ECMAScriptFunctionObject.cpp 46 KB

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  1. /*
  2. * Copyright (c) 2020, Stephan Unverwerth <s.unverwerth@serenityos.org>
  3. * Copyright (c) 2020-2023, Linus Groh <linusg@serenityos.org>
  4. * Copyright (c) 2023, Andreas Kling <kling@serenityos.org>
  5. *
  6. * SPDX-License-Identifier: BSD-2-Clause
  7. */
  8. #include <AK/Debug.h>
  9. #include <AK/Function.h>
  10. #include <LibJS/AST.h>
  11. #include <LibJS/Bytecode/BasicBlock.h>
  12. #include <LibJS/Bytecode/Generator.h>
  13. #include <LibJS/Bytecode/Interpreter.h>
  14. #include <LibJS/Bytecode/PassManager.h>
  15. #include <LibJS/Interpreter.h>
  16. #include <LibJS/Runtime/AbstractOperations.h>
  17. #include <LibJS/Runtime/Array.h>
  18. #include <LibJS/Runtime/AsyncFunctionDriverWrapper.h>
  19. #include <LibJS/Runtime/ECMAScriptFunctionObject.h>
  20. #include <LibJS/Runtime/Error.h>
  21. #include <LibJS/Runtime/ExecutionContext.h>
  22. #include <LibJS/Runtime/FunctionEnvironment.h>
  23. #include <LibJS/Runtime/GeneratorObject.h>
  24. #include <LibJS/Runtime/GlobalObject.h>
  25. #include <LibJS/Runtime/NativeFunction.h>
  26. #include <LibJS/Runtime/PromiseCapability.h>
  27. #include <LibJS/Runtime/PromiseConstructor.h>
  28. #include <LibJS/Runtime/Value.h>
  29. namespace JS {
  30. NonnullGCPtr<ECMAScriptFunctionObject> ECMAScriptFunctionObject::create(Realm& realm, DeprecatedFlyString name, DeprecatedString source_text, Statement const& ecmascript_code, Vector<FunctionParameter> parameters, i32 m_function_length, Environment* parent_environment, PrivateEnvironment* private_environment, FunctionKind kind, bool is_strict, bool might_need_arguments_object, bool contains_direct_call_to_eval, bool is_arrow_function, Variant<PropertyKey, PrivateName, Empty> class_field_initializer_name)
  31. {
  32. Object* prototype = nullptr;
  33. switch (kind) {
  34. case FunctionKind::Normal:
  35. prototype = realm.intrinsics().function_prototype();
  36. break;
  37. case FunctionKind::Generator:
  38. prototype = realm.intrinsics().generator_function_prototype();
  39. break;
  40. case FunctionKind::Async:
  41. prototype = realm.intrinsics().async_function_prototype();
  42. break;
  43. case FunctionKind::AsyncGenerator:
  44. prototype = realm.intrinsics().async_generator_function_prototype();
  45. break;
  46. }
  47. return realm.heap().allocate<ECMAScriptFunctionObject>(realm, move(name), move(source_text), ecmascript_code, move(parameters), m_function_length, parent_environment, private_environment, *prototype, kind, is_strict, might_need_arguments_object, contains_direct_call_to_eval, is_arrow_function, move(class_field_initializer_name)).release_allocated_value_but_fixme_should_propagate_errors();
  48. }
  49. NonnullGCPtr<ECMAScriptFunctionObject> ECMAScriptFunctionObject::create(Realm& realm, DeprecatedFlyString name, Object& prototype, DeprecatedString source_text, Statement const& ecmascript_code, Vector<FunctionParameter> parameters, i32 m_function_length, Environment* parent_environment, PrivateEnvironment* private_environment, FunctionKind kind, bool is_strict, bool might_need_arguments_object, bool contains_direct_call_to_eval, bool is_arrow_function, Variant<PropertyKey, PrivateName, Empty> class_field_initializer_name)
  50. {
  51. return realm.heap().allocate<ECMAScriptFunctionObject>(realm, move(name), move(source_text), ecmascript_code, move(parameters), m_function_length, parent_environment, private_environment, prototype, kind, is_strict, might_need_arguments_object, contains_direct_call_to_eval, is_arrow_function, move(class_field_initializer_name)).release_allocated_value_but_fixme_should_propagate_errors();
  52. }
  53. ECMAScriptFunctionObject::ECMAScriptFunctionObject(DeprecatedFlyString name, DeprecatedString source_text, Statement const& ecmascript_code, Vector<FunctionParameter> formal_parameters, i32 function_length, Environment* parent_environment, PrivateEnvironment* private_environment, Object& prototype, FunctionKind kind, bool strict, bool might_need_arguments_object, bool contains_direct_call_to_eval, bool is_arrow_function, Variant<PropertyKey, PrivateName, Empty> class_field_initializer_name)
  54. : FunctionObject(prototype)
  55. , m_name(move(name))
  56. , m_function_length(function_length)
  57. , m_environment(parent_environment)
  58. , m_private_environment(private_environment)
  59. , m_formal_parameters(move(formal_parameters))
  60. , m_ecmascript_code(ecmascript_code)
  61. , m_realm(&prototype.shape().realm())
  62. , m_source_text(move(source_text))
  63. , m_class_field_initializer_name(move(class_field_initializer_name))
  64. , m_strict(strict)
  65. , m_might_need_arguments_object(might_need_arguments_object)
  66. , m_contains_direct_call_to_eval(contains_direct_call_to_eval)
  67. , m_is_arrow_function(is_arrow_function)
  68. , m_kind(kind)
  69. {
  70. // NOTE: This logic is from OrdinaryFunctionCreate, https://tc39.es/ecma262/#sec-ordinaryfunctioncreate
  71. // 9. If thisMode is lexical-this, set F.[[ThisMode]] to lexical.
  72. if (m_is_arrow_function)
  73. m_this_mode = ThisMode::Lexical;
  74. // 10. Else if Strict is true, set F.[[ThisMode]] to strict.
  75. else if (m_strict)
  76. m_this_mode = ThisMode::Strict;
  77. else
  78. // 11. Else, set F.[[ThisMode]] to global.
  79. m_this_mode = ThisMode::Global;
  80. // 15. Set F.[[ScriptOrModule]] to GetActiveScriptOrModule().
  81. m_script_or_module = vm().get_active_script_or_module();
  82. // 15.1.3 Static Semantics: IsSimpleParameterList, https://tc39.es/ecma262/#sec-static-semantics-issimpleparameterlist
  83. m_has_simple_parameter_list = all_of(m_formal_parameters, [&](auto& parameter) {
  84. if (parameter.is_rest)
  85. return false;
  86. if (parameter.default_value)
  87. return false;
  88. if (!parameter.binding.template has<DeprecatedFlyString>())
  89. return false;
  90. return true;
  91. });
  92. }
  93. ThrowCompletionOr<void> ECMAScriptFunctionObject::initialize(Realm& realm)
  94. {
  95. auto& vm = this->vm();
  96. MUST_OR_THROW_OOM(Base::initialize(realm));
  97. // Note: The ordering of these properties must be: length, name, prototype which is the order
  98. // they are defined in the spec: https://tc39.es/ecma262/#sec-function-instances .
  99. // This is observable through something like: https://tc39.es/ecma262/#sec-ordinaryownpropertykeys
  100. // which must give the properties in chronological order which in this case is the order they
  101. // are defined in the spec.
  102. MUST(define_property_or_throw(vm.names.length, { .value = Value(m_function_length), .writable = false, .enumerable = false, .configurable = true }));
  103. MUST(define_property_or_throw(vm.names.name, { .value = PrimitiveString::create(vm, m_name.is_null() ? "" : m_name), .writable = false, .enumerable = false, .configurable = true }));
  104. if (!m_is_arrow_function) {
  105. Object* prototype = nullptr;
  106. switch (m_kind) {
  107. case FunctionKind::Normal:
  108. prototype = MUST_OR_THROW_OOM(vm.heap().allocate<Object>(realm, realm.intrinsics().new_ordinary_function_prototype_object_shape()));
  109. MUST(prototype->define_property_or_throw(vm.names.constructor, { .value = this, .writable = true, .enumerable = false, .configurable = true }));
  110. break;
  111. case FunctionKind::Generator:
  112. // prototype is "g1.prototype" in figure-2 (https://tc39.es/ecma262/img/figure-2.png)
  113. prototype = Object::create(realm, realm.intrinsics().generator_function_prototype_prototype());
  114. break;
  115. case FunctionKind::Async:
  116. break;
  117. case FunctionKind::AsyncGenerator:
  118. prototype = Object::create(realm, realm.intrinsics().async_generator_function_prototype_prototype());
  119. break;
  120. }
  121. // 27.7.4 AsyncFunction Instances, https://tc39.es/ecma262/#sec-async-function-instances
  122. // AsyncFunction instances do not have a prototype property as they are not constructible.
  123. if (m_kind != FunctionKind::Async)
  124. define_direct_property(vm.names.prototype, prototype, Attribute::Writable);
  125. }
  126. return {};
  127. }
  128. // 10.2.1 [[Call]] ( thisArgument, argumentsList ), https://tc39.es/ecma262/#sec-ecmascript-function-objects-call-thisargument-argumentslist
  129. ThrowCompletionOr<Value> ECMAScriptFunctionObject::internal_call(Value this_argument, MarkedVector<Value> arguments_list)
  130. {
  131. auto& vm = this->vm();
  132. // 1. Let callerContext be the running execution context.
  133. // NOTE: No-op, kept by the VM in its execution context stack.
  134. ExecutionContext callee_context(heap());
  135. // Non-standard
  136. callee_context.arguments.extend(move(arguments_list));
  137. if (auto* interpreter = vm.interpreter_if_exists())
  138. callee_context.current_node = interpreter->current_node();
  139. // 2. Let calleeContext be PrepareForOrdinaryCall(F, undefined).
  140. // NOTE: We throw if the end of the native stack is reached, so unlike in the spec this _does_ need an exception check.
  141. TRY(prepare_for_ordinary_call(callee_context, nullptr));
  142. // 3. Assert: calleeContext is now the running execution context.
  143. VERIFY(&vm.running_execution_context() == &callee_context);
  144. // 4. If F.[[IsClassConstructor]] is true, then
  145. if (m_is_class_constructor) {
  146. // a. Let error be a newly created TypeError object.
  147. // b. NOTE: error is created in calleeContext with F's associated Realm Record.
  148. auto throw_completion = vm.throw_completion<TypeError>(ErrorType::ClassConstructorWithoutNew, m_name);
  149. // c. Remove calleeContext from the execution context stack and restore callerContext as the running execution context.
  150. vm.pop_execution_context();
  151. // d. Return ThrowCompletion(error).
  152. return throw_completion;
  153. }
  154. // 5. Perform OrdinaryCallBindThis(F, calleeContext, thisArgument).
  155. ordinary_call_bind_this(callee_context, this_argument);
  156. // 6. Let result be Completion(OrdinaryCallEvaluateBody(F, argumentsList)).
  157. auto result = ordinary_call_evaluate_body();
  158. // 7. Remove calleeContext from the execution context stack and restore callerContext as the running execution context.
  159. vm.pop_execution_context();
  160. // 8. If result.[[Type]] is return, return result.[[Value]].
  161. if (result.type() == Completion::Type::Return)
  162. return *result.value();
  163. // 9. ReturnIfAbrupt(result).
  164. if (result.is_abrupt()) {
  165. VERIFY(result.is_error());
  166. return result;
  167. }
  168. // 10. Return undefined.
  169. return js_undefined();
  170. }
  171. // 10.2.2 [[Construct]] ( argumentsList, newTarget ), https://tc39.es/ecma262/#sec-ecmascript-function-objects-construct-argumentslist-newtarget
  172. ThrowCompletionOr<NonnullGCPtr<Object>> ECMAScriptFunctionObject::internal_construct(MarkedVector<Value> arguments_list, FunctionObject& new_target)
  173. {
  174. auto& vm = this->vm();
  175. // 1. Let callerContext be the running execution context.
  176. // NOTE: No-op, kept by the VM in its execution context stack.
  177. // 2. Let kind be F.[[ConstructorKind]].
  178. auto kind = m_constructor_kind;
  179. GCPtr<Object> this_argument;
  180. // 3. If kind is base, then
  181. if (kind == ConstructorKind::Base) {
  182. // a. Let thisArgument be ? OrdinaryCreateFromConstructor(newTarget, "%Object.prototype%").
  183. this_argument = TRY(ordinary_create_from_constructor<Object>(vm, new_target, &Intrinsics::object_prototype, ConstructWithPrototypeTag::Tag));
  184. }
  185. ExecutionContext callee_context(heap());
  186. // Non-standard
  187. callee_context.arguments.extend(move(arguments_list));
  188. if (auto* interpreter = vm.interpreter_if_exists())
  189. callee_context.current_node = interpreter->current_node();
  190. // 4. Let calleeContext be PrepareForOrdinaryCall(F, newTarget).
  191. // NOTE: We throw if the end of the native stack is reached, so unlike in the spec this _does_ need an exception check.
  192. TRY(prepare_for_ordinary_call(callee_context, &new_target));
  193. // 5. Assert: calleeContext is now the running execution context.
  194. VERIFY(&vm.running_execution_context() == &callee_context);
  195. // 6. If kind is base, then
  196. if (kind == ConstructorKind::Base) {
  197. // a. Perform OrdinaryCallBindThis(F, calleeContext, thisArgument).
  198. ordinary_call_bind_this(callee_context, this_argument);
  199. // b. Let initializeResult be Completion(InitializeInstanceElements(thisArgument, F)).
  200. auto initialize_result = this_argument->initialize_instance_elements(*this);
  201. // c. If initializeResult is an abrupt completion, then
  202. if (initialize_result.is_throw_completion()) {
  203. // i. Remove calleeContext from the execution context stack and restore callerContext as the running execution context.
  204. vm.pop_execution_context();
  205. // ii. Return ? initializeResult.
  206. return initialize_result.throw_completion();
  207. }
  208. }
  209. // 7. Let constructorEnv be the LexicalEnvironment of calleeContext.
  210. auto constructor_env = callee_context.lexical_environment;
  211. // 8. Let result be Completion(OrdinaryCallEvaluateBody(F, argumentsList)).
  212. auto result = ordinary_call_evaluate_body();
  213. // 9. Remove calleeContext from the execution context stack and restore callerContext as the running execution context.
  214. vm.pop_execution_context();
  215. // 10. If result.[[Type]] is return, then
  216. if (result.type() == Completion::Type::Return) {
  217. // FIXME: This is leftover from untangling the call/construct mess - doesn't belong here in any way, but removing it breaks derived classes.
  218. // Likely fixed by making ClassDefinitionEvaluation fully spec compliant.
  219. if (kind == ConstructorKind::Derived && result.value()->is_object()) {
  220. auto prototype = TRY(new_target.get(vm.names.prototype));
  221. if (prototype.is_object())
  222. TRY(result.value()->as_object().internal_set_prototype_of(&prototype.as_object()));
  223. }
  224. // EOF (End of FIXME)
  225. // a. If Type(result.[[Value]]) is Object, return result.[[Value]].
  226. if (result.value()->is_object())
  227. return result.value()->as_object();
  228. // b. If kind is base, return thisArgument.
  229. if (kind == ConstructorKind::Base)
  230. return *this_argument;
  231. // c. If result.[[Value]] is not undefined, throw a TypeError exception.
  232. if (!result.value()->is_undefined())
  233. return vm.throw_completion<TypeError>(ErrorType::DerivedConstructorReturningInvalidValue);
  234. }
  235. // 11. Else, ReturnIfAbrupt(result).
  236. else if (result.is_abrupt()) {
  237. VERIFY(result.is_error());
  238. return result;
  239. }
  240. // 12. Let thisBinding be ? constructorEnv.GetThisBinding().
  241. auto this_binding = TRY(constructor_env->get_this_binding(vm));
  242. // 13. Assert: Type(thisBinding) is Object.
  243. VERIFY(this_binding.is_object());
  244. // 14. Return thisBinding.
  245. return this_binding.as_object();
  246. }
  247. void ECMAScriptFunctionObject::visit_edges(Visitor& visitor)
  248. {
  249. Base::visit_edges(visitor);
  250. visitor.visit(m_environment);
  251. visitor.visit(m_private_environment);
  252. visitor.visit(m_realm);
  253. visitor.visit(m_home_object);
  254. for (auto& field : m_fields) {
  255. if (auto* property_key_ptr = field.name.get_pointer<PropertyKey>(); property_key_ptr && property_key_ptr->is_symbol())
  256. visitor.visit(property_key_ptr->as_symbol());
  257. }
  258. m_script_or_module.visit(
  259. [](Empty) {},
  260. [&](auto& script_or_module) {
  261. visitor.visit(script_or_module.ptr());
  262. });
  263. }
  264. // 10.2.7 MakeMethod ( F, homeObject ), https://tc39.es/ecma262/#sec-makemethod
  265. void ECMAScriptFunctionObject::make_method(Object& home_object)
  266. {
  267. // 1. Set F.[[HomeObject]] to homeObject.
  268. m_home_object = &home_object;
  269. // 2. Return unused.
  270. }
  271. // 10.2.11 FunctionDeclarationInstantiation ( func, argumentsList ), https://tc39.es/ecma262/#sec-functiondeclarationinstantiation
  272. ThrowCompletionOr<void> ECMAScriptFunctionObject::function_declaration_instantiation(Interpreter* interpreter)
  273. {
  274. auto& vm = this->vm();
  275. auto& realm = *vm.current_realm();
  276. auto& callee_context = vm.running_execution_context();
  277. // Needed to extract declarations and functions
  278. ScopeNode const* scope_body = nullptr;
  279. if (is<ScopeNode>(*m_ecmascript_code))
  280. scope_body = static_cast<ScopeNode const*>(m_ecmascript_code.ptr());
  281. bool has_parameter_expressions = false;
  282. // FIXME: Maybe compute has duplicates at parse time? (We need to anyway since it's an error in some cases)
  283. bool has_duplicates = false;
  284. HashTable<DeprecatedFlyString> parameter_names;
  285. for (auto& parameter : m_formal_parameters) {
  286. if (parameter.default_value)
  287. has_parameter_expressions = true;
  288. parameter.binding.visit(
  289. [&](DeprecatedFlyString const& name) {
  290. if (parameter_names.set(name) != AK::HashSetResult::InsertedNewEntry)
  291. has_duplicates = true;
  292. },
  293. [&](NonnullRefPtr<BindingPattern const> const& pattern) {
  294. if (pattern->contains_expression())
  295. has_parameter_expressions = true;
  296. // NOTE: Nothing in the callback throws an exception.
  297. MUST(pattern->for_each_bound_name([&](auto& name) {
  298. if (parameter_names.set(name) != AK::HashSetResult::InsertedNewEntry)
  299. has_duplicates = true;
  300. }));
  301. });
  302. }
  303. auto arguments_object_needed = m_might_need_arguments_object;
  304. if (this_mode() == ThisMode::Lexical)
  305. arguments_object_needed = false;
  306. if (parameter_names.contains(vm.names.arguments.as_string()))
  307. arguments_object_needed = false;
  308. HashTable<DeprecatedFlyString> function_names;
  309. Vector<FunctionDeclaration const&> functions_to_initialize;
  310. if (scope_body) {
  311. // NOTE: Nothing in the callback throws an exception.
  312. MUST(scope_body->for_each_var_function_declaration_in_reverse_order([&](FunctionDeclaration const& function) {
  313. if (function_names.set(function.name()) == AK::HashSetResult::InsertedNewEntry)
  314. functions_to_initialize.append(function);
  315. }));
  316. auto const& arguments_name = vm.names.arguments.as_string();
  317. if (!has_parameter_expressions && function_names.contains(arguments_name))
  318. arguments_object_needed = false;
  319. if (!has_parameter_expressions && arguments_object_needed) {
  320. // NOTE: Nothing in the callback throws an exception.
  321. MUST(scope_body->for_each_lexically_declared_name([&](auto const& name) {
  322. if (name == arguments_name)
  323. arguments_object_needed = false;
  324. }));
  325. }
  326. } else {
  327. arguments_object_needed = false;
  328. }
  329. GCPtr<Environment> environment;
  330. if (is_strict_mode() || !has_parameter_expressions) {
  331. environment = callee_context.lexical_environment;
  332. } else {
  333. environment = new_declarative_environment(*callee_context.lexical_environment);
  334. VERIFY(callee_context.variable_environment == callee_context.lexical_environment);
  335. callee_context.lexical_environment = environment;
  336. }
  337. for (auto const& parameter_name : parameter_names) {
  338. if (MUST(environment->has_binding(parameter_name)))
  339. continue;
  340. MUST(environment->create_mutable_binding(vm, parameter_name, false));
  341. if (has_duplicates)
  342. MUST(environment->initialize_binding(vm, parameter_name, js_undefined(), Environment::InitializeBindingHint::Normal));
  343. }
  344. if (arguments_object_needed) {
  345. Object* arguments_object;
  346. if (is_strict_mode() || !has_simple_parameter_list())
  347. arguments_object = create_unmapped_arguments_object(vm, vm.running_execution_context().arguments);
  348. else
  349. arguments_object = create_mapped_arguments_object(vm, *this, formal_parameters(), vm.running_execution_context().arguments, *environment);
  350. if (is_strict_mode())
  351. MUST(environment->create_immutable_binding(vm, vm.names.arguments.as_string(), false));
  352. else
  353. MUST(environment->create_mutable_binding(vm, vm.names.arguments.as_string(), false));
  354. MUST(environment->initialize_binding(vm, vm.names.arguments.as_string(), arguments_object, Environment::InitializeBindingHint::Normal));
  355. parameter_names.set(vm.names.arguments.as_string());
  356. }
  357. // We now treat parameterBindings as parameterNames.
  358. // The spec makes an iterator here to do IteratorBindingInitialization but we just do it manually
  359. auto& execution_context_arguments = vm.running_execution_context().arguments;
  360. size_t default_parameter_index = 0;
  361. for (size_t i = 0; i < m_formal_parameters.size(); ++i) {
  362. auto& parameter = m_formal_parameters[i];
  363. if (parameter.default_value)
  364. ++default_parameter_index;
  365. TRY(parameter.binding.visit(
  366. [&](auto const& param) -> ThrowCompletionOr<void> {
  367. Value argument_value;
  368. if (parameter.is_rest) {
  369. auto array = MUST(Array::create(realm, 0));
  370. for (size_t rest_index = i; rest_index < execution_context_arguments.size(); ++rest_index)
  371. array->indexed_properties().append(execution_context_arguments[rest_index]);
  372. argument_value = array;
  373. } else if (i < execution_context_arguments.size() && !execution_context_arguments[i].is_undefined()) {
  374. argument_value = execution_context_arguments[i];
  375. } else if (parameter.default_value) {
  376. if (auto* bytecode_interpreter = vm.bytecode_interpreter_if_exists()) {
  377. auto value_and_frame = bytecode_interpreter->run_and_return_frame(realm, *m_default_parameter_bytecode_executables[default_parameter_index - 1], nullptr);
  378. if (value_and_frame.value.is_error())
  379. return value_and_frame.value.release_error();
  380. // Resulting value is in the accumulator.
  381. argument_value = value_and_frame.frame->registers.at(0);
  382. } else if (interpreter) {
  383. argument_value = TRY(parameter.default_value->execute(*interpreter)).release_value();
  384. }
  385. } else {
  386. argument_value = js_undefined();
  387. }
  388. Environment* used_environment = has_duplicates ? nullptr : environment;
  389. if constexpr (IsSame<DeprecatedFlyString const&, decltype(param)>) {
  390. Reference reference = TRY(vm.resolve_binding(param, used_environment));
  391. // Here the difference from hasDuplicates is important
  392. if (has_duplicates)
  393. return reference.put_value(vm, argument_value);
  394. else
  395. return reference.initialize_referenced_binding(vm, argument_value);
  396. }
  397. if constexpr (IsSame<NonnullRefPtr<BindingPattern const> const&, decltype(param)>) {
  398. // Here the difference from hasDuplicates is important
  399. return vm.binding_initialization(param, argument_value, used_environment);
  400. }
  401. }));
  402. }
  403. GCPtr<Environment> var_environment;
  404. HashTable<DeprecatedFlyString> instantiated_var_names;
  405. if (scope_body)
  406. instantiated_var_names.ensure_capacity(scope_body->var_declaration_count());
  407. if (!has_parameter_expressions) {
  408. if (scope_body) {
  409. // NOTE: Due to the use of MUST with `create_mutable_binding` and `initialize_binding` below,
  410. // an exception should not result from `for_each_var_declared_name`.
  411. MUST(scope_body->for_each_var_declared_name([&](auto const& name) {
  412. if (!parameter_names.contains(name) && instantiated_var_names.set(name) == AK::HashSetResult::InsertedNewEntry) {
  413. MUST(environment->create_mutable_binding(vm, name, false));
  414. MUST(environment->initialize_binding(vm, name, js_undefined(), Environment::InitializeBindingHint::Normal));
  415. }
  416. }));
  417. }
  418. var_environment = environment;
  419. } else {
  420. var_environment = new_declarative_environment(*environment);
  421. callee_context.variable_environment = var_environment;
  422. if (scope_body) {
  423. // NOTE: Due to the use of MUST with `create_mutable_binding`, `get_binding_value` and `initialize_binding` below,
  424. // an exception should not result from `for_each_var_declared_name`.
  425. MUST(scope_body->for_each_var_declared_name([&](auto const& name) {
  426. if (instantiated_var_names.set(name) != AK::HashSetResult::InsertedNewEntry)
  427. return;
  428. MUST(var_environment->create_mutable_binding(vm, name, false));
  429. Value initial_value;
  430. if (!parameter_names.contains(name) || function_names.contains(name))
  431. initial_value = js_undefined();
  432. else
  433. initial_value = MUST(environment->get_binding_value(vm, name, false));
  434. MUST(var_environment->initialize_binding(vm, name, initial_value, Environment::InitializeBindingHint::Normal));
  435. }));
  436. }
  437. }
  438. // B.3.2.1 Changes to FunctionDeclarationInstantiation, https://tc39.es/ecma262/#sec-web-compat-functiondeclarationinstantiation
  439. if (!m_strict && scope_body) {
  440. // NOTE: Due to the use of MUST with `create_mutable_binding` and `initialize_binding` below,
  441. // an exception should not result from `for_each_function_hoistable_with_annexB_extension`.
  442. MUST(scope_body->for_each_function_hoistable_with_annexB_extension([&](FunctionDeclaration& function_declaration) {
  443. auto& function_name = function_declaration.name();
  444. if (parameter_names.contains(function_name))
  445. return;
  446. // The spec says 'initializedBindings' here but that does not exist and it then adds it to 'instantiatedVarNames' so it probably means 'instantiatedVarNames'.
  447. if (!instantiated_var_names.contains(function_name) && function_name != vm.names.arguments.as_string()) {
  448. MUST(var_environment->create_mutable_binding(vm, function_name, false));
  449. MUST(var_environment->initialize_binding(vm, function_name, js_undefined(), Environment::InitializeBindingHint::Normal));
  450. instantiated_var_names.set(function_name);
  451. }
  452. function_declaration.set_should_do_additional_annexB_steps();
  453. }));
  454. }
  455. GCPtr<Environment> lex_environment;
  456. // 30. If strict is false, then
  457. if (!is_strict_mode()) {
  458. // Optimization: We avoid creating empty top-level declarative environments in non-strict mode, if both of these conditions are true:
  459. // 1. there is no direct call to eval() within this function
  460. // 2. there are no lexical declarations that would go into the environment
  461. bool can_elide_declarative_environment = !m_contains_direct_call_to_eval && (!scope_body || !scope_body->has_lexical_declarations());
  462. if (can_elide_declarative_environment) {
  463. lex_environment = var_environment;
  464. } else {
  465. // a. Let lexEnv be NewDeclarativeEnvironment(varEnv).
  466. // b. NOTE: Non-strict functions use a separate Environment Record for top-level lexical declarations so that a direct eval
  467. // can determine whether any var scoped declarations introduced by the eval code conflict with pre-existing top-level
  468. // lexically scoped declarations. This is not needed for strict functions because a strict direct eval always places
  469. // all declarations into a new Environment Record.
  470. lex_environment = new_declarative_environment(*var_environment);
  471. }
  472. } else {
  473. // 31. Else, let lexEnv be varEnv.
  474. lex_environment = var_environment;
  475. }
  476. // 32. Set the LexicalEnvironment of calleeContext to lexEnv.
  477. callee_context.lexical_environment = lex_environment;
  478. if (!scope_body)
  479. return {};
  480. // NOTE: Due to the use of MUST in the callback, an exception should not result from `for_each_lexically_scoped_declaration`.
  481. MUST(scope_body->for_each_lexically_scoped_declaration([&](Declaration const& declaration) {
  482. // NOTE: Due to the use of MUST with `create_immutable_binding` and `create_mutable_binding` below,
  483. // an exception should not result from `for_each_bound_name`.
  484. MUST(declaration.for_each_bound_name([&](auto const& name) {
  485. if (declaration.is_constant_declaration())
  486. MUST(lex_environment->create_immutable_binding(vm, name, true));
  487. else
  488. MUST(lex_environment->create_mutable_binding(vm, name, false));
  489. }));
  490. }));
  491. auto private_environment = callee_context.private_environment;
  492. for (auto& declaration : functions_to_initialize) {
  493. auto function = ECMAScriptFunctionObject::create(realm, declaration.name(), declaration.source_text(), declaration.body(), declaration.parameters(), declaration.function_length(), lex_environment, private_environment, declaration.kind(), declaration.is_strict_mode(), declaration.might_need_arguments_object(), declaration.contains_direct_call_to_eval());
  494. MUST(var_environment->set_mutable_binding(vm, declaration.name(), function, false));
  495. }
  496. if (is<DeclarativeEnvironment>(*lex_environment))
  497. static_cast<DeclarativeEnvironment*>(lex_environment.ptr())->shrink_to_fit();
  498. if (is<DeclarativeEnvironment>(*var_environment))
  499. static_cast<DeclarativeEnvironment*>(var_environment.ptr())->shrink_to_fit();
  500. return {};
  501. }
  502. // 10.2.1.1 PrepareForOrdinaryCall ( F, newTarget ), https://tc39.es/ecma262/#sec-prepareforordinarycall
  503. ThrowCompletionOr<void> ECMAScriptFunctionObject::prepare_for_ordinary_call(ExecutionContext& callee_context, Object* new_target)
  504. {
  505. auto& vm = this->vm();
  506. // Non-standard
  507. callee_context.is_strict_mode = m_strict;
  508. // 1. Let callerContext be the running execution context.
  509. // 2. Let calleeContext be a new ECMAScript code execution context.
  510. // NOTE: In the specification, PrepareForOrdinaryCall "returns" a new callee execution context.
  511. // To avoid heap allocations, we put our ExecutionContext objects on the C++ stack instead.
  512. // Whoever calls us should put an ExecutionContext on their stack and pass that as the `callee_context`.
  513. // 3. Set the Function of calleeContext to F.
  514. callee_context.function = this;
  515. callee_context.function_name = m_name;
  516. // 4. Let calleeRealm be F.[[Realm]].
  517. auto callee_realm = m_realm;
  518. // NOTE: This non-standard fallback is needed until we can guarantee that literally
  519. // every function has a realm - especially in LibWeb that's sometimes not the case
  520. // when a function is created while no JS is running, as we currently need to rely on
  521. // that (:acid2:, I know - see set_event_handler_attribute() for an example).
  522. // If there's no 'current realm' either, we can't continue and crash.
  523. if (!callee_realm)
  524. callee_realm = vm.current_realm();
  525. VERIFY(callee_realm);
  526. // 5. Set the Realm of calleeContext to calleeRealm.
  527. callee_context.realm = callee_realm;
  528. // 6. Set the ScriptOrModule of calleeContext to F.[[ScriptOrModule]].
  529. callee_context.script_or_module = m_script_or_module;
  530. // 7. Let localEnv be NewFunctionEnvironment(F, newTarget).
  531. auto local_environment = new_function_environment(*this, new_target);
  532. // 8. Set the LexicalEnvironment of calleeContext to localEnv.
  533. callee_context.lexical_environment = local_environment;
  534. // 9. Set the VariableEnvironment of calleeContext to localEnv.
  535. callee_context.variable_environment = local_environment;
  536. // 10. Set the PrivateEnvironment of calleeContext to F.[[PrivateEnvironment]].
  537. callee_context.private_environment = m_private_environment;
  538. // 11. If callerContext is not already suspended, suspend callerContext.
  539. // FIXME: We don't have this concept yet.
  540. // 12. Push calleeContext onto the execution context stack; calleeContext is now the running execution context.
  541. TRY(vm.push_execution_context(callee_context, {}));
  542. // 13. NOTE: Any exception objects produced after this point are associated with calleeRealm.
  543. // 14. Return calleeContext.
  544. // NOTE: See the comment after step 2 above about how contexts are allocated on the C++ stack.
  545. return {};
  546. }
  547. // 10.2.1.2 OrdinaryCallBindThis ( F, calleeContext, thisArgument ), https://tc39.es/ecma262/#sec-ordinarycallbindthis
  548. void ECMAScriptFunctionObject::ordinary_call_bind_this(ExecutionContext& callee_context, Value this_argument)
  549. {
  550. auto& vm = this->vm();
  551. // 1. Let thisMode be F.[[ThisMode]].
  552. auto this_mode = m_this_mode;
  553. // If thisMode is lexical, return unused.
  554. if (this_mode == ThisMode::Lexical)
  555. return;
  556. // 3. Let calleeRealm be F.[[Realm]].
  557. auto callee_realm = m_realm;
  558. // NOTE: This non-standard fallback is needed until we can guarantee that literally
  559. // every function has a realm - especially in LibWeb that's sometimes not the case
  560. // when a function is created while no JS is running, as we currently need to rely on
  561. // that (:acid2:, I know - see set_event_handler_attribute() for an example).
  562. // If there's no 'current realm' either, we can't continue and crash.
  563. if (!callee_realm)
  564. callee_realm = vm.current_realm();
  565. VERIFY(callee_realm);
  566. // 4. Let localEnv be the LexicalEnvironment of calleeContext.
  567. auto local_env = callee_context.lexical_environment;
  568. Value this_value;
  569. // 5. If thisMode is strict, let thisValue be thisArgument.
  570. if (this_mode == ThisMode::Strict) {
  571. this_value = this_argument;
  572. }
  573. // 6. Else,
  574. else {
  575. // a. If thisArgument is undefined or null, then
  576. if (this_argument.is_nullish()) {
  577. // i. Let globalEnv be calleeRealm.[[GlobalEnv]].
  578. // ii. Assert: globalEnv is a global Environment Record.
  579. auto& global_env = callee_realm->global_environment();
  580. // iii. Let thisValue be globalEnv.[[GlobalThisValue]].
  581. this_value = &global_env.global_this_value();
  582. }
  583. // b. Else,
  584. else {
  585. // i. Let thisValue be ! ToObject(thisArgument).
  586. this_value = MUST(this_argument.to_object(vm));
  587. // ii. NOTE: ToObject produces wrapper objects using calleeRealm.
  588. VERIFY(vm.current_realm() == callee_realm);
  589. }
  590. }
  591. // 7. Assert: localEnv is a function Environment Record.
  592. // 8. Assert: The next step never returns an abrupt completion because localEnv.[[ThisBindingStatus]] is not initialized.
  593. // 9. Perform ! localEnv.BindThisValue(thisValue).
  594. MUST(verify_cast<FunctionEnvironment>(*local_env).bind_this_value(vm, this_value));
  595. // 10. Return unused.
  596. }
  597. // 27.7.5.1 AsyncFunctionStart ( promiseCapability, asyncFunctionBody ), https://tc39.es/ecma262/#sec-async-functions-abstract-operations-async-function-start
  598. void ECMAScriptFunctionObject::async_function_start(PromiseCapability const& promise_capability)
  599. {
  600. auto& vm = this->vm();
  601. // 1. Let runningContext be the running execution context.
  602. auto& running_context = vm.running_execution_context();
  603. // 2. Let asyncContext be a copy of runningContext.
  604. auto async_context = running_context.copy();
  605. // 3. NOTE: Copying the execution state is required for AsyncBlockStart to resume its execution. It is ill-defined to resume a currently executing context.
  606. // 4. Perform AsyncBlockStart(promiseCapability, asyncFunctionBody, asyncContext).
  607. async_block_start(vm, m_ecmascript_code, promise_capability, async_context);
  608. // 5. Return unused.
  609. }
  610. // 27.7.5.2 AsyncBlockStart ( promiseCapability, asyncBody, asyncContext ), https://tc39.es/ecma262/#sec-asyncblockstart
  611. void async_block_start(VM& vm, NonnullRefPtr<Statement const> const& async_body, PromiseCapability const& promise_capability, ExecutionContext& async_context)
  612. {
  613. auto& realm = *vm.current_realm();
  614. // 1. Assert: promiseCapability is a PromiseCapability Record.
  615. // 2. Let runningContext be the running execution context.
  616. auto& running_context = vm.running_execution_context();
  617. // 3. Set the code evaluation state of asyncContext such that when evaluation is resumed for that execution context the following steps will be performed:
  618. auto execution_steps = NativeFunction::create(realm, "", [&realm, &async_body, &promise_capability, &async_context](auto& vm) -> ThrowCompletionOr<Value> {
  619. // a. Let result be the result of evaluating asyncBody.
  620. Completion result;
  621. if (auto* bytecode_interpreter = vm.bytecode_interpreter_if_exists()) {
  622. // FIXME: Cache this executable somewhere.
  623. auto maybe_executable = Bytecode::compile(vm, async_body, FunctionKind::Async, "AsyncBlockStart"sv);
  624. if (maybe_executable.is_error())
  625. result = maybe_executable.release_error();
  626. else
  627. result = bytecode_interpreter->run_and_return_frame(realm, *maybe_executable.value(), nullptr).value;
  628. } else {
  629. result = async_body->execute(vm.interpreter());
  630. }
  631. // b. Assert: If we return here, the async function either threw an exception or performed an implicit or explicit return; all awaiting is done.
  632. // c. Remove asyncContext from the execution context stack and restore the execution context that is at the top of the execution context stack as the running execution context.
  633. vm.pop_execution_context();
  634. // d. Let env be asyncContext's LexicalEnvironment.
  635. auto env = async_context.lexical_environment;
  636. VERIFY(is<DeclarativeEnvironment>(*env));
  637. // e. Set result to DisposeResources(env, result).
  638. result = dispose_resources(vm, static_cast<DeclarativeEnvironment*>(env.ptr()), result);
  639. // f. If result.[[Type]] is normal, then
  640. if (result.type() == Completion::Type::Normal) {
  641. // i. Perform ! Call(promiseCapability.[[Resolve]], undefined, « undefined »).
  642. MUST(call(vm, *promise_capability.resolve(), js_undefined(), js_undefined()));
  643. }
  644. // g. Else if result.[[Type]] is return, then
  645. else if (result.type() == Completion::Type::Return) {
  646. // i. Perform ! Call(promiseCapability.[[Resolve]], undefined, « result.[[Value]] »).
  647. MUST(call(vm, *promise_capability.resolve(), js_undefined(), *result.value()));
  648. }
  649. // h. Else,
  650. else {
  651. // i. Assert: result.[[Type]] is throw.
  652. VERIFY(result.type() == Completion::Type::Throw);
  653. // ii. Perform ! Call(promiseCapability.[[Reject]], undefined, « result.[[Value]] »).
  654. MUST(call(vm, *promise_capability.reject(), js_undefined(), *result.value()));
  655. }
  656. // i. Return unused.
  657. // NOTE: We don't support returning an empty/optional/unused value here.
  658. return js_undefined();
  659. });
  660. // 4. Push asyncContext onto the execution context stack; asyncContext is now the running execution context.
  661. auto push_result = vm.push_execution_context(async_context, {});
  662. if (push_result.is_error())
  663. return;
  664. // 5. Resume the suspended evaluation of asyncContext. Let result be the value returned by the resumed computation.
  665. auto result = call(vm, *execution_steps, async_context.this_value.is_empty() ? js_undefined() : async_context.this_value);
  666. // 6. Assert: When we return here, asyncContext has already been removed from the execution context stack and runningContext is the currently running execution context.
  667. VERIFY(&vm.running_execution_context() == &running_context);
  668. // 7. Assert: result is a normal completion with a value of unused. The possible sources of this value are Await or, if the async function doesn't await anything, step 3.g above.
  669. VERIFY(result.has_value() && result.value().is_undefined());
  670. // 8. Return unused.
  671. }
  672. // 10.2.1.4 OrdinaryCallEvaluateBody ( F, argumentsList ), https://tc39.es/ecma262/#sec-ordinarycallevaluatebody
  673. // 15.8.4 Runtime Semantics: EvaluateAsyncFunctionBody, https://tc39.es/ecma262/#sec-runtime-semantics-evaluatefunctionbody
  674. Completion ECMAScriptFunctionObject::ordinary_call_evaluate_body()
  675. {
  676. auto& vm = this->vm();
  677. auto& realm = *vm.current_realm();
  678. if (m_kind == FunctionKind::AsyncGenerator)
  679. return vm.throw_completion<InternalError>(ErrorType::NotImplemented, "Async Generator function execution");
  680. auto* bytecode_interpreter = vm.bytecode_interpreter_if_exists();
  681. // The bytecode interpreter can execute generator functions while the AST interpreter cannot.
  682. // This simply makes it create a new bytecode interpreter when one doesn't exist when executing a generator function.
  683. // Doing so makes it automatically switch to the bytecode interpreter to execute any future code until it exits the generator. See below.
  684. // This allows us to keep all of the existing functionality that works in AST while adding generator support on top of it.
  685. // However, this does cause an awkward situation with features not supported in bytecode, where features that work outside of generators with AST
  686. // suddenly stop working inside of generators.
  687. // This is a stop gap until bytecode mode becomes the default.
  688. if (m_kind == FunctionKind::Generator && !bytecode_interpreter) {
  689. bytecode_interpreter = &vm.bytecode_interpreter();
  690. }
  691. if (bytecode_interpreter) {
  692. // NOTE: There's a subtle ordering issue here:
  693. // - We have to compile the default parameter values before instantiating the function.
  694. // - We have to instantiate the function before compiling the function body.
  695. // This is why FunctionDeclarationInstantiation is invoked in the middle.
  696. // The issue is that FunctionDeclarationInstantiation may mark certain functions as hoisted
  697. // per Annex B. This affects code generation for FunctionDeclaration nodes.
  698. if (!m_bytecode_executable) {
  699. size_t default_parameter_index = 0;
  700. for (auto& parameter : m_formal_parameters) {
  701. if (!parameter.default_value)
  702. continue;
  703. auto executable = TRY(Bytecode::compile(vm, *parameter.default_value, FunctionKind::Normal, DeprecatedString::formatted("default parameter #{} for {}", default_parameter_index, m_name)));
  704. m_default_parameter_bytecode_executables.append(move(executable));
  705. }
  706. }
  707. TRY(function_declaration_instantiation(nullptr));
  708. if (!m_bytecode_executable) {
  709. m_bytecode_executable = TRY(Bytecode::compile(vm, *m_ecmascript_code, m_kind, m_name));
  710. }
  711. auto result_and_frame = bytecode_interpreter->run_and_return_frame(realm, *m_bytecode_executable, nullptr);
  712. VERIFY(result_and_frame.frame != nullptr);
  713. if (result_and_frame.value.is_error())
  714. return result_and_frame.value.release_error();
  715. auto result = result_and_frame.value.release_value();
  716. // NOTE: Running the bytecode should eventually return a completion.
  717. // Until it does, we assume "return" and include the undefined fallback from the call site.
  718. if (m_kind == FunctionKind::Normal)
  719. return { Completion::Type::Return, result.value_or(js_undefined()), {} };
  720. auto generator_object = TRY(GeneratorObject::create(realm, result, this, vm.running_execution_context().copy(), move(*result_and_frame.frame)));
  721. // NOTE: Async functions are entirely transformed to generator functions, and wrapped in a custom driver that returns a promise
  722. // See AwaitExpression::generate_bytecode() for the transformation.
  723. if (m_kind == FunctionKind::Async)
  724. return { Completion::Type::Return, TRY(AsyncFunctionDriverWrapper::create(realm, generator_object)), {} };
  725. VERIFY(m_kind == FunctionKind::Generator);
  726. return { Completion::Type::Return, generator_object, {} };
  727. } else {
  728. if (m_kind == FunctionKind::Generator)
  729. return vm.throw_completion<InternalError>(ErrorType::NotImplemented, "Generator function execution in AST interpreter");
  730. OwnPtr<Interpreter> local_interpreter;
  731. Interpreter* ast_interpreter = vm.interpreter_if_exists();
  732. if (!ast_interpreter) {
  733. local_interpreter = Interpreter::create_with_existing_realm(realm);
  734. ast_interpreter = local_interpreter.ptr();
  735. }
  736. VM::InterpreterExecutionScope scope(*ast_interpreter);
  737. // FunctionBody : FunctionStatementList
  738. if (m_kind == FunctionKind::Normal) {
  739. // 1. Perform ? FunctionDeclarationInstantiation(functionObject, argumentsList).
  740. TRY(function_declaration_instantiation(ast_interpreter));
  741. // 2. Let result be result of evaluating FunctionStatementList.
  742. auto result = m_ecmascript_code->execute(*ast_interpreter);
  743. // 3. Let env be the running execution context's LexicalEnvironment.
  744. auto env = vm.running_execution_context().lexical_environment;
  745. VERIFY(is<DeclarativeEnvironment>(*env));
  746. // 4. Return ? DisposeResources(env, result).
  747. return dispose_resources(vm, static_cast<DeclarativeEnvironment*>(env.ptr()), result);
  748. }
  749. // AsyncFunctionBody : FunctionBody
  750. else if (m_kind == FunctionKind::Async) {
  751. // 1. Let promiseCapability be ! NewPromiseCapability(%Promise%).
  752. auto promise_capability = MUST(new_promise_capability(vm, realm.intrinsics().promise_constructor()));
  753. // 2. Let declResult be Completion(FunctionDeclarationInstantiation(functionObject, argumentsList)).
  754. auto declaration_result = function_declaration_instantiation(ast_interpreter);
  755. // 3. If declResult is an abrupt completion, then
  756. if (declaration_result.is_throw_completion()) {
  757. // a. Perform ! Call(promiseCapability.[[Reject]], undefined, « declResult.[[Value]] »).
  758. MUST(call(vm, *promise_capability->reject(), js_undefined(), *declaration_result.throw_completion().value()));
  759. }
  760. // 4. Else,
  761. else {
  762. // a. Perform AsyncFunctionStart(promiseCapability, FunctionBody).
  763. async_function_start(promise_capability);
  764. }
  765. // 5. Return Completion Record { [[Type]]: return, [[Value]]: promiseCapability.[[Promise]], [[Target]]: empty }.
  766. return Completion { Completion::Type::Return, promise_capability->promise(), {} };
  767. }
  768. }
  769. VERIFY_NOT_REACHED();
  770. }
  771. void ECMAScriptFunctionObject::set_name(DeprecatedFlyString const& name)
  772. {
  773. VERIFY(!name.is_null());
  774. auto& vm = this->vm();
  775. m_name = name;
  776. MUST(define_property_or_throw(vm.names.name, { .value = PrimitiveString::create(vm, m_name), .writable = false, .enumerable = false, .configurable = true }));
  777. }
  778. }