Op.cpp 83 KB

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  1. /*
  2. * Copyright (c) 2021-2023, Andreas Kling <kling@serenityos.org>
  3. * Copyright (c) 2021-2023, Linus Groh <linusg@serenityos.org>
  4. * Copyright (c) 2021, Gunnar Beutner <gbeutner@serenityos.org>
  5. *
  6. * SPDX-License-Identifier: BSD-2-Clause
  7. */
  8. #include <AK/HashTable.h>
  9. #include <LibJS/AST.h>
  10. #include <LibJS/Bytecode/Interpreter.h>
  11. #include <LibJS/Bytecode/Op.h>
  12. #include <LibJS/Runtime/AbstractOperations.h>
  13. #include <LibJS/Runtime/Array.h>
  14. #include <LibJS/Runtime/BigInt.h>
  15. #include <LibJS/Runtime/DeclarativeEnvironment.h>
  16. #include <LibJS/Runtime/ECMAScriptFunctionObject.h>
  17. #include <LibJS/Runtime/Environment.h>
  18. #include <LibJS/Runtime/FunctionEnvironment.h>
  19. #include <LibJS/Runtime/GlobalEnvironment.h>
  20. #include <LibJS/Runtime/GlobalObject.h>
  21. #include <LibJS/Runtime/Iterator.h>
  22. #include <LibJS/Runtime/IteratorOperations.h>
  23. #include <LibJS/Runtime/NativeFunction.h>
  24. #include <LibJS/Runtime/ObjectEnvironment.h>
  25. #include <LibJS/Runtime/Reference.h>
  26. #include <LibJS/Runtime/RegExpObject.h>
  27. #include <LibJS/Runtime/Value.h>
  28. #include <LibJS/SourceTextModule.h>
  29. namespace JS::Bytecode {
  30. DeprecatedString Instruction::to_deprecated_string(Bytecode::Executable const& executable) const
  31. {
  32. #define __BYTECODE_OP(op) \
  33. case Instruction::Type::op: \
  34. return static_cast<Bytecode::Op::op const&>(*this).to_deprecated_string_impl(executable);
  35. switch (type()) {
  36. ENUMERATE_BYTECODE_OPS(__BYTECODE_OP)
  37. default:
  38. VERIFY_NOT_REACHED();
  39. }
  40. #undef __BYTECODE_OP
  41. }
  42. }
  43. namespace JS::Bytecode::Op {
  44. static ThrowCompletionOr<void> put_by_property_key(VM& vm, Value base, Value this_value, Value value, PropertyKey name, PropertyKind kind)
  45. {
  46. auto object = TRY(base.to_object(vm));
  47. if (kind == PropertyKind::Getter || kind == PropertyKind::Setter) {
  48. // The generator should only pass us functions for getters and setters.
  49. VERIFY(value.is_function());
  50. }
  51. switch (kind) {
  52. case PropertyKind::Getter: {
  53. auto& function = value.as_function();
  54. if (function.name().is_empty() && is<ECMAScriptFunctionObject>(function))
  55. static_cast<ECMAScriptFunctionObject*>(&function)->set_name(DeprecatedString::formatted("get {}", name));
  56. object->define_direct_accessor(name, &function, nullptr, Attribute::Configurable | Attribute::Enumerable);
  57. break;
  58. }
  59. case PropertyKind::Setter: {
  60. auto& function = value.as_function();
  61. if (function.name().is_empty() && is<ECMAScriptFunctionObject>(function))
  62. static_cast<ECMAScriptFunctionObject*>(&function)->set_name(DeprecatedString::formatted("set {}", name));
  63. object->define_direct_accessor(name, nullptr, &function, Attribute::Configurable | Attribute::Enumerable);
  64. break;
  65. }
  66. case PropertyKind::KeyValue: {
  67. bool succeeded = TRY(object->internal_set(name, value, this_value));
  68. if (!succeeded && vm.in_strict_mode())
  69. return vm.throw_completion<TypeError>(ErrorType::ReferenceNullishSetProperty, name, TRY_OR_THROW_OOM(vm, base.to_string_without_side_effects()));
  70. break;
  71. }
  72. case PropertyKind::DirectKeyValue:
  73. object->define_direct_property(name, value, Attribute::Enumerable | Attribute::Writable | Attribute::Configurable);
  74. break;
  75. case PropertyKind::Spread:
  76. TRY(object->copy_data_properties(vm, value, {}));
  77. break;
  78. case PropertyKind::ProtoSetter:
  79. if (value.is_object() || value.is_null())
  80. MUST(object->internal_set_prototype_of(value.is_object() ? &value.as_object() : nullptr));
  81. break;
  82. }
  83. return {};
  84. }
  85. ThrowCompletionOr<void> Load::execute_impl(Bytecode::Interpreter& interpreter) const
  86. {
  87. interpreter.accumulator() = interpreter.reg(m_src);
  88. return {};
  89. }
  90. ThrowCompletionOr<void> LoadImmediate::execute_impl(Bytecode::Interpreter& interpreter) const
  91. {
  92. interpreter.accumulator() = m_value;
  93. return {};
  94. }
  95. ThrowCompletionOr<void> Store::execute_impl(Bytecode::Interpreter& interpreter) const
  96. {
  97. interpreter.reg(m_dst) = interpreter.accumulator();
  98. return {};
  99. }
  100. static ThrowCompletionOr<Value> abstract_inequals(VM& vm, Value src1, Value src2)
  101. {
  102. return Value(!TRY(is_loosely_equal(vm, src1, src2)));
  103. }
  104. static ThrowCompletionOr<Value> abstract_equals(VM& vm, Value src1, Value src2)
  105. {
  106. return Value(TRY(is_loosely_equal(vm, src1, src2)));
  107. }
  108. static ThrowCompletionOr<Value> typed_inequals(VM&, Value src1, Value src2)
  109. {
  110. return Value(!is_strictly_equal(src1, src2));
  111. }
  112. static ThrowCompletionOr<Value> typed_equals(VM&, Value src1, Value src2)
  113. {
  114. return Value(is_strictly_equal(src1, src2));
  115. }
  116. #define JS_DEFINE_COMMON_BINARY_OP(OpTitleCase, op_snake_case) \
  117. ThrowCompletionOr<void> OpTitleCase::execute_impl(Bytecode::Interpreter& interpreter) const \
  118. { \
  119. auto& vm = interpreter.vm(); \
  120. auto lhs = interpreter.reg(m_lhs_reg); \
  121. auto rhs = interpreter.accumulator(); \
  122. interpreter.accumulator() = TRY(op_snake_case(vm, lhs, rhs)); \
  123. return {}; \
  124. } \
  125. DeprecatedString OpTitleCase::to_deprecated_string_impl(Bytecode::Executable const&) const \
  126. { \
  127. return DeprecatedString::formatted(#OpTitleCase " {}", m_lhs_reg); \
  128. }
  129. JS_ENUMERATE_COMMON_BINARY_OPS(JS_DEFINE_COMMON_BINARY_OP)
  130. static ThrowCompletionOr<Value> not_(VM&, Value value)
  131. {
  132. return Value(!value.to_boolean());
  133. }
  134. static ThrowCompletionOr<Value> typeof_(VM& vm, Value value)
  135. {
  136. return MUST_OR_THROW_OOM(PrimitiveString::create(vm, value.typeof()));
  137. }
  138. #define JS_DEFINE_COMMON_UNARY_OP(OpTitleCase, op_snake_case) \
  139. ThrowCompletionOr<void> OpTitleCase::execute_impl(Bytecode::Interpreter& interpreter) const \
  140. { \
  141. auto& vm = interpreter.vm(); \
  142. interpreter.accumulator() = TRY(op_snake_case(vm, interpreter.accumulator())); \
  143. return {}; \
  144. } \
  145. DeprecatedString OpTitleCase::to_deprecated_string_impl(Bytecode::Executable const&) const \
  146. { \
  147. return #OpTitleCase; \
  148. }
  149. JS_ENUMERATE_COMMON_UNARY_OPS(JS_DEFINE_COMMON_UNARY_OP)
  150. ThrowCompletionOr<void> NewBigInt::execute_impl(Bytecode::Interpreter& interpreter) const
  151. {
  152. auto& vm = interpreter.vm();
  153. interpreter.accumulator() = BigInt::create(vm, m_bigint);
  154. return {};
  155. }
  156. ThrowCompletionOr<void> NewArray::execute_impl(Bytecode::Interpreter& interpreter) const
  157. {
  158. auto array = MUST(Array::create(interpreter.realm(), 0));
  159. for (size_t i = 0; i < m_element_count; i++) {
  160. auto& value = interpreter.reg(Register(m_elements[0].index() + i));
  161. array->indexed_properties().put(i, value, default_attributes);
  162. }
  163. interpreter.accumulator() = array;
  164. return {};
  165. }
  166. ThrowCompletionOr<void> Append::execute_impl(Bytecode::Interpreter& interpreter) const
  167. {
  168. // Note: This OpCode is used to construct array literals and argument arrays for calls,
  169. // containing at least one spread element,
  170. // Iterating over such a spread element to unpack it has to be visible by
  171. // the user courtesy of
  172. // (1) https://tc39.es/ecma262/#sec-runtime-semantics-arrayaccumulation
  173. // SpreadElement : ... AssignmentExpression
  174. // 1. Let spreadRef be ? Evaluation of AssignmentExpression.
  175. // 2. Let spreadObj be ? GetValue(spreadRef).
  176. // 3. Let iteratorRecord be ? GetIterator(spreadObj).
  177. // 4. Repeat,
  178. // a. Let next be ? IteratorStep(iteratorRecord).
  179. // b. If next is false, return nextIndex.
  180. // c. Let nextValue be ? IteratorValue(next).
  181. // d. Perform ! CreateDataPropertyOrThrow(array, ! ToString(𝔽(nextIndex)), nextValue).
  182. // e. Set nextIndex to nextIndex + 1.
  183. // (2) https://tc39.es/ecma262/#sec-runtime-semantics-argumentlistevaluation
  184. // ArgumentList : ... AssignmentExpression
  185. // 1. Let list be a new empty List.
  186. // 2. Let spreadRef be ? Evaluation of AssignmentExpression.
  187. // 3. Let spreadObj be ? GetValue(spreadRef).
  188. // 4. Let iteratorRecord be ? GetIterator(spreadObj).
  189. // 5. Repeat,
  190. // a. Let next be ? IteratorStep(iteratorRecord).
  191. // b. If next is false, return list.
  192. // c. Let nextArg be ? IteratorValue(next).
  193. // d. Append nextArg to list.
  194. // ArgumentList : ArgumentList , ... AssignmentExpression
  195. // 1. Let precedingArgs be ? ArgumentListEvaluation of ArgumentList.
  196. // 2. Let spreadRef be ? Evaluation of AssignmentExpression.
  197. // 3. Let iteratorRecord be ? GetIterator(? GetValue(spreadRef)).
  198. // 4. Repeat,
  199. // a. Let next be ? IteratorStep(iteratorRecord).
  200. // b. If next is false, return precedingArgs.
  201. // c. Let nextArg be ? IteratorValue(next).
  202. // d. Append nextArg to precedingArgs.
  203. auto& vm = interpreter.vm();
  204. // Note: We know from codegen, that lhs is a plain array with only indexed properties
  205. auto& lhs = interpreter.reg(m_lhs).as_array();
  206. auto lhs_size = lhs.indexed_properties().array_like_size();
  207. auto rhs = interpreter.accumulator();
  208. if (m_is_spread) {
  209. // ...rhs
  210. size_t i = lhs_size;
  211. TRY(get_iterator_values(vm, rhs, [&i, &lhs](Value iterator_value) -> Optional<Completion> {
  212. lhs.indexed_properties().put(i, iterator_value, default_attributes);
  213. ++i;
  214. return {};
  215. }));
  216. } else {
  217. lhs.indexed_properties().put(lhs_size, rhs, default_attributes);
  218. }
  219. return {};
  220. }
  221. ThrowCompletionOr<void> ImportCall::execute_impl(Bytecode::Interpreter& interpreter) const
  222. {
  223. auto& vm = interpreter.vm();
  224. auto specifier = interpreter.reg(m_specifier);
  225. auto options_value = interpreter.reg(m_options);
  226. interpreter.accumulator() = TRY(perform_import_call(vm, specifier, options_value));
  227. return {};
  228. }
  229. void ImportCall::replace_references_impl(Register from, Register to)
  230. {
  231. if (m_specifier == from)
  232. m_specifier = to;
  233. if (m_options == from)
  234. m_options = to;
  235. }
  236. // FIXME: Since the accumulator is a Value, we store an object there and have to convert back and forth between that an Iterator records. Not great.
  237. // Make sure to put this into the accumulator before the iterator object disappears from the stack to prevent the members from being GC'd.
  238. static Object* iterator_to_object(VM& vm, IteratorRecord iterator)
  239. {
  240. auto& realm = *vm.current_realm();
  241. auto object = Object::create(realm, nullptr);
  242. object->define_direct_property(vm.names.iterator, iterator.iterator, 0);
  243. object->define_direct_property(vm.names.next, iterator.next_method, 0);
  244. object->define_direct_property(vm.names.done, Value(iterator.done), 0);
  245. return object;
  246. }
  247. static IteratorRecord object_to_iterator(VM& vm, Object& object)
  248. {
  249. return IteratorRecord {
  250. .iterator = &MUST(object.get(vm.names.iterator)).as_object(),
  251. .next_method = MUST(object.get(vm.names.next)),
  252. .done = MUST(object.get(vm.names.done)).as_bool()
  253. };
  254. }
  255. ThrowCompletionOr<void> IteratorToArray::execute_impl(Bytecode::Interpreter& interpreter) const
  256. {
  257. auto& vm = interpreter.vm();
  258. auto iterator_object = TRY(interpreter.accumulator().to_object(vm));
  259. auto iterator = object_to_iterator(vm, iterator_object);
  260. auto array = MUST(Array::create(interpreter.realm(), 0));
  261. size_t index = 0;
  262. while (true) {
  263. auto iterator_result = TRY(iterator_next(vm, iterator));
  264. auto complete = TRY(iterator_complete(vm, iterator_result));
  265. if (complete) {
  266. interpreter.accumulator() = array;
  267. return {};
  268. }
  269. auto value = TRY(iterator_value(vm, iterator_result));
  270. MUST(array->create_data_property_or_throw(index, value));
  271. index++;
  272. }
  273. return {};
  274. }
  275. ThrowCompletionOr<void> NewString::execute_impl(Bytecode::Interpreter& interpreter) const
  276. {
  277. interpreter.accumulator() = PrimitiveString::create(interpreter.vm(), interpreter.current_executable().get_string(m_string));
  278. return {};
  279. }
  280. ThrowCompletionOr<void> NewObject::execute_impl(Bytecode::Interpreter& interpreter) const
  281. {
  282. auto& vm = interpreter.vm();
  283. auto& realm = *vm.current_realm();
  284. interpreter.accumulator() = Object::create(realm, realm.intrinsics().object_prototype());
  285. return {};
  286. }
  287. // 13.2.7.3 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-regular-expression-literals-runtime-semantics-evaluation
  288. ThrowCompletionOr<void> NewRegExp::execute_impl(Bytecode::Interpreter& interpreter) const
  289. {
  290. auto& vm = interpreter.vm();
  291. auto& realm = *vm.current_realm();
  292. // 1. Let pattern be CodePointsToString(BodyText of RegularExpressionLiteral).
  293. auto pattern = interpreter.current_executable().get_string(m_source_index);
  294. // 2. Let flags be CodePointsToString(FlagText of RegularExpressionLiteral).
  295. auto flags = interpreter.current_executable().get_string(m_flags_index);
  296. // 3. Return ! RegExpCreate(pattern, flags).
  297. auto& parsed_regex = interpreter.current_executable().regex_table->get(m_regex_index);
  298. Regex<ECMA262> regex(parsed_regex.regex, parsed_regex.pattern, parsed_regex.flags);
  299. // NOTE: We bypass RegExpCreate and subsequently RegExpAlloc as an optimization to use the already parsed values.
  300. auto regexp_object = RegExpObject::create(realm, move(regex), move(pattern), move(flags));
  301. // RegExpAlloc has these two steps from the 'Legacy RegExp features' proposal.
  302. regexp_object->set_realm(*vm.current_realm());
  303. // We don't need to check 'If SameValue(newTarget, thisRealm.[[Intrinsics]].[[%RegExp%]]) is true'
  304. // here as we know RegExpCreate calls RegExpAlloc with %RegExp% for newTarget.
  305. regexp_object->set_legacy_features_enabled(true);
  306. interpreter.accumulator() = regexp_object;
  307. return {};
  308. }
  309. #define JS_DEFINE_NEW_BUILTIN_ERROR_OP(ErrorName) \
  310. ThrowCompletionOr<void> New##ErrorName::execute_impl(Bytecode::Interpreter& interpreter) const \
  311. { \
  312. auto& vm = interpreter.vm(); \
  313. auto& realm = *vm.current_realm(); \
  314. interpreter.accumulator() = MUST_OR_THROW_OOM(ErrorName::create(realm, interpreter.current_executable().get_string(m_error_string))); \
  315. return {}; \
  316. } \
  317. DeprecatedString New##ErrorName::to_deprecated_string_impl(Bytecode::Executable const& executable) const \
  318. { \
  319. return DeprecatedString::formatted("New" #ErrorName " {} (\"{}\")", m_error_string, executable.string_table->get(m_error_string)); \
  320. }
  321. JS_ENUMERATE_NEW_BUILTIN_ERROR_OPS(JS_DEFINE_NEW_BUILTIN_ERROR_OP)
  322. ThrowCompletionOr<void> CopyObjectExcludingProperties::execute_impl(Bytecode::Interpreter& interpreter) const
  323. {
  324. auto& vm = interpreter.vm();
  325. auto& realm = *vm.current_realm();
  326. auto from_object = interpreter.reg(m_from_object);
  327. auto to_object = Object::create(realm, realm.intrinsics().object_prototype());
  328. HashTable<PropertyKey> excluded_names;
  329. for (size_t i = 0; i < m_excluded_names_count; ++i) {
  330. excluded_names.set(TRY(interpreter.reg(m_excluded_names[i]).to_property_key(vm)));
  331. }
  332. TRY(to_object->copy_data_properties(vm, from_object, excluded_names));
  333. interpreter.accumulator() = to_object;
  334. return {};
  335. }
  336. ThrowCompletionOr<void> ConcatString::execute_impl(Bytecode::Interpreter& interpreter) const
  337. {
  338. auto& vm = interpreter.vm();
  339. auto string = TRY(interpreter.accumulator().to_primitive_string(vm));
  340. interpreter.reg(m_lhs) = PrimitiveString::create(vm, interpreter.reg(m_lhs).as_string(), string);
  341. return {};
  342. }
  343. ThrowCompletionOr<void> GetVariable::execute_impl(Bytecode::Interpreter& interpreter) const
  344. {
  345. auto& vm = interpreter.vm();
  346. auto get_reference = [&]() -> ThrowCompletionOr<Reference> {
  347. auto const& string = interpreter.current_executable().get_identifier(m_identifier);
  348. if (m_cached_environment_coordinate.has_value()) {
  349. auto environment = vm.running_execution_context().lexical_environment;
  350. for (size_t i = 0; i < m_cached_environment_coordinate->hops; ++i)
  351. environment = environment->outer_environment();
  352. VERIFY(environment);
  353. VERIFY(environment->is_declarative_environment());
  354. if (!environment->is_permanently_screwed_by_eval()) {
  355. return Reference { *environment, string, vm.in_strict_mode(), m_cached_environment_coordinate };
  356. }
  357. m_cached_environment_coordinate = {};
  358. }
  359. auto reference = TRY(vm.resolve_binding(string));
  360. if (reference.environment_coordinate().has_value())
  361. m_cached_environment_coordinate = reference.environment_coordinate();
  362. return reference;
  363. };
  364. auto reference = TRY(get_reference());
  365. interpreter.accumulator() = TRY(reference.get_value(vm));
  366. return {};
  367. }
  368. ThrowCompletionOr<void> GetGlobal::execute_impl(Bytecode::Interpreter& interpreter) const
  369. {
  370. auto& vm = interpreter.vm();
  371. auto& realm = *vm.current_realm();
  372. auto const& name = interpreter.current_executable().get_identifier(m_identifier);
  373. auto& cache = interpreter.current_executable().global_variable_caches[m_cache_index];
  374. auto& binding_object = realm.global_environment().object_record().binding_object();
  375. auto& declarative_record = realm.global_environment().declarative_record();
  376. // OPTIMIZATION: If the shape of the object hasn't changed, we can use the cached property offset.
  377. // NOTE: Unique shapes don't change identity, so we compare their serial numbers instead.
  378. auto& shape = binding_object.shape();
  379. if (cache.environment_serial_number == declarative_record.environment_serial_number()
  380. && &shape == cache.shape
  381. && (!shape.is_unique() || shape.unique_shape_serial_number() == cache.unique_shape_serial_number)) {
  382. interpreter.accumulator() = binding_object.get_direct(cache.property_offset.value());
  383. return {};
  384. }
  385. cache.environment_serial_number = declarative_record.environment_serial_number();
  386. if (vm.running_execution_context().script_or_module.has<NonnullGCPtr<Module>>()) {
  387. // NOTE: GetGlobal is used to access variables stored in the module environment and global environment.
  388. // The module environment is checked first since it precedes the global environment in the environment chain.
  389. auto& module_environment = *vm.running_execution_context().script_or_module.get<NonnullGCPtr<Module>>()->environment();
  390. if (TRY(module_environment.has_binding(name))) {
  391. // TODO: Cache offset of binding value
  392. interpreter.accumulator() = TRY(module_environment.get_binding_value(vm, name, vm.in_strict_mode()));
  393. return {};
  394. }
  395. }
  396. if (TRY(declarative_record.has_binding(name))) {
  397. // TODO: Cache offset of binding value
  398. interpreter.accumulator() = TRY(declarative_record.get_binding_value(vm, name, vm.in_strict_mode()));
  399. return {};
  400. }
  401. if (TRY(binding_object.has_property(name))) {
  402. CacheablePropertyMetadata cacheable_metadata;
  403. interpreter.accumulator() = js_undefined();
  404. interpreter.accumulator() = TRY(binding_object.internal_get(name, interpreter.accumulator(), &cacheable_metadata));
  405. if (cacheable_metadata.type == CacheablePropertyMetadata::Type::OwnProperty) {
  406. cache.shape = shape;
  407. cache.property_offset = cacheable_metadata.property_offset.value();
  408. cache.unique_shape_serial_number = shape.unique_shape_serial_number();
  409. }
  410. return {};
  411. }
  412. return vm.throw_completion<ReferenceError>(ErrorType::UnknownIdentifier, name);
  413. }
  414. ThrowCompletionOr<void> GetLocal::execute_impl(Bytecode::Interpreter& interpreter) const
  415. {
  416. auto& vm = interpreter.vm();
  417. if (vm.running_execution_context().local_variables[m_index].is_empty()) {
  418. auto const& variable_name = vm.running_execution_context().function->local_variables_names()[m_index];
  419. return interpreter.vm().throw_completion<ReferenceError>(ErrorType::BindingNotInitialized, variable_name);
  420. }
  421. interpreter.accumulator() = vm.running_execution_context().local_variables[m_index];
  422. return {};
  423. }
  424. ThrowCompletionOr<void> DeleteVariable::execute_impl(Bytecode::Interpreter& interpreter) const
  425. {
  426. auto& vm = interpreter.vm();
  427. auto const& string = interpreter.current_executable().get_identifier(m_identifier);
  428. auto reference = TRY(vm.resolve_binding(string));
  429. interpreter.accumulator() = Value(TRY(reference.delete_(vm)));
  430. return {};
  431. }
  432. ThrowCompletionOr<void> CreateLexicalEnvironment::execute_impl(Bytecode::Interpreter& interpreter) const
  433. {
  434. auto make_and_swap_envs = [&](auto& old_environment) {
  435. GCPtr<Environment> environment = new_declarative_environment(*old_environment).ptr();
  436. swap(old_environment, environment);
  437. return environment;
  438. };
  439. interpreter.saved_lexical_environment_stack().append(make_and_swap_envs(interpreter.vm().running_execution_context().lexical_environment));
  440. return {};
  441. }
  442. ThrowCompletionOr<void> EnterObjectEnvironment::execute_impl(Bytecode::Interpreter& interpreter) const
  443. {
  444. auto& vm = interpreter.vm();
  445. auto& old_environment = vm.running_execution_context().lexical_environment;
  446. interpreter.saved_lexical_environment_stack().append(old_environment);
  447. auto object = TRY(interpreter.accumulator().to_object(vm));
  448. vm.running_execution_context().lexical_environment = new_object_environment(object, true, old_environment);
  449. return {};
  450. }
  451. ThrowCompletionOr<void> CreateVariable::execute_impl(Bytecode::Interpreter& interpreter) const
  452. {
  453. auto& vm = interpreter.vm();
  454. auto const& name = interpreter.current_executable().get_identifier(m_identifier);
  455. if (m_mode == EnvironmentMode::Lexical) {
  456. VERIFY(!m_is_global);
  457. // Note: This is papering over an issue where "FunctionDeclarationInstantiation" creates these bindings for us.
  458. // Instead of crashing in there, we'll just raise an exception here.
  459. if (TRY(vm.lexical_environment()->has_binding(name)))
  460. return vm.throw_completion<InternalError>(TRY_OR_THROW_OOM(vm, String::formatted("Lexical environment already has binding '{}'", name)));
  461. if (m_is_immutable)
  462. return vm.lexical_environment()->create_immutable_binding(vm, name, vm.in_strict_mode());
  463. else
  464. return vm.lexical_environment()->create_mutable_binding(vm, name, vm.in_strict_mode());
  465. } else {
  466. if (!m_is_global) {
  467. if (m_is_immutable)
  468. return vm.variable_environment()->create_immutable_binding(vm, name, vm.in_strict_mode());
  469. else
  470. return vm.variable_environment()->create_mutable_binding(vm, name, vm.in_strict_mode());
  471. } else {
  472. // NOTE: CreateVariable with m_is_global set to true is expected to only be used in GlobalDeclarationInstantiation currently, which only uses "false" for "can_be_deleted".
  473. // The only area that sets "can_be_deleted" to true is EvalDeclarationInstantiation, which is currently fully implemented in C++ and not in Bytecode.
  474. return verify_cast<GlobalEnvironment>(vm.variable_environment())->create_global_var_binding(name, false);
  475. }
  476. }
  477. return {};
  478. }
  479. ThrowCompletionOr<void> SetVariable::execute_impl(Bytecode::Interpreter& interpreter) const
  480. {
  481. auto& vm = interpreter.vm();
  482. auto const& name = interpreter.current_executable().get_identifier(m_identifier);
  483. auto environment = m_mode == EnvironmentMode::Lexical ? vm.running_execution_context().lexical_environment : vm.running_execution_context().variable_environment;
  484. auto reference = TRY(vm.resolve_binding(name, environment));
  485. switch (m_initialization_mode) {
  486. case InitializationMode::Initialize:
  487. TRY(reference.initialize_referenced_binding(vm, interpreter.accumulator()));
  488. break;
  489. case InitializationMode::Set:
  490. TRY(reference.put_value(vm, interpreter.accumulator()));
  491. break;
  492. case InitializationMode::InitializeOrSet:
  493. VERIFY(reference.is_environment_reference());
  494. VERIFY(reference.base_environment().is_declarative_environment());
  495. TRY(static_cast<DeclarativeEnvironment&>(reference.base_environment()).initialize_or_set_mutable_binding(vm, name, interpreter.accumulator()));
  496. break;
  497. }
  498. return {};
  499. }
  500. ThrowCompletionOr<void> SetLocal::execute_impl(Bytecode::Interpreter& interpreter) const
  501. {
  502. interpreter.vm().running_execution_context().local_variables[m_index] = interpreter.accumulator();
  503. return {};
  504. }
  505. static ThrowCompletionOr<void> get_by_id(Bytecode::Interpreter& interpreter, IdentifierTableIndex property, Value base_value, Value this_value, u32 cache_index)
  506. {
  507. auto& vm = interpreter.vm();
  508. auto const& name = interpreter.current_executable().get_identifier(property);
  509. auto& cache = interpreter.current_executable().property_lookup_caches[cache_index];
  510. // OPTIMIZATION: For various primitives we can avoid actually creating a new object for them.
  511. GCPtr<Object> base_obj;
  512. if (base_value.is_object()) {
  513. // This would be covered by the `else` branch below,
  514. // but let's avoid all the extra checks if it's already an object.
  515. base_obj = base_value.as_object();
  516. } else if (base_value.is_string()) {
  517. auto string_value = TRY(base_value.as_string().get(vm, name));
  518. if (string_value.has_value()) {
  519. interpreter.accumulator() = *string_value;
  520. return {};
  521. }
  522. base_obj = vm.current_realm()->intrinsics().string_prototype();
  523. } else if (base_value.is_number()) {
  524. base_obj = vm.current_realm()->intrinsics().number_prototype();
  525. } else if (base_value.is_boolean()) {
  526. base_obj = vm.current_realm()->intrinsics().boolean_prototype();
  527. } else {
  528. base_obj = TRY(base_value.to_object(vm));
  529. }
  530. // OPTIMIZATION: If the shape of the object hasn't changed, we can use the cached property offset.
  531. // NOTE: Unique shapes don't change identity, so we compare their serial numbers instead.
  532. auto& shape = base_obj->shape();
  533. if (&shape == cache.shape
  534. && (!shape.is_unique() || shape.unique_shape_serial_number() == cache.unique_shape_serial_number)) {
  535. interpreter.accumulator() = base_obj->get_direct(cache.property_offset.value());
  536. return {};
  537. }
  538. CacheablePropertyMetadata cacheable_metadata;
  539. interpreter.accumulator() = TRY(base_obj->internal_get(name, this_value, &cacheable_metadata));
  540. if (cacheable_metadata.type == CacheablePropertyMetadata::Type::OwnProperty) {
  541. cache.shape = shape;
  542. cache.property_offset = cacheable_metadata.property_offset.value();
  543. cache.unique_shape_serial_number = shape.unique_shape_serial_number();
  544. }
  545. return {};
  546. }
  547. ThrowCompletionOr<void> GetById::execute_impl(Bytecode::Interpreter& interpreter) const
  548. {
  549. auto base_value = interpreter.accumulator();
  550. return get_by_id(interpreter, m_property, base_value, base_value, m_cache_index);
  551. }
  552. ThrowCompletionOr<void> GetByIdWithThis::execute_impl(Bytecode::Interpreter& interpreter) const
  553. {
  554. auto base_value = interpreter.accumulator();
  555. auto this_value = interpreter.reg(m_this_value);
  556. return get_by_id(interpreter, m_property, base_value, this_value, m_cache_index);
  557. }
  558. ThrowCompletionOr<void> GetPrivateById::execute_impl(Bytecode::Interpreter& interpreter) const
  559. {
  560. auto& vm = interpreter.vm();
  561. auto const& name = interpreter.current_executable().get_identifier(m_property);
  562. auto base_value = interpreter.accumulator();
  563. auto private_reference = make_private_reference(vm, base_value, name);
  564. interpreter.accumulator() = TRY(private_reference.get_value(vm));
  565. return {};
  566. }
  567. ThrowCompletionOr<void> HasPrivateId::execute_impl(Bytecode::Interpreter& interpreter) const
  568. {
  569. auto& vm = interpreter.vm();
  570. if (!interpreter.accumulator().is_object())
  571. return vm.throw_completion<TypeError>(ErrorType::InOperatorWithObject);
  572. auto private_environment = vm.running_execution_context().private_environment;
  573. VERIFY(private_environment);
  574. auto private_name = private_environment->resolve_private_identifier(interpreter.current_executable().get_identifier(m_property));
  575. interpreter.accumulator() = Value(interpreter.accumulator().as_object().private_element_find(private_name) != nullptr);
  576. return {};
  577. }
  578. ThrowCompletionOr<void> PutById::execute_impl(Bytecode::Interpreter& interpreter) const
  579. {
  580. auto& vm = interpreter.vm();
  581. // NOTE: Get the value from the accumulator before side effects have a chance to overwrite it.
  582. auto value = interpreter.accumulator();
  583. auto base = interpreter.reg(m_base);
  584. PropertyKey name = interpreter.current_executable().get_identifier(m_property);
  585. TRY(put_by_property_key(vm, base, base, value, name, m_kind));
  586. interpreter.accumulator() = value;
  587. return {};
  588. }
  589. ThrowCompletionOr<void> PutByIdWithThis::execute_impl(Bytecode::Interpreter& interpreter) const
  590. {
  591. auto& vm = interpreter.vm();
  592. // NOTE: Get the value from the accumulator before side effects have a chance to overwrite it.
  593. auto value = interpreter.accumulator();
  594. auto base = interpreter.reg(m_base);
  595. PropertyKey name = interpreter.current_executable().get_identifier(m_property);
  596. TRY(put_by_property_key(vm, base, interpreter.reg(m_this_value), value, name, m_kind));
  597. interpreter.accumulator() = value;
  598. return {};
  599. }
  600. ThrowCompletionOr<void> PutPrivateById::execute_impl(Bytecode::Interpreter& interpreter) const
  601. {
  602. auto& vm = interpreter.vm();
  603. // NOTE: Get the value from the accumulator before side effects have a chance to overwrite it.
  604. auto value = interpreter.accumulator();
  605. auto object = TRY(interpreter.reg(m_base).to_object(vm));
  606. auto name = interpreter.current_executable().get_identifier(m_property);
  607. auto private_reference = make_private_reference(vm, object, name);
  608. TRY(private_reference.put_value(vm, value));
  609. interpreter.accumulator() = value;
  610. return {};
  611. }
  612. ThrowCompletionOr<void> DeleteById::execute_impl(Bytecode::Interpreter& interpreter) const
  613. {
  614. auto& vm = interpreter.vm();
  615. auto base_value = interpreter.accumulator();
  616. auto const& identifier = interpreter.current_executable().get_identifier(m_property);
  617. bool strict = vm.in_strict_mode();
  618. auto reference = Reference { base_value, identifier, {}, strict };
  619. interpreter.accumulator() = Value(TRY(reference.delete_(vm)));
  620. return {};
  621. }
  622. ThrowCompletionOr<void> DeleteByIdWithThis::execute_impl(Bytecode::Interpreter& interpreter) const
  623. {
  624. auto& vm = interpreter.vm();
  625. auto base_value = interpreter.accumulator();
  626. auto const& identifier = interpreter.current_executable().get_identifier(m_property);
  627. bool strict = vm.in_strict_mode();
  628. auto reference = Reference { base_value, identifier, interpreter.reg(m_this_value), strict };
  629. interpreter.accumulator() = Value(TRY(reference.delete_(vm)));
  630. return {};
  631. }
  632. ThrowCompletionOr<void> Jump::execute_impl(Bytecode::Interpreter& interpreter) const
  633. {
  634. interpreter.jump(*m_true_target);
  635. return {};
  636. }
  637. ThrowCompletionOr<void> ResolveThisBinding::execute_impl(Bytecode::Interpreter& interpreter) const
  638. {
  639. auto& vm = interpreter.vm();
  640. interpreter.accumulator() = TRY(vm.resolve_this_binding());
  641. return {};
  642. }
  643. // https://tc39.es/ecma262/#sec-makesuperpropertyreference
  644. ThrowCompletionOr<void> ResolveSuperBase::execute_impl(Bytecode::Interpreter& interpreter) const
  645. {
  646. auto& vm = interpreter.vm();
  647. // 1. Let env be GetThisEnvironment().
  648. auto& env = verify_cast<FunctionEnvironment>(*get_this_environment(vm));
  649. // 2. Assert: env.HasSuperBinding() is true.
  650. VERIFY(env.has_super_binding());
  651. // 3. Let baseValue be ? env.GetSuperBase().
  652. interpreter.accumulator() = TRY(env.get_super_base());
  653. return {};
  654. }
  655. ThrowCompletionOr<void> GetNewTarget::execute_impl(Bytecode::Interpreter& interpreter) const
  656. {
  657. interpreter.accumulator() = interpreter.vm().get_new_target();
  658. return {};
  659. }
  660. ThrowCompletionOr<void> GetImportMeta::execute_impl(Bytecode::Interpreter& interpreter) const
  661. {
  662. interpreter.accumulator() = interpreter.vm().get_import_meta();
  663. return {};
  664. }
  665. void Jump::replace_references_impl(BasicBlock const& from, BasicBlock const& to)
  666. {
  667. if (m_true_target.has_value() && &m_true_target->block() == &from)
  668. m_true_target = Label { to };
  669. if (m_false_target.has_value() && &m_false_target->block() == &from)
  670. m_false_target = Label { to };
  671. }
  672. ThrowCompletionOr<void> JumpConditional::execute_impl(Bytecode::Interpreter& interpreter) const
  673. {
  674. VERIFY(m_true_target.has_value());
  675. VERIFY(m_false_target.has_value());
  676. auto result = interpreter.accumulator();
  677. if (result.to_boolean())
  678. interpreter.jump(m_true_target.value());
  679. else
  680. interpreter.jump(m_false_target.value());
  681. return {};
  682. }
  683. ThrowCompletionOr<void> JumpNullish::execute_impl(Bytecode::Interpreter& interpreter) const
  684. {
  685. VERIFY(m_true_target.has_value());
  686. VERIFY(m_false_target.has_value());
  687. auto result = interpreter.accumulator();
  688. if (result.is_nullish())
  689. interpreter.jump(m_true_target.value());
  690. else
  691. interpreter.jump(m_false_target.value());
  692. return {};
  693. }
  694. ThrowCompletionOr<void> JumpUndefined::execute_impl(Bytecode::Interpreter& interpreter) const
  695. {
  696. VERIFY(m_true_target.has_value());
  697. VERIFY(m_false_target.has_value());
  698. auto result = interpreter.accumulator();
  699. if (result.is_undefined())
  700. interpreter.jump(m_true_target.value());
  701. else
  702. interpreter.jump(m_false_target.value());
  703. return {};
  704. }
  705. // 13.3.8.1 https://tc39.es/ecma262/#sec-runtime-semantics-argumentlistevaluation
  706. static MarkedVector<Value> argument_list_evaluation(Bytecode::Interpreter& interpreter)
  707. {
  708. // Note: Any spreading and actual evaluation is handled in preceding opcodes
  709. // Note: The spec uses the concept of a list, while we create a temporary array
  710. // in the preceding opcodes, so we have to convert in a manner that is not
  711. // visible to the user
  712. auto& vm = interpreter.vm();
  713. MarkedVector<Value> argument_values { vm.heap() };
  714. auto arguments = interpreter.accumulator();
  715. if (!(arguments.is_object() && is<Array>(arguments.as_object()))) {
  716. dbgln("[{}] Call arguments are not an array, but: {}", interpreter.debug_position(), MUST(arguments.to_string_without_side_effects()));
  717. interpreter.current_executable().dump();
  718. VERIFY_NOT_REACHED();
  719. }
  720. auto& argument_array = arguments.as_array();
  721. auto array_length = argument_array.indexed_properties().array_like_size();
  722. argument_values.ensure_capacity(array_length);
  723. for (size_t i = 0; i < array_length; ++i) {
  724. if (auto maybe_value = argument_array.indexed_properties().get(i); maybe_value.has_value())
  725. argument_values.append(maybe_value.release_value().value);
  726. else
  727. argument_values.append(js_undefined());
  728. }
  729. return argument_values;
  730. }
  731. static Completion throw_type_error_for_callee(Bytecode::Interpreter& interpreter, auto& call, StringView callee_type)
  732. {
  733. auto& vm = interpreter.vm();
  734. auto callee = interpreter.reg(call.callee());
  735. if (call.expression_string().has_value())
  736. return vm.throw_completion<TypeError>(ErrorType::IsNotAEvaluatedFrom, TRY_OR_THROW_OOM(vm, callee.to_string_without_side_effects()), callee_type, interpreter.current_executable().get_string(call.expression_string()->value()));
  737. return vm.throw_completion<TypeError>(ErrorType::IsNotA, TRY_OR_THROW_OOM(vm, callee.to_string_without_side_effects()), callee_type);
  738. }
  739. static ThrowCompletionOr<void> throw_if_needed_for_call(Interpreter& interpreter, auto& call, Value callee)
  740. {
  741. if (call.call_type() == CallType::Call && !callee.is_function())
  742. return throw_type_error_for_callee(interpreter, call, "function"sv);
  743. if (call.call_type() == CallType::Construct && !callee.is_constructor())
  744. return throw_type_error_for_callee(interpreter, call, "constructor"sv);
  745. return {};
  746. }
  747. static ThrowCompletionOr<void> perform_call(Interpreter& interpreter, auto& call, Value callee, MarkedVector<Value> argument_values)
  748. {
  749. auto& vm = interpreter.vm();
  750. auto this_value = interpreter.reg(call.this_value());
  751. auto& function = callee.as_function();
  752. Value return_value;
  753. if (call.call_type() == CallType::DirectEval) {
  754. if (callee == interpreter.realm().intrinsics().eval_function())
  755. return_value = TRY(perform_eval(vm, !argument_values.is_empty() ? argument_values[0].value_or(JS::js_undefined()) : js_undefined(), vm.in_strict_mode() ? CallerMode::Strict : CallerMode::NonStrict, EvalMode::Direct));
  756. else
  757. return_value = TRY(JS::call(vm, function, this_value, move(argument_values)));
  758. } else if (call.call_type() == CallType::Call)
  759. return_value = TRY(JS::call(vm, function, this_value, move(argument_values)));
  760. else
  761. return_value = TRY(construct(vm, function, move(argument_values)));
  762. interpreter.accumulator() = return_value;
  763. return {};
  764. }
  765. ThrowCompletionOr<void> Call::execute_impl(Bytecode::Interpreter& interpreter) const
  766. {
  767. auto& vm = interpreter.vm();
  768. auto callee = interpreter.reg(m_callee);
  769. TRY(throw_if_needed_for_call(interpreter, *this, callee));
  770. MarkedVector<Value> argument_values(vm.heap());
  771. argument_values.ensure_capacity(m_argument_count);
  772. for (u32 i = 0; i < m_argument_count; ++i) {
  773. argument_values.unchecked_append(interpreter.reg(Register { m_first_argument.index() + i }));
  774. }
  775. return perform_call(interpreter, *this, callee, move(argument_values));
  776. }
  777. ThrowCompletionOr<void> CallWithArgumentArray::execute_impl(Bytecode::Interpreter& interpreter) const
  778. {
  779. auto callee = interpreter.reg(m_callee);
  780. TRY(throw_if_needed_for_call(interpreter, *this, callee));
  781. auto argument_values = argument_list_evaluation(interpreter);
  782. return perform_call(interpreter, *this, callee, move(argument_values));
  783. }
  784. // 13.3.7.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-super-keyword-runtime-semantics-evaluation
  785. ThrowCompletionOr<void> SuperCallWithArgumentArray::execute_impl(Bytecode::Interpreter& interpreter) const
  786. {
  787. auto& vm = interpreter.vm();
  788. // 1. Let newTarget be GetNewTarget().
  789. auto new_target = vm.get_new_target();
  790. // 2. Assert: Type(newTarget) is Object.
  791. VERIFY(new_target.is_object());
  792. // 3. Let func be GetSuperConstructor().
  793. auto* func = get_super_constructor(vm);
  794. // 4. Let argList be ? ArgumentListEvaluation of Arguments.
  795. MarkedVector<Value> arg_list { vm.heap() };
  796. if (m_is_synthetic) {
  797. auto const& value = interpreter.accumulator();
  798. VERIFY(value.is_object() && is<Array>(value.as_object()));
  799. auto const& array_value = static_cast<Array const&>(value.as_object());
  800. auto length = MUST(length_of_array_like(vm, array_value));
  801. for (size_t i = 0; i < length; ++i)
  802. arg_list.append(array_value.get_without_side_effects(PropertyKey { i }));
  803. } else {
  804. arg_list = argument_list_evaluation(interpreter);
  805. }
  806. // 5. If IsConstructor(func) is false, throw a TypeError exception.
  807. if (!Value(func).is_constructor())
  808. return vm.throw_completion<TypeError>(ErrorType::NotAConstructor, "Super constructor");
  809. // 6. Let result be ? Construct(func, argList, newTarget).
  810. auto result = TRY(construct(vm, static_cast<FunctionObject&>(*func), move(arg_list), &new_target.as_function()));
  811. // 7. Let thisER be GetThisEnvironment().
  812. auto& this_environment = verify_cast<FunctionEnvironment>(*get_this_environment(vm));
  813. // 8. Perform ? thisER.BindThisValue(result).
  814. TRY(this_environment.bind_this_value(vm, result));
  815. // 9. Let F be thisER.[[FunctionObject]].
  816. auto& f = this_environment.function_object();
  817. // 10. Assert: F is an ECMAScript function object.
  818. // NOTE: This is implied by the strong C++ type.
  819. // 11. Perform ? InitializeInstanceElements(result, F).
  820. TRY(result->initialize_instance_elements(f));
  821. // 12. Return result.
  822. interpreter.accumulator() = result;
  823. return {};
  824. }
  825. ThrowCompletionOr<void> NewFunction::execute_impl(Bytecode::Interpreter& interpreter) const
  826. {
  827. auto& vm = interpreter.vm();
  828. if (!m_function_node.has_name()) {
  829. DeprecatedFlyString name = {};
  830. if (m_lhs_name.has_value())
  831. name = interpreter.current_executable().get_identifier(m_lhs_name.value());
  832. interpreter.accumulator() = m_function_node.instantiate_ordinary_function_expression(vm, name);
  833. } else {
  834. interpreter.accumulator() = ECMAScriptFunctionObject::create(interpreter.realm(), m_function_node.name(), m_function_node.source_text(), m_function_node.body(), m_function_node.parameters(), m_function_node.function_length(), m_function_node.local_variables_names(), vm.lexical_environment(), vm.running_execution_context().private_environment, m_function_node.kind(), m_function_node.is_strict_mode(), m_function_node.might_need_arguments_object(), m_function_node.contains_direct_call_to_eval(), m_function_node.is_arrow_function());
  835. }
  836. if (m_home_object.has_value()) {
  837. auto home_object_value = interpreter.reg(m_home_object.value());
  838. static_cast<ECMAScriptFunctionObject&>(interpreter.accumulator().as_function()).set_home_object(&home_object_value.as_object());
  839. }
  840. return {};
  841. }
  842. ThrowCompletionOr<void> Return::execute_impl(Bytecode::Interpreter& interpreter) const
  843. {
  844. interpreter.do_return(interpreter.accumulator().value_or(js_undefined()));
  845. return {};
  846. }
  847. ThrowCompletionOr<void> Increment::execute_impl(Bytecode::Interpreter& interpreter) const
  848. {
  849. auto& vm = interpreter.vm();
  850. auto old_value = TRY(interpreter.accumulator().to_numeric(vm));
  851. if (old_value.is_number())
  852. interpreter.accumulator() = Value(old_value.as_double() + 1);
  853. else
  854. interpreter.accumulator() = BigInt::create(vm, old_value.as_bigint().big_integer().plus(Crypto::SignedBigInteger { 1 }));
  855. return {};
  856. }
  857. ThrowCompletionOr<void> Decrement::execute_impl(Bytecode::Interpreter& interpreter) const
  858. {
  859. auto& vm = interpreter.vm();
  860. auto old_value = TRY(interpreter.accumulator().to_numeric(vm));
  861. if (old_value.is_number())
  862. interpreter.accumulator() = Value(old_value.as_double() - 1);
  863. else
  864. interpreter.accumulator() = BigInt::create(vm, old_value.as_bigint().big_integer().minus(Crypto::SignedBigInteger { 1 }));
  865. return {};
  866. }
  867. ThrowCompletionOr<void> Throw::execute_impl(Bytecode::Interpreter& interpreter) const
  868. {
  869. return throw_completion(interpreter.accumulator());
  870. }
  871. ThrowCompletionOr<void> ThrowIfNotObject::execute_impl(Bytecode::Interpreter& interpreter) const
  872. {
  873. auto& vm = interpreter.vm();
  874. if (!interpreter.accumulator().is_object())
  875. return vm.throw_completion<TypeError>(ErrorType::NotAnObject, TRY_OR_THROW_OOM(vm, interpreter.accumulator().to_string_without_side_effects()));
  876. return {};
  877. }
  878. ThrowCompletionOr<void> ThrowIfNullish::execute_impl(Bytecode::Interpreter& interpreter) const
  879. {
  880. auto& vm = interpreter.vm();
  881. auto value = interpreter.accumulator();
  882. if (value.is_nullish())
  883. return vm.throw_completion<TypeError>(ErrorType::NotObjectCoercible, TRY_OR_THROW_OOM(vm, value.to_string_without_side_effects()));
  884. return {};
  885. }
  886. ThrowCompletionOr<void> EnterUnwindContext::execute_impl(Bytecode::Interpreter& interpreter) const
  887. {
  888. interpreter.enter_unwind_context(m_handler_target, m_finalizer_target);
  889. interpreter.jump(m_entry_point);
  890. return {};
  891. }
  892. void NewFunction::replace_references_impl(Register from, Register to)
  893. {
  894. if (m_home_object == from)
  895. m_home_object = to;
  896. }
  897. void EnterUnwindContext::replace_references_impl(BasicBlock const& from, BasicBlock const& to)
  898. {
  899. if (&m_entry_point.block() == &from)
  900. m_entry_point = Label { to };
  901. if (m_handler_target.has_value() && &m_handler_target->block() == &from)
  902. m_handler_target = Label { to };
  903. if (m_finalizer_target.has_value() && &m_finalizer_target->block() == &from)
  904. m_finalizer_target = Label { to };
  905. }
  906. void CopyObjectExcludingProperties::replace_references_impl(Register from, Register to)
  907. {
  908. if (m_from_object == from)
  909. m_from_object = to;
  910. for (size_t i = 0; i < m_excluded_names_count; ++i) {
  911. if (m_excluded_names[i] == from)
  912. m_excluded_names[i] = to;
  913. }
  914. }
  915. void Call::replace_references_impl(Register from, Register to)
  916. {
  917. if (m_callee == from)
  918. m_callee = to;
  919. if (m_this_value == from)
  920. m_this_value = to;
  921. if (m_first_argument == from)
  922. m_first_argument = to;
  923. }
  924. void CallWithArgumentArray::replace_references_impl(Register from, Register to)
  925. {
  926. if (m_callee == from)
  927. m_callee = to;
  928. if (m_this_value == from)
  929. m_this_value = to;
  930. }
  931. ThrowCompletionOr<void> ScheduleJump::execute_impl(Bytecode::Interpreter& interpreter) const
  932. {
  933. interpreter.schedule_jump(m_target);
  934. return {};
  935. }
  936. ThrowCompletionOr<void> LeaveLexicalEnvironment::execute_impl(Bytecode::Interpreter& interpreter) const
  937. {
  938. interpreter.vm().running_execution_context().lexical_environment = interpreter.saved_lexical_environment_stack().take_last();
  939. return {};
  940. }
  941. ThrowCompletionOr<void> LeaveUnwindContext::execute_impl(Bytecode::Interpreter& interpreter) const
  942. {
  943. interpreter.leave_unwind_context();
  944. return {};
  945. }
  946. ThrowCompletionOr<void> ContinuePendingUnwind::execute_impl(Bytecode::Interpreter& interpreter) const
  947. {
  948. return interpreter.continue_pending_unwind(m_resume_target);
  949. }
  950. void ContinuePendingUnwind::replace_references_impl(BasicBlock const& from, BasicBlock const& to)
  951. {
  952. if (&m_resume_target.block() == &from)
  953. m_resume_target = Label { to };
  954. }
  955. ThrowCompletionOr<void> PushDeclarativeEnvironment::execute_impl(Bytecode::Interpreter& interpreter) const
  956. {
  957. auto environment = interpreter.vm().heap().allocate_without_realm<DeclarativeEnvironment>(interpreter.vm().lexical_environment());
  958. interpreter.vm().running_execution_context().lexical_environment = environment;
  959. interpreter.vm().running_execution_context().variable_environment = environment;
  960. return {};
  961. }
  962. ThrowCompletionOr<void> Yield::execute_impl(Bytecode::Interpreter& interpreter) const
  963. {
  964. auto yielded_value = interpreter.accumulator().value_or(js_undefined());
  965. auto object = Object::create(interpreter.realm(), nullptr);
  966. object->define_direct_property("result", yielded_value, JS::default_attributes);
  967. if (m_continuation_label.has_value())
  968. // FIXME: If we get a pointer, which is not accurately representable as a double
  969. // will cause this to explode
  970. object->define_direct_property("continuation", Value(static_cast<double>(reinterpret_cast<u64>(&m_continuation_label->block()))), JS::default_attributes);
  971. else
  972. object->define_direct_property("continuation", Value(0), JS::default_attributes);
  973. object->define_direct_property("isAwait", Value(false), JS::default_attributes);
  974. interpreter.do_return(object);
  975. return {};
  976. }
  977. void Yield::replace_references_impl(BasicBlock const& from, BasicBlock const& to)
  978. {
  979. if (m_continuation_label.has_value() && &m_continuation_label->block() == &from)
  980. m_continuation_label = Label { to };
  981. }
  982. ThrowCompletionOr<void> Await::execute_impl(Bytecode::Interpreter& interpreter) const
  983. {
  984. auto yielded_value = interpreter.accumulator().value_or(js_undefined());
  985. auto object = Object::create(interpreter.realm(), nullptr);
  986. object->define_direct_property("result", yielded_value, JS::default_attributes);
  987. // FIXME: If we get a pointer, which is not accurately representable as a double
  988. // will cause this to explode
  989. object->define_direct_property("continuation", Value(static_cast<double>(reinterpret_cast<u64>(&m_continuation_label.block()))), JS::default_attributes);
  990. object->define_direct_property("isAwait", Value(true), JS::default_attributes);
  991. interpreter.do_return(object);
  992. return {};
  993. }
  994. void Await::replace_references_impl(BasicBlock const& from, BasicBlock const& to)
  995. {
  996. if (&m_continuation_label.block() == &from)
  997. m_continuation_label = Label { to };
  998. }
  999. ThrowCompletionOr<void> GetByValue::execute_impl(Bytecode::Interpreter& interpreter) const
  1000. {
  1001. auto& vm = interpreter.vm();
  1002. // NOTE: Get the property key from the accumulator before side effects have a chance to overwrite it.
  1003. auto property_key_value = interpreter.accumulator();
  1004. auto object = TRY(interpreter.reg(m_base).to_object(vm));
  1005. auto property_key = TRY(property_key_value.to_property_key(vm));
  1006. interpreter.accumulator() = TRY(object->get(property_key));
  1007. return {};
  1008. }
  1009. ThrowCompletionOr<void> GetByValueWithThis::execute_impl(Bytecode::Interpreter& interpreter) const
  1010. {
  1011. auto& vm = interpreter.vm();
  1012. // NOTE: Get the property key from the accumulator before side effects have a chance to overwrite it.
  1013. auto property_key_value = interpreter.accumulator();
  1014. auto object = TRY(interpreter.reg(m_base).to_object(vm));
  1015. auto property_key = TRY(property_key_value.to_property_key(vm));
  1016. interpreter.accumulator() = TRY(object->internal_get(property_key, interpreter.reg(m_this_value)));
  1017. return {};
  1018. }
  1019. ThrowCompletionOr<void> PutByValue::execute_impl(Bytecode::Interpreter& interpreter) const
  1020. {
  1021. auto& vm = interpreter.vm();
  1022. // NOTE: Get the value from the accumulator before side effects have a chance to overwrite it.
  1023. auto value = interpreter.accumulator();
  1024. auto base = interpreter.reg(m_base);
  1025. auto property_key = TRY(interpreter.reg(m_property).to_property_key(vm));
  1026. TRY(put_by_property_key(vm, base, base, value, property_key, m_kind));
  1027. interpreter.accumulator() = value;
  1028. return {};
  1029. }
  1030. ThrowCompletionOr<void> PutByValueWithThis::execute_impl(Bytecode::Interpreter& interpreter) const
  1031. {
  1032. auto& vm = interpreter.vm();
  1033. // NOTE: Get the value from the accumulator before side effects have a chance to overwrite it.
  1034. auto value = interpreter.accumulator();
  1035. auto base = interpreter.reg(m_base);
  1036. auto property_key = TRY(interpreter.reg(m_property).to_property_key(vm));
  1037. TRY(put_by_property_key(vm, base, interpreter.reg(m_this_value), value, property_key, m_kind));
  1038. interpreter.accumulator() = value;
  1039. return {};
  1040. }
  1041. ThrowCompletionOr<void> DeleteByValue::execute_impl(Bytecode::Interpreter& interpreter) const
  1042. {
  1043. auto& vm = interpreter.vm();
  1044. // NOTE: Get the property key from the accumulator before side effects have a chance to overwrite it.
  1045. auto property_key_value = interpreter.accumulator();
  1046. auto base_value = interpreter.reg(m_base);
  1047. auto property_key = TRY(property_key_value.to_property_key(vm));
  1048. bool strict = vm.in_strict_mode();
  1049. auto reference = Reference { base_value, property_key, {}, strict };
  1050. interpreter.accumulator() = Value(TRY(reference.delete_(vm)));
  1051. return {};
  1052. }
  1053. ThrowCompletionOr<void> DeleteByValueWithThis::execute_impl(Bytecode::Interpreter& interpreter) const
  1054. {
  1055. auto& vm = interpreter.vm();
  1056. // NOTE: Get the property key from the accumulator before side effects have a chance to overwrite it.
  1057. auto property_key_value = interpreter.accumulator();
  1058. auto base_value = interpreter.reg(m_base);
  1059. auto property_key = TRY(property_key_value.to_property_key(vm));
  1060. bool strict = vm.in_strict_mode();
  1061. auto reference = Reference { base_value, property_key, interpreter.reg(m_this_value), strict };
  1062. interpreter.accumulator() = Value(TRY(reference.delete_(vm)));
  1063. return {};
  1064. }
  1065. ThrowCompletionOr<void> GetIterator::execute_impl(Bytecode::Interpreter& interpreter) const
  1066. {
  1067. auto& vm = interpreter.vm();
  1068. auto iterator = TRY(get_iterator(vm, interpreter.accumulator(), m_hint));
  1069. interpreter.accumulator() = iterator_to_object(vm, iterator);
  1070. return {};
  1071. }
  1072. ThrowCompletionOr<void> GetMethod::execute_impl(Bytecode::Interpreter& interpreter) const
  1073. {
  1074. auto& vm = interpreter.vm();
  1075. auto identifier = interpreter.current_executable().get_identifier(m_property);
  1076. auto method = TRY(interpreter.accumulator().get_method(vm, identifier));
  1077. interpreter.accumulator() = method ?: js_undefined();
  1078. return {};
  1079. }
  1080. // 14.7.5.9 EnumerateObjectProperties ( O ), https://tc39.es/ecma262/#sec-enumerate-object-properties
  1081. ThrowCompletionOr<void> GetObjectPropertyIterator::execute_impl(Bytecode::Interpreter& interpreter) const
  1082. {
  1083. // While the spec does provide an algorithm, it allows us to implement it ourselves so long as we meet the following invariants:
  1084. // 1- Returned property keys do not include keys that are Symbols
  1085. // 2- Properties of the target object may be deleted during enumeration. A property that is deleted before it is processed by the iterator's next method is ignored
  1086. // 3- If new properties are added to the target object during enumeration, the newly added properties are not guaranteed to be processed in the active enumeration
  1087. // 4- A property name will be returned by the iterator's next method at most once in any enumeration.
  1088. // 5- Enumerating the properties of the target object includes enumerating properties of its prototype, and the prototype of the prototype, and so on, recursively;
  1089. // but a property of a prototype is not processed if it has the same name as a property that has already been processed by the iterator's next method.
  1090. // 6- The values of [[Enumerable]] attributes are not considered when determining if a property of a prototype object has already been processed.
  1091. // 7- The enumerable property names of prototype objects must be obtained by invoking EnumerateObjectProperties passing the prototype object as the argument.
  1092. // 8- EnumerateObjectProperties must obtain the own property keys of the target object by calling its [[OwnPropertyKeys]] internal method.
  1093. // 9- Property attributes of the target object must be obtained by calling its [[GetOwnProperty]] internal method
  1094. // Invariant 3 effectively allows the implementation to ignore newly added keys, and we do so (similar to other implementations).
  1095. auto& vm = interpreter.vm();
  1096. auto object = TRY(interpreter.accumulator().to_object(vm));
  1097. // Note: While the spec doesn't explicitly require these to be ordered, it says that the values should be retrieved via OwnPropertyKeys,
  1098. // so we just keep the order consistent anyway.
  1099. OrderedHashTable<PropertyKey> properties;
  1100. OrderedHashTable<PropertyKey> non_enumerable_properties;
  1101. HashTable<NonnullGCPtr<Object>> seen_objects;
  1102. // Collect all keys immediately (invariant no. 5)
  1103. for (auto object_to_check = GCPtr { object.ptr() }; object_to_check && !seen_objects.contains(*object_to_check); object_to_check = TRY(object_to_check->internal_get_prototype_of())) {
  1104. seen_objects.set(*object_to_check);
  1105. for (auto& key : TRY(object_to_check->internal_own_property_keys())) {
  1106. if (key.is_symbol())
  1107. continue;
  1108. auto property_key = TRY(PropertyKey::from_value(vm, key));
  1109. // If there is a non-enumerable property higher up the prototype chain with the same key,
  1110. // we mustn't include this property even if it's enumerable (invariant no. 5 and 6)
  1111. if (non_enumerable_properties.contains(property_key))
  1112. continue;
  1113. if (properties.contains(property_key))
  1114. continue;
  1115. auto descriptor = TRY(object_to_check->internal_get_own_property(property_key));
  1116. if (!*descriptor->enumerable)
  1117. non_enumerable_properties.set(move(property_key));
  1118. else
  1119. properties.set(move(property_key));
  1120. }
  1121. }
  1122. IteratorRecord iterator {
  1123. .iterator = object,
  1124. .next_method = NativeFunction::create(
  1125. interpreter.realm(),
  1126. [items = move(properties)](VM& vm) mutable -> ThrowCompletionOr<Value> {
  1127. auto& realm = *vm.current_realm();
  1128. auto iterated_object_value = vm.this_value();
  1129. if (!iterated_object_value.is_object())
  1130. return vm.throw_completion<InternalError>("Invalid state for GetObjectPropertyIterator.next"sv);
  1131. auto& iterated_object = iterated_object_value.as_object();
  1132. auto result_object = Object::create(realm, nullptr);
  1133. while (true) {
  1134. if (items.is_empty()) {
  1135. result_object->define_direct_property(vm.names.done, JS::Value(true), default_attributes);
  1136. return result_object;
  1137. }
  1138. auto key = items.take_first();
  1139. // If the property is deleted, don't include it (invariant no. 2)
  1140. if (!TRY(iterated_object.has_property(key)))
  1141. continue;
  1142. result_object->define_direct_property(vm.names.done, JS::Value(false), default_attributes);
  1143. if (key.is_number())
  1144. result_object->define_direct_property(vm.names.value, PrimitiveString::create(vm, TRY_OR_THROW_OOM(vm, String::number(key.as_number()))), default_attributes);
  1145. else if (key.is_string())
  1146. result_object->define_direct_property(vm.names.value, PrimitiveString::create(vm, key.as_string()), default_attributes);
  1147. else
  1148. VERIFY_NOT_REACHED(); // We should not have non-string/number keys.
  1149. return result_object;
  1150. }
  1151. },
  1152. 1,
  1153. vm.names.next),
  1154. .done = false,
  1155. };
  1156. interpreter.accumulator() = iterator_to_object(vm, move(iterator));
  1157. return {};
  1158. }
  1159. ThrowCompletionOr<void> IteratorClose::execute_impl(Bytecode::Interpreter& interpreter) const
  1160. {
  1161. auto& vm = interpreter.vm();
  1162. auto iterator_object = TRY(interpreter.accumulator().to_object(vm));
  1163. auto iterator = object_to_iterator(vm, iterator_object);
  1164. // FIXME: Return the value of the resulting completion. (Note that m_completion_value can be empty!)
  1165. TRY(iterator_close(vm, iterator, Completion { m_completion_type, m_completion_value, {} }));
  1166. return {};
  1167. }
  1168. ThrowCompletionOr<void> AsyncIteratorClose::execute_impl(Bytecode::Interpreter& interpreter) const
  1169. {
  1170. auto& vm = interpreter.vm();
  1171. auto iterator_object = TRY(interpreter.accumulator().to_object(vm));
  1172. auto iterator = object_to_iterator(vm, iterator_object);
  1173. // FIXME: Return the value of the resulting completion. (Note that m_completion_value can be empty!)
  1174. TRY(async_iterator_close(vm, iterator, Completion { m_completion_type, m_completion_value, {} }));
  1175. return {};
  1176. }
  1177. ThrowCompletionOr<void> IteratorNext::execute_impl(Bytecode::Interpreter& interpreter) const
  1178. {
  1179. auto& vm = interpreter.vm();
  1180. auto iterator_object = TRY(interpreter.accumulator().to_object(vm));
  1181. auto iterator = object_to_iterator(vm, iterator_object);
  1182. interpreter.accumulator() = TRY(iterator_next(vm, iterator));
  1183. return {};
  1184. }
  1185. ThrowCompletionOr<void> IteratorResultDone::execute_impl(Bytecode::Interpreter& interpreter) const
  1186. {
  1187. auto& vm = interpreter.vm();
  1188. auto iterator_result = TRY(interpreter.accumulator().to_object(vm));
  1189. auto complete = TRY(iterator_complete(vm, iterator_result));
  1190. interpreter.accumulator() = Value(complete);
  1191. return {};
  1192. }
  1193. ThrowCompletionOr<void> IteratorResultValue::execute_impl(Bytecode::Interpreter& interpreter) const
  1194. {
  1195. auto& vm = interpreter.vm();
  1196. auto iterator_result = TRY(interpreter.accumulator().to_object(vm));
  1197. interpreter.accumulator() = TRY(iterator_value(vm, iterator_result));
  1198. return {};
  1199. }
  1200. ThrowCompletionOr<void> NewClass::execute_impl(Bytecode::Interpreter& interpreter) const
  1201. {
  1202. auto& vm = interpreter.vm();
  1203. auto name = m_class_expression.name();
  1204. auto super_class = interpreter.accumulator();
  1205. // NOTE: NewClass expects classEnv to be active lexical environment
  1206. auto class_environment = vm.lexical_environment();
  1207. vm.running_execution_context().lexical_environment = interpreter.saved_lexical_environment_stack().take_last();
  1208. DeprecatedFlyString binding_name;
  1209. DeprecatedFlyString class_name;
  1210. if (!m_class_expression.has_name() && m_lhs_name.has_value()) {
  1211. class_name = interpreter.current_executable().get_identifier(m_lhs_name.value());
  1212. } else {
  1213. binding_name = name;
  1214. class_name = name.is_null() ? ""sv : name;
  1215. }
  1216. interpreter.accumulator() = TRY(m_class_expression.create_class_constructor(vm, class_environment, vm.lexical_environment(), super_class, binding_name, class_name));
  1217. return {};
  1218. }
  1219. // 13.5.3.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-typeof-operator-runtime-semantics-evaluation
  1220. ThrowCompletionOr<void> TypeofVariable::execute_impl(Bytecode::Interpreter& interpreter) const
  1221. {
  1222. auto& vm = interpreter.vm();
  1223. // 1. Let val be the result of evaluating UnaryExpression.
  1224. auto const& string = interpreter.current_executable().get_identifier(m_identifier);
  1225. auto reference = TRY(vm.resolve_binding(string));
  1226. // 2. If val is a Reference Record, then
  1227. // a. If IsUnresolvableReference(val) is true, return "undefined".
  1228. if (reference.is_unresolvable()) {
  1229. interpreter.accumulator() = MUST_OR_THROW_OOM(PrimitiveString::create(vm, "undefined"sv));
  1230. return {};
  1231. }
  1232. // 3. Set val to ? GetValue(val).
  1233. auto value = TRY(reference.get_value(vm));
  1234. // 4. NOTE: This step is replaced in section B.3.6.3.
  1235. // 5. Return a String according to Table 41.
  1236. interpreter.accumulator() = MUST_OR_THROW_OOM(PrimitiveString::create(vm, value.typeof()));
  1237. return {};
  1238. }
  1239. ThrowCompletionOr<void> TypeofLocal::execute_impl(Bytecode::Interpreter& interpreter) const
  1240. {
  1241. auto& vm = interpreter.vm();
  1242. auto const& value = vm.running_execution_context().local_variables[m_index];
  1243. interpreter.accumulator() = MUST_OR_THROW_OOM(PrimitiveString::create(vm, value.typeof()));
  1244. return {};
  1245. }
  1246. ThrowCompletionOr<void> ToNumeric::execute_impl(Bytecode::Interpreter& interpreter) const
  1247. {
  1248. interpreter.accumulator() = TRY(interpreter.accumulator().to_numeric(interpreter.vm()));
  1249. return {};
  1250. }
  1251. ThrowCompletionOr<void> BlockDeclarationInstantiation::execute_impl(Bytecode::Interpreter& interpreter) const
  1252. {
  1253. auto& vm = interpreter.vm();
  1254. auto old_environment = vm.running_execution_context().lexical_environment;
  1255. interpreter.saved_lexical_environment_stack().append(old_environment);
  1256. vm.running_execution_context().lexical_environment = new_declarative_environment(*old_environment);
  1257. m_scope_node.block_declaration_instantiation(vm, vm.running_execution_context().lexical_environment);
  1258. return {};
  1259. }
  1260. DeprecatedString Load::to_deprecated_string_impl(Bytecode::Executable const&) const
  1261. {
  1262. return DeprecatedString::formatted("Load {}", m_src);
  1263. }
  1264. DeprecatedString LoadImmediate::to_deprecated_string_impl(Bytecode::Executable const&) const
  1265. {
  1266. return DeprecatedString::formatted("LoadImmediate {}", m_value);
  1267. }
  1268. DeprecatedString Store::to_deprecated_string_impl(Bytecode::Executable const&) const
  1269. {
  1270. return DeprecatedString::formatted("Store {}", m_dst);
  1271. }
  1272. DeprecatedString NewBigInt::to_deprecated_string_impl(Bytecode::Executable const&) const
  1273. {
  1274. return DeprecatedString::formatted("NewBigInt \"{}\"", m_bigint.to_base_deprecated(10));
  1275. }
  1276. DeprecatedString NewArray::to_deprecated_string_impl(Bytecode::Executable const&) const
  1277. {
  1278. StringBuilder builder;
  1279. builder.append("NewArray"sv);
  1280. if (m_element_count != 0) {
  1281. builder.appendff(" [{}-{}]", m_elements[0], m_elements[1]);
  1282. }
  1283. return builder.to_deprecated_string();
  1284. }
  1285. DeprecatedString Append::to_deprecated_string_impl(Bytecode::Executable const&) const
  1286. {
  1287. if (m_is_spread)
  1288. return DeprecatedString::formatted("Append lhs: **{}", m_lhs);
  1289. return DeprecatedString::formatted("Append lhs: {}", m_lhs);
  1290. }
  1291. DeprecatedString IteratorToArray::to_deprecated_string_impl(Bytecode::Executable const&) const
  1292. {
  1293. return "IteratorToArray";
  1294. }
  1295. DeprecatedString NewString::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1296. {
  1297. return DeprecatedString::formatted("NewString {} (\"{}\")", m_string, executable.string_table->get(m_string));
  1298. }
  1299. DeprecatedString NewObject::to_deprecated_string_impl(Bytecode::Executable const&) const
  1300. {
  1301. return "NewObject";
  1302. }
  1303. DeprecatedString NewRegExp::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1304. {
  1305. return DeprecatedString::formatted("NewRegExp source:{} (\"{}\") flags:{} (\"{}\")", m_source_index, executable.get_string(m_source_index), m_flags_index, executable.get_string(m_flags_index));
  1306. }
  1307. DeprecatedString CopyObjectExcludingProperties::to_deprecated_string_impl(Bytecode::Executable const&) const
  1308. {
  1309. StringBuilder builder;
  1310. builder.appendff("CopyObjectExcludingProperties from:{}", m_from_object);
  1311. if (m_excluded_names_count != 0) {
  1312. builder.append(" excluding:["sv);
  1313. builder.join(", "sv, ReadonlySpan<Register>(m_excluded_names, m_excluded_names_count));
  1314. builder.append(']');
  1315. }
  1316. return builder.to_deprecated_string();
  1317. }
  1318. DeprecatedString ConcatString::to_deprecated_string_impl(Bytecode::Executable const&) const
  1319. {
  1320. return DeprecatedString::formatted("ConcatString {}", m_lhs);
  1321. }
  1322. DeprecatedString GetVariable::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1323. {
  1324. return DeprecatedString::formatted("GetVariable {} ({})", m_identifier, executable.identifier_table->get(m_identifier));
  1325. }
  1326. DeprecatedString GetGlobal::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1327. {
  1328. return DeprecatedString::formatted("GetGlobal {} ({})", m_identifier, executable.identifier_table->get(m_identifier));
  1329. }
  1330. DeprecatedString GetLocal::to_deprecated_string_impl(Bytecode::Executable const&) const
  1331. {
  1332. return DeprecatedString::formatted("GetLocal {}", m_index);
  1333. }
  1334. DeprecatedString DeleteVariable::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1335. {
  1336. return DeprecatedString::formatted("DeleteVariable {} ({})", m_identifier, executable.identifier_table->get(m_identifier));
  1337. }
  1338. DeprecatedString CreateLexicalEnvironment::to_deprecated_string_impl(Bytecode::Executable const&) const
  1339. {
  1340. return "CreateLexicalEnvironment"sv;
  1341. }
  1342. DeprecatedString CreateVariable::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1343. {
  1344. auto mode_string = m_mode == EnvironmentMode::Lexical ? "Lexical" : "Variable";
  1345. return DeprecatedString::formatted("CreateVariable env:{} immutable:{} global:{} {} ({})", mode_string, m_is_immutable, m_is_global, m_identifier, executable.identifier_table->get(m_identifier));
  1346. }
  1347. DeprecatedString EnterObjectEnvironment::to_deprecated_string_impl(Executable const&) const
  1348. {
  1349. return DeprecatedString::formatted("EnterObjectEnvironment");
  1350. }
  1351. DeprecatedString SetVariable::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1352. {
  1353. auto initialization_mode_name = m_initialization_mode == InitializationMode ::Initialize ? "Initialize"
  1354. : m_initialization_mode == InitializationMode::Set ? "Set"
  1355. : "InitializeOrSet";
  1356. auto mode_string = m_mode == EnvironmentMode::Lexical ? "Lexical" : "Variable";
  1357. return DeprecatedString::formatted("SetVariable env:{} init:{} {} ({})", mode_string, initialization_mode_name, m_identifier, executable.identifier_table->get(m_identifier));
  1358. }
  1359. DeprecatedString SetLocal::to_deprecated_string_impl(Bytecode::Executable const&) const
  1360. {
  1361. return DeprecatedString::formatted("SetLocal {}", m_index);
  1362. }
  1363. DeprecatedString PutById::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1364. {
  1365. auto kind = m_kind == PropertyKind::Getter
  1366. ? "getter"
  1367. : m_kind == PropertyKind::Setter
  1368. ? "setter"
  1369. : "property";
  1370. return DeprecatedString::formatted("PutById kind:{} base:{}, property:{} ({})", kind, m_base, m_property, executable.identifier_table->get(m_property));
  1371. }
  1372. DeprecatedString PutByIdWithThis::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1373. {
  1374. auto kind = m_kind == PropertyKind::Getter
  1375. ? "getter"
  1376. : m_kind == PropertyKind::Setter
  1377. ? "setter"
  1378. : "property";
  1379. return DeprecatedString::formatted("PutByIdWithThis kind:{} base:{}, property:{} ({}) this_value:{}", kind, m_base, m_property, executable.identifier_table->get(m_property), m_this_value);
  1380. }
  1381. DeprecatedString PutPrivateById::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1382. {
  1383. auto kind = m_kind == PropertyKind::Getter
  1384. ? "getter"
  1385. : m_kind == PropertyKind::Setter
  1386. ? "setter"
  1387. : "property";
  1388. return DeprecatedString::formatted("PutPrivateById kind:{} base:{}, property:{} ({})", kind, m_base, m_property, executable.identifier_table->get(m_property));
  1389. }
  1390. DeprecatedString GetById::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1391. {
  1392. return DeprecatedString::formatted("GetById {} ({})", m_property, executable.identifier_table->get(m_property));
  1393. }
  1394. DeprecatedString GetByIdWithThis::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1395. {
  1396. return DeprecatedString::formatted("GetByIdWithThis {} ({}) this_value:{}", m_property, executable.identifier_table->get(m_property), m_this_value);
  1397. }
  1398. DeprecatedString GetPrivateById::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1399. {
  1400. return DeprecatedString::formatted("GetPrivateById {} ({})", m_property, executable.identifier_table->get(m_property));
  1401. }
  1402. DeprecatedString HasPrivateId::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1403. {
  1404. return DeprecatedString::formatted("HasPrivateId {} ({})", m_property, executable.identifier_table->get(m_property));
  1405. }
  1406. DeprecatedString DeleteById::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1407. {
  1408. return DeprecatedString::formatted("DeleteById {} ({})", m_property, executable.identifier_table->get(m_property));
  1409. }
  1410. DeprecatedString DeleteByIdWithThis::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1411. {
  1412. return DeprecatedString::formatted("DeleteByIdWithThis {} ({}) this_value:{}", m_property, executable.identifier_table->get(m_property), m_this_value);
  1413. }
  1414. DeprecatedString Jump::to_deprecated_string_impl(Bytecode::Executable const&) const
  1415. {
  1416. if (m_true_target.has_value())
  1417. return DeprecatedString::formatted("Jump {}", *m_true_target);
  1418. return DeprecatedString::formatted("Jump <empty>");
  1419. }
  1420. DeprecatedString JumpConditional::to_deprecated_string_impl(Bytecode::Executable const&) const
  1421. {
  1422. auto true_string = m_true_target.has_value() ? DeprecatedString::formatted("{}", *m_true_target) : "<empty>";
  1423. auto false_string = m_false_target.has_value() ? DeprecatedString::formatted("{}", *m_false_target) : "<empty>";
  1424. return DeprecatedString::formatted("JumpConditional true:{} false:{}", true_string, false_string);
  1425. }
  1426. DeprecatedString JumpNullish::to_deprecated_string_impl(Bytecode::Executable const&) const
  1427. {
  1428. auto true_string = m_true_target.has_value() ? DeprecatedString::formatted("{}", *m_true_target) : "<empty>";
  1429. auto false_string = m_false_target.has_value() ? DeprecatedString::formatted("{}", *m_false_target) : "<empty>";
  1430. return DeprecatedString::formatted("JumpNullish null:{} nonnull:{}", true_string, false_string);
  1431. }
  1432. DeprecatedString JumpUndefined::to_deprecated_string_impl(Bytecode::Executable const&) const
  1433. {
  1434. auto true_string = m_true_target.has_value() ? DeprecatedString::formatted("{}", *m_true_target) : "<empty>";
  1435. auto false_string = m_false_target.has_value() ? DeprecatedString::formatted("{}", *m_false_target) : "<empty>";
  1436. return DeprecatedString::formatted("JumpUndefined undefined:{} not undefined:{}", true_string, false_string);
  1437. }
  1438. static StringView call_type_to_string(CallType type)
  1439. {
  1440. switch (type) {
  1441. case CallType::Call:
  1442. return ""sv;
  1443. case CallType::Construct:
  1444. return " (Construct)"sv;
  1445. case CallType::DirectEval:
  1446. return " (DirectEval)"sv;
  1447. }
  1448. VERIFY_NOT_REACHED();
  1449. }
  1450. DeprecatedString Call::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1451. {
  1452. auto type = call_type_to_string(m_type);
  1453. if (m_expression_string.has_value())
  1454. return DeprecatedString::formatted("Call{} callee:{}, this:{}, first_arg:{} ({})", type, m_callee, m_this_value, m_first_argument, executable.get_string(m_expression_string.value()));
  1455. return DeprecatedString::formatted("Call{} callee:{}, this:{}, first_arg:{}", type, m_callee, m_first_argument, m_this_value);
  1456. }
  1457. DeprecatedString CallWithArgumentArray::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1458. {
  1459. auto type = call_type_to_string(m_type);
  1460. if (m_expression_string.has_value())
  1461. return DeprecatedString::formatted("CallWithArgumentArray{} callee:{}, this:{}, arguments:[...acc] ({})", type, m_callee, m_this_value, executable.get_string(m_expression_string.value()));
  1462. return DeprecatedString::formatted("CallWithArgumentArray{} callee:{}, this:{}, arguments:[...acc]", type, m_callee, m_this_value);
  1463. }
  1464. DeprecatedString SuperCallWithArgumentArray::to_deprecated_string_impl(Bytecode::Executable const&) const
  1465. {
  1466. return "SuperCallWithArgumentArray arguments:[...acc]"sv;
  1467. }
  1468. DeprecatedString NewFunction::to_deprecated_string_impl(Bytecode::Executable const&) const
  1469. {
  1470. StringBuilder builder;
  1471. builder.append("NewFunction"sv);
  1472. if (m_function_node.has_name())
  1473. builder.appendff(" name:{}"sv, m_function_node.name());
  1474. if (m_lhs_name.has_value())
  1475. builder.appendff(" lhs_name:{}"sv, m_lhs_name.value());
  1476. if (m_home_object.has_value())
  1477. builder.appendff(" home_object:{}"sv, m_home_object.value());
  1478. return builder.to_deprecated_string();
  1479. }
  1480. DeprecatedString NewClass::to_deprecated_string_impl(Bytecode::Executable const&) const
  1481. {
  1482. StringBuilder builder;
  1483. auto name = m_class_expression.name();
  1484. builder.appendff("NewClass '{}'"sv, name.is_null() ? ""sv : name);
  1485. if (m_lhs_name.has_value())
  1486. builder.appendff(" lhs_name:{}"sv, m_lhs_name.value());
  1487. return builder.to_deprecated_string();
  1488. }
  1489. DeprecatedString Return::to_deprecated_string_impl(Bytecode::Executable const&) const
  1490. {
  1491. return "Return";
  1492. }
  1493. DeprecatedString Increment::to_deprecated_string_impl(Bytecode::Executable const&) const
  1494. {
  1495. return "Increment";
  1496. }
  1497. DeprecatedString Decrement::to_deprecated_string_impl(Bytecode::Executable const&) const
  1498. {
  1499. return "Decrement";
  1500. }
  1501. DeprecatedString Throw::to_deprecated_string_impl(Bytecode::Executable const&) const
  1502. {
  1503. return "Throw";
  1504. }
  1505. DeprecatedString ThrowIfNotObject::to_deprecated_string_impl(Bytecode::Executable const&) const
  1506. {
  1507. return "ThrowIfNotObject";
  1508. }
  1509. DeprecatedString ThrowIfNullish::to_deprecated_string_impl(Bytecode::Executable const&) const
  1510. {
  1511. return "ThrowIfNullish";
  1512. }
  1513. DeprecatedString EnterUnwindContext::to_deprecated_string_impl(Bytecode::Executable const&) const
  1514. {
  1515. auto handler_string = m_handler_target.has_value() ? DeprecatedString::formatted("{}", *m_handler_target) : "<empty>";
  1516. auto finalizer_string = m_finalizer_target.has_value() ? DeprecatedString::formatted("{}", *m_finalizer_target) : "<empty>";
  1517. return DeprecatedString::formatted("EnterUnwindContext handler:{} finalizer:{} entry:{}", handler_string, finalizer_string, m_entry_point);
  1518. }
  1519. DeprecatedString ScheduleJump::to_deprecated_string_impl(Bytecode::Executable const&) const
  1520. {
  1521. return DeprecatedString::formatted("ScheduleJump {}", m_target);
  1522. }
  1523. DeprecatedString LeaveLexicalEnvironment::to_deprecated_string_impl(Bytecode::Executable const&) const
  1524. {
  1525. return "LeaveLexicalEnvironment"sv;
  1526. }
  1527. DeprecatedString LeaveUnwindContext::to_deprecated_string_impl(Bytecode::Executable const&) const
  1528. {
  1529. return "LeaveUnwindContext";
  1530. }
  1531. DeprecatedString ContinuePendingUnwind::to_deprecated_string_impl(Bytecode::Executable const&) const
  1532. {
  1533. return DeprecatedString::formatted("ContinuePendingUnwind resume:{}", m_resume_target);
  1534. }
  1535. DeprecatedString PushDeclarativeEnvironment::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1536. {
  1537. StringBuilder builder;
  1538. builder.append("PushDeclarativeEnvironment"sv);
  1539. if (!m_variables.is_empty()) {
  1540. builder.append(" {"sv);
  1541. Vector<DeprecatedString> names;
  1542. for (auto& it : m_variables)
  1543. names.append(executable.get_string(it.key));
  1544. builder.append('}');
  1545. builder.join(", "sv, names);
  1546. }
  1547. return builder.to_deprecated_string();
  1548. }
  1549. DeprecatedString Yield::to_deprecated_string_impl(Bytecode::Executable const&) const
  1550. {
  1551. if (m_continuation_label.has_value())
  1552. return DeprecatedString::formatted("Yield continuation:@{}", m_continuation_label->block().name());
  1553. return DeprecatedString::formatted("Yield return");
  1554. }
  1555. DeprecatedString Await::to_deprecated_string_impl(Bytecode::Executable const&) const
  1556. {
  1557. return DeprecatedString::formatted("Await continuation:@{}", m_continuation_label.block().name());
  1558. }
  1559. DeprecatedString GetByValue::to_deprecated_string_impl(Bytecode::Executable const&) const
  1560. {
  1561. return DeprecatedString::formatted("GetByValue base:{}", m_base);
  1562. }
  1563. DeprecatedString GetByValueWithThis::to_deprecated_string_impl(Bytecode::Executable const&) const
  1564. {
  1565. return DeprecatedString::formatted("GetByValueWithThis base:{} this_value:{}", m_base, m_this_value);
  1566. }
  1567. DeprecatedString PutByValue::to_deprecated_string_impl(Bytecode::Executable const&) const
  1568. {
  1569. auto kind = m_kind == PropertyKind::Getter
  1570. ? "getter"
  1571. : m_kind == PropertyKind::Setter
  1572. ? "setter"
  1573. : "property";
  1574. return DeprecatedString::formatted("PutByValue kind:{} base:{}, property:{}", kind, m_base, m_property);
  1575. }
  1576. DeprecatedString PutByValueWithThis::to_deprecated_string_impl(Bytecode::Executable const&) const
  1577. {
  1578. auto kind = m_kind == PropertyKind::Getter
  1579. ? "getter"
  1580. : m_kind == PropertyKind::Setter
  1581. ? "setter"
  1582. : "property";
  1583. return DeprecatedString::formatted("PutByValueWithThis kind:{} base:{}, property:{} this_value:{}", kind, m_base, m_property, m_this_value);
  1584. }
  1585. DeprecatedString DeleteByValue::to_deprecated_string_impl(Bytecode::Executable const&) const
  1586. {
  1587. return DeprecatedString::formatted("DeleteByValue base:{}", m_base);
  1588. }
  1589. DeprecatedString DeleteByValueWithThis::to_deprecated_string_impl(Bytecode::Executable const&) const
  1590. {
  1591. return DeprecatedString::formatted("DeleteByValueWithThis base:{} this_value:{}", m_base, m_this_value);
  1592. }
  1593. DeprecatedString GetIterator::to_deprecated_string_impl(Executable const&) const
  1594. {
  1595. auto hint = m_hint == IteratorHint::Sync ? "sync" : "async";
  1596. return DeprecatedString::formatted("GetIterator hint:{}", hint);
  1597. }
  1598. DeprecatedString GetMethod::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1599. {
  1600. return DeprecatedString::formatted("GetMethod {} ({})", m_property, executable.identifier_table->get(m_property));
  1601. }
  1602. DeprecatedString GetObjectPropertyIterator::to_deprecated_string_impl(Bytecode::Executable const&) const
  1603. {
  1604. return "GetObjectPropertyIterator";
  1605. }
  1606. DeprecatedString IteratorClose::to_deprecated_string_impl(Bytecode::Executable const&) const
  1607. {
  1608. if (!m_completion_value.has_value())
  1609. return DeprecatedString::formatted("IteratorClose completion_type={} completion_value=<empty>", to_underlying(m_completion_type));
  1610. auto completion_value_string = m_completion_value->to_string_without_side_effects().release_value_but_fixme_should_propagate_errors();
  1611. return DeprecatedString::formatted("IteratorClose completion_type={} completion_value={}", to_underlying(m_completion_type), completion_value_string);
  1612. }
  1613. DeprecatedString AsyncIteratorClose::to_deprecated_string_impl(Bytecode::Executable const&) const
  1614. {
  1615. if (!m_completion_value.has_value())
  1616. return DeprecatedString::formatted("AsyncIteratorClose completion_type={} completion_value=<empty>", to_underlying(m_completion_type));
  1617. auto completion_value_string = m_completion_value->to_string_without_side_effects().release_value_but_fixme_should_propagate_errors();
  1618. return DeprecatedString::formatted("AsyncIteratorClose completion_type={} completion_value={}", to_underlying(m_completion_type), completion_value_string);
  1619. }
  1620. DeprecatedString IteratorNext::to_deprecated_string_impl(Executable const&) const
  1621. {
  1622. return "IteratorNext";
  1623. }
  1624. DeprecatedString IteratorResultDone::to_deprecated_string_impl(Executable const&) const
  1625. {
  1626. return "IteratorResultDone";
  1627. }
  1628. DeprecatedString IteratorResultValue::to_deprecated_string_impl(Executable const&) const
  1629. {
  1630. return "IteratorResultValue";
  1631. }
  1632. DeprecatedString ResolveThisBinding::to_deprecated_string_impl(Bytecode::Executable const&) const
  1633. {
  1634. return "ResolveThisBinding"sv;
  1635. }
  1636. DeprecatedString ResolveSuperBase::to_deprecated_string_impl(Bytecode::Executable const&) const
  1637. {
  1638. return "ResolveSuperBase"sv;
  1639. }
  1640. DeprecatedString GetNewTarget::to_deprecated_string_impl(Bytecode::Executable const&) const
  1641. {
  1642. return "GetNewTarget"sv;
  1643. }
  1644. DeprecatedString GetImportMeta::to_deprecated_string_impl(Bytecode::Executable const&) const
  1645. {
  1646. return "GetImportMeta"sv;
  1647. }
  1648. DeprecatedString TypeofVariable::to_deprecated_string_impl(Bytecode::Executable const& executable) const
  1649. {
  1650. return DeprecatedString::formatted("TypeofVariable {} ({})", m_identifier, executable.identifier_table->get(m_identifier));
  1651. }
  1652. DeprecatedString TypeofLocal::to_deprecated_string_impl(Bytecode::Executable const&) const
  1653. {
  1654. return DeprecatedString::formatted("TypeofLocal {}", m_index);
  1655. }
  1656. DeprecatedString ToNumeric::to_deprecated_string_impl(Bytecode::Executable const&) const
  1657. {
  1658. return "ToNumeric"sv;
  1659. }
  1660. DeprecatedString BlockDeclarationInstantiation::to_deprecated_string_impl(Bytecode::Executable const&) const
  1661. {
  1662. return "BlockDeclarationInstantiation"sv;
  1663. }
  1664. DeprecatedString ImportCall::to_deprecated_string_impl(Bytecode::Executable const&) const
  1665. {
  1666. return DeprecatedString::formatted("ImportCall specifier:{} options:{}"sv, m_specifier, m_options);
  1667. }
  1668. }