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https://github.com/LadybirdBrowser/ladybird.git
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34f902fb52
While adding spec comments to PerformEval, I noticed we were missing multiple steps. Namely, these were: - Checking if the host will allow us to compile the string (allowing LibWeb to perform CSP for eval) - The parser's initial state depending on the environment around us on direct eval: - Allowing new.target via eval in functions - Allowing super calls and super properties via eval in classes - Disallowing the use of the arguments object in class field initializers at eval's parse time - Setting ScriptOrModule of eval's execution context The spec allows us to apply the additional parsing steps in any order. The method I have gone with is passing in a struct to the parser's constructor, which overrides the parser's initial state to (dis)allow the things stated above from the get-go.
303 lines
12 KiB
C++
303 lines
12 KiB
C++
/*
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* Copyright (c) 2020, Andreas Kling <kling@serenityos.org>
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* Copyright (c) 2020-2022, Linus Groh <linusg@serenityos.org>
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* Copyright (c) 2021-2022, David Tuin <davidot@serenityos.org>
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*
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* SPDX-License-Identifier: BSD-2-Clause
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*/
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#pragma once
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#include <AK/FlyString.h>
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#include <AK/Function.h>
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#include <AK/HashMap.h>
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#include <AK/RefCounted.h>
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#include <AK/StackInfo.h>
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#include <AK/Variant.h>
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#include <LibJS/Heap/Heap.h>
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#include <LibJS/Heap/MarkedVector.h>
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#include <LibJS/Runtime/CommonPropertyNames.h>
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#include <LibJS/Runtime/Completion.h>
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#include <LibJS/Runtime/Error.h>
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#include <LibJS/Runtime/ErrorTypes.h>
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#include <LibJS/Runtime/ExecutionContext.h>
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#include <LibJS/Runtime/Iterator.h>
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#include <LibJS/Runtime/Promise.h>
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#include <LibJS/Runtime/Value.h>
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namespace JS {
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class Identifier;
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struct BindingPattern;
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class VM : public RefCounted<VM> {
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public:
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struct CustomData {
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virtual ~CustomData() = default;
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};
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static NonnullRefPtr<VM> create(OwnPtr<CustomData> = {});
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~VM() = default;
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enum class HostResizeArrayBufferResult {
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Unhandled,
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Handled,
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};
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Heap& heap() { return m_heap; }
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Heap const& heap() const { return m_heap; }
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Interpreter& interpreter();
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Interpreter* interpreter_if_exists();
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void push_interpreter(Interpreter&);
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void pop_interpreter(Interpreter&);
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void dump_backtrace() const;
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class InterpreterExecutionScope {
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public:
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InterpreterExecutionScope(Interpreter&);
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~InterpreterExecutionScope();
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Interpreter& interpreter() { return m_interpreter; }
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private:
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Interpreter& m_interpreter;
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};
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void gather_roots(HashTable<Cell*>&);
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#define __JS_ENUMERATE(SymbolName, snake_name) \
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Symbol* well_known_symbol_##snake_name() const { return m_well_known_symbol_##snake_name; }
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JS_ENUMERATE_WELL_KNOWN_SYMBOLS
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#undef __JS_ENUMERATE
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Symbol* get_global_symbol(String const& description);
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HashMap<String, PrimitiveString*>& string_cache() { return m_string_cache; }
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PrimitiveString& empty_string() { return *m_empty_string; }
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PrimitiveString& single_ascii_character_string(u8 character)
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{
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VERIFY(character < 0x80);
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return *m_single_ascii_character_strings[character];
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}
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bool did_reach_stack_space_limit() const
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{
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// Address sanitizer (ASAN) used to check for more space but
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// currently we can't detect the stack size with it enabled.
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return m_stack_info.size_free() < 32 * KiB;
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}
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void push_execution_context(ExecutionContext& context)
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{
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m_execution_context_stack.append(&context);
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}
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ThrowCompletionOr<void> push_execution_context(ExecutionContext& context, GlobalObject& global_object)
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{
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// Ensure we got some stack space left, so the next function call doesn't kill us.
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if (did_reach_stack_space_limit())
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return throw_completion<InternalError>(global_object, ErrorType::CallStackSizeExceeded);
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m_execution_context_stack.append(&context);
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return {};
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}
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void pop_execution_context()
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{
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m_execution_context_stack.take_last();
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if (m_execution_context_stack.is_empty() && on_call_stack_emptied)
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on_call_stack_emptied();
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}
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ExecutionContext& running_execution_context() { return *m_execution_context_stack.last(); }
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ExecutionContext const& running_execution_context() const { return *m_execution_context_stack.last(); }
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Vector<ExecutionContext*> const& execution_context_stack() const { return m_execution_context_stack; }
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Vector<ExecutionContext*>& execution_context_stack() { return m_execution_context_stack; }
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Environment const* lexical_environment() const { return running_execution_context().lexical_environment; }
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Environment* lexical_environment() { return running_execution_context().lexical_environment; }
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Environment const* variable_environment() const { return running_execution_context().variable_environment; }
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Environment* variable_environment() { return running_execution_context().variable_environment; }
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// https://tc39.es/ecma262/#current-realm
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// The value of the Realm component of the running execution context is also called the current Realm Record.
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Realm const* current_realm() const { return running_execution_context().realm; }
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Realm* current_realm() { return running_execution_context().realm; }
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// https://tc39.es/ecma262/#active-function-object
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// The value of the Function component of the running execution context is also called the active function object.
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FunctionObject const* active_function_object() const { return running_execution_context().function; }
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FunctionObject* active_function_object() { return running_execution_context().function; }
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bool in_strict_mode() const;
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size_t argument_count() const
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{
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if (m_execution_context_stack.is_empty())
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return 0;
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return running_execution_context().arguments.size();
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}
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Value argument(size_t index) const
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{
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if (m_execution_context_stack.is_empty())
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return {};
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auto& arguments = running_execution_context().arguments;
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return index < arguments.size() ? arguments[index] : js_undefined();
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}
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Value this_value(Object& global_object) const
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{
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if (m_execution_context_stack.is_empty())
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return &global_object;
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return running_execution_context().this_value;
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}
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ThrowCompletionOr<Value> resolve_this_binding(GlobalObject&);
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StackInfo const& stack_info() const { return m_stack_info; };
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u32 execution_generation() const { return m_execution_generation; }
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void finish_execution_generation() { ++m_execution_generation; }
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ThrowCompletionOr<Reference> resolve_binding(FlyString const&, Environment* = nullptr);
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ThrowCompletionOr<Reference> get_identifier_reference(Environment*, FlyString, bool strict, size_t hops = 0);
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// 5.2.3.2 Throw an Exception, https://tc39.es/ecma262/#sec-throw-an-exception
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template<typename T, typename... Args>
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Completion throw_completion(GlobalObject& global_object, Args&&... args)
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{
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return JS::throw_completion(T::create(global_object, forward<Args>(args)...));
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}
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template<typename T, typename... Args>
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Completion throw_completion(GlobalObject& global_object, ErrorType type, Args&&... args)
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{
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return throw_completion<T>(global_object, String::formatted(type.message(), forward<Args>(args)...));
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}
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Value construct(FunctionObject&, FunctionObject& new_target, Optional<MarkedVector<Value>> arguments);
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String join_arguments(size_t start_index = 0) const;
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Value get_new_target();
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CommonPropertyNames names;
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void run_queued_promise_jobs();
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void enqueue_promise_job(Function<ThrowCompletionOr<Value>()> job, Realm*);
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void run_queued_finalization_registry_cleanup_jobs();
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void enqueue_finalization_registry_cleanup_job(FinalizationRegistry&);
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void promise_rejection_tracker(Promise&, Promise::RejectionOperation) const;
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Function<void()> on_call_stack_emptied;
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Function<void(Promise&)> on_promise_unhandled_rejection;
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Function<void(Promise&)> on_promise_rejection_handled;
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ThrowCompletionOr<void> initialize_instance_elements(Object& object, ECMAScriptFunctionObject& constructor);
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CustomData* custom_data() { return m_custom_data; }
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ThrowCompletionOr<void> destructuring_assignment_evaluation(NonnullRefPtr<BindingPattern> const& target, Value value, GlobalObject& global_object);
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ThrowCompletionOr<void> binding_initialization(FlyString const& target, Value value, Environment* environment, GlobalObject& global_object);
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ThrowCompletionOr<void> binding_initialization(NonnullRefPtr<BindingPattern> const& target, Value value, Environment* environment, GlobalObject& global_object);
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ThrowCompletionOr<Value> named_evaluation_if_anonymous_function(GlobalObject& global_object, ASTNode const& expression, FlyString const& name);
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void save_execution_context_stack();
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void restore_execution_context_stack();
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// Do not call this method unless you are sure this is the only and first module to be loaded in this vm.
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ThrowCompletionOr<void> link_and_eval_module(Badge<Interpreter>, SourceTextModule& module);
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ScriptOrModule get_active_script_or_module() const;
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Function<ThrowCompletionOr<NonnullRefPtr<Module>>(ScriptOrModule, ModuleRequest const&)> host_resolve_imported_module;
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Function<void(ScriptOrModule, ModuleRequest, PromiseCapability)> host_import_module_dynamically;
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Function<void(ScriptOrModule, ModuleRequest const&, PromiseCapability, Promise*)> host_finish_dynamic_import;
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Function<HashMap<PropertyKey, Value>(SourceTextModule const&)> host_get_import_meta_properties;
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Function<void(Object*, SourceTextModule const&)> host_finalize_import_meta;
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Function<Vector<String>()> host_get_supported_import_assertions;
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void enable_default_host_import_module_dynamically_hook();
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Function<void(Promise&, Promise::RejectionOperation)> host_promise_rejection_tracker;
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Function<ThrowCompletionOr<Value>(GlobalObject&, JobCallback&, Value, MarkedVector<Value>)> host_call_job_callback;
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Function<void(FinalizationRegistry&)> host_enqueue_finalization_registry_cleanup_job;
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Function<void(Function<ThrowCompletionOr<Value>()>, Realm*)> host_enqueue_promise_job;
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Function<JobCallback(FunctionObject&)> host_make_job_callback;
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Function<ThrowCompletionOr<HostResizeArrayBufferResult>(GlobalObject&, size_t)> host_resize_array_buffer;
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Function<ThrowCompletionOr<void>(Realm&, Realm&)> host_ensure_can_compile_strings;
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private:
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explicit VM(OwnPtr<CustomData>);
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ThrowCompletionOr<void> property_binding_initialization(BindingPattern const& binding, Value value, Environment* environment, GlobalObject& global_object);
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ThrowCompletionOr<void> iterator_binding_initialization(BindingPattern const& binding, Iterator& iterator_record, Environment* environment, GlobalObject& global_object);
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ThrowCompletionOr<NonnullRefPtr<Module>> resolve_imported_module(ScriptOrModule referencing_script_or_module, ModuleRequest const& module_request);
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ThrowCompletionOr<void> link_and_eval_module(Module& module);
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void import_module_dynamically(ScriptOrModule referencing_script_or_module, ModuleRequest module_request, PromiseCapability promise_capability);
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void finish_dynamic_import(ScriptOrModule referencing_script_or_module, ModuleRequest module_request, PromiseCapability promise_capability, Promise* inner_promise);
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HashMap<String, PrimitiveString*> m_string_cache;
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Heap m_heap;
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Vector<Interpreter*> m_interpreters;
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Vector<ExecutionContext*> m_execution_context_stack;
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Vector<Vector<ExecutionContext*>> m_saved_execution_context_stacks;
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StackInfo m_stack_info;
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HashMap<String, Symbol*> m_global_symbol_map;
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Vector<Function<ThrowCompletionOr<Value>()>> m_promise_jobs;
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Vector<FinalizationRegistry*> m_finalization_registry_cleanup_jobs;
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PrimitiveString* m_empty_string { nullptr };
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PrimitiveString* m_single_ascii_character_strings[128] {};
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struct StoredModule {
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ScriptOrModule referencing_script_or_module;
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String filepath;
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String type;
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NonnullRefPtr<Module> module;
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bool has_once_started_linking { false };
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};
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StoredModule* get_stored_module(ScriptOrModule const& script_or_module, String const& filepath, String const& type);
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Vector<StoredModule> m_loaded_modules;
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#define __JS_ENUMERATE(SymbolName, snake_name) \
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Symbol* m_well_known_symbol_##snake_name { nullptr };
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JS_ENUMERATE_WELL_KNOWN_SYMBOLS
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#undef __JS_ENUMERATE
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u32 m_execution_generation { 0 };
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OwnPtr<CustomData> m_custom_data;
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};
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ALWAYS_INLINE Heap& Cell::heap() const
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{
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return HeapBlock::from_cell(this)->heap();
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}
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ALWAYS_INLINE VM& Cell::vm() const
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{
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return heap().vm();
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}
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}
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