Object.cpp 41 KB

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  1. /*
  2. * Copyright (c) 2020, Andreas Kling <kling@serenityos.org>
  3. * Copyright (c) 2020-2021, Linus Groh <linusg@serenityos.org>
  4. *
  5. * SPDX-License-Identifier: BSD-2-Clause
  6. */
  7. #include <AK/String.h>
  8. #include <AK/TemporaryChange.h>
  9. #include <LibJS/Interpreter.h>
  10. #include <LibJS/Runtime/AbstractOperations.h>
  11. #include <LibJS/Runtime/Accessor.h>
  12. #include <LibJS/Runtime/Array.h>
  13. #include <LibJS/Runtime/Error.h>
  14. #include <LibJS/Runtime/GlobalObject.h>
  15. #include <LibJS/Runtime/NativeFunction.h>
  16. #include <LibJS/Runtime/Object.h>
  17. #include <LibJS/Runtime/PropertyDescriptor.h>
  18. #include <LibJS/Runtime/ProxyObject.h>
  19. #include <LibJS/Runtime/Shape.h>
  20. #include <LibJS/Runtime/TemporaryClearException.h>
  21. #include <LibJS/Runtime/Value.h>
  22. namespace JS {
  23. // 10.1.12 OrdinaryObjectCreate ( proto [ , additionalInternalSlotsList ] ), https://tc39.es/ecma262/#sec-ordinaryobjectcreate
  24. Object* Object::create(GlobalObject& global_object, Object* prototype)
  25. {
  26. if (!prototype)
  27. return global_object.heap().allocate<Object>(global_object, *global_object.empty_object_shape());
  28. else if (prototype == global_object.object_prototype())
  29. return global_object.heap().allocate<Object>(global_object, *global_object.new_object_shape());
  30. else
  31. return global_object.heap().allocate<Object>(global_object, *prototype);
  32. }
  33. Object::Object(GlobalObjectTag)
  34. {
  35. // This is the global object
  36. m_shape = heap().allocate_without_global_object<Shape>(*this);
  37. }
  38. Object::Object(ConstructWithoutPrototypeTag, GlobalObject& global_object)
  39. {
  40. m_shape = heap().allocate_without_global_object<Shape>(global_object);
  41. }
  42. Object::Object(Object& prototype)
  43. {
  44. m_shape = prototype.global_object().empty_object_shape();
  45. set_prototype(&prototype);
  46. }
  47. Object::Object(Shape& shape)
  48. : m_shape(&shape)
  49. {
  50. m_storage.resize(shape.property_count());
  51. }
  52. void Object::initialize(GlobalObject&)
  53. {
  54. }
  55. Object::~Object()
  56. {
  57. }
  58. // 7.2 Testing and Comparison Operations, https://tc39.es/ecma262/#sec-testing-and-comparison-operations
  59. // 7.2.5 IsExtensible ( O ), https://tc39.es/ecma262/#sec-isextensible-o
  60. ThrowCompletionOr<bool> Object::is_extensible() const
  61. {
  62. // 1. Return ? O.[[IsExtensible]]().
  63. return internal_is_extensible();
  64. }
  65. // 7.3 Operations on Objects, https://tc39.es/ecma262/#sec-operations-on-objects
  66. // 7.3.2 Get ( O, P ), https://tc39.es/ecma262/#sec-get-o-p
  67. ThrowCompletionOr<Value> Object::get(PropertyName const& property_name) const
  68. {
  69. // 1. Assert: Type(O) is Object.
  70. // 2. Assert: IsPropertyKey(P) is true.
  71. VERIFY(property_name.is_valid());
  72. // 3. Return ? O.[[Get]](P, O).
  73. return TRY(internal_get(property_name, this));
  74. }
  75. // 7.3.3 GetV ( V, P ) is defined as Value::get().
  76. // 7.3.4 Set ( O, P, V, Throw ), https://tc39.es/ecma262/#sec-set-o-p-v-throw
  77. ThrowCompletionOr<bool> Object::set(PropertyName const& property_name, Value value, ShouldThrowExceptions throw_exceptions)
  78. {
  79. VERIFY(!value.is_empty());
  80. auto& vm = this->vm();
  81. // 1. Assert: Type(O) is Object.
  82. // 2. Assert: IsPropertyKey(P) is true.
  83. VERIFY(property_name.is_valid());
  84. // 3. Assert: Type(Throw) is Boolean.
  85. // 4. Let success be ? O.[[Set]](P, V, O).
  86. auto success = TRY(internal_set(property_name, value, this));
  87. // 5. If success is false and Throw is true, throw a TypeError exception.
  88. if (!success && throw_exceptions == ShouldThrowExceptions::Yes) {
  89. // FIXME: Improve/contextualize error message
  90. return vm.throw_completion<TypeError>(global_object(), ErrorType::ObjectSetReturnedFalse);
  91. }
  92. // 6. Return success.
  93. return success;
  94. }
  95. // 7.3.5 CreateDataProperty ( O, P, V ), https://tc39.es/ecma262/#sec-createdataproperty
  96. ThrowCompletionOr<bool> Object::create_data_property(PropertyName const& property_name, Value value)
  97. {
  98. // 1. Assert: Type(O) is Object.
  99. // 2. Assert: IsPropertyKey(P) is true.
  100. VERIFY(property_name.is_valid());
  101. // 3. Let newDesc be the PropertyDescriptor { [[Value]]: V, [[Writable]]: true, [[Enumerable]]: true, [[Configurable]]: true }.
  102. auto new_descriptor = PropertyDescriptor {
  103. .value = value,
  104. .writable = true,
  105. .enumerable = true,
  106. .configurable = true,
  107. };
  108. // 4. Return ? O.[[DefineOwnProperty]](P, newDesc).
  109. return internal_define_own_property(property_name, new_descriptor);
  110. }
  111. // 7.3.6 CreateMethodProperty ( O, P, V ), https://tc39.es/ecma262/#sec-createmethodproperty
  112. ThrowCompletionOr<bool> Object::create_method_property(PropertyName const& property_name, Value value)
  113. {
  114. VERIFY(!value.is_empty());
  115. // 1. Assert: Type(O) is Object.
  116. // 2. Assert: IsPropertyKey(P) is true.
  117. VERIFY(property_name.is_valid());
  118. // 3. Let newDesc be the PropertyDescriptor { [[Value]]: V, [[Writable]]: true, [[Enumerable]]: false, [[Configurable]]: true }.
  119. auto new_descriptor = PropertyDescriptor {
  120. .value = value,
  121. .writable = true,
  122. .enumerable = false,
  123. .configurable = true,
  124. };
  125. // 4. Return ? O.[[DefineOwnProperty]](P, newDesc).
  126. return internal_define_own_property(property_name, new_descriptor);
  127. }
  128. // 7.3.7 CreateDataPropertyOrThrow ( O, P, V ), https://tc39.es/ecma262/#sec-createdatapropertyorthrow
  129. ThrowCompletionOr<bool> Object::create_data_property_or_throw(PropertyName const& property_name, Value value)
  130. {
  131. VERIFY(!value.is_empty());
  132. auto& vm = this->vm();
  133. // 1. Assert: Type(O) is Object.
  134. // 2. Assert: IsPropertyKey(P) is true.
  135. VERIFY(property_name.is_valid());
  136. // 3. Let success be ? CreateDataProperty(O, P, V).
  137. auto success = TRY(create_data_property(property_name, value));
  138. // 4. If success is false, throw a TypeError exception.
  139. if (!success) {
  140. // FIXME: Improve/contextualize error message
  141. return vm.throw_completion<TypeError>(global_object(), ErrorType::ObjectDefineOwnPropertyReturnedFalse);
  142. }
  143. // 5. Return success.
  144. return success;
  145. }
  146. // 7.3.6 CreateNonEnumerableDataPropertyOrThrow ( O, P, V ), https://tc39.es/proposal-error-cause/#sec-createnonenumerabledatapropertyorthrow
  147. ThrowCompletionOr<bool> Object::create_non_enumerable_data_property_or_throw(PropertyName const& property_name, Value value)
  148. {
  149. VERIFY(!value.is_empty());
  150. VERIFY(property_name.is_valid());
  151. // 1. Let newDesc be the PropertyDescriptor { [[Value]]: V, [[Writable]]: true, [[Enumerable]]: false, [[Configurable]]: true }.
  152. auto new_description = PropertyDescriptor { .value = value, .writable = true, .enumerable = false, .configurable = true };
  153. // 2. Return ? DefinePropertyOrThrow(O, P, newDesc).
  154. return define_property_or_throw(property_name, new_description);
  155. }
  156. // 7.3.8 DefinePropertyOrThrow ( O, P, desc ), https://tc39.es/ecma262/#sec-definepropertyorthrow
  157. ThrowCompletionOr<bool> Object::define_property_or_throw(PropertyName const& property_name, PropertyDescriptor const& property_descriptor)
  158. {
  159. auto& vm = this->vm();
  160. // 1. Assert: Type(O) is Object.
  161. // 2. Assert: IsPropertyKey(P) is true.
  162. VERIFY(property_name.is_valid());
  163. // 3. Let success be ? O.[[DefineOwnProperty]](P, desc).
  164. auto success = TRY(internal_define_own_property(property_name, property_descriptor));
  165. // 4. If success is false, throw a TypeError exception.
  166. if (!success) {
  167. // FIXME: Improve/contextualize error message
  168. return vm.throw_completion<TypeError>(global_object(), ErrorType::ObjectDefineOwnPropertyReturnedFalse);
  169. }
  170. // 5. Return success.
  171. return success;
  172. }
  173. // 7.3.9 DeletePropertyOrThrow ( O, P ), https://tc39.es/ecma262/#sec-deletepropertyorthrow
  174. ThrowCompletionOr<bool> Object::delete_property_or_throw(PropertyName const& property_name)
  175. {
  176. auto& vm = this->vm();
  177. // 1. Assert: Type(O) is Object.
  178. // 2. Assert: IsPropertyKey(P) is true.
  179. VERIFY(property_name.is_valid());
  180. // 3. Let success be ? O.[[Delete]](P).
  181. auto success = TRY(internal_delete(property_name));
  182. // 4. If success is false, throw a TypeError exception.
  183. if (!success) {
  184. // FIXME: Improve/contextualize error message
  185. return vm.throw_completion<TypeError>(global_object(), ErrorType::ObjectDeleteReturnedFalse);
  186. }
  187. // 5. Return success.
  188. return success;
  189. }
  190. // 7.3.11 HasProperty ( O, P ), https://tc39.es/ecma262/#sec-hasproperty
  191. ThrowCompletionOr<bool> Object::has_property(PropertyName const& property_name) const
  192. {
  193. // 1. Assert: Type(O) is Object.
  194. // 2. Assert: IsPropertyKey(P) is true.
  195. VERIFY(property_name.is_valid());
  196. // 3. Return ? O.[[HasProperty]](P).
  197. return internal_has_property(property_name);
  198. }
  199. // 7.3.12 HasOwnProperty ( O, P ), https://tc39.es/ecma262/#sec-hasownproperty
  200. ThrowCompletionOr<bool> Object::has_own_property(PropertyName const& property_name) const
  201. {
  202. // 1. Assert: Type(O) is Object.
  203. // 2. Assert: IsPropertyKey(P) is true.
  204. VERIFY(property_name.is_valid());
  205. // 3. Let desc be ? O.[[GetOwnProperty]](P).
  206. auto descriptor = TRY(internal_get_own_property(property_name));
  207. // 4. If desc is undefined, return false.
  208. if (!descriptor.has_value())
  209. return false;
  210. // 5. Return true.
  211. return true;
  212. }
  213. // 7.3.15 SetIntegrityLevel ( O, level ), https://tc39.es/ecma262/#sec-setintegritylevel
  214. ThrowCompletionOr<bool> Object::set_integrity_level(IntegrityLevel level)
  215. {
  216. auto& global_object = this->global_object();
  217. // 1. Assert: Type(O) is Object.
  218. // 2. Assert: level is either sealed or frozen.
  219. VERIFY(level == IntegrityLevel::Sealed || level == IntegrityLevel::Frozen);
  220. // 3. Let status be ? O.[[PreventExtensions]]().
  221. auto status = TRY(internal_prevent_extensions());
  222. // 4. If status is false, return false.
  223. if (!status)
  224. return false;
  225. // 5. Let keys be ? O.[[OwnPropertyKeys]]().
  226. auto keys = TRY(internal_own_property_keys());
  227. // 6. If level is sealed, then
  228. if (level == IntegrityLevel::Sealed) {
  229. // a. For each element k of keys, do
  230. for (auto& key : keys) {
  231. auto property_name = PropertyName::from_value(global_object, key);
  232. // i. Perform ? DefinePropertyOrThrow(O, k, PropertyDescriptor { [[Configurable]]: false }).
  233. TRY(define_property_or_throw(property_name, { .configurable = false }));
  234. }
  235. }
  236. // 7. Else,
  237. else {
  238. // a. Assert: level is frozen.
  239. // b. For each element k of keys, do
  240. for (auto& key : keys) {
  241. auto property_name = PropertyName::from_value(global_object, key);
  242. // i. Let currentDesc be ? O.[[GetOwnProperty]](k).
  243. auto current_descriptor = TRY(internal_get_own_property(property_name));
  244. // ii. If currentDesc is not undefined, then
  245. if (!current_descriptor.has_value())
  246. continue;
  247. PropertyDescriptor descriptor;
  248. // 1. If IsAccessorDescriptor(currentDesc) is true, then
  249. if (current_descriptor->is_accessor_descriptor()) {
  250. // a. Let desc be the PropertyDescriptor { [[Configurable]]: false }.
  251. descriptor = { .configurable = false };
  252. }
  253. // 2. Else,
  254. else {
  255. // a. Let desc be the PropertyDescriptor { [[Configurable]]: false, [[Writable]]: false }.
  256. descriptor = { .writable = false, .configurable = false };
  257. }
  258. // 3. Perform ? DefinePropertyOrThrow(O, k, desc).
  259. TRY(define_property_or_throw(property_name, descriptor));
  260. }
  261. }
  262. // 8. Return true.
  263. return true;
  264. }
  265. // 7.3.16 TestIntegrityLevel ( O, level ), https://tc39.es/ecma262/#sec-testintegritylevel
  266. bool Object::test_integrity_level(IntegrityLevel level) const
  267. {
  268. // 1. Assert: Type(O) is Object.
  269. // 2. Assert: level is either sealed or frozen.
  270. VERIFY(level == IntegrityLevel::Sealed || level == IntegrityLevel::Frozen);
  271. // 3. Let extensible be ? IsExtensible(O).
  272. auto extensible = TRY_OR_DISCARD(is_extensible());
  273. // 4. If extensible is true, return false.
  274. // 5. NOTE: If the object is extensible, none of its properties are examined.
  275. if (extensible)
  276. return false;
  277. // 6. Let keys be ? O.[[OwnPropertyKeys]]().
  278. auto keys = TRY_OR_DISCARD(internal_own_property_keys());
  279. // 7. For each element k of keys, do
  280. for (auto& key : keys) {
  281. auto property_name = PropertyName::from_value(global_object(), key);
  282. // a. Let currentDesc be ? O.[[GetOwnProperty]](k).
  283. auto current_descriptor = TRY_OR_DISCARD(internal_get_own_property(property_name));
  284. // b. If currentDesc is not undefined, then
  285. if (!current_descriptor.has_value())
  286. continue;
  287. // i. If currentDesc.[[Configurable]] is true, return false.
  288. if (*current_descriptor->configurable)
  289. return false;
  290. // ii. If level is frozen and IsDataDescriptor(currentDesc) is true, then
  291. if (level == IntegrityLevel::Frozen && current_descriptor->is_data_descriptor()) {
  292. // 1. If currentDesc.[[Writable]] is true, return false.
  293. if (*current_descriptor->writable)
  294. return false;
  295. }
  296. }
  297. // 8. Return true.
  298. return true;
  299. }
  300. // 7.3.23 EnumerableOwnPropertyNames ( O, kind ), https://tc39.es/ecma262/#sec-enumerableownpropertynames
  301. MarkedValueList Object::enumerable_own_property_names(PropertyKind kind) const
  302. {
  303. // NOTE: This has been flattened for readability, so some `else` branches in the
  304. // spec text have been replaced with `continue`s in the loop below.
  305. auto& global_object = this->global_object();
  306. // 1. Assert: Type(O) is Object.
  307. // 2. Let ownKeys be ? O.[[OwnPropertyKeys]]().
  308. auto own_keys_or_error = internal_own_property_keys();
  309. if (own_keys_or_error.is_error())
  310. return MarkedValueList { heap() };
  311. auto own_keys = own_keys_or_error.release_value();
  312. // 3. Let properties be a new empty List.
  313. auto properties = MarkedValueList { heap() };
  314. // 4. For each element key of ownKeys, do
  315. for (auto& key : own_keys) {
  316. // a. If Type(key) is String, then
  317. if (!key.is_string())
  318. continue;
  319. auto property_name = PropertyName::from_value(global_object, key);
  320. // i. Let desc be ? O.[[GetOwnProperty]](key).
  321. auto descriptor_or_error = internal_get_own_property(property_name);
  322. if (descriptor_or_error.is_error())
  323. return MarkedValueList { heap() };
  324. auto descriptor = descriptor_or_error.release_value();
  325. // ii. If desc is not undefined and desc.[[Enumerable]] is true, then
  326. if (descriptor.has_value() && *descriptor->enumerable) {
  327. // 1. If kind is key, append key to properties.
  328. if (kind == PropertyKind::Key) {
  329. properties.append(key);
  330. continue;
  331. }
  332. // 2. Else,
  333. // a. Let value be ? Get(O, key).
  334. auto value_or_error = get(property_name);
  335. if (value_or_error.is_error())
  336. return MarkedValueList { heap() };
  337. auto value = value_or_error.release_value();
  338. // b. If kind is value, append value to properties.
  339. if (kind == PropertyKind::Value) {
  340. properties.append(value);
  341. continue;
  342. }
  343. // c. Else,
  344. // i. Assert: kind is key+value.
  345. VERIFY(kind == PropertyKind::KeyAndValue);
  346. // ii. Let entry be ! CreateArrayFromList(« key, value »).
  347. auto entry = Array::create_from(global_object, { key, value });
  348. // iii. Append entry to properties.
  349. properties.append(entry);
  350. }
  351. }
  352. // 5. Return properties.
  353. return properties;
  354. }
  355. // 7.3.25 CopyDataProperties ( target, source, excludedItems ), https://tc39.es/ecma262/#sec-copydataproperties
  356. ThrowCompletionOr<Object*> Object::copy_data_properties(Value source, HashTable<PropertyName, PropertyNameTraits> const& seen_names, GlobalObject& global_object)
  357. {
  358. if (source.is_nullish())
  359. return this;
  360. auto* from_object = source.to_object(global_object);
  361. VERIFY(from_object);
  362. for (auto& next_key_value : TRY(from_object->internal_own_property_keys())) {
  363. auto next_key = PropertyName::from_value(global_object, next_key_value);
  364. if (seen_names.contains(next_key))
  365. continue;
  366. auto desc = TRY(from_object->internal_get_own_property(next_key));
  367. if (desc.has_value() && desc->attributes().is_enumerable()) {
  368. auto prop_value = TRY(from_object->get(next_key));
  369. TRY(create_data_property_or_throw(next_key, prop_value));
  370. }
  371. }
  372. return this;
  373. }
  374. // 10.1 Ordinary Object Internal Methods and Internal Slots, https://tc39.es/ecma262/#sec-ordinary-object-internal-methods-and-internal-slots
  375. // 10.1.1 [[GetPrototypeOf]] ( ), https://tc39.es/ecma262/#sec-ordinary-object-internal-methods-and-internal-slots-getprototypeof
  376. ThrowCompletionOr<Object*> Object::internal_get_prototype_of() const
  377. {
  378. // 1. Return O.[[Prototype]].
  379. return const_cast<Object*>(prototype());
  380. }
  381. // 10.1.2 [[SetPrototypeOf]] ( V ), https://tc39.es/ecma262/#sec-ordinary-object-internal-methods-and-internal-slots-setprototypeof-v
  382. ThrowCompletionOr<bool> Object::internal_set_prototype_of(Object* new_prototype)
  383. {
  384. // 1. Assert: Either Type(V) is Object or Type(V) is Null.
  385. // 2. Let current be O.[[Prototype]].
  386. // 3. If SameValue(V, current) is true, return true.
  387. if (prototype() == new_prototype)
  388. return true;
  389. // 4. Let extensible be O.[[Extensible]].
  390. // 5. If extensible is false, return false.
  391. if (!m_is_extensible)
  392. return false;
  393. // 6. Let p be V.
  394. auto* prototype = new_prototype;
  395. // 7. Let done be false.
  396. // 8. Repeat, while done is false,
  397. while (prototype) {
  398. // a. If p is null, set done to true.
  399. // b. Else if SameValue(p, O) is true, return false.
  400. if (prototype == this)
  401. return false;
  402. // c. Else,
  403. // i. If p.[[GetPrototypeOf]] is not the ordinary object internal method defined in 10.1.1, set done to true.
  404. // NOTE: This is a best-effort implementation; we don't have a good way of detecting whether certain virtual
  405. // Object methods have been overridden by a given object, but as ProxyObject is the only one doing that for
  406. // [[SetPrototypeOf]], this check does the trick.
  407. if (is<ProxyObject>(prototype))
  408. break;
  409. // ii. Else, set p to p.[[Prototype]].
  410. prototype = prototype->prototype();
  411. }
  412. // 9. Set O.[[Prototype]] to V.
  413. set_prototype(new_prototype);
  414. // 10. Return true.
  415. return true;
  416. }
  417. // 10.1.3 [[IsExtensible]] ( ), https://tc39.es/ecma262/#sec-ordinary-object-internal-methods-and-internal-slots-isextensible
  418. ThrowCompletionOr<bool> Object::internal_is_extensible() const
  419. {
  420. // 1. Return O.[[Extensible]].
  421. return m_is_extensible;
  422. }
  423. // 10.1.4 [[PreventExtensions]] ( ), https://tc39.es/ecma262/#sec-ordinary-object-internal-methods-and-internal-slots-preventextensions
  424. ThrowCompletionOr<bool> Object::internal_prevent_extensions()
  425. {
  426. // 1. Set O.[[Extensible]] to false.
  427. m_is_extensible = false;
  428. // 2. Return true.
  429. return true;
  430. }
  431. // 10.1.5 [[GetOwnProperty]] ( P ), https://tc39.es/ecma262/#sec-ordinary-object-internal-methods-and-internal-slots-getownproperty-p
  432. ThrowCompletionOr<Optional<PropertyDescriptor>> Object::internal_get_own_property(PropertyName const& property_name) const
  433. {
  434. // 1. Assert: IsPropertyKey(P) is true.
  435. VERIFY(property_name.is_valid());
  436. // 2. If O does not have an own property with key P, return undefined.
  437. if (!storage_has(property_name))
  438. return Optional<PropertyDescriptor> {};
  439. // 3. Let D be a newly created Property Descriptor with no fields.
  440. PropertyDescriptor descriptor;
  441. // 4. Let X be O's own property whose key is P.
  442. auto [value, attributes] = *storage_get(property_name);
  443. // 5. If X is a data property, then
  444. if (!value.is_accessor()) {
  445. // a. Set D.[[Value]] to the value of X's [[Value]] attribute.
  446. descriptor.value = value.value_or(js_undefined());
  447. // b. Set D.[[Writable]] to the value of X's [[Writable]] attribute.
  448. descriptor.writable = attributes.is_writable();
  449. }
  450. // 6. Else,
  451. else {
  452. // a. Assert: X is an accessor property.
  453. // b. Set D.[[Get]] to the value of X's [[Get]] attribute.
  454. descriptor.get = value.as_accessor().getter();
  455. // c. Set D.[[Set]] to the value of X's [[Set]] attribute.
  456. descriptor.set = value.as_accessor().setter();
  457. }
  458. // 7. Set D.[[Enumerable]] to the value of X's [[Enumerable]] attribute.
  459. descriptor.enumerable = attributes.is_enumerable();
  460. // 8. Set D.[[Configurable]] to the value of X's [[Configurable]] attribute.
  461. descriptor.configurable = attributes.is_configurable();
  462. // 9. Return D.
  463. return { descriptor };
  464. }
  465. // 10.1.6 [[DefineOwnProperty]] ( P, Desc ), https://tc39.es/ecma262/#sec-ordinary-object-internal-methods-and-internal-slots-defineownproperty-p-desc
  466. ThrowCompletionOr<bool> Object::internal_define_own_property(PropertyName const& property_name, PropertyDescriptor const& property_descriptor)
  467. {
  468. VERIFY(property_name.is_valid());
  469. // 1. Let current be ? O.[[GetOwnProperty]](P).
  470. auto current = TRY(internal_get_own_property(property_name));
  471. // 2. Let extensible be ? IsExtensible(O).
  472. auto extensible = TRY(is_extensible());
  473. // 3. Return ValidateAndApplyPropertyDescriptor(O, P, extensible, Desc, current).
  474. return validate_and_apply_property_descriptor(this, property_name, extensible, property_descriptor, current);
  475. }
  476. // 10.1.7 [[HasProperty]] ( P ), https://tc39.es/ecma262/#sec-ordinary-object-internal-methods-and-internal-slots-hasproperty-p
  477. ThrowCompletionOr<bool> Object::internal_has_property(PropertyName const& property_name) const
  478. {
  479. auto& vm = this->vm();
  480. // 1. Assert: IsPropertyKey(P) is true.
  481. VERIFY(property_name.is_valid());
  482. // 2. Let hasOwn be ? O.[[GetOwnProperty]](P).
  483. auto has_own = TRY(internal_get_own_property(property_name));
  484. // 3. If hasOwn is not undefined, return true.
  485. if (has_own.has_value())
  486. return true;
  487. // 4. Let parent be ? O.[[GetPrototypeOf]]().
  488. auto* parent = TRY(internal_get_prototype_of());
  489. // 5. If parent is not null, then
  490. if (parent) {
  491. // a. Return ? parent.[[HasProperty]](P).
  492. auto result = parent->internal_has_property(property_name);
  493. if (auto* exception = vm.exception())
  494. return throw_completion(exception->value());
  495. return result;
  496. }
  497. // 6. Return false.
  498. return false;
  499. }
  500. // 10.1.8 [[Get]] ( P, Receiver ), https://tc39.es/ecma262/#sec-ordinary-object-internal-methods-and-internal-slots-get-p-receiver
  501. ThrowCompletionOr<Value> Object::internal_get(PropertyName const& property_name, Value receiver) const
  502. {
  503. VERIFY(!receiver.is_empty());
  504. auto& vm = this->vm();
  505. // 1. Assert: IsPropertyKey(P) is true.
  506. VERIFY(property_name.is_valid());
  507. // 2. Let desc be ? O.[[GetOwnProperty]](P).
  508. auto descriptor = TRY(internal_get_own_property(property_name));
  509. // 3. If desc is undefined, then
  510. if (!descriptor.has_value()) {
  511. // a. Let parent be ? O.[[GetPrototypeOf]]().
  512. auto* parent = TRY(internal_get_prototype_of());
  513. // b. If parent is null, return undefined.
  514. if (!parent)
  515. return js_undefined();
  516. // c. Return ? parent.[[Get]](P, Receiver).
  517. return parent->internal_get(property_name, receiver);
  518. }
  519. // 4. If IsDataDescriptor(desc) is true, return desc.[[Value]].
  520. if (descriptor->is_data_descriptor())
  521. return *descriptor->value;
  522. // 5. Assert: IsAccessorDescriptor(desc) is true.
  523. VERIFY(descriptor->is_accessor_descriptor());
  524. // 6. Let getter be desc.[[Get]].
  525. auto* getter = *descriptor->get;
  526. // 7. If getter is undefined, return undefined.
  527. if (!getter)
  528. return js_undefined();
  529. // 8. Return ? Call(getter, Receiver).
  530. return TRY(vm.call(*getter, receiver));
  531. }
  532. // 10.1.9 [[Set]] ( P, V, Receiver ), https://tc39.es/ecma262/#sec-ordinary-object-internal-methods-and-internal-slots-set-p-v-receiver
  533. ThrowCompletionOr<bool> Object::internal_set(PropertyName const& property_name, Value value, Value receiver)
  534. {
  535. VERIFY(!value.is_empty());
  536. VERIFY(!receiver.is_empty());
  537. auto& vm = this->vm();
  538. // 1. Assert: IsPropertyKey(P) is true.
  539. VERIFY(property_name.is_valid());
  540. // 2. Let ownDesc be ? O.[[GetOwnProperty]](P).
  541. auto own_descriptor = TRY(internal_get_own_property(property_name));
  542. // 3. Return OrdinarySetWithOwnDescriptor(O, P, V, Receiver, ownDesc).
  543. auto success = ordinary_set_with_own_descriptor(property_name, value, receiver, own_descriptor);
  544. if (auto* exception = vm.exception())
  545. return throw_completion(exception->value());
  546. return success;
  547. }
  548. // 10.1.9.2 OrdinarySetWithOwnDescriptor ( O, P, V, Receiver, ownDesc ), https://tc39.es/ecma262/#sec-ordinarysetwithowndescriptor
  549. bool Object::ordinary_set_with_own_descriptor(PropertyName const& property_name, Value value, Value receiver, Optional<PropertyDescriptor> own_descriptor)
  550. {
  551. auto& vm = this->vm();
  552. // 1. Assert: IsPropertyKey(P) is true.
  553. VERIFY(property_name.is_valid());
  554. // 2. If ownDesc is undefined, then
  555. if (!own_descriptor.has_value()) {
  556. // a. Let parent be ? O.[[GetPrototypeOf]]().
  557. auto* parent = TRY_OR_DISCARD(internal_get_prototype_of());
  558. // b. If parent is not null, then
  559. if (parent) {
  560. // i. Return ? parent.[[Set]](P, V, Receiver).
  561. return TRY_OR_DISCARD(parent->internal_set(property_name, value, receiver));
  562. }
  563. // c. Else,
  564. else {
  565. // i. Set ownDesc to the PropertyDescriptor { [[Value]]: undefined, [[Writable]]: true, [[Enumerable]]: true, [[Configurable]]: true }.
  566. own_descriptor = PropertyDescriptor {
  567. .value = js_undefined(),
  568. .writable = true,
  569. .enumerable = true,
  570. .configurable = true,
  571. };
  572. }
  573. }
  574. // 3. If IsDataDescriptor(ownDesc) is true, then
  575. if (own_descriptor->is_data_descriptor()) {
  576. // a. If ownDesc.[[Writable]] is false, return false.
  577. if (!*own_descriptor->writable)
  578. return false;
  579. // b. If Type(Receiver) is not Object, return false.
  580. if (!receiver.is_object())
  581. return false;
  582. // c. Let existingDescriptor be ? Receiver.[[GetOwnProperty]](P).
  583. auto existing_descriptor = TRY_OR_DISCARD(receiver.as_object().internal_get_own_property(property_name));
  584. // d. If existingDescriptor is not undefined, then
  585. if (existing_descriptor.has_value()) {
  586. // i. If IsAccessorDescriptor(existingDescriptor) is true, return false.
  587. if (existing_descriptor->is_accessor_descriptor())
  588. return false;
  589. // ii. If existingDescriptor.[[Writable]] is false, return false.
  590. if (!*existing_descriptor->writable)
  591. return false;
  592. // iii. Let valueDesc be the PropertyDescriptor { [[Value]]: V }.
  593. auto value_descriptor = PropertyDescriptor { .value = value };
  594. // iv. Return ? Receiver.[[DefineOwnProperty]](P, valueDesc).
  595. return TRY_OR_DISCARD(receiver.as_object().internal_define_own_property(property_name, value_descriptor));
  596. }
  597. // e. Else,
  598. else {
  599. // i. Assert: Receiver does not currently have a property P.
  600. VERIFY(!receiver.as_object().storage_has(property_name));
  601. // ii. Return ? CreateDataProperty(Receiver, P, V).
  602. return TRY_OR_DISCARD(receiver.as_object().create_data_property(property_name, value));
  603. }
  604. }
  605. // 4. Assert: IsAccessorDescriptor(ownDesc) is true.
  606. VERIFY(own_descriptor->is_accessor_descriptor());
  607. // 5. Let setter be ownDesc.[[Set]].
  608. auto* setter = *own_descriptor->set;
  609. // 6. If setter is undefined, return false.
  610. if (!setter)
  611. return false;
  612. // 7. Perform ? Call(setter, Receiver, « V »).
  613. (void)vm.call(*setter, receiver, value);
  614. if (vm.exception())
  615. return {};
  616. // 8. Return true.
  617. return true;
  618. }
  619. // 10.1.10 [[Delete]] ( P ), https://tc39.es/ecma262/#sec-ordinary-object-internal-methods-and-internal-slots-delete-p
  620. ThrowCompletionOr<bool> Object::internal_delete(PropertyName const& property_name)
  621. {
  622. // 1. Assert: IsPropertyKey(P) is true.
  623. VERIFY(property_name.is_valid());
  624. // 2. Let desc be ? O.[[GetOwnProperty]](P).
  625. auto descriptor = TRY(internal_get_own_property(property_name));
  626. // 3. If desc is undefined, return true.
  627. if (!descriptor.has_value())
  628. return true;
  629. // 4. If desc.[[Configurable]] is true, then
  630. if (*descriptor->configurable) {
  631. // a. Remove the own property with name P from O.
  632. storage_delete(property_name);
  633. // b. Return true.
  634. return true;
  635. }
  636. // 5. Return false.
  637. return false;
  638. }
  639. // 10.1.11 [[OwnPropertyKeys]] ( ), https://tc39.es/ecma262/#sec-ordinary-object-internal-methods-and-internal-slots-ownpropertykeys
  640. ThrowCompletionOr<MarkedValueList> Object::internal_own_property_keys() const
  641. {
  642. auto& vm = this->vm();
  643. // 1. Let keys be a new empty List.
  644. MarkedValueList keys { heap() };
  645. // 2. For each own property key P of O such that P is an array index, in ascending numeric index order, do
  646. for (auto& entry : m_indexed_properties) {
  647. // a. Add P as the last element of keys.
  648. keys.append(js_string(vm, String::number(entry.index())));
  649. }
  650. // 3. For each own property key P of O such that Type(P) is String and P is not an array index, in ascending chronological order of property creation, do
  651. for (auto& it : shape().property_table_ordered()) {
  652. if (it.key.is_string()) {
  653. // a. Add P as the last element of keys.
  654. keys.append(it.key.to_value(vm));
  655. }
  656. }
  657. // 4. For each own property key P of O such that Type(P) is Symbol, in ascending chronological order of property creation, do
  658. for (auto& it : shape().property_table_ordered()) {
  659. if (it.key.is_symbol()) {
  660. // a. Add P as the last element of keys.
  661. keys.append(it.key.to_value(vm));
  662. }
  663. }
  664. // 5. Return keys.
  665. return { move(keys) };
  666. }
  667. // 10.4.7.2 SetImmutablePrototype ( O, V ), https://tc39.es/ecma262/#sec-set-immutable-prototype
  668. bool Object::set_immutable_prototype(Object* prototype)
  669. {
  670. // 1. Assert: Either Type(V) is Object or Type(V) is Null.
  671. // 2. Let current be ? O.[[GetPrototypeOf]]().
  672. auto* current = TRY_OR_DISCARD(internal_get_prototype_of());
  673. // 3. If SameValue(V, current) is true, return true.
  674. if (prototype == current)
  675. return true;
  676. // 4. Return false.
  677. return false;
  678. }
  679. Optional<ValueAndAttributes> Object::storage_get(PropertyName const& property_name) const
  680. {
  681. VERIFY(property_name.is_valid());
  682. Value value;
  683. PropertyAttributes attributes;
  684. if (property_name.is_number()) {
  685. auto value_and_attributes = m_indexed_properties.get(property_name.as_number());
  686. if (!value_and_attributes.has_value())
  687. return {};
  688. value = value_and_attributes->value;
  689. attributes = value_and_attributes->attributes;
  690. } else {
  691. auto metadata = shape().lookup(property_name.to_string_or_symbol());
  692. if (!metadata.has_value())
  693. return {};
  694. value = m_storage[metadata->offset];
  695. attributes = metadata->attributes;
  696. }
  697. return ValueAndAttributes { .value = value, .attributes = attributes };
  698. }
  699. bool Object::storage_has(PropertyName const& property_name) const
  700. {
  701. VERIFY(property_name.is_valid());
  702. if (property_name.is_number())
  703. return m_indexed_properties.has_index(property_name.as_number());
  704. return shape().lookup(property_name.to_string_or_symbol()).has_value();
  705. }
  706. void Object::storage_set(PropertyName const& property_name, ValueAndAttributes const& value_and_attributes)
  707. {
  708. VERIFY(property_name.is_valid());
  709. auto [value, attributes] = value_and_attributes;
  710. if (property_name.is_number()) {
  711. auto index = property_name.as_number();
  712. m_indexed_properties.put(index, value, attributes);
  713. return;
  714. }
  715. auto property_name_string_or_symbol = property_name.to_string_or_symbol();
  716. auto metadata = shape().lookup(property_name_string_or_symbol);
  717. if (!metadata.has_value()) {
  718. if (!m_shape->is_unique() && shape().property_count() > 100) {
  719. // If you add more than 100 properties to an object, let's stop doing
  720. // transitions to avoid filling up the heap with shapes.
  721. ensure_shape_is_unique();
  722. }
  723. if (m_shape->is_unique())
  724. m_shape->add_property_to_unique_shape(property_name_string_or_symbol, attributes);
  725. else
  726. set_shape(*m_shape->create_put_transition(property_name_string_or_symbol, attributes));
  727. m_storage.append(value);
  728. return;
  729. }
  730. if (attributes != metadata->attributes) {
  731. if (m_shape->is_unique())
  732. m_shape->reconfigure_property_in_unique_shape(property_name_string_or_symbol, attributes);
  733. else
  734. set_shape(*m_shape->create_configure_transition(property_name_string_or_symbol, attributes));
  735. }
  736. m_storage[metadata->offset] = value;
  737. }
  738. void Object::storage_delete(PropertyName const& property_name)
  739. {
  740. VERIFY(property_name.is_valid());
  741. VERIFY(storage_has(property_name));
  742. if (property_name.is_number())
  743. return m_indexed_properties.remove(property_name.as_number());
  744. auto metadata = shape().lookup(property_name.to_string_or_symbol());
  745. VERIFY(metadata.has_value());
  746. ensure_shape_is_unique();
  747. shape().remove_property_from_unique_shape(property_name.to_string_or_symbol(), metadata->offset);
  748. m_storage.remove(metadata->offset);
  749. }
  750. void Object::set_prototype(Object* new_prototype)
  751. {
  752. if (prototype() == new_prototype)
  753. return;
  754. auto& shape = this->shape();
  755. if (shape.is_unique())
  756. shape.set_prototype_without_transition(new_prototype);
  757. else
  758. m_shape = shape.create_prototype_transition(new_prototype);
  759. }
  760. void Object::define_native_accessor(PropertyName const& property_name, Function<Value(VM&, GlobalObject&)> getter, Function<Value(VM&, GlobalObject&)> setter, PropertyAttributes attribute)
  761. {
  762. auto& vm = this->vm();
  763. String formatted_property_name;
  764. if (property_name.is_number()) {
  765. formatted_property_name = property_name.to_string();
  766. } else if (property_name.is_string()) {
  767. formatted_property_name = property_name.as_string();
  768. } else {
  769. formatted_property_name = String::formatted("[{}]", property_name.as_symbol()->description());
  770. }
  771. FunctionObject* getter_function = nullptr;
  772. if (getter) {
  773. auto name = String::formatted("get {}", formatted_property_name);
  774. getter_function = NativeFunction::create(global_object(), name, move(getter));
  775. getter_function->define_direct_property(vm.names.length, Value(0), Attribute::Configurable);
  776. getter_function->define_direct_property(vm.names.name, js_string(vm, name), Attribute::Configurable);
  777. }
  778. FunctionObject* setter_function = nullptr;
  779. if (setter) {
  780. auto name = String::formatted("set {}", formatted_property_name);
  781. setter_function = NativeFunction::create(global_object(), name, move(setter));
  782. setter_function->define_direct_property(vm.names.length, Value(1), Attribute::Configurable);
  783. setter_function->define_direct_property(vm.names.name, js_string(vm, name), Attribute::Configurable);
  784. }
  785. return define_direct_accessor(property_name, getter_function, setter_function, attribute);
  786. }
  787. void Object::define_direct_accessor(PropertyName const& property_name, FunctionObject* getter, FunctionObject* setter, PropertyAttributes attributes)
  788. {
  789. VERIFY(property_name.is_valid());
  790. auto existing_property = storage_get(property_name).value_or({}).value;
  791. auto* accessor = existing_property.is_accessor() ? &existing_property.as_accessor() : nullptr;
  792. if (!accessor) {
  793. accessor = Accessor::create(vm(), getter, setter);
  794. define_direct_property(property_name, accessor, attributes);
  795. } else {
  796. if (getter)
  797. accessor->set_getter(getter);
  798. if (setter)
  799. accessor->set_setter(setter);
  800. }
  801. }
  802. void Object::ensure_shape_is_unique()
  803. {
  804. if (shape().is_unique())
  805. return;
  806. m_shape = m_shape->create_unique_clone();
  807. }
  808. // Simple side-effect free property lookup, following the prototype chain. Non-standard.
  809. Value Object::get_without_side_effects(const PropertyName& property_name) const
  810. {
  811. auto* object = this;
  812. while (object) {
  813. auto value_and_attributes = object->storage_get(property_name);
  814. if (value_and_attributes.has_value())
  815. return value_and_attributes->value;
  816. object = object->prototype();
  817. }
  818. return {};
  819. }
  820. void Object::define_native_function(PropertyName const& property_name, Function<Value(VM&, GlobalObject&)> native_function, i32 length, PropertyAttributes attribute)
  821. {
  822. auto& vm = this->vm();
  823. String function_name;
  824. if (property_name.is_string()) {
  825. function_name = property_name.as_string();
  826. } else {
  827. function_name = String::formatted("[{}]", property_name.as_symbol()->description());
  828. }
  829. auto* function = NativeFunction::create(global_object(), function_name, move(native_function));
  830. function->define_direct_property(vm.names.length, Value(length), Attribute::Configurable);
  831. function->define_direct_property(vm.names.name, js_string(vm, function_name), Attribute::Configurable);
  832. define_direct_property(property_name, function, attribute);
  833. }
  834. // 20.1.2.3.1 ObjectDefineProperties ( O, Properties ), https://tc39.es/ecma262/#sec-objectdefineproperties
  835. Object* Object::define_properties(Value properties)
  836. {
  837. auto& vm = this->vm();
  838. auto& global_object = this->global_object();
  839. // 1. Assert: Type(O) is Object.
  840. // 2. Let props be ? ToObject(Properties).
  841. auto* props = properties.to_object(global_object);
  842. if (vm.exception())
  843. return {};
  844. // 3. Let keys be ? props.[[OwnPropertyKeys]]().
  845. auto keys = TRY_OR_DISCARD(props->internal_own_property_keys());
  846. struct NameAndDescriptor {
  847. PropertyName name;
  848. PropertyDescriptor descriptor;
  849. };
  850. // 4. Let descriptors be a new empty List.
  851. Vector<NameAndDescriptor> descriptors;
  852. // 5. For each element nextKey of keys, do
  853. for (auto& next_key : keys) {
  854. auto property_name = PropertyName::from_value(global_object, next_key);
  855. // a. Let propDesc be ? props.[[GetOwnProperty]](nextKey).
  856. auto property_descriptor = TRY_OR_DISCARD(props->internal_get_own_property(property_name));
  857. // b. If propDesc is not undefined and propDesc.[[Enumerable]] is true, then
  858. if (property_descriptor.has_value() && *property_descriptor->enumerable) {
  859. // i. Let descObj be ? Get(props, nextKey).
  860. auto descriptor_object = TRY_OR_DISCARD(props->get(property_name));
  861. // ii. Let desc be ? ToPropertyDescriptor(descObj).
  862. auto descriptor = to_property_descriptor(global_object, descriptor_object);
  863. if (vm.exception())
  864. return {};
  865. // iii. Append the pair (a two element List) consisting of nextKey and desc to the end of descriptors.
  866. descriptors.append({ property_name, descriptor });
  867. }
  868. }
  869. // 6. For each element pair of descriptors, do
  870. for (auto& [name, descriptor] : descriptors) {
  871. // a. Let P be the first element of pair.
  872. // b. Let desc be the second element of pair.
  873. // c. Perform ? DefinePropertyOrThrow(O, P, desc).
  874. TRY_OR_DISCARD(define_property_or_throw(name, descriptor));
  875. }
  876. // 7. Return O.
  877. return this;
  878. }
  879. void Object::visit_edges(Cell::Visitor& visitor)
  880. {
  881. Cell::visit_edges(visitor);
  882. visitor.visit(m_shape);
  883. for (auto& value : m_storage)
  884. visitor.visit(value);
  885. m_indexed_properties.for_each_value([&visitor](auto& value) {
  886. visitor.visit(value);
  887. });
  888. }
  889. // 7.1.1.1 OrdinaryToPrimitive ( O, hint ), https://tc39.es/ecma262/#sec-ordinarytoprimitive
  890. ThrowCompletionOr<Value> Object::ordinary_to_primitive(Value::PreferredType preferred_type) const
  891. {
  892. VERIFY(preferred_type == Value::PreferredType::String || preferred_type == Value::PreferredType::Number);
  893. auto& vm = this->vm();
  894. AK::Array<PropertyName, 2> method_names;
  895. // 1. If hint is string, then
  896. if (preferred_type == Value::PreferredType::String) {
  897. // a. Let methodNames be « "toString", "valueOf" ».
  898. method_names = { vm.names.toString, vm.names.valueOf };
  899. } else {
  900. // a. Let methodNames be « "valueOf", "toString" ».
  901. method_names = { vm.names.valueOf, vm.names.toString };
  902. }
  903. // 3. For each element name of methodNames, do
  904. for (auto& method_name : method_names) {
  905. // a. Let method be ? Get(O, name).
  906. auto method = TRY(get(method_name));
  907. // b. If IsCallable(method) is true, then
  908. if (method.is_function()) {
  909. // i. Let result be ? Call(method, O).
  910. auto result = TRY(vm.call(method.as_function(), const_cast<Object*>(this)));
  911. // ii. If Type(result) is not Object, return result.
  912. if (!result.is_object())
  913. return result;
  914. }
  915. }
  916. // 4. Throw a TypeError exception.
  917. return vm.throw_completion<TypeError>(global_object(), ErrorType::Convert, "object", preferred_type == Value::PreferredType::String ? "string" : "number");
  918. }
  919. }