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Create a SourceCode on the main thread (performing UTF-8 to UTF-16 conversion), then submit parse_program() to the ThreadPool for Rust parsing on a worker thread. This unblocks the WebContent event loop during external script loading. Add Script::create_from_parsed() and ClassicScript::create_from_pre_parsed() factory methods that take a pre-parsed RustParsedProgram and a SourceCode, performing only the GC-allocating compile step on the main thread. Falls back to synchronous parsing when the Rust pipeline is unavailable (LIBJS_CPP=1 or LIBJS_COMPARE_PIPELINES=1).
295 lines
13 KiB
C++
295 lines
13 KiB
C++
/*
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* Copyright (c) 2021, Andreas Kling <andreas@ladybird.org>
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*
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* SPDX-License-Identifier: BSD-2-Clause
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*/
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#include <LibJS/AST.h>
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#include <LibJS/Bytecode/Executable.h>
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#include <LibJS/Lexer.h>
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#include <LibJS/Parser.h>
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#include <LibJS/Runtime/ECMAScriptFunctionObject.h>
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#include <LibJS/Runtime/GlobalEnvironment.h>
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#include <LibJS/Runtime/SharedFunctionInstanceData.h>
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#include <LibJS/Runtime/VM.h>
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#include <LibJS/RustIntegration.h>
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#include <LibJS/Script.h>
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#include <LibJS/SourceCode.h>
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namespace JS {
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bool g_dump_ast = false;
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bool g_dump_ast_use_color = false;
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GC_DEFINE_ALLOCATOR(Script);
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// 16.1.5 ParseScript ( sourceText, realm, hostDefined ), https://tc39.es/ecma262/#sec-parse-script
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Result<GC::Ref<Script>, Vector<ParserError>> Script::parse(StringView source_text, Realm& realm, StringView filename, HostDefined* host_defined, size_t line_number_offset)
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{
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auto rust_compilation = RustIntegration::compile_script(source_text, realm, filename, line_number_offset);
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if (rust_compilation.has_value()) {
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if (rust_compilation->is_error())
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return rust_compilation->release_error();
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return realm.heap().allocate<Script>(realm, filename, move(rust_compilation->value()), host_defined);
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}
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// 1. Let script be ParseText(sourceText, Script).
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auto parser = Parser(Lexer(SourceCode::create(String::from_utf8(filename).release_value_but_fixme_should_propagate_errors(), Utf16String::from_utf8(source_text)), line_number_offset));
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auto script = parser.parse_program();
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// 2. If script is a List of errors, return body.
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if (parser.has_errors())
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return parser.errors();
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// 3. Return Script Record { [[Realm]]: realm, [[ECMAScriptCode]]: script, [[HostDefined]]: hostDefined }.
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return realm.heap().allocate<Script>(realm, filename, move(script), host_defined);
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}
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Result<GC::Ref<Script>, Vector<ParserError>> Script::create_from_parsed(RustParsedProgram* parsed, NonnullRefPtr<SourceCode const> source_code, Realm& realm, HostDefined* host_defined)
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{
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auto filename = source_code->filename();
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auto rust_compilation = RustIntegration::compile_parsed_script(parsed, move(source_code), realm);
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if (!rust_compilation.has_value())
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return Vector<ParserError> {};
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if (rust_compilation->is_error())
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return rust_compilation->release_error();
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return realm.heap().allocate<Script>(realm, filename, move(rust_compilation->value()), host_defined);
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}
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Script::Script(Realm& realm, StringView filename, RefPtr<Program> parse_node, HostDefined* host_defined)
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: m_realm(realm)
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, m_parse_node(move(parse_node))
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, m_filename(filename)
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, m_host_defined(host_defined)
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{
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auto& vm = realm.vm();
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auto& program = *m_parse_node;
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m_is_strict_mode = program.is_strict_mode();
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// Pre-compute lexically declared names (GDI step 3).
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MUST(program.for_each_lexically_declared_identifier([&](Identifier const& identifier) -> ThrowCompletionOr<void> {
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m_lexical_names.append(identifier.string());
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return {};
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}));
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// Pre-compute var declared names (GDI step 4).
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MUST(program.for_each_var_declared_identifier([&](Identifier const& identifier) -> ThrowCompletionOr<void> {
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m_var_names.append(identifier.string());
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return {};
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}));
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// Pre-compute functions to initialize and declared function names (GDI steps 7-8).
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MUST(program.for_each_var_function_declaration_in_reverse_order([&](FunctionDeclaration const& function) -> ThrowCompletionOr<void> {
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auto function_name = function.name();
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if (m_declared_function_names.set(function_name) != AK::HashSetResult::InsertedNewEntry)
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return {};
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m_functions_to_initialize.append({ SharedFunctionInstanceData::create_for_function_node(vm, function), function_name });
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return {};
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}));
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// Pre-compute var scoped variable names (GDI step 10).
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MUST(program.for_each_var_scoped_variable_declaration([&](VariableDeclaration const& declaration) {
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return declaration.for_each_bound_identifier([&](Identifier const& identifier) -> ThrowCompletionOr<void> {
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m_var_scoped_names.append(identifier.string());
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return {};
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});
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}));
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// Pre-compute AnnexB candidates (GDI step 13).
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if (!m_is_strict_mode) {
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MUST(program.for_each_function_hoistable_with_annexB_extension([&](FunctionDeclaration& function_declaration) -> ThrowCompletionOr<void> {
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m_annex_b_candidate_names.append(function_declaration.name());
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m_annex_b_function_declarations.append(function_declaration);
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return {};
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}));
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}
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// Pre-compute lexical bindings (GDI step 15).
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MUST(program.for_each_lexically_scoped_declaration([&](Declaration const& declaration) {
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return declaration.for_each_bound_identifier([&](Identifier const& identifier) -> ThrowCompletionOr<void> {
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m_lexical_bindings.append({ identifier.string(), declaration.is_constant_declaration() });
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return {};
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});
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}));
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}
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Script::Script(Realm& realm, StringView filename, RustIntegration::ScriptResult&& result, HostDefined* host_defined)
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: m_realm(realm)
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, m_executable(result.executable)
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, m_lexical_names(move(result.lexical_names))
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, m_var_names(move(result.var_names))
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, m_declared_function_names(move(result.declared_function_names))
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, m_var_scoped_names(move(result.var_scoped_names))
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, m_annex_b_candidate_names(move(result.annex_b_candidate_names))
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, m_lexical_bindings(move(result.lexical_bindings))
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, m_is_strict_mode(result.is_strict_mode)
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, m_filename(filename)
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, m_host_defined(host_defined)
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{
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m_functions_to_initialize.ensure_capacity(result.functions_to_initialize.size());
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for (auto& f : result.functions_to_initialize)
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m_functions_to_initialize.append({ *f.shared_data, move(f.name) });
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}
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// 16.1.7 GlobalDeclarationInstantiation ( script, env ), https://tc39.es/ecma262/#sec-globaldeclarationinstantiation
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ThrowCompletionOr<void> Script::global_declaration_instantiation(VM& vm, GlobalEnvironment& global_environment)
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{
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auto& realm = *vm.current_realm();
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// 1. Let lexNames be the LexicallyDeclaredNames of script.
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// 2. Let varNames be the VarDeclaredNames of script.
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// 3. For each element name of lexNames, do
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for (auto const& name : m_lexical_names) {
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// a. If env.HasLexicalDeclaration(name) is true, throw a SyntaxError exception.
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if (global_environment.has_lexical_declaration(name))
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return vm.throw_completion<SyntaxError>(ErrorType::TopLevelVariableAlreadyDeclared, name);
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// b. Let hasRestrictedGlobal be ? HasRestrictedGlobalProperty(env, name).
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auto has_restricted_global = TRY(global_environment.has_restricted_global_property(name));
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// d. If hasRestrictedGlobal is true, throw a SyntaxError exception.
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if (has_restricted_global)
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return vm.throw_completion<SyntaxError>(ErrorType::RestrictedGlobalProperty, name);
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}
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// 4. For each element name of varNames, do
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for (auto const& name : m_var_names) {
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// a. If env.HasLexicalDeclaration(name) is true, throw a SyntaxError exception.
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if (global_environment.has_lexical_declaration(name))
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return vm.throw_completion<SyntaxError>(ErrorType::TopLevelVariableAlreadyDeclared, name);
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}
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// 5. Let varDeclarations be the VarScopedDeclarations of script.
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// 6. Let functionsToInitialize be a new empty List.
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// 7. Let declaredFunctionNames be a new empty List.
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// 8. For each element d of varDeclarations, in reverse List order, do
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for (auto const& function : m_functions_to_initialize) {
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// 1. Let fnDefinable be ? env.CanDeclareGlobalFunction(fn).
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auto function_definable = TRY(global_environment.can_declare_global_function(function.name));
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// 2. If fnDefinable is false, throw a TypeError exception.
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if (!function_definable)
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return vm.throw_completion<TypeError>(ErrorType::CannotDeclareGlobalFunction, function.name);
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}
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// 9. Let declaredVarNames be a new empty List.
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HashTable<Utf16FlyString> declared_var_names;
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// 10. For each element d of varDeclarations, do
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for (auto const& name : m_var_scoped_names) {
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// 1. If vn is not an element of declaredFunctionNames, then
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if (m_declared_function_names.contains(name))
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continue;
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// a. Let vnDefinable be ? env.CanDeclareGlobalVar(vn).
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auto var_definable = TRY(global_environment.can_declare_global_var(name));
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// b. If vnDefinable is false, throw a TypeError exception.
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if (!var_definable)
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return vm.throw_completion<TypeError>(ErrorType::CannotDeclareGlobalVariable, name);
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// c. If vn is not an element of declaredVarNames, then
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// i. Append vn to declaredVarNames.
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declared_var_names.set(name);
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}
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// 12. NOTE: Annex B.3.2.2 adds additional steps at this point.
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// 12. Let strict be IsStrict of script.
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// 13. If strict is false, then
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if (!m_is_strict_mode) {
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// a. Let declaredFunctionOrVarNames be the list-concatenation of declaredFunctionNames and declaredVarNames.
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// b. For each FunctionDeclaration f that is directly contained in the StatementList of a Block, CaseClause, or DefaultClause Contained within script, do
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for (size_t i = 0; i < m_annex_b_candidate_names.size(); ++i) {
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// i. Let F be StringValue of the BindingIdentifier of f.
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auto& function_name = m_annex_b_candidate_names[i];
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// 1. If env.HasLexicalDeclaration(F) is false, then
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if (global_environment.has_lexical_declaration(function_name))
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continue;
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// a. Let fnDefinable be ? env.CanDeclareGlobalVar(F).
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auto function_definable = TRY(global_environment.can_declare_global_function(function_name));
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// b. If fnDefinable is true, then
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if (!function_definable)
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continue;
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// ii. If declaredFunctionOrVarNames does not contain F, then
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if (!m_declared_function_names.contains(function_name) && !declared_var_names.contains(function_name)) {
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// i. Perform ? env.CreateGlobalVarBinding(F, false).
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TRY(global_environment.create_global_var_binding(function_name, false));
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}
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// iii. When the FunctionDeclaration f is evaluated, perform the following steps in place of the FunctionDeclaration Evaluation algorithm provided in 15.2.6:
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if (i < m_annex_b_function_declarations.size())
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m_annex_b_function_declarations[i]->set_should_do_additional_annexB_steps();
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}
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}
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// 14. Let privateEnv be null.
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PrivateEnvironment* private_environment = nullptr;
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// 15. For each element d of lexDeclarations, do
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for (auto const& binding : m_lexical_bindings) {
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// i. If IsConstantDeclaration of d is true, then
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if (binding.is_constant) {
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// 1. Perform ? env.CreateImmutableBinding(dn, true).
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TRY(global_environment.create_immutable_binding(vm, binding.name, true));
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}
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// ii. Else,
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else {
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// 1. Perform ? env.CreateMutableBinding(dn, false).
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TRY(global_environment.create_mutable_binding(vm, binding.name, false));
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}
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}
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// 16. For each Parse Node f of functionsToInitialize, do
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// NB: We iterate in reverse order since we appended the functions
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// instead of prepending during pre-computation.
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for (auto const& function_to_initialize : m_functions_to_initialize.in_reverse()) {
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// a. Let fn be the sole element of the BoundNames of f.
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// b. Let fo be InstantiateFunctionObject of f with arguments env and privateEnv.
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auto function = ECMAScriptFunctionObject::create_from_function_data(
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realm,
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function_to_initialize.shared_data,
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&global_environment,
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private_environment);
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// c. Perform ? env.CreateGlobalFunctionBinding(fn, fo, false).
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TRY(global_environment.create_global_function_binding(function->name(), function, false));
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}
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// 17. For each String vn of declaredVarNames, do
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for (auto& var_name : declared_var_names) {
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// a. Perform ? env.CreateGlobalVarBinding(vn, false).
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TRY(global_environment.create_global_var_binding(var_name, false));
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}
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// 18. Return unused.
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return {};
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}
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void Script::drop_ast()
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{
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m_parse_node = nullptr;
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m_annex_b_function_declarations.clear();
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}
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Script::~Script()
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{
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}
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void Script::visit_edges(Cell::Visitor& visitor)
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{
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Base::visit_edges(visitor);
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visitor.visit(m_realm);
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visitor.visit(m_executable);
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for (auto const& function : m_functions_to_initialize)
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visitor.visit(function.shared_data);
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if (m_host_defined)
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m_host_defined->visit_host_defined_self(visitor);
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for (auto const& loaded_module : m_loaded_modules)
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visitor.visit(loaded_module.module);
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}
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}
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