" -> tag(["foo", "baz", ""], bar, qux)
  2966. if (i % 2 == 0) {
  2967. strings->indexed_properties().append(value);
  2968. } else {
  2969. arguments.append(value);
  2970. }
  2971. }
  2972. auto* raw_strings = MUST(Array::create(global_object, 0));
  2973. for (auto& raw_string : m_template_literal->raw_strings()) {
  2974. auto value = TRY(raw_string.execute(interpreter, global_object)).release_value();
  2975. raw_strings->indexed_properties().append(value);
  2976. }
  2977. strings->define_direct_property(vm.names.raw, raw_strings, 0);
  2978. return call(global_object, tag, js_undefined(), move(arguments));
  2979. }
  2980. void TryStatement::dump(int indent) const
  2981. {
  2982. ASTNode::dump(indent);
  2983. print_indent(indent);
  2984. outln("(Block)");
  2985. block().dump(indent + 1);
  2986. if (handler()) {
  2987. print_indent(indent);
  2988. outln("(Handler)");
  2989. handler()->dump(indent + 1);
  2990. }
  2991. if (finalizer()) {
  2992. print_indent(indent);
  2993. outln("(Finalizer)");
  2994. finalizer()->dump(indent + 1);
  2995. }
  2996. }
  2997. void CatchClause::dump(int indent) const
  2998. {
  2999. print_indent(indent);
  3000. m_parameter.visit(
  3001. [&](FlyString const& parameter) {
  3002. if (parameter.is_null())
  3003. outln("CatchClause");
  3004. else
  3005. outln("CatchClause ({})", parameter);
  3006. },
  3007. [&](NonnullRefPtr<BindingPattern> const& pattern) {
  3008. outln("CatchClause");
  3009. print_indent(indent);
  3010. outln("(Parameter)");
  3011. pattern->dump(indent + 2);
  3012. });
  3013. body().dump(indent + 1);
  3014. }
  3015. void ThrowStatement::dump(int indent) const
  3016. {
  3017. ASTNode::dump(indent);
  3018. argument().dump(indent + 1);
  3019. }
  3020. // 14.15.3 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-try-statement-runtime-semantics-evaluation
  3021. Completion TryStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  3022. {
  3023. InterpreterNodeScope node_scope { interpreter, *this };
  3024. auto& vm = interpreter.vm();
  3025. // 14.15.2 Runtime Semantics: CatchClauseEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-catchclauseevaluation
  3026. auto catch_clause_evaluation = [&](Value thrown_value) {
  3027. // 1. Let oldEnv be the running execution context's LexicalEnvironment.
  3028. auto* old_environment = vm.running_execution_context().lexical_environment;
  3029. // 2. Let catchEnv be NewDeclarativeEnvironment(oldEnv).
  3030. auto* catch_environment = new_declarative_environment(*old_environment);
  3031. m_handler->parameter().visit(
  3032. [&](FlyString const& parameter) {
  3033. // 3. For each element argName of the BoundNames of CatchParameter, do
  3034. // a. Perform ! catchEnv.CreateMutableBinding(argName, false).
  3035. MUST(catch_environment->create_mutable_binding(global_object, parameter, false));
  3036. },
  3037. [&](NonnullRefPtr<BindingPattern> const& pattern) {
  3038. // 3. For each element argName of the BoundNames of CatchParameter, do
  3039. pattern->for_each_bound_name([&](auto& name) {
  3040. // a. Perform ! catchEnv.CreateMutableBinding(argName, false).
  3041. MUST(catch_environment->create_mutable_binding(global_object, name, false));
  3042. });
  3043. });
  3044. // 4. Set the running execution context's LexicalEnvironment to catchEnv.
  3045. vm.running_execution_context().lexical_environment = catch_environment;
  3046. // 5. Let status be Completion(BindingInitialization of CatchParameter with arguments thrownValue and catchEnv).
  3047. auto status = m_handler->parameter().visit(
  3048. [&](FlyString const& parameter) {
  3049. return catch_environment->initialize_binding(global_object, parameter, thrown_value);
  3050. },
  3051. [&](NonnullRefPtr<BindingPattern> const& pattern) {
  3052. return vm.binding_initialization(pattern, thrown_value, catch_environment, global_object);
  3053. });
  3054. // 6. If status is an abrupt completion, then
  3055. if (status.is_error()) {
  3056. // a. Set the running execution context's LexicalEnvironment to oldEnv.
  3057. vm.running_execution_context().lexical_environment = old_environment;
  3058. // b. Return ? status.
  3059. return status.release_error();
  3060. }
  3061. // 7. Let B be the result of evaluating Block.
  3062. auto handler_result = m_handler->body().execute(interpreter, global_object);
  3063. // 8. Set the running execution context's LexicalEnvironment to oldEnv.
  3064. vm.running_execution_context().lexical_environment = old_environment;
  3065. // 9. Return ? B.
  3066. return handler_result;
  3067. };
  3068. Completion result;
  3069. // 1. Let B be the result of evaluating Block.
  3070. auto block_result = m_block->execute(interpreter, global_object);
  3071. // TryStatement : try Block Catch
  3072. // TryStatement : try Block Catch Finally
  3073. if (m_handler) {
  3074. // 2. If B.[[Type]] is throw, let C be Completion(CatchClauseEvaluation of Catch with argument B.[[Value]]).
  3075. if (block_result.type() == Completion::Type::Throw)
  3076. result = catch_clause_evaluation(*block_result.value());
  3077. // 3. Else, let C be B.
  3078. else
  3079. result = move(block_result);
  3080. } else {
  3081. // TryStatement : try Block Finally
  3082. // This variant doesn't have C & uses B in the finalizer step.
  3083. result = move(block_result);
  3084. }
  3085. // TryStatement : try Block Finally
  3086. // TryStatement : try Block Catch Finally
  3087. if (m_finalizer) {
  3088. // 4. Let F be the result of evaluating Finally.
  3089. auto finalizer_result = m_finalizer->execute(interpreter, global_object);
  3090. // 5. If F.[[Type]] is normal, set F to C.
  3091. if (finalizer_result.type() == Completion::Type::Normal)
  3092. finalizer_result = move(result);
  3093. // 6. Return ? UpdateEmpty(F, undefined).
  3094. return finalizer_result.update_empty(js_undefined());
  3095. }
  3096. // 4. Return ? UpdateEmpty(C, undefined).
  3097. return result.update_empty(js_undefined());
  3098. }
  3099. Completion CatchClause::execute(Interpreter& interpreter, GlobalObject&) const
  3100. {
  3101. InterpreterNodeScope node_scope { interpreter, *this };
  3102. // NOTE: CatchClause execution is handled by TryStatement.
  3103. VERIFY_NOT_REACHED();
  3104. return {};
  3105. }
  3106. // 14.14.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-throw-statement-runtime-semantics-evaluation
  3107. Completion ThrowStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  3108. {
  3109. InterpreterNodeScope node_scope { interpreter, *this };
  3110. // 1. Let exprRef be the result of evaluating Expression.
  3111. // 2. Let exprValue be ? GetValue(exprRef).
  3112. auto value = TRY(m_argument->execute(interpreter, global_object)).release_value();
  3113. // 3. Return ThrowCompletion(exprValue).
  3114. return throw_completion(value);
  3115. }
  3116. // 14.1.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-statement-semantics-runtime-semantics-evaluation
  3117. // BreakableStatement : SwitchStatement
  3118. Completion SwitchStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  3119. {
  3120. // 1. Let newLabelSet be a new empty List.
  3121. // 2. Return ? LabelledEvaluation of this BreakableStatement with argument newLabelSet.
  3122. return labelled_evaluation(interpreter, global_object, *this, {});
  3123. }
  3124. // NOTE: Since we don't have the 'BreakableStatement' from the spec as a separate ASTNode that wraps IterationStatement / SwitchStatement,
  3125. // execute() needs to take care of LabelledEvaluation, which in turn calls execute_impl().
  3126. // 14.12.4 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-switch-statement-runtime-semantics-evaluation
  3127. Completion SwitchStatement::execute_impl(Interpreter& interpreter, GlobalObject& global_object) const
  3128. {
  3129. InterpreterNodeScope node_scope { interpreter, *this };
  3130. auto& vm = interpreter.vm();
  3131. // 14.12.3 CaseClauseIsSelected ( C, input ), https://tc39.es/ecma262/#sec-runtime-semantics-caseclauseisselected
  3132. auto case_clause_is_selected = [&](auto const& case_clause, auto input) -> ThrowCompletionOr<bool> {
  3133. // 1. Assert: C is an instance of the production CaseClause : case Expression : StatementList[opt] .
  3134. VERIFY(case_clause.test());
  3135. // 2. Let exprRef be the result of evaluating the Expression of C.
  3136. // 3. Let clauseSelector be ? GetValue(exprRef).
  3137. auto clause_selector = TRY(case_clause.test()->execute(interpreter, global_object)).release_value();
  3138. // 4. Return IsStrictlyEqual(input, clauseSelector).
  3139. return is_strictly_equal(input, clause_selector);
  3140. };
  3141. // 14.12.2 Runtime Semantics: CaseBlockEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-caseblockevaluation
  3142. auto case_block_evaluation = [&](auto input) -> Completion {
  3143. // CaseBlock : { }
  3144. if (m_cases.is_empty()) {
  3145. // 1. Return undefined.
  3146. return js_undefined();
  3147. }
  3148. NonnullRefPtrVector<SwitchCase> case_clauses_1;
  3149. NonnullRefPtrVector<SwitchCase> case_clauses_2;
  3150. RefPtr<SwitchCase> default_clause;
  3151. for (auto const& switch_case : m_cases) {
  3152. if (!switch_case.test())
  3153. default_clause = switch_case;
  3154. else if (!default_clause)
  3155. case_clauses_1.append(switch_case);
  3156. else
  3157. case_clauses_2.append(switch_case);
  3158. }
  3159. // CaseBlock : { CaseClauses }
  3160. if (!default_clause) {
  3161. VERIFY(!case_clauses_1.is_empty());
  3162. VERIFY(case_clauses_2.is_empty());
  3163. // 1. Let V be undefined.
  3164. auto last_value = js_undefined();
  3165. // 2. Let A be the List of CaseClause items in CaseClauses, in source text order.
  3166. // NOTE: A is case_clauses_1.
  3167. // 3. Let found be false.
  3168. auto found = false;
  3169. // 4. For each CaseClause C of A, do
  3170. for (auto const& case_clause : case_clauses_1) {
  3171. // a. If found is false, then
  3172. if (!found) {
  3173. // i. Set found to ? CaseClauseIsSelected(C, input).
  3174. found = TRY(case_clause_is_selected(case_clause, input));
  3175. }
  3176. // b. If found is true, then
  3177. if (found) {
  3178. // i. Let R be the result of evaluating C.
  3179. auto result = case_clause.evaluate_statements(interpreter, global_object);
  3180. // ii. If R.[[Value]] is not empty, set V to R.[[Value]].
  3181. if (result.value().has_value())
  3182. last_value = *result.value();
  3183. // iii. If R is an abrupt completion, return ? UpdateEmpty(R, V).
  3184. if (result.is_abrupt())
  3185. return result.update_empty(last_value);
  3186. }
  3187. }
  3188. // 5. Return V.
  3189. return last_value;
  3190. }
  3191. // CaseBlock : { CaseClauses[opt] DefaultClause CaseClauses[opt] }
  3192. else {
  3193. // 1. Let V be undefined.
  3194. auto last_value = js_undefined();
  3195. // 2. If the first CaseClauses is present, then
  3196. // a. Let A be the List of CaseClause items in the first CaseClauses, in source text order.
  3197. // 3. Else,
  3198. // a. Let A be a new empty List.
  3199. // NOTE: A is case_clauses_1.
  3200. // 4. Let found be false.
  3201. auto found = false;
  3202. // 5. For each CaseClause C of A, do
  3203. for (auto const& case_clause : case_clauses_1) {
  3204. // a. If found is false, then
  3205. if (!found) {
  3206. // i. Set found to ? CaseClauseIsSelected(C, input).
  3207. found = TRY(case_clause_is_selected(case_clause, input));
  3208. }
  3209. // b. If found is true, then
  3210. if (found) {
  3211. // i. Let R be the result of evaluating C.
  3212. auto result = case_clause.evaluate_statements(interpreter, global_object);
  3213. // ii. If R.[[Value]] is not empty, set V to R.[[Value]].
  3214. if (result.value().has_value())
  3215. last_value = *result.value();
  3216. // iii. If R is an abrupt completion, return ? UpdateEmpty(R, V).
  3217. if (result.is_abrupt())
  3218. return result.update_empty(last_value);
  3219. }
  3220. }
  3221. // 6. Let foundInB be false.
  3222. auto found_in_b = false;
  3223. // 7. If the second CaseClauses is present, then
  3224. // a. Let B be the List of CaseClause items in the second CaseClauses, in source text order.
  3225. // 8. Else,
  3226. // a. Let B be a new empty List.
  3227. // NOTE: B is case_clauses_2.
  3228. // 9. If found is false, then
  3229. if (!found) {
  3230. // a. For each CaseClause C of B, do
  3231. for (auto const& case_clause : case_clauses_2) {
  3232. // i. If foundInB is false, then
  3233. if (!found_in_b) {
  3234. // 1. Set foundInB to ? CaseClauseIsSelected(C, input).
  3235. found_in_b = TRY(case_clause_is_selected(case_clause, input));
  3236. }
  3237. // ii. If foundInB is true, then
  3238. if (found_in_b) {
  3239. // 1. Let R be the result of evaluating CaseClause C.
  3240. auto result = case_clause.evaluate_statements(interpreter, global_object);
  3241. // 2. If R.[[Value]] is not empty, set V to R.[[Value]].
  3242. if (result.value().has_value())
  3243. last_value = *result.value();
  3244. // 3. If R is an abrupt completion, return ? UpdateEmpty(R, V).
  3245. if (result.is_abrupt())
  3246. return result.update_empty(last_value);
  3247. }
  3248. }
  3249. }
  3250. // 10. If foundInB is true, return V.
  3251. if (found_in_b)
  3252. return last_value;
  3253. // 11. Let R be the result of evaluating DefaultClause.
  3254. auto result = default_clause->evaluate_statements(interpreter, global_object);
  3255. // 12. If R.[[Value]] is not empty, set V to R.[[Value]].
  3256. if (result.value().has_value())
  3257. last_value = *result.value();
  3258. // 13. If R is an abrupt completion, return ? UpdateEmpty(R, V).
  3259. if (result.is_abrupt())
  3260. return result.update_empty(last_value);
  3261. // 14. NOTE: The following is another complete iteration of the second CaseClauses.
  3262. // 15. For each CaseClause C of B, do
  3263. for (auto const& case_clause : case_clauses_2) {
  3264. // a. Let R be the result of evaluating CaseClause C.
  3265. result = case_clause.evaluate_statements(interpreter, global_object);
  3266. // b. If R.[[Value]] is not empty, set V to R.[[Value]].
  3267. if (result.value().has_value())
  3268. last_value = *result.value();
  3269. // c. If R is an abrupt completion, return ? UpdateEmpty(R, V).
  3270. if (result.is_abrupt())
  3271. return result.update_empty(last_value);
  3272. }
  3273. // 16. Return V.
  3274. return last_value;
  3275. }
  3276. VERIFY_NOT_REACHED();
  3277. };
  3278. // SwitchStatement : switch ( Expression ) CaseBlock
  3279. // 1. Let exprRef be the result of evaluating Expression.
  3280. // 2. Let switchValue be ? GetValue(exprRef).
  3281. auto switch_value = TRY(m_discriminant->execute(interpreter, global_object)).release_value();
  3282. // 3. Let oldEnv be the running execution context's LexicalEnvironment.
  3283. auto* old_environment = interpreter.lexical_environment();
  3284. // Optimization: Avoid creating a lexical environment if there are no lexical declarations.
  3285. if (has_lexical_declarations()) {
  3286. // 4. Let blockEnv be NewDeclarativeEnvironment(oldEnv).
  3287. auto* block_environment = new_declarative_environment(*old_environment);
  3288. // 5. Perform BlockDeclarationInstantiation(CaseBlock, blockEnv).
  3289. block_declaration_instantiation(global_object, block_environment);
  3290. // 6. Set the running execution context's LexicalEnvironment to blockEnv.
  3291. vm.running_execution_context().lexical_environment = block_environment;
  3292. }
  3293. // 7. Let R be Completion(CaseBlockEvaluation of CaseBlock with argument switchValue).
  3294. auto result = case_block_evaluation(switch_value);
  3295. // 8. Set the running execution context's LexicalEnvironment to oldEnv.
  3296. vm.running_execution_context().lexical_environment = old_environment;
  3297. // 9. Return R.
  3298. return result;
  3299. }
  3300. Completion SwitchCase::execute(Interpreter& interpreter, GlobalObject&) const
  3301. {
  3302. InterpreterNodeScope node_scope { interpreter, *this };
  3303. // NOTE: SwitchCase execution is handled by SwitchStatement.
  3304. VERIFY_NOT_REACHED();
  3305. return {};
  3306. }
  3307. // 14.9.2 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-break-statement-runtime-semantics-evaluation
  3308. Completion BreakStatement::execute(Interpreter& interpreter, GlobalObject&) const
  3309. {
  3310. InterpreterNodeScope node_scope { interpreter, *this };
  3311. // BreakStatement : break ;
  3312. if (m_target_label.is_null()) {
  3313. // 1. Return Completion Record { [[Type]]: break, [[Value]]: empty, [[Target]]: empty }.
  3314. return { Completion::Type::Break, {}, {} };
  3315. }
  3316. // BreakStatement : break LabelIdentifier ;
  3317. // 1. Let label be the StringValue of LabelIdentifier.
  3318. // 2. Return Completion Record { [[Type]]: break, [[Value]]: empty, [[Target]]: label }.
  3319. return { Completion::Type::Break, {}, m_target_label };
  3320. }
  3321. // 14.8.2 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-continue-statement-runtime-semantics-evaluation
  3322. Completion ContinueStatement::execute(Interpreter& interpreter, GlobalObject&) const
  3323. {
  3324. InterpreterNodeScope node_scope { interpreter, *this };
  3325. // ContinueStatement : continue ;
  3326. if (m_target_label.is_null()) {
  3327. // 1. Return Completion Record { [[Type]]: continue, [[Value]]: empty, [[Target]]: empty }.
  3328. return { Completion::Type::Continue, {}, {} };
  3329. }
  3330. // ContinueStatement : continue LabelIdentifier ;
  3331. // 1. Let label be the StringValue of LabelIdentifier.
  3332. // 2. Return Completion Record { [[Type]]: continue, [[Value]]: empty, [[Target]]: label }.
  3333. return { Completion::Type::Continue, {}, m_target_label };
  3334. }
  3335. void SwitchStatement::dump(int indent) const
  3336. {
  3337. ASTNode::dump(indent);
  3338. m_discriminant->dump(indent + 1);
  3339. for (auto& switch_case : m_cases) {
  3340. switch_case.dump(indent + 1);
  3341. }
  3342. }
  3343. void SwitchCase::dump(int indent) const
  3344. {
  3345. print_indent(indent + 1);
  3346. if (m_test) {
  3347. outln("(Test)");
  3348. m_test->dump(indent + 2);
  3349. } else {
  3350. outln("(Default)");
  3351. }
  3352. print_indent(indent + 1);
  3353. outln("(Consequent)");
  3354. ScopeNode::dump(indent + 2);
  3355. }
  3356. // 13.14.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-conditional-operator-runtime-semantics-evaluation
  3357. Completion ConditionalExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  3358. {
  3359. InterpreterNodeScope node_scope { interpreter, *this };
  3360. // 1. Let lref be the result of evaluating ShortCircuitExpression.
  3361. // 2. Let lval be ToBoolean(? GetValue(lref)).
  3362. auto test_result = TRY(m_test->execute(interpreter, global_object)).release_value();
  3363. // 3. If lval is true, then
  3364. if (test_result.to_boolean()) {
  3365. // a. Let trueRef be the result of evaluating the first AssignmentExpression.
  3366. // b. Return ? GetValue(trueRef).
  3367. return m_consequent->execute(interpreter, global_object);
  3368. }
  3369. // 4. Else,
  3370. else {
  3371. // a. Let falseRef be the result of evaluating the second AssignmentExpression.
  3372. // b. Return ? GetValue(falseRef).
  3373. return m_alternate->execute(interpreter, global_object);
  3374. }
  3375. }
  3376. void ConditionalExpression::dump(int indent) const
  3377. {
  3378. ASTNode::dump(indent);
  3379. print_indent(indent + 1);
  3380. outln("(Test)");
  3381. m_test->dump(indent + 2);
  3382. print_indent(indent + 1);
  3383. outln("(Consequent)");
  3384. m_consequent->dump(indent + 2);
  3385. print_indent(indent + 1);
  3386. outln("(Alternate)");
  3387. m_alternate->dump(indent + 2);
  3388. }
  3389. void SequenceExpression::dump(int indent) const
  3390. {
  3391. ASTNode::dump(indent);
  3392. for (auto& expression : m_expressions)
  3393. expression.dump(indent + 1);
  3394. }
  3395. // 13.16.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-comma-operator-runtime-semantics-evaluation
  3396. Completion SequenceExpression::execute(Interpreter& interpreter, GlobalObject& global_object) const
  3397. {
  3398. InterpreterNodeScope node_scope { interpreter, *this };
  3399. // NOTE: Not sure why the last node is an AssignmentExpression in the spec :yakfused:
  3400. // 1. Let lref be the result of evaluating Expression.
  3401. // 2. Perform ? GetValue(lref).
  3402. // 3. Let rref be the result of evaluating AssignmentExpression.
  3403. // 4. Return ? GetValue(rref).
  3404. Value last_value;
  3405. for (auto const& expression : m_expressions)
  3406. last_value = TRY(expression.execute(interpreter, global_object)).release_value();
  3407. return { move(last_value) };
  3408. }
  3409. // 14.16.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-debugger-statement-runtime-semantics-evaluation
  3410. Completion DebuggerStatement::execute(Interpreter& interpreter, GlobalObject&) const
  3411. {
  3412. InterpreterNodeScope node_scope { interpreter, *this };
  3413. Completion result;
  3414. // 1. If an implementation-defined debugging facility is available and enabled, then
  3415. if (false) {
  3416. // a. Perform an implementation-defined debugging action.
  3417. // b. Return a new implementation-defined Completion Record.
  3418. VERIFY_NOT_REACHED();
  3419. }
  3420. // 2. Else,
  3421. else {
  3422. // a. Return empty.
  3423. return Optional<Value> {};
  3424. }
  3425. }
  3426. ThrowCompletionOr<void> ScopeNode::for_each_lexically_scoped_declaration(ThrowCompletionOrVoidCallback<Declaration const&>&& callback) const
  3427. {
  3428. for (auto& declaration : m_lexical_declarations)
  3429. TRY(callback(declaration));
  3430. return {};
  3431. }
  3432. ThrowCompletionOr<void> ScopeNode::for_each_lexically_declared_name(ThrowCompletionOrVoidCallback<FlyString const&>&& callback) const
  3433. {
  3434. for (auto const& declaration : m_lexical_declarations) {
  3435. TRY(declaration.for_each_bound_name([&](auto const& name) {
  3436. return callback(name);
  3437. }));
  3438. }
  3439. return {};
  3440. }
  3441. ThrowCompletionOr<void> ScopeNode::for_each_var_declared_name(ThrowCompletionOrVoidCallback<FlyString const&>&& callback) const
  3442. {
  3443. for (auto& declaration : m_var_declarations) {
  3444. TRY(declaration.for_each_bound_name([&](auto const& name) {
  3445. return callback(name);
  3446. }));
  3447. }
  3448. return {};
  3449. }
  3450. ThrowCompletionOr<void> ScopeNode::for_each_var_function_declaration_in_reverse_order(ThrowCompletionOrVoidCallback<FunctionDeclaration const&>&& callback) const
  3451. {
  3452. for (ssize_t i = m_var_declarations.size() - 1; i >= 0; i--) {
  3453. auto& declaration = m_var_declarations[i];
  3454. if (is<FunctionDeclaration>(declaration))
  3455. TRY(callback(static_cast<FunctionDeclaration const&>(declaration)));
  3456. }
  3457. return {};
  3458. }
  3459. ThrowCompletionOr<void> ScopeNode::for_each_var_scoped_variable_declaration(ThrowCompletionOrVoidCallback<VariableDeclaration const&>&& callback) const
  3460. {
  3461. for (auto& declaration : m_var_declarations) {
  3462. if (!is<FunctionDeclaration>(declaration)) {
  3463. VERIFY(is<VariableDeclaration>(declaration));
  3464. TRY(callback(static_cast<VariableDeclaration const&>(declaration)));
  3465. }
  3466. }
  3467. return {};
  3468. }
  3469. ThrowCompletionOr<void> ScopeNode::for_each_function_hoistable_with_annexB_extension(ThrowCompletionOrVoidCallback<FunctionDeclaration&>&& callback) const
  3470. {
  3471. for (auto& function : m_functions_hoistable_with_annexB_extension) {
  3472. // We need const_cast here since it might have to set a property on function declaration.
  3473. TRY(callback(const_cast<FunctionDeclaration&>(function)));
  3474. }
  3475. return {};
  3476. }
  3477. void ScopeNode::add_lexical_declaration(NonnullRefPtr<Declaration> declaration)
  3478. {
  3479. m_lexical_declarations.append(move(declaration));
  3480. }
  3481. void ScopeNode::add_var_scoped_declaration(NonnullRefPtr<Declaration> declaration)
  3482. {
  3483. m_var_declarations.append(move(declaration));
  3484. }
  3485. void ScopeNode::add_hoisted_function(NonnullRefPtr<FunctionDeclaration> declaration)
  3486. {
  3487. m_functions_hoistable_with_annexB_extension.append(move(declaration));
  3488. }
  3489. // 16.2.1.11 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-module-semantics-runtime-semantics-evaluation
  3490. Completion ImportStatement::execute(Interpreter& interpreter, GlobalObject&) const
  3491. {
  3492. InterpreterNodeScope node_scope { interpreter, *this };
  3493. // 1. Return empty.
  3494. return Optional<Value> {};
  3495. }
  3496. FlyString ExportStatement::local_name_for_default = "*default*";
  3497. // 16.2.3.7 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-exports-runtime-semantics-evaluation
  3498. Completion ExportStatement::execute(Interpreter& interpreter, GlobalObject& global_object) const
  3499. {
  3500. InterpreterNodeScope node_scope { interpreter, *this };
  3501. if (!is_default_export()) {
  3502. if (m_statement) {
  3503. // 1. Return the result of evaluating <Thing>.
  3504. return m_statement->execute(interpreter, global_object);
  3505. }
  3506. // 1. Return empty.
  3507. return Optional<Value> {};
  3508. }
  3509. VERIFY(m_statement);
  3510. // ExportDeclaration : export default HoistableDeclaration
  3511. if (is<FunctionDeclaration>(*m_statement)) {
  3512. // 1. Return the result of evaluating HoistableDeclaration.
  3513. return m_statement->execute(interpreter, global_object);
  3514. }
  3515. // ExportDeclaration : export default ClassDeclaration
  3516. // ClassDeclaration: class BindingIdentifier[?Yield, ?Await] ClassTail[?Yield, ?Await]
  3517. if (is<ClassDeclaration>(*m_statement)) {
  3518. auto const& class_declaration = static_cast<ClassDeclaration const&>(*m_statement);
  3519. // 1. Let value be ? BindingClassDeclarationEvaluation of ClassDeclaration.
  3520. auto value = TRY(binding_class_declaration_evaluation(interpreter, global_object, class_declaration.m_class_expression));
  3521. // 2. Let className be the sole element of BoundNames of ClassDeclaration.
  3522. // 3. If className is "*default*", then
  3523. // Note: We never go into step 3. since a ClassDeclaration always has a name and "*default*" is not a class name.
  3524. (void)value;
  3525. // 4. Return empty.
  3526. return Optional<Value> {};
  3527. }
  3528. // ExportDeclaration : export default ClassDeclaration
  3529. // ClassDeclaration: [+Default] class ClassTail [?Yield, ?Await]
  3530. if (is<ClassExpression>(*m_statement)) {
  3531. auto& class_expression = static_cast<ClassExpression const&>(*m_statement);
  3532. // 1. Let value be ? BindingClassDeclarationEvaluation of ClassDeclaration.
  3533. auto value = TRY(binding_class_declaration_evaluation(interpreter, global_object, class_expression));
  3534. // 2. Let className be the sole element of BoundNames of ClassDeclaration.
  3535. // 3. If className is "*default*", then
  3536. if (!class_expression.has_name()) {
  3537. // Note: This can only occur if the class does not have a name since "*default*" is normally not valid.
  3538. // a. Let env be the running execution context's LexicalEnvironment.
  3539. auto* env = interpreter.lexical_environment();
  3540. // b. Perform ? InitializeBoundName("*default*", value, env).
  3541. TRY(initialize_bound_name(global_object, ExportStatement::local_name_for_default, value, env));
  3542. }
  3543. // 4. Return empty.
  3544. return Optional<Value> {};
  3545. }
  3546. // ExportDeclaration : export default AssignmentExpression ;
  3547. // 1. If IsAnonymousFunctionDefinition(AssignmentExpression) is true, then
  3548. // a. Let value be ? NamedEvaluation of AssignmentExpression with argument "default".
  3549. // 2. Else,
  3550. // a. Let rhs be the result of evaluating AssignmentExpression.
  3551. // b. Let value be ? GetValue(rhs).
  3552. auto value = TRY(interpreter.vm().named_evaluation_if_anonymous_function(global_object, *m_statement, "default"));
  3553. // 3. Let env be the running execution context's LexicalEnvironment.
  3554. auto* env = interpreter.lexical_environment();
  3555. // 4. Perform ? InitializeBoundName("*default*", value, env).
  3556. TRY(initialize_bound_name(global_object, ExportStatement::local_name_for_default, value, env));
  3557. // 5. Return empty.
  3558. return Optional<Value> {};
  3559. }
  3560. static void dump_assert_clauses(ModuleRequest const& request)
  3561. {
  3562. if (!request.assertions.is_empty()) {
  3563. out("[ ");
  3564. for (auto& assertion : request.assertions)
  3565. out("{}: {}, ", assertion.key, assertion.value);
  3566. out(" ]");
  3567. }
  3568. }
  3569. void ExportStatement::dump(int indent) const
  3570. {
  3571. ASTNode::dump(indent);
  3572. print_indent(indent + 1);
  3573. outln("(ExportEntries)");
  3574. auto string_or_null = [](String const& string) -> String {
  3575. if (string.is_empty()) {
  3576. return "null";
  3577. }
  3578. return String::formatted("\"{}\"", string);
  3579. };
  3580. for (auto& entry : m_entries) {
  3581. print_indent(indent + 2);
  3582. out("ExportName: {}, ImportName: {}, LocalName: {}, ModuleRequest: ",
  3583. string_or_null(entry.export_name),
  3584. entry.is_module_request() ? string_or_null(entry.local_or_import_name) : "null",
  3585. entry.is_module_request() ? "null" : string_or_null(entry.local_or_import_name));
  3586. if (entry.is_module_request()) {
  3587. out("{}", entry.m_module_request->module_specifier);
  3588. dump_assert_clauses(*entry.m_module_request);
  3589. outln();
  3590. } else {
  3591. outln("null");
  3592. }
  3593. }
  3594. if (m_statement) {
  3595. print_indent(indent + 1);
  3596. outln("(Statement)");
  3597. m_statement->dump(indent + 2);
  3598. }
  3599. }
  3600. void ImportStatement::dump(int indent) const
  3601. {
  3602. ASTNode::dump(indent);
  3603. print_indent(indent + 1);
  3604. if (m_entries.is_empty()) {
  3605. // direct from "module" import
  3606. outln("Entire module '{}'", m_module_request.module_specifier);
  3607. dump_assert_clauses(m_module_request);
  3608. } else {
  3609. outln("(ExportEntries) from {}", m_module_request.module_specifier);
  3610. dump_assert_clauses(m_module_request);
  3611. for (auto& entry : m_entries) {
  3612. print_indent(indent + 2);
  3613. outln("ImportName: {}, LocalName: {}", entry.import_name, entry.local_name);
  3614. }
  3615. }
  3616. }
  3617. bool ExportStatement::has_export(FlyString const& export_name) const
  3618. {
  3619. return any_of(m_entries.begin(), m_entries.end(), [&](auto& entry) {
  3620. return entry.export_name == export_name;
  3621. });
  3622. }
  3623. bool ImportStatement::has_bound_name(FlyString const& name) const
  3624. {
  3625. return any_of(m_entries.begin(), m_entries.end(), [&](auto& entry) {
  3626. return entry.local_name == name;
  3627. });
  3628. }
  3629. // 14.2.3 BlockDeclarationInstantiation ( code, env ), https://tc39.es/ecma262/#sec-blockdeclarationinstantiation
  3630. void ScopeNode::block_declaration_instantiation(GlobalObject& global_object, Environment* environment) const
  3631. {
  3632. // See also B.3.2.6 Changes to BlockDeclarationInstantiation, https://tc39.es/ecma262/#sec-web-compat-blockdeclarationinstantiation
  3633. VERIFY(environment);
  3634. auto* private_environment = global_object.vm().running_execution_context().private_environment;
  3635. // Note: All the calls here are ! and thus we do not need to TRY this callback.
  3636. for_each_lexically_scoped_declaration([&](Declaration const& declaration) {
  3637. auto is_constant_declaration = declaration.is_constant_declaration();
  3638. declaration.for_each_bound_name([&](auto const& name) {
  3639. if (is_constant_declaration) {
  3640. MUST(environment->create_immutable_binding(global_object, name, true));
  3641. } else {
  3642. if (!MUST(environment->has_binding(name)))
  3643. MUST(environment->create_mutable_binding(global_object, name, false));
  3644. }
  3645. });
  3646. if (is<FunctionDeclaration>(declaration)) {
  3647. auto& function_declaration = static_cast<FunctionDeclaration const&>(declaration);
  3648. auto* function = ECMAScriptFunctionObject::create(global_object, function_declaration.name(), function_declaration.source_text(), 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());
  3649. VERIFY(is<DeclarativeEnvironment>(*environment));
  3650. static_cast<DeclarativeEnvironment&>(*environment).initialize_or_set_mutable_binding({}, global_object, function_declaration.name(), function);
  3651. }
  3652. });
  3653. }
  3654. // 16.1.7 GlobalDeclarationInstantiation ( script, env ), https://tc39.es/ecma262/#sec-globaldeclarationinstantiation
  3655. ThrowCompletionOr<void> Program::global_declaration_instantiation(Interpreter& interpreter, GlobalObject& global_object, GlobalEnvironment& global_environment) const
  3656. {
  3657. // 1. Let lexNames be the LexicallyDeclaredNames of script.
  3658. // 2. Let varNames be the VarDeclaredNames of script.
  3659. // 3. For each element name of lexNames, do
  3660. TRY(for_each_lexically_declared_name([&](FlyString const& name) -> ThrowCompletionOr<void> {
  3661. // a. If env.HasVarDeclaration(name) is true, throw a SyntaxError exception.
  3662. if (global_environment.has_var_declaration(name))
  3663. return interpreter.vm().throw_completion<SyntaxError>(global_object, ErrorType::TopLevelVariableAlreadyDeclared, name);
  3664. // b. If env.HasLexicalDeclaration(name) is true, throw a SyntaxError exception.
  3665. if (global_environment.has_lexical_declaration(name))
  3666. return interpreter.vm().throw_completion<SyntaxError>(global_object, ErrorType::TopLevelVariableAlreadyDeclared, name);
  3667. // c. Let hasRestrictedGlobal be ? env.HasRestrictedGlobalProperty(name).
  3668. auto has_restricted_global = TRY(global_environment.has_restricted_global_property(name));
  3669. // d. If hasRestrictedGlobal is true, throw a SyntaxError exception.
  3670. if (has_restricted_global)
  3671. return interpreter.vm().throw_completion<SyntaxError>(global_object, ErrorType::RestrictedGlobalProperty, name);
  3672. return {};
  3673. }));
  3674. // 4. For each element name of varNames, do
  3675. TRY(for_each_var_declared_name([&](auto const& name) -> ThrowCompletionOr<void> {
  3676. // a. If env.HasLexicalDeclaration(name) is true, throw a SyntaxError exception.
  3677. if (global_environment.has_lexical_declaration(name))
  3678. return interpreter.vm().throw_completion<SyntaxError>(global_object, ErrorType::TopLevelVariableAlreadyDeclared, name);
  3679. return {};
  3680. }));
  3681. // 5. Let varDeclarations be the VarScopedDeclarations of script.
  3682. // 6. Let functionsToInitialize be a new empty List.
  3683. Vector<FunctionDeclaration const&> functions_to_initialize;
  3684. // 7. Let declaredFunctionNames be a new empty List.
  3685. HashTable<FlyString> declared_function_names;
  3686. // 8. For each element d of varDeclarations, in reverse List order, do
  3687. TRY(for_each_var_function_declaration_in_reverse_order([&](FunctionDeclaration const& function) -> ThrowCompletionOr<void> {
  3688. // a. If d is neither a VariableDeclaration nor a ForBinding nor a BindingIdentifier, then
  3689. // i. Assert: d is either a FunctionDeclaration, a GeneratorDeclaration, an AsyncFunctionDeclaration, or an AsyncGeneratorDeclaration.
  3690. // Note: This is checked in for_each_var_function_declaration_in_reverse_order.
  3691. // ii. NOTE: If there are multiple function declarations for the same name, the last declaration is used.
  3692. // iii. Let fn be the sole element of the BoundNames of d.
  3693. // iv. If fn is not an element of declaredFunctionNames, then
  3694. if (declared_function_names.set(function.name()) != AK::HashSetResult::InsertedNewEntry)
  3695. return {};
  3696. // 1. Let fnDefinable be ? env.CanDeclareGlobalFunction(fn).
  3697. auto function_definable = TRY(global_environment.can_declare_global_function(function.name()));
  3698. // 2. If fnDefinable is false, throw a TypeError exception.
  3699. if (!function_definable)
  3700. return interpreter.vm().throw_completion<TypeError>(global_object, ErrorType::CannotDeclareGlobalFunction, function.name());
  3701. // 3. Append fn to declaredFunctionNames.
  3702. // Note: Already done in step iv. above.
  3703. // 4. Insert d as the first element of functionsToInitialize.
  3704. functions_to_initialize.append(function);
  3705. return {};
  3706. }));
  3707. // 9. Let declaredVarNames be a new empty List.
  3708. HashTable<FlyString> declared_var_names;
  3709. // 10. For each element d of varDeclarations, do
  3710. TRY(for_each_var_scoped_variable_declaration([&](Declaration const& declaration) {
  3711. // a. If d is a VariableDeclaration, a ForBinding, or a BindingIdentifier, then
  3712. // Note: This is done in for_each_var_scoped_variable_declaration.
  3713. // i. For each String vn of the BoundNames of d, do
  3714. return declaration.for_each_bound_name([&](auto const& name) -> ThrowCompletionOr<void> {
  3715. // 1. If vn is not an element of declaredFunctionNames, then
  3716. if (declared_function_names.contains(name))
  3717. return {};
  3718. // a. Let vnDefinable be ? env.CanDeclareGlobalVar(vn).
  3719. auto var_definable = TRY(global_environment.can_declare_global_var(name));
  3720. // b. If vnDefinable is false, throw a TypeError exception.
  3721. if (!var_definable)
  3722. return interpreter.vm().throw_completion<TypeError>(global_object, ErrorType::CannotDeclareGlobalVariable, name);
  3723. // c. If vn is not an element of declaredVarNames, then
  3724. // i. Append vn to declaredVarNames.
  3725. declared_var_names.set(name);
  3726. return {};
  3727. });
  3728. }));
  3729. // 11. NOTE: No abnormal terminations occur after this algorithm step if the global object is an ordinary object. However, if the global object is a Proxy exotic object it may exhibit behaviours that cause abnormal terminations in some of the following steps.
  3730. // 12. NOTE: Annex B.3.2.2 adds additional steps at this point.
  3731. // 12. Let strict be IsStrict of script.
  3732. // 13. If strict is false, then
  3733. if (!m_is_strict_mode) {
  3734. // a. Let declaredFunctionOrVarNames be the list-concatenation of declaredFunctionNames and declaredVarNames.
  3735. // b. For each FunctionDeclaration f that is directly contained in the StatementList of a Block, CaseClause, or DefaultClause Contained within script, do
  3736. TRY(for_each_function_hoistable_with_annexB_extension([&](FunctionDeclaration& function_declaration) -> ThrowCompletionOr<void> {
  3737. // i. Let F be StringValue of the BindingIdentifier of f.
  3738. auto& function_name = function_declaration.name();
  3739. // ii. If replacing the FunctionDeclaration f with a VariableStatement that has F as a BindingIdentifier would not produce any Early Errors for script, then
  3740. // Note: This step is already performed during parsing and for_each_function_hoistable_with_annexB_extension so this always passes here.
  3741. // 1. If env.HasLexicalDeclaration(F) is false, then
  3742. if (global_environment.has_lexical_declaration(function_name))
  3743. return {};
  3744. // a. Let fnDefinable be ? env.CanDeclareGlobalVar(F).
  3745. auto function_definable = TRY(global_environment.can_declare_global_function(function_name));
  3746. // b. If fnDefinable is true, then
  3747. if (!function_definable)
  3748. return {};
  3749. // i. NOTE: A var binding for F is only instantiated here if it is neither a VarDeclaredName nor the name of another FunctionDeclaration.
  3750. // ii. If declaredFunctionOrVarNames does not contain F, then
  3751. if (!declared_function_names.contains(function_name) && !declared_var_names.contains(function_name)) {
  3752. // i. Perform ? env.CreateGlobalVarBinding(F, false).
  3753. TRY(global_environment.create_global_var_binding(function_name, false));
  3754. // ii. Append F to declaredFunctionOrVarNames.
  3755. declared_function_names.set(function_name);
  3756. }
  3757. // iii. When the FunctionDeclaration f is evaluated, perform the following steps in place of the FunctionDeclaration Evaluation algorithm provided in 15.2.6:
  3758. // i. Let genv be the running execution context's VariableEnvironment.
  3759. // ii. Let benv be the running execution context's LexicalEnvironment.
  3760. // iii. Let fobj be ! benv.GetBindingValue(F, false).
  3761. // iv. Perform ? genv.SetMutableBinding(F, fobj, false).
  3762. // v. Return unused.
  3763. function_declaration.set_should_do_additional_annexB_steps();
  3764. return {};
  3765. }));
  3766. // We should not use declared function names below here anymore since these functions are not in there in the spec.
  3767. declared_function_names.clear();
  3768. }
  3769. // 13. Let lexDeclarations be the LexicallyScopedDeclarations of script.
  3770. // 14. Let privateEnv be null.
  3771. PrivateEnvironment* private_environment = nullptr;
  3772. // 15. For each element d of lexDeclarations, do
  3773. TRY(for_each_lexically_scoped_declaration([&](Declaration const& declaration) {
  3774. // a. NOTE: Lexically declared names are only instantiated here but not initialized.
  3775. // b. For each element dn of the BoundNames of d, do
  3776. return declaration.for_each_bound_name([&](auto const& name) -> ThrowCompletionOr<void> {
  3777. // i. If IsConstantDeclaration of d is true, then
  3778. if (declaration.is_constant_declaration()) {
  3779. // 1. Perform ? env.CreateImmutableBinding(dn, true).
  3780. TRY(global_environment.create_immutable_binding(global_object, name, true));
  3781. }
  3782. // ii. Else,
  3783. else {
  3784. // 1. Perform ? env.CreateMutableBinding(dn, false).
  3785. TRY(global_environment.create_mutable_binding(global_object, name, false));
  3786. }
  3787. return {};
  3788. });
  3789. }));
  3790. // 16. For each Parse Node f of functionsToInitialize, do
  3791. for (auto& declaration : functions_to_initialize) {
  3792. // a. Let fn be the sole element of the BoundNames of f.
  3793. // b. Let fo be InstantiateFunctionObject of f with arguments env and privateEnv.
  3794. auto* function = ECMAScriptFunctionObject::create(global_object, declaration.name(), declaration.source_text(), 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());
  3795. // c. Perform ? env.CreateGlobalFunctionBinding(fn, fo, false).
  3796. TRY(global_environment.create_global_function_binding(declaration.name(), function, false));
  3797. }
  3798. // 17. For each String vn of declaredVarNames, do
  3799. for (auto& var_name : declared_var_names) {
  3800. // a. Perform ? env.CreateGlobalVarBinding(vn, false).
  3801. TRY(global_environment.create_global_var_binding(var_name, false));
  3802. }
  3803. // 18. Return unused.
  3804. return {};
  3805. }
  3806. ModuleRequest::ModuleRequest(FlyString module_specifier_, Vector<Assertion> assertions_)
  3807. : module_specifier(move(module_specifier_))
  3808. , assertions(move(assertions_))
  3809. {
  3810. // Perform step 10.e. from EvaluateImportCall, https://tc39.es/proposal-import-assertions/#sec-evaluate-import-call
  3811. // or step 2. from 2.7 Static Semantics: AssertClauseToAssertions, https://tc39.es/proposal-import-assertions/#sec-assert-clause-to-assertions
  3812. // e. / 2. Sort assertions by the code point order of the [[Key]] of each element.
  3813. // NOTE: This sorting is observable only in that hosts are prohibited from distinguishing among assertions by the order they occur in.
  3814. quick_sort(assertions, [](Assertion const& lhs, Assertion const& rhs) {
  3815. return lhs.key < rhs.key;
  3816. });
  3817. }
  3818. }