/* * Copyright (c) 2026, the Ladybird developers. * * SPDX-License-Identifier: BSD-2-Clause */ #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include #include // ===== Slow path functions callable from assembly ===== // All slow path functions follow the same convention: // i64 func(VM* vm, u32 pc, Op::Foo const* instruction) // Returns >= 0: new program counter to dispatch to // Returns < 0: should exit the asm interpreter using namespace JS; using namespace JS::Bytecode; static i64 handle_asm_exception(VM& vm, u32 pc, Value exception) { auto response = vm.handle_exception(pc, exception); if (response == VM::HandleExceptionResponse::ExitFromExecutable) return -1; // ContinueInThisExecutable: new pc is in the execution context return static_cast(vm.running_execution_context().program_counter); } #define ASM_TRY(vm, pc, expression) \ ({ \ auto& asm_try_vm = (vm); \ auto asm_try_pc = (pc); \ auto&& asm_try_result = (expression); \ if (asm_try_result.is_error()) [[unlikely]] \ return handle_asm_exception(asm_try_vm, asm_try_pc, asm_try_result.release_error().value()); \ asm_try_result.release_value(); \ }) template static i64 advance_or_continue(u32 pc, i64 next_pc) { if (next_pc != static_cast(pc)) return next_pc; return static_cast(pc + sizeof(Op)); } template static EnvironmentPointer asm_get_cacheable_environment(EnvironmentPointer environment, EnvironmentCoordinate const& cache) { VERIFY(cache.is_valid()); for (size_t i = 0; i < cache.hops; ++i) { if (!environment->is_declarative_environment() || environment->is_permanently_screwed_by_eval()) [[unlikely]] return nullptr; environment = environment->outer_environment(); if (!environment) [[unlikely]] return nullptr; } if (environment->is_declarative_environment() && !environment->is_permanently_screwed_by_eval()) [[likely]] return environment; return nullptr; } template static EnvironmentPointer asm_get_cached_environment(EnvironmentPointer environment, EnvironmentCoordinate& cache) { if (!cache.is_valid()) [[unlikely]] return nullptr; if (auto* cached_environment = asm_get_cacheable_environment(environment, cache)) [[likely]] return cached_environment; cache = {}; return nullptr; } template static void asm_update_environment_coordinate_cache(EnvironmentPointer environment, Reference const& reference, EnvironmentCoordinate& cache) { if (!reference.environment_coordinate().has_value()) return; auto candidate = reference.environment_coordinate().value(); if (asm_get_cacheable_environment(environment, candidate)) cache = candidate; } enum class AsmBindingIsKnownToBeInitialized { No, Yes, }; template static i64 asm_get_binding(VM& vm, u32 pc, Operand dst, EnvironmentCoordinate const& cache) { VERIFY(cache.is_valid()); auto const* environment = vm.running_execution_context().lexical_environment.ptr(); for (size_t i = 0; i < cache.hops; ++i) environment = environment->outer_environment(); Value value; if constexpr (binding_is_known_to_be_initialized == AsmBindingIsKnownToBeInitialized::No) { value = ASM_TRY(vm, pc, static_cast(*environment).get_binding_value_direct(vm, cache.index)); } else { value = static_cast(*environment).get_initialized_binding_value_direct(cache.index); } vm.set(dst, value); return static_cast(pc); } template static i64 asm_dynamic_get_binding(VM& vm, u32 pc, Operand dst, IdentifierTableIndex identifier_index, Strict strict, EnvironmentCoordinate& cache) { auto const* current_environment = vm.running_execution_context().lexical_environment.ptr(); if (auto const* cached_environment = asm_get_cached_environment(current_environment, cache)) [[likely]] { Value value; if constexpr (binding_is_known_to_be_initialized == AsmBindingIsKnownToBeInitialized::No) { value = ASM_TRY(vm, pc, static_cast(*cached_environment).get_binding_value_direct(vm, cache.index)); } else { value = static_cast(*cached_environment).get_initialized_binding_value_direct(cache.index); } vm.set(dst, value); return static_cast(pc); } auto& executable = vm.current_executable(); auto reference = ASM_TRY(vm, pc, vm.resolve_binding(executable.get_identifier(identifier_index), strict)); asm_update_environment_coordinate_cache(current_environment, reference, cache); vm.set(dst, ASM_TRY(vm, pc, reference.get_value(vm))); return static_cast(pc); } static i64 asm_dynamic_get_callee_and_this_from_environment(VM& vm, u32 pc, Operand callee_dst, Operand this_value_dst, IdentifierTableIndex identifier_index, Strict strict, EnvironmentCoordinate& cache) { auto const* current_environment = vm.running_execution_context().lexical_environment.ptr(); if (auto const* cached_environment = asm_get_cached_environment(current_environment, cache)) [[likely]] { auto callee = ASM_TRY(vm, pc, static_cast(*cached_environment).get_binding_value_direct(vm, cache.index)); vm.set(callee_dst, callee); vm.set(this_value_dst, js_undefined()); return static_cast(pc); } auto reference = ASM_TRY(vm, pc, vm.resolve_binding(vm.get_identifier(identifier_index), strict)); asm_update_environment_coordinate_cache(current_environment, reference, cache); auto callee = ASM_TRY(vm, pc, reference.get_value(vm)); Value this_value; if (reference.is_property_reference()) { this_value = reference.get_this_value(); } else { if (reference.is_environment_reference()) { if (auto base_object = reference.base_environment().with_base_object()) [[unlikely]] this_value = base_object; } } vm.set(callee_dst, callee); vm.set(this_value_dst, this_value); return static_cast(pc); } template static i64 asm_initialize_or_set_binding(VM& vm, u32 pc, Strict strict, Value value, EnvironmentCoordinate const& cache) { VERIFY(cache.is_valid()); auto* environment = environment_mode == Op::EnvironmentMode::Lexical ? vm.running_execution_context().lexical_environment.ptr() : vm.running_execution_context().variable_environment.ptr(); for (size_t i = 0; i < cache.hops; ++i) environment = environment->outer_environment(); if constexpr (initialization_mode == Op::BindingInitializationMode::Initialize) { ASM_TRY(vm, pc, static_cast(*environment).initialize_binding_direct(vm, cache.index, value, Environment::InitializeBindingHint::Normal)); } else { ASM_TRY(vm, pc, static_cast(*environment).set_mutable_binding_direct(vm, cache.index, value, strict == Strict::Yes)); } return static_cast(pc); } template static i64 asm_dynamic_initialize_or_set_binding(VM& vm, u32 pc, IdentifierTableIndex identifier_index, Strict strict, Value value, EnvironmentCoordinate& cache) { auto* environment = environment_mode == Op::EnvironmentMode::Lexical ? vm.running_execution_context().lexical_environment.ptr() : vm.running_execution_context().variable_environment.ptr(); if (auto* cached_environment = asm_get_cached_environment(environment, cache)) [[likely]] { if constexpr (initialization_mode == Op::BindingInitializationMode::Initialize) { ASM_TRY(vm, pc, static_cast(*cached_environment).initialize_binding_direct(vm, cache.index, value, Environment::InitializeBindingHint::Normal)); } else if (initialization_mode == Op::BindingInitializationMode::Set) { ASM_TRY(vm, pc, static_cast(*cached_environment).set_mutable_binding_direct(vm, cache.index, value, strict == Strict::Yes)); } return static_cast(pc); } auto reference = ASM_TRY(vm, pc, vm.resolve_binding(vm.get_identifier(identifier_index), strict, environment)); asm_update_environment_coordinate_cache(environment, reference, cache); if constexpr (initialization_mode == Op::BindingInitializationMode::Initialize) { ASM_TRY(vm, pc, reference.initialize_referenced_binding(vm, value)); } else if (initialization_mode == Op::BindingInitializationMode::Set) { ASM_TRY(vm, pc, reference.put_value(vm, value)); } return static_cast(pc); } static ThrowCompletionOr asm_create_variable(VM& vm, Utf16FlyString const& name, Op::EnvironmentMode mode, bool is_global, bool is_immutable, bool is_strict) { if (mode == Op::EnvironmentMode::Lexical) { VERIFY(!is_global); // Note: This is papering over an issue where "FunctionDeclarationInstantiation" creates these bindings for us. // Instead of crashing in there, we'll just raise an exception here. if (TRY(vm.lexical_environment()->has_binding(name))) [[unlikely]] return vm.throw_completion(Utf16String::formatted("Lexical environment already has binding '{}'", name)); if (is_immutable) return vm.lexical_environment()->create_immutable_binding(vm, name, is_strict); return vm.lexical_environment()->create_mutable_binding(vm, name, is_strict); } if (!is_global) { if (is_immutable) return vm.variable_environment()->create_immutable_binding(vm, name, is_strict); return vm.variable_environment()->create_mutable_binding(vm, name, is_strict); } // 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". // The only area that sets "can_be_deleted" to true is EvalDeclarationInstantiation, which is currently fully implemented in C++ and not in Bytecode. return as(vm.variable_environment())->create_global_var_binding(name, false); } struct FastPropertyNameIteratorData { Vector properties; PropertyNameIterator::FastPath fast_path { PropertyNameIterator::FastPath::None }; u32 indexed_property_count { 0 }; bool receiver_has_magical_length_property { false }; GC::Ptr shape; GC::Ptr prototype_chain_validity; }; static bool shape_has_enumerable_string_property(Shape const& shape) { bool has_enumerable_string_property = false; shape.for_each_property_in_insertion_order([&](auto const& property_key, auto const& metadata) { if (property_key.is_string() && metadata.attributes.is_enumerable()) { has_enumerable_string_property = true; return IterationDecision::Break; } return IterationDecision::Continue; }); return has_enumerable_string_property; } static bool property_name_iterator_fast_path_is_still_eligible(Object& object, PropertyNameIterator::FastPath fast_path, u32 indexed_property_count) { Object const* object_to_check = &object; bool is_receiver = true; while (object_to_check) { if (!object_to_check->eligible_for_own_property_enumeration_fast_path()) return false; if (is_receiver) { if (fast_path == PropertyNameIterator::FastPath::PackedIndexed) { if (object_to_check->indexed_storage_kind() != IndexedStorageKind::Packed) return false; if (object_to_check->indexed_array_like_size() != indexed_property_count) return false; } else if (object_to_check->indexed_array_like_size() != 0) { return false; } } else if (object_to_check->indexed_array_like_size() != 0) { return false; } object_to_check = object_to_check->prototype(); is_receiver = false; } return true; } static bool object_property_iterator_cache_matches(Object& object, ObjectPropertyIteratorCacheData const& cache) { // A cache entry represents the fully flattened key snapshot for one bytecode // site. Reusing it is only valid while the receiver still has the same local // state and the prototype chain validity token says nothing above it changed. if (object.has_magical_length_property() != cache.receiver_has_magical_length_property()) return false; auto& shape = object.shape(); if (&shape != cache.shape()) return false; if (shape.is_dictionary() && shape.dictionary_generation() != cache.shape_dictionary_generation()) return false; if (cache.prototype_chain_validity() && !cache.prototype_chain_validity()->is_valid()) return false; return property_name_iterator_fast_path_is_still_eligible(object, cache.fast_path(), cache.indexed_property_count()); } static ThrowCompletionOr> asm_try_get_fast_property_name_iterator_data(Object& object) { auto& vm = object.vm(); FastPropertyNameIteratorData result {}; result.fast_path = PropertyNameIterator::FastPath::PlainNamed; result.receiver_has_magical_length_property = object.has_magical_length_property(); result.shape = &object.shape(); GC::RootHashTable> seen_objects; size_t estimated_properties_count = 0; bool prototype_chain_has_enumerable_named_properties = false; for (auto object_to_check = GC::Ptr { &object }; object_to_check && !seen_objects.contains(*object_to_check); object_to_check = TRY(object_to_check->internal_get_prototype_of())) { seen_objects.set(*object_to_check); if (!object_to_check->eligible_for_own_property_enumeration_fast_path()) return Optional {}; if (&object == object_to_check.ptr()) { if (object_to_check->indexed_array_like_size() != 0) { if (object_to_check->indexed_storage_kind() != IndexedStorageKind::Packed) return Optional {}; result.fast_path = PropertyNameIterator::FastPath::PackedIndexed; result.indexed_property_count = object_to_check->indexed_array_like_size(); } else { result.fast_path = PropertyNameIterator::FastPath::PlainNamed; } } else if (object_to_check->indexed_array_like_size() != 0) { // The fast path only knows how to synthesize a packed indexed prefix // for the receiver itself. As soon as indexed properties appear in // the prototype chain, we fall back to the generic enumeration path. return Optional {}; } else if (!prototype_chain_has_enumerable_named_properties) { prototype_chain_has_enumerable_named_properties = shape_has_enumerable_string_property(object_to_check->shape()); } estimated_properties_count += object_to_check->shape().property_count(); } seen_objects.clear_with_capacity(); if (auto* prototype = object.shape().prototype()) { result.prototype_chain_validity = prototype->shape().prototype_chain_validity(); if (!result.prototype_chain_validity) return Optional {}; } if (!prototype_chain_has_enumerable_named_properties) { // Common case: only the receiver contributes enumerable string keys, so // we can copy them straight from the shape without any shadowing work. result.properties.ensure_capacity(object.shape().property_count()); object.shape().for_each_property_in_insertion_order([&](auto const& property_key, auto const& metadata) { if (property_key.is_string() && metadata.attributes.is_enumerable()) result.properties.append(property_key); }); return result; } result.properties.ensure_capacity(estimated_properties_count); GC::ConservativeHashTable seen_non_enumerable_properties; Optional> seen_properties; auto ensure_seen_properties = [&] { if (seen_properties.has_value()) return; // Prototype shadowing ignores enumerability, so once we start looking // above the receiver we need an explicit visited set for names we have // already decided to expose from lower objects. seen_properties.emplace(); seen_properties->ensure_capacity(result.properties.size()); for (auto const& property : result.properties) seen_properties->set(property); }; bool in_prototype_chain = false; for (auto object_to_check = GC::Ptr { &object }; object_to_check && !seen_objects.contains(*object_to_check); object_to_check = TRY(object_to_check->internal_get_prototype_of())) { seen_objects.set(*object_to_check); // Arrays keep a non-enumerable magical `length` property outside the shape // table, but it still shadows enumerable `length` properties higher up the // prototype chain during for-in. if (object_to_check->has_magical_length_property()) seen_non_enumerable_properties.set(vm.names.length); object_to_check->shape().for_each_property_in_insertion_order([&](auto const& property_key, auto const& metadata) { if (!property_key.is_string()) return; bool enumerable = metadata.attributes.is_enumerable(); if (!enumerable) seen_non_enumerable_properties.set(property_key); if (in_prototype_chain && enumerable) { if (seen_non_enumerable_properties.contains(property_key)) return; ensure_seen_properties(); if (seen_properties->contains(property_key)) return; } if (enumerable) result.properties.append(property_key); if (seen_properties.has_value()) seen_properties->set(property_key); }); in_prototype_chain = true; } return result; } // 14.7.5.9 EnumerateObjectProperties ( O ), https://tc39.es/ecma262/#sec-enumerate-object-properties static ThrowCompletionOr> asm_get_object_property_iterator(VM& vm, Value value, ObjectPropertyIteratorCache* cache = nullptr) { // While the spec does provide an algorithm, it allows us to implement it ourselves so long as we meet the following invariants: // 1- Returned property keys do not include keys that are Symbols // 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 // 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 // 4- A property name will be returned by the iterator's next method at most once in any enumeration. // 5- Enumerating the properties of the target object includes enumerating properties of its prototype, and the prototype of the prototype, and so on, recursively; // 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. // 6- The values of [[Enumerable]] attributes are not considered when determining if a property of a prototype object has already been processed. // 7- The enumerable property names of prototype objects must be obtained by invoking EnumerateObjectProperties passing the prototype object as the argument. // 8- EnumerateObjectProperties must obtain the own property keys of the target object by calling its [[OwnPropertyKeys]] internal method. // 9- Property attributes of the target object must be obtained by calling its [[GetOwnProperty]] internal method // Invariant 3 effectively allows the implementation to ignore newly added keys, and we do so (similar to other implementations). auto object = TRY(value.to_object(vm)); // Note: While the spec doesn't explicitly require these to be ordered, it says that the values should be retrieved via OwnPropertyKeys, // so we just keep the order consistent anyway. if (cache && cache->data) { if (object_property_iterator_cache_matches(*object, *cache->data)) { if (cache->reusable_property_name_iterator) { // We keep one iterator object per bytecode site alive so hot // loops can recycle it without allocating a new cell each time. auto& iterator = static_cast(*cache->reusable_property_name_iterator); cache->reusable_property_name_iterator = nullptr; iterator.reset_with_cache_data(object, *cache->data, cache); return iterator; } return PropertyNameIterator::create(vm.realm(), object, *cache->data, cache); } } if (auto fast_iterator_data = TRY(asm_try_get_fast_property_name_iterator_data(*object)); fast_iterator_data.has_value()) { VERIFY(fast_iterator_data->shape); auto cache_data = vm.heap().allocate( vm, move(fast_iterator_data->properties), fast_iterator_data->fast_path, fast_iterator_data->indexed_property_count, fast_iterator_data->receiver_has_magical_length_property, *fast_iterator_data->shape, fast_iterator_data->prototype_chain_validity); if (cache) cache->data = cache_data; if (cache && cache->reusable_property_name_iterator) { auto& iterator = static_cast(*cache->reusable_property_name_iterator); cache->reusable_property_name_iterator = nullptr; iterator.reset_with_cache_data(object, cache_data, cache); return iterator; } return PropertyNameIterator::create(vm.realm(), object, cache_data, cache); } size_t estimated_properties_count = 0; GC::RootHashTable> seen_objects; for (auto object_to_check = GC::Ptr { object.ptr() }; object_to_check && !seen_objects.contains(*object_to_check); object_to_check = TRY(object_to_check->internal_get_prototype_of())) { seen_objects.set(*object_to_check); estimated_properties_count += object_to_check->own_properties_count(); } seen_objects.clear_with_capacity(); GC::ConservativeVector properties; properties.ensure_capacity(estimated_properties_count); GC::ConservativeHashTable seen_non_enumerable_properties; Optional> seen_properties; auto ensure_seen_properties = [&] { if (seen_properties.has_value()) return; seen_properties.emplace(); seen_properties->ensure_capacity(properties.size()); for (auto const& property : properties) seen_properties->set(property); }; // Collect all keys immediately (invariant no. 5) bool in_prototype_chain = false; for (auto object_to_check = GC::Ptr { object.ptr() }; object_to_check && !seen_objects.contains(*object_to_check); object_to_check = TRY(object_to_check->internal_get_prototype_of())) { seen_objects.set(*object_to_check); TRY(object_to_check->for_each_own_property_with_enumerability([&](PropertyKey const& property_key, bool enumerable) -> ThrowCompletionOr { if (!enumerable) seen_non_enumerable_properties.set(property_key); if (in_prototype_chain && enumerable) { if (seen_non_enumerable_properties.contains(property_key)) return {}; ensure_seen_properties(); if (seen_properties->contains(property_key)) return {}; } if (enumerable) properties.append(property_key); if (seen_properties.has_value()) seen_properties->set(property_key); return {}; })); in_prototype_chain = true; } return PropertyNameIterator::create(vm.realm(), object, move(properties)); } extern "C" { // Forward declarations for all functions called from assembly. i64 asm_fallback_handler(VM*, u32 pc, u8 const* instruction); i64 asm_slow_path_jump_less_than(VM*, u32 pc, Op::JumpLessThan const*); i64 asm_slow_path_jump_greater_than(VM*, u32 pc, Op::JumpGreaterThan const*); i64 asm_slow_path_jump_less_than_equals(VM*, u32 pc, Op::JumpLessThanEquals const*); i64 asm_slow_path_jump_greater_than_equals(VM*, u32 pc, Op::JumpGreaterThanEquals const*); i64 asm_slow_path_jump_loosely_equals(VM*, u32 pc, Op::JumpLooselyEquals const*); i64 asm_slow_path_create_private_environment(VM*, u32 pc, Op::CreatePrivateEnvironment const*); i64 asm_slow_path_throw_const_assignment(VM*, u32 pc, Op::ThrowConstAssignment const*); i64 asm_slow_path_resolve_this_binding(VM*, u32 pc, Op::ResolveThisBinding const*); #define DECLARE_CALL_BUILTIN_SLOW_PATH(name, snake_case_name, ...) \ i64 asm_slow_path_call_builtin_##snake_case_name(VM*, u32 pc, Op::CallBuiltin##name const*); JS_ENUMERATE_BUILTINS(DECLARE_CALL_BUILTIN_SLOW_PATH) #undef DECLARE_CALL_BUILTIN_SLOW_PATH i64 asm_slow_path_add(VM*, u32 pc, Op::Add const*); i64 asm_slow_path_sub(VM*, u32 pc, Op::Sub const*); i64 asm_slow_path_mul(VM*, u32 pc, Op::Mul const*); i64 asm_slow_path_div(VM*, u32 pc, Op::Div const*); i64 asm_slow_path_less_than(VM*, u32 pc, Op::LessThan const*); i64 asm_slow_path_less_than_equals(VM*, u32 pc, Op::LessThanEquals const*); i64 asm_slow_path_greater_than(VM*, u32 pc, Op::GreaterThan const*); i64 asm_slow_path_greater_than_equals(VM*, u32 pc, Op::GreaterThanEquals const*); i64 asm_slow_path_increment(VM*, u32 pc, Op::Increment const*); i64 asm_slow_path_decrement(VM*, u32 pc, Op::Decrement const*); i64 asm_slow_path_jump_loosely_inequals(VM*, u32 pc, Op::JumpLooselyInequals const*); i64 asm_slow_path_jump_strictly_equals(VM*, u32 pc, Op::JumpStrictlyEquals const*); i64 asm_slow_path_jump_strictly_inequals(VM*, u32 pc, Op::JumpStrictlyInequals const*); i64 asm_slow_path_get_initialized_binding(VM*, u32 pc, Op::GetInitializedBinding const*); i64 asm_slow_path_dynamic_get_initialized_binding(VM*, u32 pc, Op::DynamicGetInitializedBinding const*); i64 asm_slow_path_get_callee_and_this(VM*, u32 pc, Op::GetCalleeAndThisFromEnvironment const*); i64 asm_slow_path_dynamic_get_callee_and_this(VM*, u32 pc, Op::DynamicGetCalleeAndThisFromEnvironment const*); i64 asm_slow_path_postfix_increment(VM*, u32 pc, Op::PostfixIncrement const*); i64 asm_slow_path_get_by_id(VM*, u32 pc, Op::GetById const*); i64 asm_slow_path_get_by_id_with_this(VM*, u32 pc, Op::GetByIdWithThis const*); i64 asm_slow_path_put_by_id(VM*, u32 pc, Op::PutById const*); i64 asm_slow_path_put_by_id_with_this(VM*, u32 pc, Op::PutByIdWithThis const*); i64 asm_slow_path_get_by_value(VM*, u32 pc, Op::GetByValue const*); i64 asm_slow_path_get_by_value_with_this(VM*, u32 pc, Op::GetByValueWithThis const*); i64 asm_slow_path_get_length(VM*, u32 pc, Op::GetLength const*); i64 asm_slow_path_get_length_with_this(VM*, u32 pc, Op::GetLengthWithThis const*); i64 asm_slow_path_get_method(VM*, u32 pc, Op::GetMethod const*); i64 asm_slow_path_get_iterator(VM*, u32 pc, Op::GetIterator const*); i64 asm_slow_path_get_import_meta(VM*, u32 pc, Op::GetImportMeta const*); i64 asm_slow_path_get_new_target(VM*, u32 pc, Op::GetNewTarget const*); i64 asm_slow_path_get_super_constructor(VM*, u32 pc, Op::GetSuperConstructor const*); i64 asm_slow_path_get_global(VM*, u32 pc, Op::GetGlobal const*); i64 asm_slow_path_set_global(VM*, u32 pc, Op::SetGlobal const*); i64 asm_slow_path_concat_string(VM*, u32 pc, Op::ConcatString const*); i64 asm_slow_path_copy_object_excluding_properties(VM*, u32 pc, Op::CopyObjectExcludingProperties const*); i64 asm_slow_path_exp(VM*, u32 pc, Op::Exp const*); i64 asm_slow_path_import_call(VM*, u32 pc, Op::ImportCall const*); i64 asm_slow_path_new_class(VM*, u32 pc, Op::NewClass const*); i64 asm_slow_path_call(VM*, u32 pc, Op::Call const*); i64 asm_slow_path_call_direct_eval(VM*, u32 pc, Op::CallDirectEval const*); i64 asm_slow_path_call_with_argument_array(VM*, u32 pc, Op::CallWithArgumentArray const*); i64 asm_slow_path_call_direct_eval_with_argument_array(VM*, u32 pc, Op::CallDirectEvalWithArgumentArray const*); i64 asm_slow_path_get_object_property_iterator(VM*, u32 pc, Op::GetObjectPropertyIterator const*); i64 asm_slow_path_object_property_iterator_next(VM*, u32 pc, Op::ObjectPropertyIteratorNext const*); i64 asm_slow_path_iterator_close(VM*, u32 pc, Op::IteratorClose const*); i64 asm_slow_path_iterator_next(VM*, u32 pc, Op::IteratorNext const*); i64 asm_slow_path_iterator_next_unpack(VM*, u32 pc, Op::IteratorNextUnpack const*); i64 asm_slow_path_iterator_to_array(VM*, u32 pc, Op::IteratorToArray const*); i64 asm_slow_path_call_construct(VM*, u32 pc, Op::CallConstruct const*); i64 asm_slow_path_call_construct_with_argument_array(VM*, u32 pc, Op::CallConstructWithArgumentArray const*); i64 asm_slow_path_super_call_with_argument_array(VM*, u32 pc, Op::SuperCallWithArgumentArray const*); i64 asm_slow_path_new_object(VM*, u32 pc, Op::NewObject const*); i64 asm_slow_path_new_object_with_no_prototype(VM*, u32 pc, Op::NewObjectWithNoPrototype const*); i64 asm_slow_path_cache_object_shape(VM*, u32 pc, Op::CacheObjectShape const*); i64 asm_slow_path_init_object_literal_property(VM*, u32 pc, Op::InitObjectLiteralProperty const*); i64 asm_slow_path_new_array(VM*, u32 pc, Op::NewArray const*); i64 asm_slow_path_new_primitive_array(VM*, u32 pc, Op::NewPrimitiveArray const*); i64 asm_slow_path_new_regexp(VM*, u32 pc, Op::NewRegExp const*); i64 asm_slow_path_new_reference_error(VM*, u32 pc, Op::NewReferenceError const*); i64 asm_slow_path_new_type_error(VM*, u32 pc, Op::NewTypeError const*); i64 asm_slow_path_bitwise_xor(VM*, u32 pc, Op::BitwiseXor const*); i64 asm_slow_path_bitwise_and(VM*, u32 pc, Op::BitwiseAnd const*); i64 asm_slow_path_bitwise_or(VM*, u32 pc, Op::BitwiseOr const*); i64 asm_slow_path_left_shift(VM*, u32 pc, Op::LeftShift const*); i64 asm_slow_path_right_shift(VM*, u32 pc, Op::RightShift const*); i64 asm_slow_path_unsigned_right_shift(VM*, u32 pc, Op::UnsignedRightShift const*); i64 asm_slow_path_mod(VM*, u32 pc, Op::Mod const*); i64 asm_slow_path_strictly_equals(VM*, u32 pc, Op::StrictlyEquals const*); i64 asm_slow_path_strictly_inequals(VM*, u32 pc, Op::StrictlyInequals const*); i64 asm_slow_path_loosely_equals(VM*, u32 pc, Op::LooselyEquals const*); i64 asm_slow_path_loosely_inequals(VM*, u32 pc, Op::LooselyInequals const*); i64 asm_slow_path_unary_minus(VM*, u32 pc, Op::UnaryMinus const*); i64 asm_slow_path_to_string(VM*, u32 pc, Op::ToString const*); i64 asm_slow_path_to_primitive_with_string_hint(VM*, u32 pc, Op::ToPrimitiveWithStringHint const*); i64 asm_slow_path_to_object(VM*, u32 pc, Op::ToObject const*); i64 asm_slow_path_to_length(VM*, u32 pc, Op::ToLength const*); i64 asm_slow_path_typeof(VM*, u32 pc, Op::Typeof const*); i64 asm_slow_path_postfix_decrement(VM*, u32 pc, Op::PostfixDecrement const*); i64 asm_slow_path_to_int32(VM*, u32 pc, Op::ToInt32 const*); i64 asm_slow_path_put_by_value(VM*, u32 pc, Op::PutByValue const*); i64 asm_slow_path_put_by_value_with_this(VM*, u32 pc, Op::PutByValueWithThis const*); i64 asm_slow_path_put_by_spread(VM*, u32 pc, Op::PutBySpread const*); i64 asm_slow_path_get_binding(VM*, u32 pc, Op::GetBinding const*); i64 asm_slow_path_dynamic_get_binding(VM*, u32 pc, Op::DynamicGetBinding const*); i64 asm_slow_path_initialize_lexical_binding(VM*, u32 pc, Op::InitializeLexicalBinding const*); i64 asm_slow_path_dynamic_initialize_lexical_binding(VM*, u32 pc, Op::DynamicInitializeLexicalBinding const*); i64 asm_slow_path_initialize_variable_binding(VM*, u32 pc, Op::InitializeVariableBinding const*); i64 asm_slow_path_dynamic_initialize_variable_binding(VM*, u32 pc, Op::DynamicInitializeVariableBinding const*); i64 asm_slow_path_set_lexical_binding(VM*, u32 pc, Op::SetLexicalBinding const*); i64 asm_slow_path_dynamic_set_lexical_binding(VM*, u32 pc, Op::DynamicSetLexicalBinding const*); i64 asm_slow_path_set_variable_binding(VM*, u32 pc, Op::SetVariableBinding const*); i64 asm_slow_path_dynamic_set_variable_binding(VM*, u32 pc, Op::DynamicSetVariableBinding const*); i64 asm_slow_path_resolve_binding(VM*, u32 pc, Op::ResolveBinding const*); i64 asm_slow_path_resolve_super_base(VM*, u32 pc, Op::ResolveSuperBase const*); i64 asm_slow_path_set_resolved_binding(VM*, u32 pc, Op::SetResolvedBinding const*); i64 asm_slow_path_typeof_binding(VM*, u32 pc, Op::TypeofBinding const*); i64 asm_slow_path_dynamic_typeof_binding(VM*, u32 pc, Op::DynamicTypeofBinding const*); i64 asm_slow_path_has_private_id(VM*, u32 pc, Op::HasPrivateId const*); i64 asm_slow_path_set_function_name(VM*, u32 pc, Op::SetFunctionName const*); i64 asm_slow_path_new_array_with_length(VM*, u32 pc, Op::NewArrayWithLength const*); i64 asm_slow_path_array_append(VM*, u32 pc, Op::ArrayAppend const*); i64 asm_slow_path_create_variable(VM*, u32 pc, Op::CreateVariable const*); i64 asm_slow_path_enter_object_environment(VM*, u32 pc, Op::EnterObjectEnvironment const*); i64 asm_slow_path_bitwise_not(VM*, u32 pc, Op::BitwiseNot const*); i64 asm_slow_path_unary_plus(VM*, u32 pc, Op::UnaryPlus const*); i64 asm_slow_path_is_constructor(VM*, u32 pc, Op::IsConstructor const*); i64 asm_slow_path_add_private_name(VM*, u32 pc, Op::AddPrivateName const*); i64 asm_slow_path_create_async_from_sync_iterator(VM*, u32 pc, Op::CreateAsyncFromSyncIterator const*); i64 asm_slow_path_create_data_property_or_throw(VM*, u32 pc, Op::CreateDataPropertyOrThrow const*); i64 asm_slow_path_create_immutable_binding(VM*, u32 pc, Op::CreateImmutableBinding const*); i64 asm_slow_path_create_mutable_binding(VM*, u32 pc, Op::CreateMutableBinding const*); i64 asm_slow_path_create_rest_params(VM*, u32 pc, Op::CreateRestParams const*); i64 asm_slow_path_create_arguments(VM*, u32 pc, Op::CreateArguments const*); i64 asm_slow_path_await(VM*, u32 pc, Op::Await const*); i64 asm_slow_path_create_lexical_environment(VM*, u32 pc, Op::CreateLexicalEnvironment const*); i64 asm_slow_path_create_variable_environment(VM*, u32 pc, Op::CreateVariableEnvironment const*); i64 asm_slow_path_delete_by_id(VM*, u32 pc, Op::DeleteById const*); i64 asm_slow_path_delete_by_value(VM*, u32 pc, Op::DeleteByValue const*); i64 asm_slow_path_delete_variable(VM*, u32 pc, Op::DeleteVariable const*); i64 asm_slow_path_get_completion_fields(VM*, u32 pc, Op::GetCompletionFields const*); i64 asm_slow_path_set_completion_type(VM*, u32 pc, Op::SetCompletionType const*); i64 asm_slow_path_get_template_object(VM*, u32 pc, Op::GetTemplateObject const*); i64 asm_slow_path_new_function(VM*, u32 pc, Op::NewFunction const*); i64 asm_slow_path_throw(VM*, u32 pc, Op::Throw const*); i64 asm_slow_path_throw_if_tdz(VM*, u32 pc, Op::ThrowIfTDZ const*); i64 asm_slow_path_throw_if_not_object(VM*, u32 pc, Op::ThrowIfNotObject const*); i64 asm_slow_path_throw_if_nullish(VM*, u32 pc, Op::ThrowIfNullish const*); i64 asm_slow_path_yield(VM*, u32 pc, Op::Yield const*); i64 asm_slow_path_yield_iterator_result(VM*, u32 pc, Op::YieldIteratorResult const*); i64 asm_slow_path_instance_of(VM*, u32 pc, Op::InstanceOf const*); i64 asm_slow_path_in(VM*, u32 pc, Op::In const*); i64 asm_slow_path_get_private_by_id(VM*, u32 pc, Op::GetPrivateById const*); i64 asm_slow_path_put_private_by_id(VM*, u32 pc, Op::PutPrivateById const*); i64 asm_try_get_global_env_binding(VM*, u32 pc, Op::GetGlobal const*); i64 asm_try_set_global_env_binding(VM*, u32 pc, Op::SetGlobal const*); i64 asm_try_put_by_value_holey_array(VM*, u32 pc, Op::PutByValue const*); u64 asm_helper_to_boolean(u64 encoded_value); u64 asm_helper_math_exp(u64 encoded_value); u64 asm_helper_empty_string(u64); u64 asm_helper_single_ascii_character_string(u64 encoded_value); u64 asm_helper_single_utf16_code_unit_string(u64 encoded_value); i64 asm_helper_handle_raw_native_exception(u64 encoded_exception); i64 asm_try_inline_call(VM*, u32 pc, Op::Call const*); i64 asm_try_put_by_id_cache(VM*, u32 pc, Op::PutById const*); i64 asm_try_get_by_id_cache(VM*, u32 pc, Op::GetById const*); i64 asm_try_get_by_value_typed_array(VM*, u32 pc, Op::GetByValue const*); i64 asm_try_put_by_value_typed_array(VM*, u32 pc, Op::PutByValue const*); // ===== Fallback handler for invalid dispatch table entries ===== // NB: Every bytecode opcode has a DSL handler, so this should never run. i64 asm_fallback_handler(VM*, u32, u8 const*) { VERIFY_NOT_REACHED(); } // ===== Specific slow paths for asm-optimized instructions ===== // These are called from asm handlers when the fast path fails. // Convention: i64 func(VM*, u32 pc, Op::Foo const* instruction) // Returns >= 0: new pc // Returns < 0: exit i64 asm_slow_path_add(VM* vm, u32 pc, Op::Add const* instruction) { vm->set(instruction->dst(), ASM_TRY(*vm, pc, add(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs())))); return static_cast(pc + sizeof(Op::Add)); } i64 asm_slow_path_sub(VM* vm, u32 pc, Op::Sub const* instruction) { vm->set(instruction->dst(), ASM_TRY(*vm, pc, sub(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs())))); return static_cast(pc + sizeof(Op::Sub)); } i64 asm_slow_path_mul(VM* vm, u32 pc, Op::Mul const* instruction) { vm->set(instruction->dst(), ASM_TRY(*vm, pc, mul(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs())))); return static_cast(pc + sizeof(Op::Mul)); } i64 asm_slow_path_div(VM* vm, u32 pc, Op::Div const* instruction) { vm->set(instruction->dst(), ASM_TRY(*vm, pc, div(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs())))); return static_cast(pc + sizeof(Op::Div)); } i64 asm_slow_path_less_than(VM* vm, u32 pc, Op::LessThan const* instruction) { vm->set(instruction->dst(), Value { ASM_TRY(*vm, pc, less_than(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs()))) }); return static_cast(pc + sizeof(Op::LessThan)); } i64 asm_slow_path_less_than_equals(VM* vm, u32 pc, Op::LessThanEquals const* instruction) { vm->set(instruction->dst(), Value { ASM_TRY(*vm, pc, less_than_equals(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs()))) }); return static_cast(pc + sizeof(Op::LessThanEquals)); } i64 asm_slow_path_greater_than(VM* vm, u32 pc, Op::GreaterThan const* instruction) { vm->set(instruction->dst(), Value { ASM_TRY(*vm, pc, greater_than(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs()))) }); return static_cast(pc + sizeof(Op::GreaterThan)); } i64 asm_slow_path_greater_than_equals(VM* vm, u32 pc, Op::GreaterThanEquals const* instruction) { vm->set(instruction->dst(), Value { ASM_TRY(*vm, pc, greater_than_equals(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs()))) }); return static_cast(pc + sizeof(Op::GreaterThanEquals)); } i64 asm_slow_path_increment(VM* vm, u32 pc, Op::Increment const* instruction) { auto old_value = ASM_TRY(*vm, pc, vm->get(instruction->dst()).to_numeric(*vm)); if (old_value.is_number()) vm->set(instruction->dst(), Value(old_value.as_double() + 1)); else vm->set(instruction->dst(), BigInt::create(*vm, old_value.as_bigint().big_integer().plus(Crypto::SignedBigInteger { 1 }))); return static_cast(pc + sizeof(Op::Increment)); } i64 asm_slow_path_decrement(VM* vm, u32 pc, Op::Decrement const* instruction) { auto old_value = ASM_TRY(*vm, pc, vm->get(instruction->dst()).to_numeric(*vm)); if (old_value.is_number()) vm->set(instruction->dst(), Value(old_value.as_double() - 1)); else vm->set(instruction->dst(), BigInt::create(*vm, old_value.as_bigint().big_integer().minus(Crypto::SignedBigInteger { 1 }))); return static_cast(pc + sizeof(Op::Decrement)); } // Comparison jump slow paths return one of two target PCs. #define DEFINE_JUMP_COMPARISON_SLOW_PATH(snake_name, op_name, compare_call) \ i64 asm_slow_path_jump_##snake_name(VM* vm, u32 pc, Op::Jump##op_name const* instruction) \ { \ auto lhs = vm->get(instruction->lhs()); \ auto rhs = vm->get(instruction->rhs()); \ if (ASM_TRY(*vm, pc, compare_call)) \ return static_cast(instruction->true_target().address()); \ return static_cast(instruction->false_target().address()); \ } DEFINE_JUMP_COMPARISON_SLOW_PATH(less_than, LessThan, less_than(*vm, lhs, rhs)) DEFINE_JUMP_COMPARISON_SLOW_PATH(greater_than, GreaterThan, greater_than(*vm, lhs, rhs)) DEFINE_JUMP_COMPARISON_SLOW_PATH(less_than_equals, LessThanEquals, less_than_equals(*vm, lhs, rhs)) DEFINE_JUMP_COMPARISON_SLOW_PATH(greater_than_equals, GreaterThanEquals, greater_than_equals(*vm, lhs, rhs)) DEFINE_JUMP_COMPARISON_SLOW_PATH(loosely_equals, LooselyEquals, is_loosely_equal(*vm, lhs, rhs)) #undef DEFINE_JUMP_COMPARISON_SLOW_PATH i64 asm_slow_path_jump_loosely_inequals(VM* vm, u32 pc, Op::JumpLooselyInequals const* instruction) { auto lhs = vm->get(instruction->lhs()); auto rhs = vm->get(instruction->rhs()); if (!ASM_TRY(*vm, pc, is_loosely_equal(*vm, lhs, rhs))) return static_cast(instruction->true_target().address()); return static_cast(instruction->false_target().address()); } i64 asm_slow_path_jump_strictly_equals(VM* vm, [[maybe_unused]] u32 pc, Op::JumpStrictlyEquals const* instruction) { auto lhs = vm->get(instruction->lhs()); auto rhs = vm->get(instruction->rhs()); if (is_strictly_equal(lhs, rhs)) return static_cast(instruction->true_target().address()); return static_cast(instruction->false_target().address()); } i64 asm_slow_path_jump_strictly_inequals(VM* vm, [[maybe_unused]] u32 pc, Op::JumpStrictlyInequals const* instruction) { auto lhs = vm->get(instruction->lhs()); auto rhs = vm->get(instruction->rhs()); if (!is_strictly_equal(lhs, rhs)) return static_cast(instruction->true_target().address()); return static_cast(instruction->false_target().address()); } // ===== Dedicated slow paths for hot instructions ===== i64 asm_slow_path_get_initialized_binding(VM* vm, u32 pc, Op::GetInitializedBinding const* instruction) { auto next_pc = asm_get_binding(*vm, pc, instruction->dst(), instruction->cache()); return advance_or_continue(pc, next_pc); } i64 asm_slow_path_dynamic_get_initialized_binding(VM* vm, u32 pc, Op::DynamicGetInitializedBinding const* instruction) { auto& cache = vm->current_executable().environment_coordinate_caches[instruction->cache()]; auto next_pc = asm_dynamic_get_binding(*vm, pc, instruction->dst(), instruction->identifier(), instruction->strict(), cache); return advance_or_continue(pc, next_pc); } i64 asm_slow_path_get_callee_and_this(VM* vm, u32 pc, Op::GetCalleeAndThisFromEnvironment const* instruction) { auto const& cache = instruction->cache(); VERIFY(cache.is_valid()); auto const* environment = vm->running_execution_context().lexical_environment.ptr(); for (size_t i = 0; i < cache.hops; ++i) environment = environment->outer_environment(); auto callee = ASM_TRY(*vm, pc, static_cast(*environment).get_binding_value_direct(*vm, cache.index)); vm->set(instruction->callee(), callee); auto this_value = js_undefined(); if (auto base_object = environment->with_base_object()) [[unlikely]] this_value = base_object; vm->set(instruction->this_value(), this_value); return static_cast(pc + sizeof(Op::GetCalleeAndThisFromEnvironment)); } i64 asm_slow_path_dynamic_get_callee_and_this(VM* vm, u32 pc, Op::DynamicGetCalleeAndThisFromEnvironment const* instruction) { auto& cache = vm->current_executable().environment_coordinate_caches[instruction->cache()]; auto next_pc = asm_dynamic_get_callee_and_this_from_environment(*vm, pc, instruction->callee(), instruction->this_value(), instruction->identifier(), instruction->strict(), cache); return advance_or_continue(pc, next_pc); } i64 asm_slow_path_postfix_increment(VM* vm, u32 pc, Op::PostfixIncrement const* instruction) { auto old_value = ASM_TRY(*vm, pc, vm->get(instruction->src()).to_numeric(*vm)); vm->set(instruction->dst(), old_value); if (old_value.is_number()) vm->set(instruction->src(), Value(old_value.as_double() + 1)); else vm->set(instruction->src(), BigInt::create(*vm, old_value.as_bigint().big_integer().plus(Crypto::SignedBigInteger { 1 }))); return static_cast(pc + sizeof(Op::PostfixIncrement)); } i64 asm_slow_path_get_by_id(VM* vm, u32 pc, Op::GetById const* instruction) { auto base_value = vm->get(instruction->base()); auto& cache = vm->current_executable().property_lookup_caches[instruction->cache()]; auto value = ASM_TRY(*vm, pc, get_by_id(*vm, [&] { return vm->get_identifier(instruction->base_identifier()); }, [&] -> PropertyKey const& { return vm->get_property_key(instruction->property()); }, base_value, base_value, cache)); vm->set(instruction->dst(), value); return static_cast(pc + sizeof(Op::GetById)); } i64 asm_slow_path_get_by_id_with_this(VM* vm, u32 pc, Op::GetByIdWithThis const* instruction) { auto base_value = vm->get(instruction->base()); auto this_value = vm->get(instruction->this_value()); auto& cache = vm->current_executable().property_lookup_caches[instruction->cache()]; auto value = ASM_TRY(*vm, pc, get_by_id(*vm, [] { return Optional {}; }, [&] -> PropertyKey const& { return vm->get_property_key(instruction->property()); }, base_value, this_value, cache)); vm->set(instruction->dst(), value); return static_cast(pc + sizeof(Op::GetByIdWithThis)); } i64 asm_slow_path_put_by_id(VM* vm, u32 pc, Op::PutById const* instruction) { auto value = vm->get(instruction->src()); auto base = vm->get(instruction->base()); Optional base_identifier; if (instruction->base_identifier().has_value()) base_identifier = vm->get_identifier(instruction->base_identifier().value()); auto const& property_key = vm->get_property_key(instruction->property()); auto& cache = vm->current_executable().property_lookup_caches[instruction->cache()]; ASM_TRY(*vm, pc, put_by_property_key(*vm, base, base, value, base_identifier, property_key, instruction->kind(), instruction->strict(), &cache)); return static_cast(pc + sizeof(Op::PutById)); } i64 asm_slow_path_put_by_id_with_this(VM* vm, u32 pc, Op::PutByIdWithThis const* instruction) { auto value = vm->get(instruction->src()); auto base = vm->get(instruction->base()); auto const& name = vm->get_property_key(instruction->property()); auto& cache = vm->current_executable().property_lookup_caches[instruction->cache()]; ASM_TRY(*vm, pc, put_by_property_key(*vm, base, vm->get(instruction->this_value()), value, {}, name, instruction->kind(), instruction->strict(), &cache)); return static_cast(pc + sizeof(Op::PutByIdWithThis)); } i64 asm_slow_path_get_by_value(VM* vm, u32 pc, Op::GetByValue const* instruction) { auto base_value = vm->get(instruction->base()); auto property_key_value = vm->get(instruction->property()); auto object = ASM_TRY(*vm, pc, base_object_for_get(*vm, base_value, [&]() -> Optional { if (instruction->base_identifier().has_value()) return vm->get_identifier(instruction->base_identifier().value()); return {}; }, [&] { return property_key_value; })); auto property_key = ASM_TRY(*vm, pc, property_key_value.to_property_key(*vm)); if (base_value.is_string()) { auto string_value = ASM_TRY(*vm, pc, base_value.as_string().get(*vm, property_key)); if (string_value.has_value()) { vm->set(instruction->dst(), *string_value); return static_cast(pc + sizeof(Op::GetByValue)); } } vm->set(instruction->dst(), ASM_TRY(*vm, pc, object->internal_get(property_key, base_value))); return static_cast(pc + sizeof(Op::GetByValue)); } i64 asm_slow_path_get_by_value_with_this(VM* vm, u32 pc, Op::GetByValueWithThis const* instruction) { auto property_key_value = vm->get(instruction->property()); auto object = ASM_TRY(*vm, pc, vm->get(instruction->base()).to_object(*vm)); auto property_key = ASM_TRY(*vm, pc, property_key_value.to_property_key(*vm)); auto value = ASM_TRY(*vm, pc, object->internal_get(property_key, vm->get(instruction->this_value()))); vm->set(instruction->dst(), value); return static_cast(pc + sizeof(Op::GetByValueWithThis)); } i64 asm_slow_path_get_length(VM* vm, u32 pc, Op::GetLength const* instruction) { auto base_value = vm->get(instruction->base()); auto& executable = vm->current_executable(); auto& cache = executable.property_lookup_caches[instruction->cache()]; auto value = ASM_TRY(*vm, pc, get_by_id(*vm, [&] { return vm->get_identifier(instruction->base_identifier()); }, [&] -> PropertyKey const& { return executable.get_property_key(*executable.length_identifier); }, base_value, base_value, cache)); vm->set(instruction->dst(), value); return static_cast(pc + sizeof(Op::GetLength)); } i64 asm_slow_path_get_length_with_this(VM* vm, u32 pc, Op::GetLengthWithThis const* instruction) { auto base_value = vm->get(instruction->base()); auto this_value = vm->get(instruction->this_value()); auto& executable = vm->current_executable(); auto& cache = executable.property_lookup_caches[instruction->cache()]; auto value = ASM_TRY(*vm, pc, get_by_id(*vm, [] { return Optional {}; }, [&] -> PropertyKey const& { return executable.get_property_key(*executable.length_identifier); }, base_value, this_value, cache)); vm->set(instruction->dst(), value); return static_cast(pc + sizeof(Op::GetLengthWithThis)); } i64 asm_slow_path_get_method(VM* vm, u32 pc, Op::GetMethod const* instruction) { auto const& property_key = vm->get_property_key(instruction->property()); auto method = ASM_TRY(*vm, pc, vm->get(instruction->object()).get_method(*vm, property_key)); vm->set(instruction->dst(), method ?: js_undefined()); return static_cast(pc + sizeof(Op::GetMethod)); } i64 asm_slow_path_get_iterator(VM* vm, u32 pc, Op::GetIterator const* instruction) { auto iterator_record = ASM_TRY(*vm, pc, get_iterator_impl(*vm, vm->get(instruction->iterable()), instruction->hint())); vm->set(instruction->dst_iterator_object(), iterator_record.iterator); vm->set(instruction->dst_iterator_next(), iterator_record.next_method); vm->set(instruction->dst_iterator_done(), Value(iterator_record.done)); return static_cast(pc + sizeof(Op::GetIterator)); } i64 asm_slow_path_get_import_meta(VM* vm, u32 pc, Op::GetImportMeta const* instruction) { vm->set(instruction->dst(), vm->get_import_meta()); return static_cast(pc + sizeof(Op::GetImportMeta)); } i64 asm_slow_path_get_new_target(VM* vm, u32 pc, Op::GetNewTarget const* instruction) { vm->set(instruction->dst(), vm->get_new_target()); return static_cast(pc + sizeof(Op::GetNewTarget)); } i64 asm_slow_path_get_super_constructor(VM* vm, u32 pc, Op::GetSuperConstructor const* instruction) { auto* super_constructor = get_super_constructor(*vm); vm->set(instruction->dst(), super_constructor ? Value(super_constructor) : js_null()); return static_cast(pc + sizeof(Op::GetSuperConstructor)); } i64 asm_try_get_global_env_binding(VM* vm, u32, Op::GetGlobal const* instruction) { auto& cache = vm->current_executable().global_variable_caches[instruction->cache()]; if (!cache.has_environment_binding_index) [[unlikely]] return 1; auto& current_vm = *vm; ThrowCompletionOr result = js_undefined(); if (cache.in_module_environment) { auto module = current_vm.running_execution_context().script_or_module.get_pointer>(); if (!module) [[unlikely]] return 1; result = (*module)->environment()->get_binding_value_direct(current_vm, cache.environment_binding_index); } else { result = vm->global_declarative_environment().get_binding_value_direct(current_vm, cache.environment_binding_index); } if (result.is_error()) [[unlikely]] return 1; vm->set(instruction->dst(), result.value()); return 0; } i64 asm_slow_path_get_global(VM* vm, u32 pc, Op::GetGlobal const* instruction) { auto& binding_object = vm->global_object(); auto& declarative_record = vm->global_declarative_environment(); auto& cache = vm->current_executable().global_variable_caches[instruction->cache()]; auto& shape = binding_object.shape(); if (cache.environment_serial_number == declarative_record.environment_serial_number()) { auto* entry = cache.first_entry(); if (entry && &shape == entry->shape && (!shape.is_dictionary() || shape.dictionary_generation() == entry->shape_dictionary_generation)) { auto value = binding_object.get_direct(entry->property_offset); vm->set(instruction->dst(), ASM_TRY(*vm, pc, get_cached_property_value(*vm, value, &binding_object))); return static_cast(pc + sizeof(Op::GetGlobal)); } if (cache.has_environment_binding_index) { Value value; if (cache.in_module_environment) { auto module = vm->running_execution_context().script_or_module.get_pointer>(); value = ASM_TRY(*vm, pc, (*module)->environment()->get_binding_value_direct(*vm, cache.environment_binding_index)); } else { value = ASM_TRY(*vm, pc, declarative_record.get_binding_value_direct(*vm, cache.environment_binding_index)); } vm->set(instruction->dst(), value); return static_cast(pc + sizeof(Op::GetGlobal)); } } cache.environment_serial_number = declarative_record.environment_serial_number(); auto& identifier = vm->get_identifier(instruction->identifier()); if (auto* module = vm->running_execution_context().script_or_module.get_pointer>()) { auto& module_environment = *(*module)->environment(); Optional index; if (ASM_TRY(*vm, pc, module_environment.has_binding(identifier, &index))) { if (index.has_value()) { cache.environment_binding_index = static_cast(index.value()); cache.has_environment_binding_index = true; cache.in_module_environment = true; vm->set(instruction->dst(), ASM_TRY(*vm, pc, module_environment.get_binding_value_direct(*vm, index.value()))); return static_cast(pc + sizeof(Op::GetGlobal)); } vm->set(instruction->dst(), ASM_TRY(*vm, pc, module_environment.get_binding_value(*vm, identifier, true))); return static_cast(pc + sizeof(Op::GetGlobal)); } } Optional offset; if (ASM_TRY(*vm, pc, declarative_record.has_binding(identifier, &offset))) { cache.environment_binding_index = static_cast(offset.value()); cache.has_environment_binding_index = true; cache.in_module_environment = false; vm->set(instruction->dst(), ASM_TRY(*vm, pc, declarative_record.get_binding_value(*vm, identifier, instruction->strict() == Strict::Yes))); return static_cast(pc + sizeof(Op::GetGlobal)); } if (ASM_TRY(*vm, pc, binding_object.has_property(identifier))) [[likely]] { CacheableGetPropertyMetadata cacheable_metadata; auto value = ASM_TRY(*vm, pc, binding_object.internal_get(identifier, &binding_object, &cacheable_metadata)); if (cacheable_metadata.type == CacheableGetPropertyMetadata::Type::GetOwnProperty) { cache.update(PropertyLookupCache::Entry::Type::GetOwnProperty, [&](auto& entry) { entry.shape = shape; entry.property_offset = cacheable_metadata.property_offset.value(); if (shape.is_dictionary()) entry.shape_dictionary_generation = shape.dictionary_generation(); }); } vm->set(instruction->dst(), value); return static_cast(pc + sizeof(Op::GetGlobal)); } auto completion = vm->throw_completion(ErrorType::UnknownIdentifier, identifier); return handle_asm_exception(*vm, pc, completion.value()); } i64 asm_try_set_global_env_binding(VM* vm, u32, Op::SetGlobal const* instruction) { auto& cache = vm->current_executable().global_variable_caches[instruction->cache()]; if (!cache.has_environment_binding_index) [[unlikely]] return 1; auto& current_vm = *vm; auto src = vm->get(instruction->src()); ThrowCompletionOr result; if (cache.in_module_environment) { auto module = current_vm.running_execution_context().script_or_module.get_pointer>(); if (!module) [[unlikely]] return 1; result = (*module)->environment()->set_mutable_binding_direct(current_vm, cache.environment_binding_index, src, instruction->strict() == Strict::Yes); } else { result = vm->global_declarative_environment().set_mutable_binding_direct(current_vm, cache.environment_binding_index, src, instruction->strict() == Strict::Yes); } if (result.is_error()) [[unlikely]] return 1; return 0; } i64 asm_slow_path_set_global(VM* vm, u32 pc, Op::SetGlobal const* instruction) { auto& binding_object = vm->global_object(); auto& declarative_record = vm->global_declarative_environment(); auto& cache = vm->current_executable().global_variable_caches[instruction->cache()]; auto& shape = binding_object.shape(); auto src = vm->get(instruction->src()); if (cache.environment_serial_number == declarative_record.environment_serial_number()) { auto* entry = cache.first_entry(); if (entry && &shape == entry->shape && (!shape.is_dictionary() || shape.dictionary_generation() == entry->shape_dictionary_generation)) { auto value = binding_object.get_direct(entry->property_offset); if (value.is_accessor()) ASM_TRY(*vm, pc, call(*vm, value.as_accessor().setter(), &binding_object, src)); else binding_object.put_direct(entry->property_offset, src); return static_cast(pc + sizeof(Op::SetGlobal)); } if (cache.has_environment_binding_index) { if (cache.in_module_environment) { auto module = vm->running_execution_context().script_or_module.get_pointer>(); ASM_TRY(*vm, pc, (*module)->environment()->set_mutable_binding_direct(*vm, cache.environment_binding_index, src, instruction->strict() == Strict::Yes)); } else { ASM_TRY(*vm, pc, declarative_record.set_mutable_binding_direct(*vm, cache.environment_binding_index, src, instruction->strict() == Strict::Yes)); } return static_cast(pc + sizeof(Op::SetGlobal)); } } cache.environment_serial_number = declarative_record.environment_serial_number(); auto& identifier = vm->get_identifier(instruction->identifier()); if (auto* module = vm->running_execution_context().script_or_module.get_pointer>()) { auto& module_environment = *(*module)->environment(); Optional index; if (ASM_TRY(*vm, pc, module_environment.has_binding(identifier, &index))) { if (index.has_value()) { cache.environment_binding_index = static_cast(index.value()); cache.has_environment_binding_index = true; cache.in_module_environment = true; ASM_TRY(*vm, pc, module_environment.set_mutable_binding_direct(*vm, index.value(), src, instruction->strict() == Strict::Yes)); return static_cast(pc + sizeof(Op::SetGlobal)); } ASM_TRY(*vm, pc, module_environment.set_mutable_binding(*vm, identifier, src, instruction->strict() == Strict::Yes)); return static_cast(pc + sizeof(Op::SetGlobal)); } } Optional offset; if (ASM_TRY(*vm, pc, declarative_record.has_binding(identifier, &offset))) { cache.environment_binding_index = static_cast(offset.value()); cache.has_environment_binding_index = true; cache.in_module_environment = false; ASM_TRY(*vm, pc, declarative_record.set_mutable_binding(*vm, identifier, src, instruction->strict() == Strict::Yes)); return static_cast(pc + sizeof(Op::SetGlobal)); } if (ASM_TRY(*vm, pc, binding_object.has_property(identifier))) { CacheableSetPropertyMetadata cacheable_metadata; auto success = ASM_TRY(*vm, pc, binding_object.internal_set(identifier, src, &binding_object, &cacheable_metadata)); if (!success && instruction->strict() == Strict::Yes) [[unlikely]] { auto property_or_error = binding_object.internal_get_own_property(identifier); if (!property_or_error.is_error()) { auto property = property_or_error.release_value(); if (property.has_value() && !property->writable.value_or(true)) { auto completion = vm->throw_completion(ErrorType::DescWriteNonWritable, identifier); return handle_asm_exception(*vm, pc, completion.value()); } } auto completion = vm->throw_completion(ErrorType::ObjectSetReturnedFalse); return handle_asm_exception(*vm, pc, completion.value()); } if (cacheable_metadata.type == CacheableSetPropertyMetadata::Type::ChangeOwnProperty) { cache.update(PropertyLookupCache::Entry::Type::ChangeOwnProperty, [&](auto& entry) { entry.shape = shape; entry.property_offset = cacheable_metadata.property_offset.value(); if (shape.is_dictionary()) entry.shape_dictionary_generation = shape.dictionary_generation(); }); } return static_cast(pc + sizeof(Op::SetGlobal)); } auto reference = ASM_TRY(*vm, pc, vm->resolve_binding(identifier, instruction->strict(), &declarative_record)); ASM_TRY(*vm, pc, reference.put_value(*vm, src)); return static_cast(pc + sizeof(Op::SetGlobal)); } i64 asm_slow_path_concat_string(VM* vm, u32 pc, Op::ConcatString const* instruction) { auto string = ASM_TRY(*vm, pc, vm->get(instruction->src()).to_primitive_string(*vm)); vm->set(instruction->dst(), PrimitiveString::create(*vm, vm->get(instruction->dst()).as_string(), string)); return static_cast(pc + sizeof(Op::ConcatString)); } i64 asm_slow_path_copy_object_excluding_properties(VM* vm, u32 pc, Op::CopyObjectExcludingProperties const* instruction) { auto& realm = *vm->current_realm(); auto from_object = vm->get(instruction->from_object()); auto to_object = Object::create(realm, realm.intrinsics().object_prototype()); GC::ConservativeHashTable excluded_names; auto excluded_names_operands = instruction->excluded_names(); for (size_t i = 0; i < instruction->excluded_names_count(); ++i) excluded_names.set(ASM_TRY(*vm, pc, vm->get(excluded_names_operands[i]).to_property_key(*vm))); ASM_TRY(*vm, pc, to_object->copy_data_properties(*vm, from_object, excluded_names)); vm->set(instruction->dst(), to_object); return static_cast(pc + instruction->length()); } i64 asm_slow_path_exp(VM* vm, u32 pc, Op::Exp const* instruction) { auto result = ASM_TRY(*vm, pc, exp(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs()))); vm->set(instruction->dst(), result); return static_cast(pc + sizeof(Op::Exp)); } i64 asm_slow_path_import_call(VM* vm, u32 pc, Op::ImportCall const* instruction) { auto specifier = vm->get(instruction->specifier()); auto options_value = vm->get(instruction->options()); vm->set(instruction->dst(), ASM_TRY(*vm, pc, perform_import_call(*vm, specifier, options_value))); return static_cast(pc + sizeof(Op::ImportCall)); } i64 asm_slow_path_new_class(VM* vm, u32 pc, Op::NewClass const* instruction) { Value super_class; if (instruction->super_class().has_value()) super_class = vm->get(instruction->super_class().value()); GC::RootVector element_keys; element_keys.ensure_capacity(instruction->element_keys_count()); for (size_t i = 0; i < instruction->element_keys_count(); ++i) { Value element_key; if (instruction->element_keys()[i].has_value()) element_key = vm->get(instruction->element_keys()[i].value()); element_keys.unchecked_append(element_key); } auto& running_execution_context = vm->running_execution_context(); auto* class_environment = &as(vm->get(instruction->class_environment()).as_cell()); auto& outer_environment = running_execution_context.lexical_environment; auto const& blueprint = vm->current_executable().class_blueprints[instruction->class_blueprint_index()]; Optional binding_name; Utf16FlyString class_name; if (!blueprint.has_name && instruction->lhs_name().has_value()) { class_name = vm->get_identifier(instruction->lhs_name().value()); } else { class_name = blueprint.name; binding_name = class_name; } auto* retval = ASM_TRY(*vm, pc, construct_class(*vm, blueprint, vm->current_executable(), class_environment, outer_environment, super_class, element_keys, binding_name, class_name)); vm->set(instruction->dst(), retval); return static_cast(pc + instruction->length()); } static COLD Completion throw_type_error_for_asm_callee(VM& vm, Value callee, StringView callee_type, Optional const expression_string) { if (expression_string.has_value()) return vm.throw_completion(ErrorType::IsNotAEvaluatedFrom, callee, callee_type, vm.current_executable().get_string(*expression_string)); return vm.throw_completion(ErrorType::IsNotA, callee, callee_type); } static ThrowCompletionOr throw_if_needed_for_asm_call(VM& vm, Value callee, Op::CallType call_type, Optional const expression_string) { if ((call_type == Op::CallType::Call || call_type == Op::CallType::DirectEval) && !callee.is_function()) [[unlikely]] return throw_type_error_for_asm_callee(vm, callee, "function"sv, expression_string); if (call_type == Op::CallType::Construct && !callee.is_constructor()) [[unlikely]] return throw_type_error_for_asm_callee(vm, callee, "constructor"sv, expression_string); return {}; } NEVER_INLINE static ThrowCompletionOr execute_asm_call( Op::CallType call_type, VM& vm, Value callee, Value this_value, ReadonlySpan arguments, Operand dst, Optional const expression_string, Strict strict) { TRY(throw_if_needed_for_asm_call(vm, callee, call_type, expression_string)); auto& function = callee.as_function(); size_t registers_and_locals_count = 0; ReadonlySpan constants; size_t argument_count = arguments.size(); function.get_stack_frame_info(registers_and_locals_count, constants, argument_count); auto& stack = vm.interpreter_stack(); auto* stack_mark = stack.top(); auto* callee_context = stack.allocate(registers_and_locals_count, constants, max(arguments.size(), argument_count)); if (!callee_context) [[unlikely]] return vm.throw_completion(ErrorType::CallStackSizeExceeded); ScopeGuard deallocate_guard = [&stack, stack_mark] { if (stack.top() > stack_mark) stack.deallocate(stack_mark); }; auto* callee_context_argument_values = callee_context->arguments_data(); auto const callee_context_argument_count = callee_context->argument_count; auto const insn_argument_count = arguments.size(); for (size_t i = 0; i < insn_argument_count; ++i) callee_context_argument_values[i] = vm.get(arguments.data()[i]); for (size_t i = insn_argument_count; i < callee_context_argument_count; ++i) callee_context_argument_values[i] = js_undefined(); callee_context->passed_argument_count = insn_argument_count; Value retval; if (call_type == Op::CallType::DirectEval) { if (callee == vm.realm().intrinsics().eval_function()) { retval = TRY(perform_eval(vm, callee_context->argument_count > 0 ? callee_context->arguments_data()[0] : js_undefined(), strict == Strict::Yes ? CallerMode::Strict : CallerMode::NonStrict, EvalMode::Direct)); } else { retval = TRY(function.internal_call(*callee_context, this_value)); } } else if (call_type == Op::CallType::Construct) { retval = TRY(function.internal_construct(*callee_context, function)); } else { retval = TRY(function.internal_call(*callee_context, this_value)); } vm.set(dst, retval); return {}; } i64 asm_slow_path_call(VM* vm, u32 pc, Op::Call const* instruction) { ASM_TRY(*vm, pc, execute_asm_call(Op::CallType::Call, *vm, vm->get(instruction->callee()), vm->get(instruction->this_value()), instruction->arguments(), instruction->dst(), instruction->expression_string(), instruction->strict())); return static_cast(pc + instruction->length()); } static ThrowCompletionOr call_direct_eval( VM& vm, Value callee, Value this_value, ReadonlySpan arguments, Operand dst, Optional const expression_string, Strict strict) { TRY(throw_if_needed_for_asm_call(vm, callee, Op::CallType::DirectEval, expression_string)); auto& function = callee.as_function(); size_t registers_and_locals_count = 0; ReadonlySpan constants; size_t argument_count = arguments.size(); function.get_stack_frame_info(registers_and_locals_count, constants, argument_count); auto& stack = vm.interpreter_stack(); auto* stack_mark = stack.top(); auto* callee_context = stack.allocate(registers_and_locals_count, constants, max(arguments.size(), argument_count)); if (!callee_context) [[unlikely]] return vm.throw_completion(ErrorType::CallStackSizeExceeded); ScopeGuard deallocate_guard = [&stack, stack_mark] { stack.deallocate(stack_mark); }; auto* callee_context_argument_values = callee_context->arguments_data(); auto const callee_context_argument_count = callee_context->argument_count; auto const insn_argument_count = arguments.size(); for (size_t i = 0; i < insn_argument_count; ++i) callee_context_argument_values[i] = vm.get(arguments.data()[i]); for (size_t i = insn_argument_count; i < callee_context_argument_count; ++i) callee_context_argument_values[i] = js_undefined(); callee_context->passed_argument_count = insn_argument_count; Value retval; if (callee == vm.realm().intrinsics().eval_function()) { retval = TRY(perform_eval(vm, callee_context->argument_count > 0 ? callee_context->arguments_data()[0] : js_undefined(), strict == Strict::Yes ? CallerMode::Strict : CallerMode::NonStrict, EvalMode::Direct)); } else { retval = TRY(function.internal_call(*callee_context, this_value)); } vm.set(dst, retval); return {}; } i64 asm_slow_path_call_direct_eval(VM* vm, u32 pc, Op::CallDirectEval const* instruction) { ASM_TRY(*vm, pc, call_direct_eval(*vm, vm->get(instruction->callee()), vm->get(instruction->this_value()), instruction->arguments(), instruction->dst(), instruction->expression_string(), instruction->strict())); return static_cast(pc + instruction->length()); } static ThrowCompletionOr call_with_argument_array( Op::CallType call_type, VM& vm, Value callee, Value this_value, Value arguments, Operand dst, Optional const expression_string, Strict strict) { TRY(throw_if_needed_for_asm_call(vm, callee, call_type, expression_string)); auto& function = callee.as_function(); auto& argument_array = arguments.as_array_exotic_object(); auto argument_array_length = argument_array.indexed_array_like_size(); size_t argument_count = argument_array_length; size_t registers_and_locals_count = 0; ReadonlySpan constants; function.get_stack_frame_info(registers_and_locals_count, constants, argument_count); auto& stack = vm.interpreter_stack(); auto* stack_mark = stack.top(); auto* callee_context = stack.allocate(registers_and_locals_count, constants, max(argument_array_length, argument_count)); if (!callee_context) [[unlikely]] return vm.throw_completion(ErrorType::CallStackSizeExceeded); ScopeGuard deallocate_guard = [&stack, stack_mark] { if (stack.top() > stack_mark) stack.deallocate(stack_mark); }; auto* callee_context_argument_values = callee_context->arguments_data(); auto const callee_context_argument_count = callee_context->argument_count; auto const insn_argument_count = argument_array_length; for (size_t i = 0; i < insn_argument_count; ++i) { if (auto maybe_value = argument_array.indexed_get(i); maybe_value.has_value()) callee_context_argument_values[i] = maybe_value.release_value().value; else callee_context_argument_values[i] = js_undefined(); } for (size_t i = insn_argument_count; i < callee_context_argument_count; ++i) callee_context_argument_values[i] = js_undefined(); callee_context->passed_argument_count = insn_argument_count; Value retval; if (call_type == Op::CallType::DirectEval && callee == vm.realm().intrinsics().eval_function()) { retval = TRY(perform_eval(vm, callee_context->argument_count > 0 ? callee_context->arguments_data()[0] : js_undefined(), strict == Strict::Yes ? CallerMode::Strict : CallerMode::NonStrict, EvalMode::Direct)); } else if (call_type == Op::CallType::Construct) { retval = TRY(function.internal_construct(*callee_context, function)); } else { retval = TRY(function.internal_call(*callee_context, this_value)); } vm.set(dst, retval); return {}; } i64 asm_slow_path_call_with_argument_array(VM* vm, u32 pc, Op::CallWithArgumentArray const* instruction) { ASM_TRY(*vm, pc, call_with_argument_array(Op::CallType::Call, *vm, vm->get(instruction->callee()), vm->get(instruction->this_value()), vm->get(instruction->arguments()), instruction->dst(), instruction->expression_string(), instruction->strict())); return static_cast(pc + sizeof(Op::CallWithArgumentArray)); } i64 asm_slow_path_call_direct_eval_with_argument_array(VM* vm, u32 pc, Op::CallDirectEvalWithArgumentArray const* instruction) { ASM_TRY(*vm, pc, call_with_argument_array(Op::CallType::DirectEval, *vm, vm->get(instruction->callee()), vm->get(instruction->this_value()), vm->get(instruction->arguments()), instruction->dst(), instruction->expression_string(), instruction->strict())); return static_cast(pc + sizeof(Op::CallDirectEvalWithArgumentArray)); } i64 asm_slow_path_get_object_property_iterator(VM* vm, u32 pc, Op::GetObjectPropertyIterator const* instruction) { auto* cache = &vm->current_executable().object_property_iterator_caches[instruction->cache()]; vm->set(instruction->dst_iterator(), ASM_TRY(*vm, pc, asm_get_object_property_iterator(*vm, vm->get(instruction->object()), cache))); return static_cast(pc + sizeof(Op::GetObjectPropertyIterator)); } i64 asm_slow_path_object_property_iterator_next(VM* vm, u32 pc, Op::ObjectPropertyIteratorNext const* instruction) { auto& iterator = static_cast(vm->get(instruction->iterator_object()).as_object()); Value value; bool done = false; ASM_TRY(*vm, pc, iterator.next(*vm, done, value)); vm->set(instruction->dst_done(), Value(done)); if (!done) vm->set(instruction->dst_value(), value); return static_cast(pc + sizeof(Op::ObjectPropertyIteratorNext)); } i64 asm_slow_path_iterator_close(VM* vm, u32 pc, Op::IteratorClose const* instruction) { auto& iterator_object = vm->get(instruction->iterator_object()).as_object(); auto iterator_next_method = vm->get(instruction->iterator_next()); auto iterator_done_property = vm->get(instruction->iterator_done()).as_bool(); IteratorRecordImpl iterator_record { .done = iterator_done_property, .iterator = iterator_object, .next_method = iterator_next_method }; ASM_TRY(*vm, pc, iterator_close(*vm, iterator_record, Completion { instruction->completion_type(), vm->get(instruction->completion_value()) })); return static_cast(pc + sizeof(Op::IteratorClose)); } i64 asm_slow_path_iterator_next(VM* vm, u32 pc, Op::IteratorNext const* instruction) { auto& iterator_object = vm->get(instruction->iterator_object()).as_object(); auto iterator_next_method = vm->get(instruction->iterator_next()); auto iterator_done_property = vm->get(instruction->iterator_done()).as_bool(); IteratorRecordImpl iterator_record { .done = iterator_done_property, .iterator = iterator_object, .next_method = iterator_next_method }; auto result = iterator_next(*vm, iterator_record); if (iterator_record.done) vm->set(instruction->iterator_done(), Value(true)); vm->set(instruction->dst(), ASM_TRY(*vm, pc, result)); return static_cast(pc + sizeof(Op::IteratorNext)); } i64 asm_slow_path_iterator_next_unpack(VM* vm, u32 pc, Op::IteratorNextUnpack const* instruction) { auto& iterator_object = vm->get(instruction->iterator_object()).as_object(); auto iterator_next_method = vm->get(instruction->iterator_next()); auto iterator_done_property = vm->get(instruction->iterator_done()).as_bool(); IteratorRecordImpl iterator_record { .done = iterator_done_property, .iterator = iterator_object, .next_method = iterator_next_method }; auto iteration_result_or_done_or_error = iterator_step(*vm, iterator_record); if (iterator_record.done) vm->set(instruction->iterator_done(), Value(true)); auto iteration_result_or_done = ASM_TRY(*vm, pc, iteration_result_or_done_or_error); if (iteration_result_or_done.has()) { vm->set(instruction->dst_done(), Value(true)); return static_cast(pc + sizeof(Op::IteratorNextUnpack)); } auto& iteration_result = iteration_result_or_done.get(); vm->set(instruction->dst_done(), ASM_TRY(*vm, pc, iteration_result.done)); auto value = move(iteration_result.value); if (value.is_throw_completion()) vm->set(instruction->iterator_done(), Value(true)); vm->set(instruction->dst_value(), ASM_TRY(*vm, pc, value)); return static_cast(pc + sizeof(Op::IteratorNextUnpack)); } i64 asm_slow_path_iterator_to_array(VM* vm, u32 pc, Op::IteratorToArray const* instruction) { IteratorRecordImpl iterator_record { .done = vm->get(instruction->iterator_done_property()).as_bool(), .iterator = vm->get(instruction->iterator_object()).as_object(), .next_method = vm->get(instruction->iterator_next_method()) }; auto array = MUST(JS::Array::create(*vm->current_realm(), 0)); size_t index = 0; while (true) { auto value_or_error = iterator_step_value(*vm, iterator_record); if (iterator_record.done) vm->set(instruction->iterator_done_property(), Value(true)); auto value = ASM_TRY(*vm, pc, value_or_error); if (!value.has_value()) { vm->set(instruction->dst(), array); return static_cast(pc + sizeof(Op::IteratorToArray)); } MUST(array->create_data_property_or_throw(index, value.release_value())); ++index; } } #define JS_DEFINE_UNARY_BUILTIN_CALL_SLOW_PATH(name, snake_case_name, implementation) \ i64 asm_slow_path_call_builtin_##snake_case_name(VM* vm, u32 pc, Op::CallBuiltin##name const* instruction) \ { \ Operand arguments[] { instruction->argument() }; \ auto callee = vm->get(instruction->callee()); \ if (callee.is_function() && callee.as_function().builtin() == Builtin::name) { \ vm->set(instruction->dst(), ASM_TRY(*vm, pc, implementation(*vm, vm->get(instruction->argument())))); \ return static_cast(pc + sizeof(Op::CallBuiltin##name)); \ } \ ASM_TRY(*vm, pc, execute_asm_call(Op::CallType::Call, *vm, callee, vm->get(instruction->this_value()), arguments, instruction->dst(), instruction->expression_string(), instruction->strict())); \ return static_cast(pc + sizeof(Op::CallBuiltin##name)); \ } #define JS_DEFINE_BINARY_BUILTIN_CALL_SLOW_PATH(name, snake_case_name, implementation) \ i64 asm_slow_path_call_builtin_##snake_case_name(VM* vm, u32 pc, Op::CallBuiltin##name const* instruction) \ { \ Operand arguments[] { instruction->argument0(), instruction->argument1() }; \ auto callee = vm->get(instruction->callee()); \ if (callee.is_function() && callee.as_function().builtin() == Builtin::name) { \ vm->set(instruction->dst(), ASM_TRY(*vm, pc, implementation(*vm, vm->get(instruction->argument0()), vm->get(instruction->argument1())))); \ return static_cast(pc + sizeof(Op::CallBuiltin##name)); \ } \ ASM_TRY(*vm, pc, execute_asm_call(Op::CallType::Call, *vm, callee, vm->get(instruction->this_value()), arguments, instruction->dst(), instruction->expression_string(), instruction->strict())); \ return static_cast(pc + sizeof(Op::CallBuiltin##name)); \ } #define JS_DEFINE_NULLARY_BUILTIN_CALL_SLOW_PATH(name, snake_case_name, implementation) \ i64 asm_slow_path_call_builtin_##snake_case_name(VM* vm, u32 pc, Op::CallBuiltin##name const* instruction) \ { \ auto callee = vm->get(instruction->callee()); \ if (callee.is_function() && callee.as_function().builtin() == Builtin::name) { \ vm->set(instruction->dst(), implementation()); \ return static_cast(pc + sizeof(Op::CallBuiltin##name)); \ } \ ASM_TRY(*vm, pc, execute_asm_call(Op::CallType::Call, *vm, callee, vm->get(instruction->this_value()), {}, instruction->dst(), instruction->expression_string(), instruction->strict())); \ return static_cast(pc + sizeof(Op::CallBuiltin##name)); \ } #define JS_DEFINE_GENERIC_BUILTIN_CALL_SLOW_PATH(name, snake_case_name, ...) \ i64 asm_slow_path_call_builtin_##snake_case_name(VM* vm, u32 pc, Op::CallBuiltin##name const* instruction) \ { \ ASM_TRY(*vm, pc, execute_asm_call(Op::CallType::Call, *vm, vm->get(instruction->callee()), vm->get(instruction->this_value()), {}, instruction->dst(), instruction->expression_string(), instruction->strict())); \ return static_cast(pc + sizeof(Op::CallBuiltin##name)); \ } #define JS_DEFINE_UNARY_GENERIC_BUILTIN_CALL_SLOW_PATH(name, snake_case_name, ...) \ i64 asm_slow_path_call_builtin_##snake_case_name(VM* vm, u32 pc, Op::CallBuiltin##name const* instruction) \ { \ Operand arguments[] { instruction->argument() }; \ ASM_TRY(*vm, pc, execute_asm_call(Op::CallType::Call, *vm, vm->get(instruction->callee()), vm->get(instruction->this_value()), arguments, instruction->dst(), instruction->expression_string(), instruction->strict())); \ return static_cast(pc + sizeof(Op::CallBuiltin##name)); \ } #define JS_DEFINE_BINARY_GENERIC_BUILTIN_CALL_SLOW_PATH(name, snake_case_name, ...) \ i64 asm_slow_path_call_builtin_##snake_case_name(VM* vm, u32 pc, Op::CallBuiltin##name const* instruction) \ { \ Operand arguments[] { instruction->argument0(), instruction->argument1() }; \ ASM_TRY(*vm, pc, execute_asm_call(Op::CallType::Call, *vm, vm->get(instruction->callee()), vm->get(instruction->this_value()), arguments, instruction->dst(), instruction->expression_string(), instruction->strict())); \ return static_cast(pc + sizeof(Op::CallBuiltin##name)); \ } JS_DEFINE_UNARY_BUILTIN_CALL_SLOW_PATH(MathAbs, math_abs, MathObject::abs_impl) JS_DEFINE_UNARY_BUILTIN_CALL_SLOW_PATH(MathLog, math_log, MathObject::log_impl) JS_DEFINE_BINARY_BUILTIN_CALL_SLOW_PATH(MathPow, math_pow, MathObject::pow_impl) JS_DEFINE_UNARY_BUILTIN_CALL_SLOW_PATH(MathExp, math_exp, MathObject::exp_impl) JS_DEFINE_UNARY_BUILTIN_CALL_SLOW_PATH(MathCeil, math_ceil, MathObject::ceil_impl) JS_DEFINE_UNARY_BUILTIN_CALL_SLOW_PATH(MathFloor, math_floor, MathObject::floor_impl) JS_DEFINE_BINARY_BUILTIN_CALL_SLOW_PATH(MathImul, math_imul, MathObject::imul_impl) JS_DEFINE_NULLARY_BUILTIN_CALL_SLOW_PATH(MathRandom, math_random, MathObject::random_impl) JS_DEFINE_UNARY_BUILTIN_CALL_SLOW_PATH(MathRound, math_round, MathObject::round_impl) JS_DEFINE_UNARY_BUILTIN_CALL_SLOW_PATH(MathSqrt, math_sqrt, MathObject::sqrt_impl) JS_DEFINE_UNARY_BUILTIN_CALL_SLOW_PATH(MathSin, math_sin, MathObject::sin_impl) JS_DEFINE_UNARY_BUILTIN_CALL_SLOW_PATH(MathCos, math_cos, MathObject::cos_impl) JS_DEFINE_UNARY_BUILTIN_CALL_SLOW_PATH(MathTan, math_tan, MathObject::tan_impl) JS_DEFINE_UNARY_GENERIC_BUILTIN_CALL_SLOW_PATH(RegExpPrototypeExec, regexp_prototype_exec) JS_DEFINE_BINARY_GENERIC_BUILTIN_CALL_SLOW_PATH(RegExpPrototypeReplace, regexp_prototype_replace) JS_DEFINE_BINARY_GENERIC_BUILTIN_CALL_SLOW_PATH(RegExpPrototypeSplit, regexp_prototype_split) JS_DEFINE_UNARY_GENERIC_BUILTIN_CALL_SLOW_PATH(OrdinaryHasInstance, ordinary_has_instance) JS_DEFINE_GENERIC_BUILTIN_CALL_SLOW_PATH(ArrayIteratorPrototypeNext, array_iterator_prototype_next) JS_DEFINE_GENERIC_BUILTIN_CALL_SLOW_PATH(MapIteratorPrototypeNext, map_iterator_prototype_next) JS_DEFINE_GENERIC_BUILTIN_CALL_SLOW_PATH(SetIteratorPrototypeNext, set_iterator_prototype_next) JS_DEFINE_GENERIC_BUILTIN_CALL_SLOW_PATH(StringIteratorPrototypeNext, string_iterator_prototype_next) JS_DEFINE_UNARY_BUILTIN_CALL_SLOW_PATH(StringFromCharCode, string_from_char_code, StringConstructor::from_char_code_impl) JS_DEFINE_UNARY_GENERIC_BUILTIN_CALL_SLOW_PATH(StringPrototypeCharCodeAt, string_prototype_char_code_at) JS_DEFINE_UNARY_GENERIC_BUILTIN_CALL_SLOW_PATH(StringPrototypeCharAt, string_prototype_char_at) #undef JS_DEFINE_BINARY_GENERIC_BUILTIN_CALL_SLOW_PATH #undef JS_DEFINE_UNARY_GENERIC_BUILTIN_CALL_SLOW_PATH #undef JS_DEFINE_GENERIC_BUILTIN_CALL_SLOW_PATH #undef JS_DEFINE_NULLARY_BUILTIN_CALL_SLOW_PATH #undef JS_DEFINE_BINARY_BUILTIN_CALL_SLOW_PATH #undef JS_DEFINE_UNARY_BUILTIN_CALL_SLOW_PATH i64 asm_slow_path_call_construct(VM* vm, u32 pc, Op::CallConstruct const* instruction) { ASM_TRY(*vm, pc, execute_asm_call(Op::CallType::Construct, *vm, vm->get(instruction->callee()), js_undefined(), instruction->arguments(), instruction->dst(), instruction->expression_string(), instruction->strict())); return static_cast(pc + instruction->length()); } i64 asm_slow_path_call_construct_with_argument_array(VM* vm, u32 pc, Op::CallConstructWithArgumentArray const* instruction) { ASM_TRY(*vm, pc, call_with_argument_array(Op::CallType::Construct, *vm, vm->get(instruction->callee()), js_undefined(), vm->get(instruction->arguments()), instruction->dst(), instruction->expression_string(), instruction->strict())); return static_cast(pc + sizeof(Op::CallConstructWithArgumentArray)); } i64 asm_slow_path_super_call_with_argument_array(VM* vm, u32 pc, Op::SuperCallWithArgumentArray const* instruction) { auto new_target = vm->get_new_target(); VERIFY(new_target.is_object()); auto super_constructor = vm->get(instruction->super_constructor()); if (!super_constructor.is_constructor()) [[unlikely]] { vm->running_execution_context().program_counter = pc; auto completion = vm->throw_completion(ErrorType::NotAConstructor, "Super constructor"); return handle_asm_exception(*vm, pc, completion.value()); } auto& function = super_constructor.as_function(); auto& argument_array = vm->get(instruction->arguments()).as_array_exotic_object(); size_t argument_array_length = 0; if (instruction->is_synthetic()) { argument_array_length = MUST(length_of_array_like(*vm, argument_array)); } else { argument_array_length = argument_array.indexed_array_like_size(); } size_t argument_count = argument_array_length; size_t registers_and_locals_count = 0; ReadonlySpan constants; function.get_stack_frame_info(registers_and_locals_count, constants, argument_count); auto& stack = vm->interpreter_stack(); auto* stack_mark = stack.top(); auto* callee_context = stack.allocate(registers_and_locals_count, constants, max(argument_array_length, argument_count)); if (!callee_context) [[unlikely]] { vm->running_execution_context().program_counter = pc; auto completion = vm->throw_completion(ErrorType::CallStackSizeExceeded); return handle_asm_exception(*vm, pc, completion.value()); } ScopeGuard deallocate_guard = [&stack, stack_mark] { if (stack.top() > stack_mark) stack.deallocate(stack_mark); }; auto* callee_context_argument_values = callee_context->arguments_data(); auto const callee_context_argument_count = callee_context->argument_count; auto const insn_argument_count = argument_array_length; if (instruction->is_synthetic()) { for (size_t i = 0; i < insn_argument_count; ++i) callee_context_argument_values[i] = argument_array.get_without_side_effects(PropertyKey { i }); } else { for (size_t i = 0; i < insn_argument_count; ++i) { if (auto maybe_value = argument_array.indexed_get(i); maybe_value.has_value()) callee_context_argument_values[i] = maybe_value.release_value().value; else callee_context_argument_values[i] = js_undefined(); } } for (size_t i = insn_argument_count; i < callee_context_argument_count; ++i) callee_context_argument_values[i] = js_undefined(); callee_context->passed_argument_count = insn_argument_count; auto result = ASM_TRY(*vm, pc, function.internal_construct(*callee_context, new_target.as_function())); auto& this_environment = as(*get_this_environment(*vm)); ASM_TRY(*vm, pc, this_environment.bind_this_value(*vm, result)); auto& f = as(this_environment.function_object()); ASM_TRY(*vm, pc, result->initialize_instance_elements(f)); vm->set(instruction->dst(), result); return static_cast(pc + sizeof(Op::SuperCallWithArgumentArray)); } i64 asm_slow_path_new_object(VM* vm, u32 pc, Op::NewObject const* instruction) { auto& realm = *vm->current_realm(); if (instruction->cache() != NumericLimits::max()) { auto& cache = vm->current_executable().object_shape_caches[instruction->cache()]; auto cached_shape = cache.shape.ptr(); if (cached_shape) { vm->set(instruction->dst(), Object::create_with_premade_shape(*cached_shape)); return static_cast(pc + sizeof(Op::NewObject)); } } vm->set(instruction->dst(), Object::create(realm, realm.intrinsics().object_prototype())); return static_cast(pc + sizeof(Op::NewObject)); } i64 asm_slow_path_new_object_with_no_prototype(VM* vm, u32 pc, Op::NewObjectWithNoPrototype const* instruction) { auto& realm = *vm->current_realm(); vm->set(instruction->dst(), Object::create(realm, nullptr)); return static_cast(pc + sizeof(Op::NewObjectWithNoPrototype)); } i64 asm_slow_path_cache_object_shape(VM* vm, u32 pc, Op::CacheObjectShape const* instruction) { auto& cache = vm->current_executable().object_shape_caches[instruction->cache()]; if (!cache.shape) { auto& object = vm->get(instruction->object()).as_object(); if (!object.shape().is_dictionary()) cache.shape = &object.shape(); } return static_cast(pc + sizeof(Op::CacheObjectShape)); } i64 asm_slow_path_init_object_literal_property(VM* vm, u32 pc, Op::InitObjectLiteralProperty const* instruction) { auto& object = vm->get(instruction->object()).as_object(); auto value = vm->get(instruction->src()); auto& cache = vm->current_executable().object_shape_caches[instruction->shape_cache_index()]; auto cached_shape = cache.shape.ptr(); if (cached_shape && &object.shape() == cached_shape && instruction->property_slot() < cache.property_offsets.size()) { object.put_direct(cache.property_offsets[instruction->property_slot()], value); return static_cast(pc + sizeof(Op::InitObjectLiteralProperty)); } auto const& property_key = vm->current_executable().get_property_key(instruction->property()); object.define_direct_property(property_key, value, JS::Attribute::Enumerable | JS::Attribute::Writable | JS::Attribute::Configurable); if (!object.shape().is_dictionary()) { auto metadata = object.shape().lookup(property_key); if (metadata.has_value()) { if (instruction->property_slot() >= cache.property_offsets.size()) cache.property_offsets.resize(instruction->property_slot() + 1); cache.property_offsets[instruction->property_slot()] = metadata->offset; } } return static_cast(pc + sizeof(Op::InitObjectLiteralProperty)); } i64 asm_slow_path_new_array(VM* vm, u32 pc, Op::NewArray const* instruction) { auto array = MUST(JS::Array::create(vm->realm(), instruction->element_count())); for (size_t i = 0; i < instruction->element_count(); ++i) array->indexed_put(i, vm->get(instruction->elements()[i])); vm->set(instruction->dst(), array); return static_cast(pc + instruction->length()); } i64 asm_slow_path_new_primitive_array(VM* vm, u32 pc, Op::NewPrimitiveArray const* instruction) { auto array = MUST(JS::Array::create(vm->realm(), instruction->element_count())); for (size_t i = 0; i < instruction->element_count(); ++i) array->indexed_put(i, instruction->elements()[i]); vm->set(instruction->dst(), array); return static_cast(pc + instruction->length()); } i64 asm_slow_path_new_regexp(VM* vm, u32 pc, Op::NewRegExp const* instruction) { auto& realm = *vm->current_realm(); auto regexp_object = RegExpObject::create( realm, vm->current_executable().get_string(instruction->source_index()), vm->current_executable().get_string(instruction->flags_index())); regexp_object->set_realm(realm); regexp_object->set_legacy_features_enabled(true); vm->set(instruction->dst(), regexp_object); return static_cast(pc + sizeof(Op::NewRegExp)); } i64 asm_slow_path_new_reference_error(VM* vm, u32 pc, Op::NewReferenceError const* instruction) { auto& realm = *vm->current_realm(); vm->set(instruction->dst(), ReferenceError::create(realm, vm->current_executable().get_string(instruction->error_string()))); return static_cast(pc + sizeof(Op::NewReferenceError)); } i64 asm_slow_path_new_type_error(VM* vm, u32 pc, Op::NewTypeError const* instruction) { auto& realm = *vm->current_realm(); vm->set(instruction->dst(), TypeError::create(realm, vm->current_executable().get_string(instruction->error_string()))); return static_cast(pc + sizeof(Op::NewTypeError)); } i64 asm_slow_path_bitwise_xor(VM* vm, u32 pc, Op::BitwiseXor const* instruction) { vm->set(instruction->dst(), ASM_TRY(*vm, pc, bitwise_xor(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs())))); return static_cast(pc + sizeof(Op::BitwiseXor)); } i64 asm_slow_path_bitwise_and(VM* vm, u32 pc, Op::BitwiseAnd const* instruction) { vm->set(instruction->dst(), ASM_TRY(*vm, pc, bitwise_and(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs())))); return static_cast(pc + sizeof(Op::BitwiseAnd)); } i64 asm_slow_path_bitwise_or(VM* vm, u32 pc, Op::BitwiseOr const* instruction) { vm->set(instruction->dst(), ASM_TRY(*vm, pc, bitwise_or(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs())))); return static_cast(pc + sizeof(Op::BitwiseOr)); } i64 asm_slow_path_left_shift(VM* vm, u32 pc, Op::LeftShift const* instruction) { vm->set(instruction->dst(), ASM_TRY(*vm, pc, left_shift(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs())))); return static_cast(pc + sizeof(Op::LeftShift)); } i64 asm_slow_path_right_shift(VM* vm, u32 pc, Op::RightShift const* instruction) { vm->set(instruction->dst(), ASM_TRY(*vm, pc, right_shift(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs())))); return static_cast(pc + sizeof(Op::RightShift)); } i64 asm_slow_path_unsigned_right_shift(VM* vm, u32 pc, Op::UnsignedRightShift const* instruction) { vm->set(instruction->dst(), ASM_TRY(*vm, pc, unsigned_right_shift(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs())))); return static_cast(pc + sizeof(Op::UnsignedRightShift)); } i64 asm_slow_path_mod(VM* vm, u32 pc, Op::Mod const* instruction) { vm->set(instruction->dst(), ASM_TRY(*vm, pc, mod(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs())))); return static_cast(pc + sizeof(Op::Mod)); } static ThrowCompletionOr loosely_equals(VM& vm, Value lhs, Value rhs) { if (lhs.tag() == rhs.tag()) { if (lhs.is_int32() || lhs.is_object() || lhs.is_boolean() || lhs.is_nullish()) return lhs.encoded() == rhs.encoded(); } return TRY(is_loosely_equal(vm, lhs, rhs)); } static ThrowCompletionOr loosely_inequals(VM& vm, Value lhs, Value rhs) { return !TRY(loosely_equals(vm, lhs, rhs)); } static bool strictly_equals(Value lhs, Value rhs) { if (lhs.tag() == rhs.tag()) { if (lhs.is_int32() || lhs.is_object() || lhs.is_boolean() || lhs.is_nullish()) return lhs.encoded() == rhs.encoded(); } return is_strictly_equal(lhs, rhs); } i64 asm_slow_path_strictly_equals(VM* vm, u32 pc, Op::StrictlyEquals const* instruction) { vm->set(instruction->dst(), Value { strictly_equals(vm->get(instruction->lhs()), vm->get(instruction->rhs())) }); return static_cast(pc + sizeof(Op::StrictlyEquals)); } i64 asm_slow_path_strictly_inequals(VM* vm, u32 pc, Op::StrictlyInequals const* instruction) { vm->set(instruction->dst(), Value { !strictly_equals(vm->get(instruction->lhs()), vm->get(instruction->rhs())) }); return static_cast(pc + sizeof(Op::StrictlyInequals)); } i64 asm_slow_path_loosely_equals(VM* vm, u32 pc, Op::LooselyEquals const* instruction) { vm->set(instruction->dst(), Value { ASM_TRY(*vm, pc, loosely_equals(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs()))) }); return static_cast(pc + sizeof(Op::LooselyEquals)); } i64 asm_slow_path_loosely_inequals(VM* vm, u32 pc, Op::LooselyInequals const* instruction) { vm->set(instruction->dst(), Value { ASM_TRY(*vm, pc, loosely_inequals(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs()))) }); return static_cast(pc + sizeof(Op::LooselyInequals)); } i64 asm_slow_path_unary_minus(VM* vm, u32 pc, Op::UnaryMinus const* instruction) { vm->set(instruction->dst(), ASM_TRY(*vm, pc, unary_minus(*vm, vm->get(instruction->src())))); return static_cast(pc + sizeof(Op::UnaryMinus)); } i64 asm_slow_path_to_string(VM* vm, u32 pc, Op::ToString const* instruction) { auto result = ASM_TRY(*vm, pc, vm->get(instruction->value()).to_primitive_string(*vm)); vm->set(instruction->dst(), Value { result }); return static_cast(pc + sizeof(Op::ToString)); } i64 asm_slow_path_to_primitive_with_string_hint(VM* vm, u32 pc, Op::ToPrimitiveWithStringHint const* instruction) { auto result = ASM_TRY(*vm, pc, vm->get(instruction->value()).to_primitive(*vm, Value::PreferredType::String)); vm->set(instruction->dst(), result); return static_cast(pc + sizeof(Op::ToPrimitiveWithStringHint)); } i64 asm_slow_path_to_object(VM* vm, u32 pc, Op::ToObject const* instruction) { auto result = ASM_TRY(*vm, pc, vm->get(instruction->value()).to_object(*vm)); vm->set(instruction->dst(), result); return static_cast(pc + sizeof(Op::ToObject)); } i64 asm_slow_path_to_length(VM* vm, u32 pc, Op::ToLength const* instruction) { auto result = ASM_TRY(*vm, pc, vm->get(instruction->value()).to_length(*vm)); vm->set(instruction->dst(), Value { result }); return static_cast(pc + sizeof(Op::ToLength)); } i64 asm_slow_path_typeof(VM* vm, u32 pc, Op::Typeof const* instruction) { vm->set(instruction->dst(), vm->get(instruction->src()).typeof_(*vm)); return static_cast(pc + sizeof(Op::Typeof)); } i64 asm_slow_path_postfix_decrement(VM* vm, u32 pc, Op::PostfixDecrement const* instruction) { auto old_value = ASM_TRY(*vm, pc, vm->get(instruction->src()).to_numeric(*vm)); vm->set(instruction->dst(), old_value); if (old_value.is_number()) vm->set(instruction->src(), Value(old_value.as_double() - 1)); else vm->set(instruction->src(), BigInt::create(*vm, old_value.as_bigint().big_integer().minus(Crypto::SignedBigInteger { 1 }))); return static_cast(pc + sizeof(Op::PostfixDecrement)); } i64 asm_slow_path_to_int32(VM* vm, u32 pc, Op::ToInt32 const* instruction) { vm->set(instruction->dst(), Value(ASM_TRY(*vm, pc, vm->get(instruction->value()).to_i32(*vm)))); return static_cast(pc + sizeof(Op::ToInt32)); } i64 asm_slow_path_put_by_value(VM* vm, u32 pc, Op::PutByValue const* instruction) { auto value = vm->get(instruction->src()); auto base = vm->get(instruction->base()); Optional base_identifier; if (instruction->base_identifier().has_value()) base_identifier = vm->get_identifier(instruction->base_identifier().value()); auto property = vm->get(instruction->property()); auto property_key = ASM_TRY(*vm, pc, property.to_property_key(*vm)); ASM_TRY(*vm, pc, put_by_property_key(*vm, base, base, value, base_identifier, property_key, instruction->kind(), instruction->strict())); return static_cast(pc + sizeof(Op::PutByValue)); } i64 asm_slow_path_put_by_value_with_this(VM* vm, u32 pc, Op::PutByValueWithThis const* instruction) { auto value = vm->get(instruction->src()); auto base = vm->get(instruction->base()); auto this_value = vm->get(instruction->this_value()); auto property_key = ASM_TRY(*vm, pc, vm->get(instruction->property()).to_property_key(*vm)); ASM_TRY(*vm, pc, put_by_property_key(*vm, base, this_value, value, {}, property_key, instruction->kind(), instruction->strict())); return static_cast(pc + sizeof(Op::PutByValueWithThis)); } i64 asm_slow_path_put_by_spread(VM* vm, u32 pc, Op::PutBySpread const* instruction) { auto value = vm->get(instruction->src()); auto base = vm->get(instruction->base()); // a. Let baseObj be ? ToObject(V.[[Base]]). auto object = ASM_TRY(*vm, pc, base.to_object(*vm)); ASM_TRY(*vm, pc, object->copy_data_properties(*vm, value, {})); return static_cast(pc + sizeof(Op::PutBySpread)); } i64 asm_try_put_by_value_holey_array(VM* vm, u32, Op::PutByValue const* instruction) { auto base = vm->get(instruction->base()); if (!base.is_object()) [[unlikely]] return 1; auto property = vm->get(instruction->property()); if (!property.is_non_negative_int32()) [[unlikely]] return 1; auto& object = base.as_object(); if (!is(object)) [[unlikely]] return 1; auto& array = static_cast(object); if (array.is_proxy_target() || !array.default_prototype_chain_intact() || !array.extensible() || array.may_interfere_with_indexed_property_access() || array.indexed_storage_kind() != IndexedStorageKind::Holey) [[unlikely]] return 1; auto index = static_cast(property.as_i32()); if (index >= array.indexed_array_like_size()) [[unlikely]] return 1; array.indexed_put(index, vm->get(instruction->src())); return 0; } // Try to inline a JS-to-JS call by building the callee frame through the // shared VM::push_inline_frame() helper. Returns 0 on success (callee frame // pushed) and 1 on failure (caller should keep handling the Call itself). i64 asm_try_inline_call(VM* vm, u32 pc, Op::Call const* instruction) { auto callee = vm->get(instruction->callee()); if (!callee.is_object()) [[unlikely]] return 1; auto& callee_object = callee.as_object(); if (!is(callee_object)) [[unlikely]] return 1; auto& callee_function = static_cast(callee_object); if (!callee_function.can_inline_call()) [[unlikely]] return 1; auto* callee_context = vm->push_inline_frame( callee_function, callee_function.inline_call_executable(), instruction->arguments(), pc + instruction->length(), instruction->dst().raw(), vm->get(instruction->this_value()), nullptr, false); return callee_context ? 0 : 1; } // Fast cache-only PutById. Tries all cache entries for ChangeOwnProperty and // AddOwnProperty. Returns 0 on cache hit, 1 on miss (caller should use full slow path). i64 asm_try_put_by_id_cache(VM* vm, u32, Op::PutById const* instruction) { auto base = vm->get(instruction->base()); if (!base.is_object()) [[unlikely]] return 1; auto& object = base.as_object(); auto value = vm->get(instruction->src()); auto& cache = vm->current_executable().property_lookup_caches[instruction->cache()]; for (auto& entry : cache.entries()) { switch (entry.type) { case PropertyLookupCache::Entry::Type::ChangeOwnProperty: { auto cached_shape = entry.shape.ptr(); if (cached_shape != &object.shape()) [[unlikely]] continue; if (cached_shape->is_dictionary() && cached_shape->dictionary_generation() != entry.shape_dictionary_generation) continue; auto current = object.get_direct(entry.property_offset); if (current.is_accessor()) [[unlikely]] return 1; object.put_direct(entry.property_offset, value); return 0; } case PropertyLookupCache::Entry::Type::AddOwnProperty: { if (entry.from_shape != &object.shape()) [[unlikely]] continue; auto cached_shape = entry.shape.ptr(); if (!cached_shape) [[unlikely]] continue; if (!object.extensible()) [[unlikely]] continue; if (cached_shape->is_dictionary() && object.shape().dictionary_generation() != entry.shape_dictionary_generation) continue; auto pcv = entry.prototype_chain_validity.ptr(); if (pcv && !pcv->is_valid()) [[unlikely]] continue; object.unsafe_set_shape(*cached_shape); object.put_direct(entry.property_offset, value); return 0; } default: continue; } } return 1; } // Fast cache-only GetById. Tries all cache entries for own-property and prototype // chain lookups. On cache hit, writes the result to the dst operand and returns 0. // On miss, returns 1 (caller should use full slow path). i64 asm_try_get_by_id_cache(VM* vm, u32, Op::GetById const* instruction) { auto base = vm->get(instruction->base()); if (!base.is_object()) [[unlikely]] return 1; auto& object = base.as_object(); auto& shape = object.shape(); auto& cache = vm->current_executable().property_lookup_caches[instruction->cache()]; for (auto& entry : cache.entries()) { if (entry.type != PropertyLookupCache::Entry::Type::GetOwnProperty && entry.type != PropertyLookupCache::Entry::Type::GetPropertyInPrototypeChain) { continue; } auto cached_prototype = entry.prototype.ptr(); if (cached_prototype) { if (&shape != entry.shape) [[unlikely]] continue; if (shape.is_dictionary() && shape.dictionary_generation() != entry.shape_dictionary_generation) continue; auto pcv = entry.prototype_chain_validity.ptr(); if (!pcv || !pcv->is_valid()) [[unlikely]] continue; auto value = cached_prototype->get_direct(entry.property_offset); if (value.is_accessor()) [[unlikely]] return 1; vm->set(instruction->dst(), value); return 0; } else if (&shape == entry.shape) { if (shape.is_dictionary() && shape.dictionary_generation() != entry.shape_dictionary_generation) continue; auto value = object.get_direct(entry.property_offset); if (value.is_accessor()) [[unlikely]] return 1; vm->set(instruction->dst(), value); return 0; } } return 1; } i64 asm_slow_path_get_binding(VM* vm, u32 pc, Op::GetBinding const* instruction) { auto next_pc = asm_get_binding(*vm, pc, instruction->dst(), instruction->cache()); return advance_or_continue(pc, next_pc); } i64 asm_slow_path_dynamic_get_binding(VM* vm, u32 pc, Op::DynamicGetBinding const* instruction) { auto& cache = vm->current_executable().environment_coordinate_caches[instruction->cache()]; auto next_pc = asm_dynamic_get_binding(*vm, pc, instruction->dst(), instruction->identifier(), instruction->strict(), cache); return advance_or_continue(pc, next_pc); } i64 asm_slow_path_initialize_lexical_binding(VM* vm, u32 pc, Op::InitializeLexicalBinding const* instruction) { auto next_pc = asm_initialize_or_set_binding(*vm, pc, instruction->strict(), vm->get(instruction->src()), instruction->cache()); return advance_or_continue(pc, next_pc); } i64 asm_slow_path_dynamic_initialize_lexical_binding(VM* vm, u32 pc, Op::DynamicInitializeLexicalBinding const* instruction) { auto next_pc = asm_dynamic_initialize_or_set_binding(*vm, pc, instruction->identifier(), instruction->strict(), vm->get(instruction->src()), vm->current_executable().environment_coordinate_caches[instruction->cache()]); return advance_or_continue(pc, next_pc); } i64 asm_slow_path_initialize_variable_binding(VM* vm, u32 pc, Op::InitializeVariableBinding const* instruction) { auto next_pc = asm_initialize_or_set_binding(*vm, pc, instruction->strict(), vm->get(instruction->src()), instruction->cache()); return advance_or_continue(pc, next_pc); } i64 asm_slow_path_dynamic_initialize_variable_binding(VM* vm, u32 pc, Op::DynamicInitializeVariableBinding const* instruction) { auto next_pc = asm_dynamic_initialize_or_set_binding(*vm, pc, instruction->identifier(), instruction->strict(), vm->get(instruction->src()), vm->current_executable().environment_coordinate_caches[instruction->cache()]); return advance_or_continue(pc, next_pc); } i64 asm_slow_path_set_lexical_binding(VM* vm, u32 pc, Op::SetLexicalBinding const* instruction) { auto next_pc = asm_initialize_or_set_binding(*vm, pc, instruction->strict(), vm->get(instruction->src()), instruction->cache()); return advance_or_continue(pc, next_pc); } i64 asm_slow_path_dynamic_set_lexical_binding(VM* vm, u32 pc, Op::DynamicSetLexicalBinding const* instruction) { auto next_pc = asm_dynamic_initialize_or_set_binding(*vm, pc, instruction->identifier(), instruction->strict(), vm->get(instruction->src()), vm->current_executable().environment_coordinate_caches[instruction->cache()]); return advance_or_continue(pc, next_pc); } i64 asm_slow_path_set_variable_binding(VM* vm, u32 pc, Op::SetVariableBinding const* instruction) { auto next_pc = asm_initialize_or_set_binding(*vm, pc, instruction->strict(), vm->get(instruction->src()), instruction->cache()); return advance_or_continue(pc, next_pc); } i64 asm_slow_path_dynamic_set_variable_binding(VM* vm, u32 pc, Op::DynamicSetVariableBinding const* instruction) { auto next_pc = asm_dynamic_initialize_or_set_binding(*vm, pc, instruction->identifier(), instruction->strict(), vm->get(instruction->src()), vm->current_executable().environment_coordinate_caches[instruction->cache()]); return advance_or_continue(pc, next_pc); } i64 asm_slow_path_resolve_binding(VM* vm, u32 pc, Op::ResolveBinding const* instruction) { auto const& identifier = vm->get_identifier(instruction->identifier()); auto reference = ASM_TRY(*vm, pc, vm->resolve_binding(identifier, instruction->strict())); if (reference.is_unresolvable()) { vm->set(instruction->dst(), js_null()); return static_cast(pc + sizeof(Op::ResolveBinding)); } VERIFY(reference.is_environment_reference()); vm->set(instruction->dst(), &reference.base_environment()); return static_cast(pc + sizeof(Op::ResolveBinding)); } i64 asm_slow_path_resolve_super_base(VM* vm, u32 pc, Op::ResolveSuperBase const* instruction) { auto& environment = as(*get_this_environment(*vm)); VERIFY(environment.has_super_binding()); auto base_value = ASM_TRY(*vm, pc, environment.get_super_base()); vm->set(instruction->dst(), base_value); return static_cast(pc + sizeof(Op::ResolveSuperBase)); } i64 asm_slow_path_set_resolved_binding(VM* vm, u32 pc, Op::SetResolvedBinding const* instruction) { auto const& identifier = vm->get_identifier(instruction->identifier()); auto environment = vm->get(instruction->environment()); auto reference = environment.is_null() ? Reference { Reference::BaseType::Unresolvable, PropertyKey { identifier }, instruction->strict() } : Reference { as(environment.as_cell()), identifier, instruction->strict() }; ASM_TRY(*vm, pc, reference.put_value(*vm, vm->get(instruction->src()))); return static_cast(pc + sizeof(Op::SetResolvedBinding)); } i64 asm_slow_path_typeof_binding(VM* vm, u32 pc, Op::TypeofBinding const* instruction) { VERIFY(instruction->cache().is_valid()); auto const* environment = vm->running_execution_context().lexical_environment.ptr(); for (size_t i = 0; i < instruction->cache().hops; ++i) environment = environment->outer_environment(); auto value = ASM_TRY(*vm, pc, static_cast(*environment).get_binding_value_direct(*vm, instruction->cache().index)); vm->set(instruction->dst(), value.typeof_(*vm)); return static_cast(pc + sizeof(Op::TypeofBinding)); } i64 asm_slow_path_dynamic_typeof_binding(VM* vm, u32 pc, Op::DynamicTypeofBinding const* instruction) { auto& cache = vm->current_executable().environment_coordinate_caches[instruction->cache()]; auto const* current_environment = vm->running_execution_context().lexical_environment.ptr(); if (auto const* environment = asm_get_cached_environment(current_environment, cache)) [[likely]] { auto value = ASM_TRY(*vm, pc, static_cast(*environment).get_binding_value_direct(*vm, cache.index)); vm->set(instruction->dst(), value.typeof_(*vm)); return static_cast(pc + sizeof(Op::DynamicTypeofBinding)); } auto reference = ASM_TRY(*vm, pc, vm->resolve_binding(vm->get_identifier(instruction->identifier()), instruction->strict())); if (reference.is_unresolvable()) { vm->set(instruction->dst(), PrimitiveString::create(*vm, "undefined"_utf16_fly_string)); return static_cast(pc + sizeof(Op::DynamicTypeofBinding)); } asm_update_environment_coordinate_cache(current_environment, reference, cache); auto value = ASM_TRY(*vm, pc, reference.get_value(*vm)); vm->set(instruction->dst(), value.typeof_(*vm)); return static_cast(pc + sizeof(Op::DynamicTypeofBinding)); } static Optional asm_function_name_prefix_to_string(Op::FunctionNamePrefix prefix) { switch (prefix) { case Op::FunctionNamePrefix::None: return {}; case Op::FunctionNamePrefix::Get: return "get"sv; case Op::FunctionNamePrefix::Set: return "set"sv; } VERIFY_NOT_REACHED(); } i64 asm_slow_path_has_private_id(VM* vm, u32 pc, Op::HasPrivateId const* instruction) { auto base = vm->get(instruction->base()); if (!base.is_object()) [[unlikely]] { auto completion = vm->throw_completion(ErrorType::InOperatorWithObject); return handle_asm_exception(*vm, pc, completion.value()); } auto private_environment = vm->running_execution_context().private_environment; VERIFY(private_environment); auto private_name = private_environment->resolve_private_identifier(vm->get_identifier(instruction->property())); vm->set(instruction->dst(), Value(base.as_object().private_element_find(private_name) != nullptr)); return static_cast(pc + sizeof(Op::HasPrivateId)); } i64 asm_slow_path_set_function_name(VM* vm, u32 pc, Op::SetFunctionName const* instruction) { auto function = vm->get(instruction->function()).as_if(); if (!function || !function->name().is_empty()) return static_cast(pc + sizeof(Op::SetFunctionName)); auto property_key = ASM_TRY(*vm, pc, vm->get(instruction->name()).to_property_key(*vm)); function->set_inferred_name(Variant { move(property_key) }, asm_function_name_prefix_to_string(instruction->prefix())); return static_cast(pc + sizeof(Op::SetFunctionName)); } i64 asm_slow_path_new_array_with_length(VM* vm, u32 pc, Op::NewArrayWithLength const* instruction) { auto length = static_cast(vm->get(instruction->array_length()).as_double()); auto array = ASM_TRY(*vm, pc, JS::Array::create(vm->realm(), length)); vm->set(instruction->dst(), array); return static_cast(pc + sizeof(Op::NewArrayWithLength)); } i64 asm_slow_path_array_append(VM* vm, u32 pc, Op::ArrayAppend const* instruction) { auto rhs = vm->get(instruction->src()); auto& lhs_array = vm->get(instruction->dst()).as_array_exotic_object(); auto lhs_size = lhs_array.indexed_array_like_size(); if (instruction->is_spread()) { size_t i = lhs_size; auto result = get_iterator_values(*vm, rhs, [&i, &lhs_array](Value iterator_value) -> Optional { lhs_array.indexed_put(i, iterator_value); ++i; return {}; }); if (result.is_error()) [[unlikely]] return handle_asm_exception(*vm, pc, result.value()); } else { lhs_array.indexed_put(lhs_size, rhs); } return static_cast(pc + sizeof(Op::ArrayAppend)); } i64 asm_slow_path_create_variable(VM* vm, u32 pc, Op::CreateVariable const* instruction) { auto const& name = vm->get_identifier(instruction->identifier()); ASM_TRY(*vm, pc, asm_create_variable(*vm, name, instruction->mode(), instruction->is_global(), instruction->is_immutable(), instruction->is_strict())); return static_cast(pc + sizeof(Op::CreateVariable)); } i64 asm_slow_path_enter_object_environment(VM* vm, u32 pc, Op::EnterObjectEnvironment const* instruction) { auto object = ASM_TRY(*vm, pc, vm->get(instruction->object()).to_object(*vm)); auto& old_environment = vm->running_execution_context().lexical_environment; auto new_environment = new_object_environment(*object, true, old_environment); vm->set(instruction->dst(), new_environment); vm->running_execution_context().lexical_environment = new_environment; return static_cast(pc + sizeof(Op::EnterObjectEnvironment)); } i64 asm_slow_path_bitwise_not(VM* vm, u32 pc, Op::BitwiseNot const* instruction) { vm->set(instruction->dst(), ASM_TRY(*vm, pc, bitwise_not(*vm, vm->get(instruction->src())))); return static_cast(pc + sizeof(Op::BitwiseNot)); } i64 asm_slow_path_unary_plus(VM* vm, u32 pc, Op::UnaryPlus const* instruction) { vm->set(instruction->dst(), ASM_TRY(*vm, pc, unary_plus(*vm, vm->get(instruction->src())))); return static_cast(pc + sizeof(Op::UnaryPlus)); } i64 asm_slow_path_is_constructor(VM* vm, u32 pc, Op::IsConstructor const* instruction) { vm->set(instruction->dst(), Value(vm->get(instruction->value()).is_constructor())); return static_cast(pc + sizeof(Op::IsConstructor)); } i64 asm_slow_path_add_private_name(VM* vm, u32 pc, Op::AddPrivateName const* instruction) { auto const& name = vm->get_identifier(instruction->name()); vm->running_execution_context().private_environment->add_private_name(name); return static_cast(pc + sizeof(Op::AddPrivateName)); } i64 asm_slow_path_create_async_from_sync_iterator(VM* vm, u32 pc, Op::CreateAsyncFromSyncIterator const* instruction) { auto& realm = vm->realm(); auto& iterator = vm->get(instruction->iterator()).as_object(); auto next_method = vm->get(instruction->next_method()); auto done = vm->get(instruction->done()).as_bool(); auto iterator_record = realm.create(iterator, next_method, done); auto async_from_sync_iterator = create_async_from_sync_iterator(*vm, iterator_record); auto iterator_object = Object::create(realm, nullptr); iterator_object->define_direct_property(vm->names.iterator, async_from_sync_iterator.iterator, default_attributes); iterator_object->define_direct_property(vm->names.nextMethod, async_from_sync_iterator.next_method, default_attributes); iterator_object->define_direct_property(vm->names.done, Value { async_from_sync_iterator.done }, default_attributes); vm->set(instruction->dst(), iterator_object); return static_cast(pc + sizeof(Op::CreateAsyncFromSyncIterator)); } i64 asm_slow_path_create_data_property_or_throw(VM* vm, u32 pc, Op::CreateDataPropertyOrThrow const* instruction) { auto& object = vm->get(instruction->object()).as_object(); auto property = ASM_TRY(*vm, pc, vm->get(instruction->property()).to_property_key(*vm)); auto value = vm->get(instruction->value()); ASM_TRY(*vm, pc, object.create_data_property_or_throw(property, value)); return static_cast(pc + sizeof(Op::CreateDataPropertyOrThrow)); } i64 asm_slow_path_create_immutable_binding(VM* vm, u32 pc, Op::CreateImmutableBinding const* instruction) { auto& environment = as(vm->get(instruction->environment()).as_cell()); ASM_TRY(*vm, pc, environment.create_immutable_binding(*vm, vm->get_identifier(instruction->identifier()), instruction->strict_binding())); return static_cast(pc + sizeof(Op::CreateImmutableBinding)); } i64 asm_slow_path_create_mutable_binding(VM* vm, u32 pc, Op::CreateMutableBinding const* instruction) { auto& environment = as(vm->get(instruction->environment()).as_cell()); ASM_TRY(*vm, pc, environment.create_mutable_binding(*vm, vm->get_identifier(instruction->identifier()), instruction->can_be_deleted())); return static_cast(pc + sizeof(Op::CreateMutableBinding)); } i64 asm_slow_path_create_rest_params(VM* vm, u32 pc, Op::CreateRestParams const* instruction) { auto const arguments = vm->running_execution_context().arguments_span(); auto arguments_count = vm->running_execution_context().passed_argument_count; auto array = MUST(JS::Array::create(vm->realm(), 0)); for (size_t rest_index = instruction->rest_index(); rest_index < arguments_count; ++rest_index) array->indexed_append(arguments[rest_index]); vm->set(instruction->dst(), array); return static_cast(pc + sizeof(Op::CreateRestParams)); } i64 asm_slow_path_create_arguments(VM* vm, u32 pc, Op::CreateArguments const* instruction) { auto const& function = vm->running_execution_context().function; auto const arguments = vm->running_execution_context().arguments_span(); auto const& environment = vm->running_execution_context().lexical_environment; auto passed_arguments = ReadonlySpan { arguments.data(), vm->running_execution_context().passed_argument_count }; Object* arguments_object; if (instruction->kind() == Op::ArgumentsKind::Mapped) { auto const& ecma_function = static_cast(*function); arguments_object = create_mapped_arguments_object(*vm, *function, ecma_function.parameter_names_for_mapped_arguments(), passed_arguments, *environment); } else { arguments_object = create_unmapped_arguments_object(*vm, passed_arguments); } if (instruction->dst().has_value()) { vm->set(*instruction->dst(), arguments_object); return static_cast(pc + sizeof(Op::CreateArguments)); } if (instruction->is_immutable()) { MUST(environment->create_immutable_binding(*vm, vm->names.arguments.as_string(), false)); } else { MUST(environment->create_mutable_binding(*vm, vm->names.arguments.as_string(), false)); } MUST(environment->initialize_binding(*vm, vm->names.arguments.as_string(), arguments_object, Environment::InitializeBindingHint::Normal)); return static_cast(pc + sizeof(Op::CreateArguments)); } i64 asm_slow_path_await(VM* vm, [[maybe_unused]] u32 pc, Op::Await const* instruction) { auto yielded_value = vm->get(instruction->argument()).is_special_empty_value() ? js_undefined() : vm->get(instruction->argument()); auto& context = vm->running_execution_context(); context.yield_continuation = instruction->continuation_label().address(); context.yield_is_await = true; context.yield_value_is_iterator_result = false; vm->do_return(yielded_value); return -1; } i64 asm_slow_path_create_lexical_environment(VM* vm, u32 pc, Op::CreateLexicalEnvironment const* instruction) { auto& parent = as(vm->get(instruction->parent()).as_cell()); auto environment = new_declarative_environment(parent); environment->ensure_capacity(instruction->capacity()); environment->set_is_catch_environment(instruction->is_catch_environment()); vm->set(instruction->dst(), environment); vm->running_execution_context().lexical_environment = environment; return static_cast(pc + sizeof(Op::CreateLexicalEnvironment)); } i64 asm_slow_path_create_private_environment(VM* vm, u32 pc, Op::CreatePrivateEnvironment const*) { auto& running_execution_context = vm->running_execution_context(); auto outer_private_environment = running_execution_context.private_environment; running_execution_context.private_environment = new_private_environment(*vm, outer_private_environment); return static_cast(pc + sizeof(Op::CreatePrivateEnvironment)); } i64 asm_slow_path_create_variable_environment(VM* vm, u32 pc, Op::CreateVariableEnvironment const* instruction) { auto& running_execution_context = vm->running_execution_context(); auto var_environment = new_declarative_environment(*running_execution_context.lexical_environment); if (auto* shared_data = vm->active_shared_function_data(); shared_data && instruction->capacity() == shared_data->m_var_environment_bindings_count) var_environment->set_environment_shape_cache(shared_data->m_var_environment_shape, instruction->capacity()); var_environment->ensure_capacity(instruction->capacity()); running_execution_context.variable_environment = var_environment; running_execution_context.lexical_environment = var_environment; return static_cast(pc + sizeof(Op::CreateVariableEnvironment)); } i64 asm_slow_path_delete_by_id(VM* vm, u32 pc, Op::DeleteById const* instruction) { auto const& property_key = vm->get_property_key(instruction->property()); auto reference = Reference { vm->get(instruction->base()), property_key, {}, instruction->strict() }; auto result = ASM_TRY(*vm, pc, reference.delete_(*vm)); vm->set(instruction->dst(), Value(result)); return static_cast(pc + sizeof(Op::DeleteById)); } i64 asm_slow_path_delete_by_value(VM* vm, u32 pc, Op::DeleteByValue const* instruction) { auto property_key = ASM_TRY(*vm, pc, vm->get(instruction->property()).to_property_key(*vm)); auto reference = Reference { vm->get(instruction->base()), property_key, {}, instruction->strict() }; auto result = ASM_TRY(*vm, pc, reference.delete_(*vm)); vm->set(instruction->dst(), Value(result)); return static_cast(pc + sizeof(Op::DeleteByValue)); } i64 asm_slow_path_delete_variable(VM* vm, u32 pc, Op::DeleteVariable const* instruction) { auto const& string = vm->get_identifier(instruction->identifier()); auto reference = ASM_TRY(*vm, pc, vm->resolve_binding(string, instruction->strict())); auto result = ASM_TRY(*vm, pc, reference.delete_(*vm)); vm->set(instruction->dst(), Value(result)); return static_cast(pc + sizeof(Op::DeleteVariable)); } i64 asm_slow_path_get_completion_fields(VM* vm, u32 pc, Op::GetCompletionFields const* instruction) { auto& completion_source = vm->get(instruction->completion()).as_object(); if (is(completion_source)) { auto const& generator = as(completion_source); vm->set(instruction->value_dst(), generator.pending_completion_value()); vm->set(instruction->type_dst(), Value(to_underlying(generator.pending_completion_type()))); return static_cast(pc + sizeof(Op::GetCompletionFields)); } auto const& async_generator = as(completion_source); vm->set(instruction->value_dst(), async_generator.pending_completion_value()); vm->set(instruction->type_dst(), Value(to_underlying(async_generator.pending_completion_type()))); return static_cast(pc + sizeof(Op::GetCompletionFields)); } i64 asm_slow_path_set_completion_type(VM* vm, u32 pc, Op::SetCompletionType const* instruction) { auto& completion_source = vm->get(instruction->completion()).as_object(); if (is(completion_source)) { as(completion_source).set_pending_completion_type(instruction->completion_type()); return static_cast(pc + sizeof(Op::SetCompletionType)); } as(completion_source).set_pending_completion_type(instruction->completion_type()); return static_cast(pc + sizeof(Op::SetCompletionType)); } i64 asm_slow_path_get_template_object(VM* vm, u32 pc, Op::GetTemplateObject const* instruction) { auto& cache = *vm->current_executable().template_object_caches[instruction->cache()]; if (cache.cached_template_object) { vm->set(instruction->dst(), cache.cached_template_object); return static_cast(pc + instruction->length()); } auto& realm = *vm->current_realm(); auto strings = instruction->strings(); u32 count = instruction->strings_count() / 2; auto template_object = MUST(JS::Array::create(realm, count)); auto raw_object = MUST(JS::Array::create(realm, count)); for (size_t index = 0; index < count; ++index) { template_object->indexed_put(index, vm->get(strings[index]), Attribute::Enumerable); raw_object->indexed_put(index, vm->get(strings[count + index]), Attribute::Enumerable); } MUST(raw_object->set_integrity_level(Object::IntegrityLevel::Frozen)); template_object->define_direct_property(vm->names.raw, raw_object, PropertyAttributes {}); MUST(template_object->set_integrity_level(Object::IntegrityLevel::Frozen)); cache.cached_template_object = template_object; vm->set(instruction->dst(), template_object); return static_cast(pc + instruction->length()); } i64 asm_slow_path_new_function(VM* vm, u32 pc, Op::NewFunction const* instruction) { auto& shared_data = *vm->current_executable().shared_function_data[instruction->shared_function_data_index()]; auto& realm = *vm->current_realm(); GC::Ref prototype = [&]() -> GC::Ref { switch (shared_data.m_kind) { case FunctionKind::Normal: return realm.intrinsics().function_prototype(); case FunctionKind::Generator: return realm.intrinsics().generator_function_prototype(); case FunctionKind::Async: return realm.intrinsics().async_function_prototype(); case FunctionKind::AsyncGenerator: return realm.intrinsics().async_generator_function_prototype(); } VERIFY_NOT_REACHED(); }(); auto function = ECMAScriptFunctionObject::create_from_function_data( realm, shared_data, vm->lexical_environment(), vm->running_execution_context().private_environment, *prototype); if (instruction->home_object().has_value()) { auto home_object_value = vm->get(instruction->home_object().value()); function->make_method(home_object_value.as_object()); } vm->set(instruction->dst(), function); return static_cast(pc + sizeof(Op::NewFunction)); } i64 asm_slow_path_throw(VM* vm, u32 pc, Op::Throw const* instruction) { return handle_asm_exception(*vm, pc, vm->get(instruction->src())); } i64 asm_slow_path_throw_if_tdz(VM* vm, u32 pc, Op::ThrowIfTDZ const* instruction) { auto value = vm->get(instruction->src()); if (value.is_special_empty_value()) [[unlikely]] { auto completion = vm->throw_completion(ErrorType::BindingNotInitialized, value); return handle_asm_exception(*vm, pc, completion.value()); } return static_cast(pc + sizeof(Op::ThrowIfTDZ)); } i64 asm_slow_path_throw_if_not_object(VM* vm, u32 pc, Op::ThrowIfNotObject const* instruction) { auto src = vm->get(instruction->src()); if (!src.is_object()) [[unlikely]] { auto completion = vm->throw_completion(ErrorType::NotAnObject, src); return handle_asm_exception(*vm, pc, completion.value()); } return static_cast(pc + sizeof(Op::ThrowIfNotObject)); } i64 asm_slow_path_throw_if_nullish(VM* vm, u32 pc, Op::ThrowIfNullish const* instruction) { auto value = vm->get(instruction->src()); if (value.is_nullish()) [[unlikely]] { auto completion = vm->throw_completion(ErrorType::NotObjectCoercible, value); return handle_asm_exception(*vm, pc, completion.value()); } return static_cast(pc + sizeof(Op::ThrowIfNullish)); } i64 asm_slow_path_throw_const_assignment(VM* vm, u32 pc, Op::ThrowConstAssignment const*) { auto completion = vm->throw_completion(ErrorType::InvalidAssignToConst); return handle_asm_exception(*vm, pc, completion.value()); } i64 asm_slow_path_yield(VM* vm, [[maybe_unused]] u32 pc, Op::Yield const* instruction) { auto yielded_value = vm->get(instruction->value()).is_special_empty_value() ? js_undefined() : vm->get(instruction->value()); auto& context = vm->running_execution_context(); if (instruction->continuation_label().has_value()) context.yield_continuation = instruction->continuation_label()->address(); else context.yield_continuation = ExecutionContext::no_yield_continuation; context.yield_is_await = false; context.yield_value_is_iterator_result = false; vm->do_return(yielded_value); return -1; } i64 asm_slow_path_yield_iterator_result(VM* vm, [[maybe_unused]] u32 pc, Op::YieldIteratorResult const* instruction) { auto yielded_value = vm->get(instruction->value()).is_special_empty_value() ? js_undefined() : vm->get(instruction->value()); auto& context = vm->running_execution_context(); context.yield_continuation = instruction->continuation_label().address(); context.yield_is_await = false; context.yield_value_is_iterator_result = true; vm->do_return(yielded_value); return -1; } // Fast path for GetByValue on typed arrays. // Returns 0 on success (result stored in dst), 1 on miss (fall to slow path). i64 asm_try_get_by_value_typed_array(VM* vm, u32, Op::GetByValue const* instruction) { auto base = vm->get(instruction->base()); if (!base.is_object()) [[unlikely]] return 1; auto property = vm->get(instruction->property()); if (!property.is_non_negative_int32()) [[unlikely]] return 1; auto& object = base.as_object(); if (!object.is_typed_array()) [[unlikely]] return 1; auto& typed_array = static_cast(object); auto index = static_cast(property.as_i32()); // Fast path: fixed-length typed array with cached data pointer auto const& array_length = typed_array.array_length(); if (array_length.is_auto()) [[unlikely]] return 1; auto length = array_length.length(); if (index >= length) [[unlikely]] { vm->set(instruction->dst(), js_undefined()); return 0; } if (!is_valid_integer_index(typed_array, CanonicalIndex { CanonicalIndex::Type::Index, index })) [[unlikely]] { vm->set(instruction->dst(), js_undefined()); return 0; } auto* buffer = typed_array.viewed_array_buffer(); auto const* data = buffer->data() + typed_array.byte_offset(); Value result; switch (typed_array.kind()) { case TypedArrayBase::Kind::Uint8Array: case TypedArrayBase::Kind::Uint8ClampedArray: result = Value(static_cast(data[index])); break; case TypedArrayBase::Kind::Int8Array: result = Value(static_cast(reinterpret_cast(data)[index])); break; case TypedArrayBase::Kind::Uint16Array: result = Value(static_cast(reinterpret_cast(data)[index])); break; case TypedArrayBase::Kind::Int16Array: result = Value(static_cast(reinterpret_cast(data)[index])); break; case TypedArrayBase::Kind::Uint32Array: result = Value(static_cast(reinterpret_cast(data)[index])); break; case TypedArrayBase::Kind::Int32Array: result = Value(reinterpret_cast(data)[index]); break; case TypedArrayBase::Kind::Float32Array: result = Value(static_cast(reinterpret_cast(data)[index])); break; case TypedArrayBase::Kind::Float64Array: result = Value(reinterpret_cast(data)[index]); break; default: return 1; } vm->set(instruction->dst(), result); return 0; } // Fast path for PutByValue on typed arrays. // Returns 0 on success, 1 on miss (fall to slow path). i64 asm_try_put_by_value_typed_array(VM* vm, u32, Op::PutByValue const* instruction) { auto base = vm->get(instruction->base()); if (!base.is_object()) [[unlikely]] return 1; auto property = vm->get(instruction->property()); if (!property.is_non_negative_int32()) [[unlikely]] return 1; auto& object = base.as_object(); if (!object.is_typed_array()) [[unlikely]] return 1; auto& typed_array = static_cast(object); auto index = static_cast(property.as_i32()); auto const& array_length = typed_array.array_length(); if (array_length.is_auto()) [[unlikely]] return 1; // NB: An out-of-bounds write is not simply a no-op: TypedArraySetElement still // evaluates ToNumber(value) for its side effects before discarding the store. // Fall back to the slow path so those side effects happen. if (index >= array_length.length()) [[unlikely]] return 1; if (!is_valid_integer_index(typed_array, CanonicalIndex { CanonicalIndex::Type::Index, index })) [[unlikely]] return 1; auto* buffer = typed_array.viewed_array_buffer(); auto* data = buffer->data() + typed_array.byte_offset(); auto value = vm->get(instruction->src()); if (value.is_int32()) { auto int_val = value.as_i32(); switch (typed_array.kind()) { case TypedArrayBase::Kind::Uint8Array: data[index] = static_cast(int_val); return 0; case TypedArrayBase::Kind::Uint8ClampedArray: data[index] = static_cast(clamp(int_val, 0, 255)); return 0; case TypedArrayBase::Kind::Int8Array: reinterpret_cast(data)[index] = static_cast(int_val); return 0; case TypedArrayBase::Kind::Uint16Array: reinterpret_cast(data)[index] = static_cast(int_val); return 0; case TypedArrayBase::Kind::Int16Array: reinterpret_cast(data)[index] = static_cast(int_val); return 0; case TypedArrayBase::Kind::Uint32Array: reinterpret_cast(data)[index] = static_cast(int_val); return 0; case TypedArrayBase::Kind::Int32Array: reinterpret_cast(data)[index] = int_val; return 0; default: break; } } else if (value.is_double()) { auto dbl_val = value.as_double(); switch (typed_array.kind()) { case TypedArrayBase::Kind::Float32Array: reinterpret_cast(data)[index] = static_cast(dbl_val); return 0; case TypedArrayBase::Kind::Float64Array: reinterpret_cast(data)[index] = dbl_val; return 0; default: break; } } return 1; } i64 asm_slow_path_instance_of(VM* vm, u32 pc, Op::InstanceOf const* instruction) { auto result = ASM_TRY(*vm, pc, instance_of(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs()))); vm->set(instruction->dst(), result); return static_cast(pc + sizeof(Op::InstanceOf)); } i64 asm_slow_path_in(VM* vm, u32 pc, Op::In const* instruction) { auto result = ASM_TRY(*vm, pc, in(*vm, vm->get(instruction->lhs()), vm->get(instruction->rhs()))); vm->set(instruction->dst(), result); return static_cast(pc + sizeof(Op::In)); } i64 asm_slow_path_resolve_this_binding(VM* vm, u32 pc, Op::ResolveThisBinding const*) { auto& cached_this_value = vm->reg(Register::this_value()); if (!cached_this_value.is_special_empty_value()) return static_cast(pc + sizeof(Op::ResolveThisBinding)); auto& running_execution_context = vm->running_execution_context(); if (auto function = running_execution_context.function; function && is(*function)) { auto& ecmascript_function = static_cast(*function); if (!ecmascript_function.allocates_function_environment() && !ecmascript_function.this_value_needs_environment_resolution()) { cached_this_value = running_execution_context.this_value.value(); return static_cast(pc + sizeof(Op::ResolveThisBinding)); } } cached_this_value = ASM_TRY(*vm, pc, vm->resolve_this_binding()); return static_cast(pc + sizeof(Op::ResolveThisBinding)); } // Direct handler for GetPrivateById: bypasses Reference indirection. i64 asm_slow_path_get_private_by_id(VM* vm, u32 pc, Op::GetPrivateById const* instruction) { auto base_value = vm->get(instruction->base()); auto& current_vm = *vm; if (!base_value.is_object()) [[unlikely]] { ASM_TRY(*vm, pc, base_value.to_object(current_vm)); auto const& name = current_vm.get_identifier(instruction->property()); auto private_name = make_private_reference(current_vm, base_value, name); auto result = ASM_TRY(*vm, pc, private_name.get_value(current_vm)); vm->set(instruction->dst(), result); return static_cast(pc + sizeof(Op::GetPrivateById)); } auto const& name = current_vm.get_identifier(instruction->property()); auto private_environment = current_vm.running_execution_context().private_environment; VERIFY(private_environment); auto private_name = private_environment->resolve_private_identifier(name); auto result = ASM_TRY(*vm, pc, base_value.as_object().private_get(private_name)); vm->set(instruction->dst(), result); return static_cast(pc + sizeof(Op::GetPrivateById)); } // Direct handler for PutPrivateById: bypasses Reference indirection. i64 asm_slow_path_put_private_by_id(VM* vm, u32 pc, Op::PutPrivateById const* instruction) { auto base_value = vm->get(instruction->base()); auto& current_vm = *vm; auto value = vm->get(instruction->src()); if (!base_value.is_object()) [[unlikely]] { auto object = ASM_TRY(*vm, pc, base_value.to_object(current_vm)); auto const& name = current_vm.get_identifier(instruction->property()); auto private_reference = make_private_reference(current_vm, object, name); ASM_TRY(*vm, pc, private_reference.put_value(current_vm, value)); return static_cast(pc + sizeof(Op::PutPrivateById)); } auto const& name = current_vm.get_identifier(instruction->property()); auto private_environment = current_vm.running_execution_context().private_environment; VERIFY(private_environment); auto private_name = private_environment->resolve_private_identifier(name); ASM_TRY(*vm, pc, base_value.as_object().private_set(private_name, value)); return static_cast(pc + sizeof(Op::PutPrivateById)); } // Helper: convert value to boolean (called from asm jump handlers) // Returns 0 (false) or 1 (true). Never throws. u64 asm_helper_to_boolean(u64 encoded_value) { auto value = bit_cast(encoded_value); return value.to_boolean() ? 1 : 0; } u64 asm_helper_math_exp(u64 encoded_value) { auto value = bit_cast(encoded_value); return bit_cast(Value(::exp(value.as_double()))); } u64 asm_helper_empty_string(u64) { return bit_cast(Value(&VM::the().empty_string())); } i64 asm_helper_handle_raw_native_exception(u64 encoded_exception) { auto& vm = VM::the(); auto& callee_frame = vm.running_execution_context(); VERIFY(callee_frame.caller_frame); // Raw-native asm calls keep their callee frame off the VM execution // context stack, so we have to unwind it manually before exception // dispatch. Match VM::handle_exception()'s inline-frame semantics by // probing the caller with a PC inside the Call instruction. auto caller_pc = callee_frame.caller_return_pc; vm.unwind_inline_frame_for_exception(); return handle_asm_exception(vm, caller_pc - 1, bit_cast(encoded_exception)); } u64 asm_helper_single_ascii_character_string(u64 encoded_value) { return bit_cast(Value(&VM::the().single_ascii_character_string(static_cast(encoded_value)))); } u64 asm_helper_single_utf16_code_unit_string(u64 encoded_value) { char16_t code_unit = static_cast(encoded_value); return bit_cast(Value(PrimitiveString::create(VM::the(), Utf16View(&code_unit, 1)))); } } // extern "C"