ASTCodegen.cpp 160 KB

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  1. /*
  2. * Copyright (c) 2021-2024, Andreas Kling <kling@serenityos.org>
  3. * Copyright (c) 2021, Linus Groh <linusg@serenityos.org>
  4. * Copyright (c) 2021, Gunnar Beutner <gbeutner@serenityos.org>
  5. * Copyright (c) 2021, Marcin Gasperowicz <xnooga@gmail.com>
  6. *
  7. * SPDX-License-Identifier: BSD-2-Clause
  8. */
  9. #include <AK/Find.h>
  10. #include <AK/Queue.h>
  11. #include <LibJS/AST.h>
  12. #include <LibJS/Bytecode/Generator.h>
  13. #include <LibJS/Bytecode/Instruction.h>
  14. #include <LibJS/Bytecode/Op.h>
  15. #include <LibJS/Bytecode/Register.h>
  16. #include <LibJS/Bytecode/StringTable.h>
  17. #include <LibJS/Runtime/Environment.h>
  18. #include <LibJS/Runtime/ErrorTypes.h>
  19. namespace JS {
  20. using namespace JS::Bytecode;
  21. static ScopedOperand choose_dst(Bytecode::Generator& generator, Optional<ScopedOperand> const& preferred_dst)
  22. {
  23. if (preferred_dst.has_value())
  24. return preferred_dst.value();
  25. return generator.allocate_register();
  26. }
  27. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ASTNode::generate_bytecode(Bytecode::Generator&, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  28. {
  29. return Bytecode::CodeGenerationError {
  30. this,
  31. "Missing generate_bytecode()"sv,
  32. };
  33. }
  34. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ScopeNode::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  35. {
  36. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  37. bool did_create_lexical_environment = false;
  38. if (is<BlockStatement>(*this)) {
  39. if (has_lexical_declarations()) {
  40. generator.block_declaration_instantiation(*this);
  41. did_create_lexical_environment = true;
  42. }
  43. } else if (is<Program>(*this)) {
  44. // GlobalDeclarationInstantiation is handled by the C++ AO.
  45. } else {
  46. // FunctionDeclarationInstantiation is handled by the C++ AO.
  47. }
  48. Optional<ScopedOperand> last_result;
  49. for (auto& child : children()) {
  50. auto result = TRY(child->generate_bytecode(generator));
  51. if (result.has_value())
  52. last_result = result;
  53. if (generator.is_current_block_terminated())
  54. break;
  55. }
  56. if (did_create_lexical_environment)
  57. generator.end_variable_scope();
  58. return last_result;
  59. }
  60. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> EmptyStatement::generate_bytecode(Bytecode::Generator&, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  61. {
  62. return Optional<ScopedOperand> {};
  63. }
  64. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ExpressionStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  65. {
  66. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  67. return m_expression->generate_bytecode(generator);
  68. }
  69. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> BinaryExpression::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  70. {
  71. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  72. if (m_op == BinaryOp::In && is<PrivateIdentifier>(*m_lhs)) {
  73. auto const& private_identifier = static_cast<PrivateIdentifier const&>(*m_lhs).string();
  74. auto base = TRY(m_rhs->generate_bytecode(generator)).value();
  75. auto dst = choose_dst(generator, preferred_dst);
  76. generator.emit<Bytecode::Op::HasPrivateId>(dst, base, generator.intern_identifier(private_identifier));
  77. return dst;
  78. }
  79. auto lhs = TRY(m_lhs->generate_bytecode(generator)).value();
  80. auto rhs = TRY(m_rhs->generate_bytecode(generator)).value();
  81. auto dst = choose_dst(generator, preferred_dst);
  82. switch (m_op) {
  83. case BinaryOp::Addition:
  84. generator.emit<Bytecode::Op::Add>(dst, lhs, rhs);
  85. break;
  86. case BinaryOp::Subtraction:
  87. generator.emit<Bytecode::Op::Sub>(dst, lhs, rhs);
  88. break;
  89. case BinaryOp::Multiplication:
  90. generator.emit<Bytecode::Op::Mul>(dst, lhs, rhs);
  91. break;
  92. case BinaryOp::Division:
  93. generator.emit<Bytecode::Op::Div>(dst, lhs, rhs);
  94. break;
  95. case BinaryOp::Modulo:
  96. generator.emit<Bytecode::Op::Mod>(dst, lhs, rhs);
  97. break;
  98. case BinaryOp::Exponentiation:
  99. generator.emit<Bytecode::Op::Exp>(dst, lhs, rhs);
  100. break;
  101. case BinaryOp::GreaterThan:
  102. generator.emit<Bytecode::Op::GreaterThan>(dst, lhs, rhs);
  103. break;
  104. case BinaryOp::GreaterThanEquals:
  105. generator.emit<Bytecode::Op::GreaterThanEquals>(dst, lhs, rhs);
  106. break;
  107. case BinaryOp::LessThan:
  108. generator.emit<Bytecode::Op::LessThan>(dst, lhs, rhs);
  109. break;
  110. case BinaryOp::LessThanEquals:
  111. generator.emit<Bytecode::Op::LessThanEquals>(dst, lhs, rhs);
  112. break;
  113. case BinaryOp::LooselyInequals:
  114. generator.emit<Bytecode::Op::LooselyInequals>(dst, lhs, rhs);
  115. break;
  116. case BinaryOp::LooselyEquals:
  117. generator.emit<Bytecode::Op::LooselyEquals>(dst, lhs, rhs);
  118. break;
  119. case BinaryOp::StrictlyInequals:
  120. generator.emit<Bytecode::Op::StrictlyInequals>(dst, lhs, rhs);
  121. break;
  122. case BinaryOp::StrictlyEquals:
  123. generator.emit<Bytecode::Op::StrictlyEquals>(dst, lhs, rhs);
  124. break;
  125. case BinaryOp::BitwiseAnd:
  126. generator.emit<Bytecode::Op::BitwiseAnd>(dst, lhs, rhs);
  127. break;
  128. case BinaryOp::BitwiseOr:
  129. generator.emit<Bytecode::Op::BitwiseOr>(dst, lhs, rhs);
  130. break;
  131. case BinaryOp::BitwiseXor:
  132. generator.emit<Bytecode::Op::BitwiseXor>(dst, lhs, rhs);
  133. break;
  134. case BinaryOp::LeftShift:
  135. generator.emit<Bytecode::Op::LeftShift>(dst, lhs, rhs);
  136. break;
  137. case BinaryOp::RightShift:
  138. generator.emit<Bytecode::Op::RightShift>(dst, lhs, rhs);
  139. break;
  140. case BinaryOp::UnsignedRightShift:
  141. generator.emit<Bytecode::Op::UnsignedRightShift>(dst, lhs, rhs);
  142. break;
  143. case BinaryOp::In:
  144. generator.emit<Bytecode::Op::In>(dst, lhs, rhs);
  145. break;
  146. case BinaryOp::InstanceOf:
  147. generator.emit<Bytecode::Op::InstanceOf>(dst, lhs, rhs);
  148. break;
  149. default:
  150. VERIFY_NOT_REACHED();
  151. }
  152. return dst;
  153. }
  154. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> LogicalExpression::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  155. {
  156. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  157. auto dst = choose_dst(generator, preferred_dst);
  158. auto lhs = TRY(m_lhs->generate_bytecode(generator, preferred_dst)).value();
  159. // FIXME: Only mov lhs into dst in case lhs is the value taken.
  160. generator.emit<Bytecode::Op::Mov>(dst, lhs);
  161. // lhs
  162. // jump op (true) end (false) rhs
  163. // rhs
  164. // jump always (true) end
  165. // end
  166. auto& rhs_block = generator.make_block();
  167. auto& end_block = generator.make_block();
  168. switch (m_op) {
  169. case LogicalOp::And:
  170. generator.emit<Bytecode::Op::JumpIf>(
  171. lhs,
  172. Bytecode::Label { rhs_block },
  173. Bytecode::Label { end_block });
  174. break;
  175. case LogicalOp::Or:
  176. generator.emit<Bytecode::Op::JumpIf>(
  177. lhs,
  178. Bytecode::Label { end_block },
  179. Bytecode::Label { rhs_block });
  180. break;
  181. case LogicalOp::NullishCoalescing:
  182. generator.emit<Bytecode::Op::JumpNullish>(
  183. lhs,
  184. Bytecode::Label { rhs_block },
  185. Bytecode::Label { end_block });
  186. break;
  187. default:
  188. VERIFY_NOT_REACHED();
  189. }
  190. generator.switch_to_basic_block(rhs_block);
  191. auto rhs = TRY(m_rhs->generate_bytecode(generator)).value();
  192. generator.emit<Bytecode::Op::Mov>(dst, rhs);
  193. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { end_block });
  194. generator.switch_to_basic_block(end_block);
  195. return dst;
  196. }
  197. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> UnaryExpression::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  198. {
  199. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  200. if (m_op == UnaryOp::Delete)
  201. return generator.emit_delete_reference(m_lhs);
  202. Optional<ScopedOperand> src;
  203. // Typeof needs some special handling for when the LHS is an Identifier. Namely, it shouldn't throw on unresolvable references, but instead return "undefined".
  204. if (m_op != UnaryOp::Typeof)
  205. src = TRY(m_lhs->generate_bytecode(generator)).value();
  206. auto dst = choose_dst(generator, preferred_dst);
  207. switch (m_op) {
  208. case UnaryOp::BitwiseNot:
  209. generator.emit<Bytecode::Op::BitwiseNot>(dst, *src);
  210. break;
  211. case UnaryOp::Not:
  212. generator.emit<Bytecode::Op::Not>(dst, *src);
  213. break;
  214. case UnaryOp::Plus:
  215. generator.emit<Bytecode::Op::UnaryPlus>(dst, *src);
  216. break;
  217. case UnaryOp::Minus:
  218. generator.emit<Bytecode::Op::UnaryMinus>(dst, *src);
  219. break;
  220. case UnaryOp::Typeof:
  221. if (is<Identifier>(*m_lhs)) {
  222. auto& identifier = static_cast<Identifier const&>(*m_lhs);
  223. if (!identifier.is_local()) {
  224. generator.emit<Bytecode::Op::TypeofVariable>(dst, generator.intern_identifier(identifier.string()));
  225. break;
  226. }
  227. }
  228. src = TRY(m_lhs->generate_bytecode(generator)).value();
  229. generator.emit<Bytecode::Op::Typeof>(dst, *src);
  230. break;
  231. case UnaryOp::Void:
  232. return generator.add_constant(js_undefined());
  233. case UnaryOp::Delete: // Delete is implemented above.
  234. default:
  235. VERIFY_NOT_REACHED();
  236. }
  237. return dst;
  238. }
  239. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> NumericLiteral::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  240. {
  241. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  242. return generator.add_constant(Value(m_value), Bytecode::Generator::DeduplicateConstant::No);
  243. }
  244. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> BooleanLiteral::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  245. {
  246. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  247. return generator.add_constant(Value(m_value));
  248. }
  249. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> NullLiteral::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  250. {
  251. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  252. return generator.add_constant(js_null());
  253. }
  254. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> BigIntLiteral::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  255. {
  256. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  257. // 1. Return the NumericValue of NumericLiteral as defined in 12.8.3.
  258. auto integer = [&] {
  259. if (m_value[0] == '0' && m_value.length() >= 3)
  260. if (m_value[1] == 'x' || m_value[1] == 'X')
  261. return MUST(Crypto::SignedBigInteger::from_base(16, m_value.substring(2, m_value.length() - 3)));
  262. if (m_value[1] == 'o' || m_value[1] == 'O')
  263. return MUST(Crypto::SignedBigInteger::from_base(8, m_value.substring(2, m_value.length() - 3)));
  264. if (m_value[1] == 'b' || m_value[1] == 'B')
  265. return MUST(Crypto::SignedBigInteger::from_base(2, m_value.substring(2, m_value.length() - 3)));
  266. return MUST(Crypto::SignedBigInteger::from_base(10, m_value.substring(0, m_value.length() - 1)));
  267. }();
  268. return generator.add_constant(BigInt::create(generator.vm(), move(integer)), Bytecode::Generator::DeduplicateConstant::No);
  269. }
  270. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> StringLiteral::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  271. {
  272. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  273. return generator.add_constant(PrimitiveString::create(generator.vm(), m_value), Bytecode::Generator::DeduplicateConstant::No);
  274. }
  275. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> RegExpLiteral::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  276. {
  277. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  278. auto source_index = generator.intern_string(m_pattern);
  279. auto flags_index = generator.intern_string(m_flags);
  280. auto regex_index = generator.intern_regex(Bytecode::ParsedRegex {
  281. .regex = m_parsed_regex,
  282. .pattern = m_parsed_pattern,
  283. .flags = m_parsed_flags,
  284. });
  285. auto dst = choose_dst(generator, preferred_dst);
  286. generator.emit<Bytecode::Op::NewRegExp>(dst, source_index, flags_index, regex_index);
  287. return dst;
  288. }
  289. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> Identifier::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  290. {
  291. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  292. if (is_local()) {
  293. auto local = generator.local(local_variable_index());
  294. if (!generator.is_local_initialized(local_variable_index())) {
  295. generator.emit<Bytecode::Op::ThrowIfTDZ>(local);
  296. }
  297. return local;
  298. }
  299. auto dst = choose_dst(generator, preferred_dst);
  300. if (is_global()) {
  301. generator.emit<Bytecode::Op::GetGlobal>(dst, generator.intern_identifier(m_string), generator.next_global_variable_cache());
  302. } else {
  303. generator.emit<Bytecode::Op::GetVariable>(dst, generator.intern_identifier(m_string), generator.next_environment_variable_cache());
  304. }
  305. return dst;
  306. }
  307. static Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> arguments_to_array_for_call(Bytecode::Generator& generator, ReadonlySpan<CallExpression::Argument> arguments)
  308. {
  309. auto dst = generator.allocate_register();
  310. if (arguments.is_empty()) {
  311. generator.emit<Bytecode::Op::NewArray>(dst);
  312. return dst;
  313. }
  314. auto first_spread = find_if(arguments.begin(), arguments.end(), [](auto el) { return el.is_spread; });
  315. Vector<ScopedOperand> args;
  316. args.ensure_capacity(first_spread.index());
  317. for (auto it = arguments.begin(); it != first_spread; ++it) {
  318. VERIFY(!it->is_spread);
  319. auto reg = generator.allocate_register();
  320. auto value = TRY(it->value->generate_bytecode(generator)).value();
  321. generator.emit<Bytecode::Op::Mov>(reg, value);
  322. args.append(move(reg));
  323. }
  324. if (first_spread.index() != 0)
  325. generator.emit_with_extra_operand_slots<Bytecode::Op::NewArray>(args.size(), dst, args);
  326. else
  327. generator.emit<Bytecode::Op::NewArray>(dst);
  328. if (first_spread != arguments.end()) {
  329. for (auto it = first_spread; it != arguments.end(); ++it) {
  330. auto value = TRY(it->value->generate_bytecode(generator)).value();
  331. generator.emit<Bytecode::Op::ArrayAppend>(dst, value, it->is_spread);
  332. }
  333. }
  334. return dst;
  335. }
  336. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> SuperCall::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  337. {
  338. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  339. Optional<ScopedOperand> arguments;
  340. if (m_is_synthetic == IsPartOfSyntheticConstructor::Yes) {
  341. // NOTE: This is the case where we have a fake constructor(...args) { super(...args); } which
  342. // shouldn't call @@iterator of %Array.prototype%.
  343. VERIFY(m_arguments.size() == 1);
  344. VERIFY(m_arguments[0].is_spread);
  345. auto const& argument = m_arguments[0];
  346. // This generates a single argument.
  347. arguments = MUST(argument.value->generate_bytecode(generator));
  348. } else {
  349. arguments = TRY(arguments_to_array_for_call(generator, m_arguments)).value();
  350. }
  351. auto dst = choose_dst(generator, preferred_dst);
  352. generator.emit<Bytecode::Op::SuperCallWithArgumentArray>(dst, *arguments, m_is_synthetic == IsPartOfSyntheticConstructor::Yes);
  353. return dst;
  354. }
  355. static Bytecode::CodeGenerationErrorOr<void> generate_binding_pattern_bytecode(Bytecode::Generator& generator, BindingPattern const& pattern, Bytecode::Op::SetVariable::InitializationMode, ScopedOperand const& input_value, bool create_variables);
  356. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> AssignmentExpression::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  357. {
  358. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  359. if (m_op == AssignmentOp::Assignment) {
  360. // AssignmentExpression : LeftHandSideExpression = AssignmentExpression
  361. return m_lhs.visit(
  362. // 1. If LeftHandSideExpression is neither an ObjectLiteral nor an ArrayLiteral, then
  363. [&](NonnullRefPtr<Expression const> const& lhs) -> Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> {
  364. // a. Let lref be the result of evaluating LeftHandSideExpression.
  365. // b. ReturnIfAbrupt(lref).
  366. Optional<ScopedOperand> base;
  367. Optional<ScopedOperand> computed_property;
  368. Optional<ScopedOperand> this_value;
  369. bool lhs_is_super_expression = false;
  370. if (is<MemberExpression>(*lhs)) {
  371. auto& expression = static_cast<MemberExpression const&>(*lhs);
  372. lhs_is_super_expression = is<SuperExpression>(expression.object());
  373. if (!lhs_is_super_expression) {
  374. base = TRY(expression.object().generate_bytecode(generator)).value();
  375. } else {
  376. // https://tc39.es/ecma262/#sec-super-keyword-runtime-semantics-evaluation
  377. // 1. Let env be GetThisEnvironment().
  378. // 2. Let actualThis be ? env.GetThisBinding().
  379. this_value = generator.get_this();
  380. // SuperProperty : super [ Expression ]
  381. // 3. Let propertyNameReference be ? Evaluation of Expression.
  382. // 4. Let propertyNameValue be ? GetValue(propertyNameReference).
  383. }
  384. if (expression.is_computed()) {
  385. auto property = TRY(expression.property().generate_bytecode(generator)).value();
  386. computed_property = generator.allocate_register();
  387. generator.emit<Bytecode::Op::Mov>(*computed_property, property);
  388. // To be continued later with PutByValue.
  389. } else if (expression.property().is_identifier()) {
  390. // Do nothing, this will be handled by PutById later.
  391. } else if (expression.property().is_private_identifier()) {
  392. // Do nothing, this will be handled by PutPrivateById later.
  393. } else {
  394. return Bytecode::CodeGenerationError {
  395. &expression,
  396. "Unimplemented non-computed member expression"sv
  397. };
  398. }
  399. if (lhs_is_super_expression) {
  400. // 5/7. Return ? MakeSuperPropertyReference(actualThis, propertyKey, strict).
  401. // https://tc39.es/ecma262/#sec-makesuperpropertyreference
  402. // 1. Let env be GetThisEnvironment().
  403. // 2. Assert: env.HasSuperBinding() is true.
  404. // 3. Let baseValue be ? env.GetSuperBase().
  405. // 4. Return the Reference Record { [[Base]]: baseValue, [[ReferencedName]]: propertyKey, [[Strict]]: strict, [[ThisValue]]: actualThis }.
  406. base = generator.allocate_register();
  407. generator.emit<Bytecode::Op::ResolveSuperBase>(*base);
  408. }
  409. } else if (is<Identifier>(*lhs)) {
  410. // NOTE: For Identifiers, we cannot perform GetVariable and then write into the reference it retrieves, only SetVariable can do this.
  411. // FIXME: However, this breaks spec as we are doing variable lookup after evaluating the RHS. This is observable in an object environment, where we visibly perform HasOwnProperty and Get(@@unscopables) on the binded object.
  412. } else {
  413. (void)TRY(lhs->generate_bytecode(generator));
  414. }
  415. // FIXME: c. If IsAnonymousFunctionDefinition(AssignmentExpression) and IsIdentifierRef of LeftHandSideExpression are both true, then
  416. // i. Let rval be ? NamedEvaluation of AssignmentExpression with argument lref.[[ReferencedName]].
  417. // d. Else,
  418. // i. Let rref be the result of evaluating AssignmentExpression.
  419. // ii. Let rval be ? GetValue(rref).
  420. auto rval = TRY([&]() -> Bytecode::CodeGenerationErrorOr<ScopedOperand> {
  421. if (lhs->is_identifier()) {
  422. return TRY(generator.emit_named_evaluation_if_anonymous_function(*m_rhs, generator.intern_identifier(static_cast<Identifier const&>(*lhs).string()))).value();
  423. } else {
  424. return TRY(m_rhs->generate_bytecode(generator)).value();
  425. }
  426. }());
  427. // e. Perform ? PutValue(lref, rval).
  428. if (is<Identifier>(*lhs)) {
  429. auto& identifier = static_cast<Identifier const&>(*lhs);
  430. generator.emit_set_variable(identifier, rval);
  431. } else if (is<MemberExpression>(*lhs)) {
  432. auto& expression = static_cast<MemberExpression const&>(*lhs);
  433. auto base_identifier = generator.intern_identifier_for_expression(expression.object());
  434. if (expression.is_computed()) {
  435. if (!lhs_is_super_expression)
  436. generator.emit<Bytecode::Op::PutByValue>(*base, *computed_property, rval, Bytecode::Op::PropertyKind::KeyValue, move(base_identifier));
  437. else
  438. generator.emit<Bytecode::Op::PutByValueWithThis>(*base, *computed_property, *this_value, rval);
  439. } else if (expression.property().is_identifier()) {
  440. auto identifier_table_ref = generator.intern_identifier(verify_cast<Identifier>(expression.property()).string());
  441. if (!lhs_is_super_expression)
  442. generator.emit<Bytecode::Op::PutById>(*base, identifier_table_ref, rval, Bytecode::Op::PropertyKind::KeyValue, generator.next_property_lookup_cache(), move(base_identifier));
  443. else
  444. generator.emit<Bytecode::Op::PutByIdWithThis>(*base, *this_value, identifier_table_ref, rval, Bytecode::Op::PropertyKind::KeyValue, generator.next_property_lookup_cache());
  445. } else if (expression.property().is_private_identifier()) {
  446. auto identifier_table_ref = generator.intern_identifier(verify_cast<PrivateIdentifier>(expression.property()).string());
  447. generator.emit<Bytecode::Op::PutPrivateById>(*base, identifier_table_ref, rval);
  448. } else {
  449. return Bytecode::CodeGenerationError {
  450. &expression,
  451. "Unimplemented non-computed member expression"sv
  452. };
  453. }
  454. } else {
  455. return Bytecode::CodeGenerationError {
  456. lhs,
  457. "Unimplemented/invalid node used a reference"sv
  458. };
  459. }
  460. // f. Return rval.
  461. return rval;
  462. },
  463. // 2. Let assignmentPattern be the AssignmentPattern that is covered by LeftHandSideExpression.
  464. [&](NonnullRefPtr<BindingPattern const> const& pattern) -> Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> {
  465. // 3. Let rref be the result of evaluating AssignmentExpression.
  466. // 4. Let rval be ? GetValue(rref).
  467. auto rval = TRY(m_rhs->generate_bytecode(generator)).value();
  468. // 5. Perform ? DestructuringAssignmentEvaluation of assignmentPattern with argument rval.
  469. TRY(generate_binding_pattern_bytecode(generator, pattern, Bytecode::Op::SetVariable::InitializationMode::Set, rval, false));
  470. // 6. Return rval.
  471. return rval;
  472. });
  473. }
  474. VERIFY(m_lhs.has<NonnullRefPtr<Expression const>>());
  475. auto& lhs_expression = m_lhs.get<NonnullRefPtr<Expression const>>();
  476. auto reference_operands = TRY(generator.emit_load_from_reference(lhs_expression));
  477. auto lhs = reference_operands.loaded_value.value();
  478. Bytecode::BasicBlock* rhs_block_ptr { nullptr };
  479. Bytecode::BasicBlock* lhs_block_ptr { nullptr };
  480. Bytecode::BasicBlock* end_block_ptr { nullptr };
  481. // Logical assignments short circuit.
  482. if (m_op == AssignmentOp::AndAssignment) { // &&=
  483. rhs_block_ptr = &generator.make_block();
  484. lhs_block_ptr = &generator.make_block();
  485. end_block_ptr = &generator.make_block();
  486. generator.emit<Bytecode::Op::JumpIf>(
  487. lhs,
  488. Bytecode::Label { *rhs_block_ptr },
  489. Bytecode::Label { *lhs_block_ptr });
  490. } else if (m_op == AssignmentOp::OrAssignment) { // ||=
  491. rhs_block_ptr = &generator.make_block();
  492. lhs_block_ptr = &generator.make_block();
  493. end_block_ptr = &generator.make_block();
  494. generator.emit<Bytecode::Op::JumpIf>(
  495. lhs,
  496. Bytecode::Label { *lhs_block_ptr },
  497. Bytecode::Label { *rhs_block_ptr });
  498. } else if (m_op == AssignmentOp::NullishAssignment) { // ??=
  499. rhs_block_ptr = &generator.make_block();
  500. lhs_block_ptr = &generator.make_block();
  501. end_block_ptr = &generator.make_block();
  502. generator.emit<Bytecode::Op::JumpNullish>(
  503. lhs,
  504. Bytecode::Label { *rhs_block_ptr },
  505. Bytecode::Label { *lhs_block_ptr });
  506. }
  507. if (rhs_block_ptr)
  508. generator.switch_to_basic_block(*rhs_block_ptr);
  509. auto rhs = TRY([&]() -> Bytecode::CodeGenerationErrorOr<ScopedOperand> {
  510. if (lhs_expression->is_identifier()) {
  511. return TRY(generator.emit_named_evaluation_if_anonymous_function(*m_rhs, generator.intern_identifier(static_cast<Identifier const&>(*lhs_expression).string()))).value();
  512. }
  513. return TRY(m_rhs->generate_bytecode(generator)).value();
  514. }());
  515. auto dst = choose_dst(generator, preferred_dst);
  516. switch (m_op) {
  517. case AssignmentOp::AdditionAssignment:
  518. generator.emit<Bytecode::Op::Add>(dst, lhs, rhs);
  519. break;
  520. case AssignmentOp::SubtractionAssignment:
  521. generator.emit<Bytecode::Op::Sub>(dst, lhs, rhs);
  522. break;
  523. case AssignmentOp::MultiplicationAssignment:
  524. generator.emit<Bytecode::Op::Mul>(dst, lhs, rhs);
  525. break;
  526. case AssignmentOp::DivisionAssignment:
  527. generator.emit<Bytecode::Op::Div>(dst, lhs, rhs);
  528. break;
  529. case AssignmentOp::ModuloAssignment:
  530. generator.emit<Bytecode::Op::Mod>(dst, lhs, rhs);
  531. break;
  532. case AssignmentOp::ExponentiationAssignment:
  533. generator.emit<Bytecode::Op::Exp>(dst, lhs, rhs);
  534. break;
  535. case AssignmentOp::BitwiseAndAssignment:
  536. generator.emit<Bytecode::Op::BitwiseAnd>(dst, lhs, rhs);
  537. break;
  538. case AssignmentOp::BitwiseOrAssignment:
  539. generator.emit<Bytecode::Op::BitwiseOr>(dst, lhs, rhs);
  540. break;
  541. case AssignmentOp::BitwiseXorAssignment:
  542. generator.emit<Bytecode::Op::BitwiseXor>(dst, lhs, rhs);
  543. break;
  544. case AssignmentOp::LeftShiftAssignment:
  545. generator.emit<Bytecode::Op::LeftShift>(dst, lhs, rhs);
  546. break;
  547. case AssignmentOp::RightShiftAssignment:
  548. generator.emit<Bytecode::Op::RightShift>(dst, lhs, rhs);
  549. break;
  550. case AssignmentOp::UnsignedRightShiftAssignment:
  551. generator.emit<Bytecode::Op::UnsignedRightShift>(dst, lhs, rhs);
  552. break;
  553. case AssignmentOp::AndAssignment:
  554. case AssignmentOp::OrAssignment:
  555. case AssignmentOp::NullishAssignment:
  556. generator.emit<Bytecode::Op::Mov>(dst, rhs);
  557. break;
  558. default:
  559. return Bytecode::CodeGenerationError {
  560. this,
  561. "Unimplemented operation"sv,
  562. };
  563. }
  564. if (lhs_expression->is_identifier())
  565. generator.emit_set_variable(static_cast<Identifier const&>(*lhs_expression), dst);
  566. else
  567. (void)TRY(generator.emit_store_to_reference(reference_operands, dst));
  568. if (rhs_block_ptr) {
  569. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { *end_block_ptr });
  570. }
  571. if (lhs_block_ptr) {
  572. generator.switch_to_basic_block(*lhs_block_ptr);
  573. generator.emit<Bytecode::Op::Mov>(dst, lhs);
  574. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { *end_block_ptr });
  575. }
  576. if (end_block_ptr) {
  577. generator.switch_to_basic_block(*end_block_ptr);
  578. }
  579. return dst;
  580. }
  581. // 14.13.3 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-labelled-statements-runtime-semantics-evaluation
  582. // LabelledStatement : LabelIdentifier : LabelledItem
  583. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> LabelledStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  584. {
  585. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  586. // Return ? LabelledEvaluation of this LabelledStatement with argument « ».
  587. return generate_labelled_evaluation(generator, {});
  588. }
  589. // 14.13.4 Runtime Semantics: LabelledEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-labelledevaluation
  590. // LabelledStatement : LabelIdentifier : LabelledItem
  591. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> LabelledStatement::generate_labelled_evaluation(Bytecode::Generator& generator, Vector<DeprecatedFlyString> const& label_set, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  592. {
  593. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  594. // Convert the m_labelled_item NNRP to a reference early so we don't have to do it every single time we want to use it.
  595. auto const& labelled_item = *m_labelled_item;
  596. // 1. Let label be the StringValue of LabelIdentifier.
  597. // NOTE: Not necessary, this is m_label.
  598. // 2. Let newLabelSet be the list-concatenation of labelSet and « label ».
  599. // FIXME: Avoid copy here.
  600. auto new_label_set = label_set;
  601. new_label_set.append(m_label);
  602. // 3. Let stmtResult be LabelledEvaluation of LabelledItem with argument newLabelSet.
  603. Optional<ScopedOperand> stmt_result;
  604. if (is<IterationStatement>(labelled_item)) {
  605. auto const& iteration_statement = static_cast<IterationStatement const&>(labelled_item);
  606. stmt_result = TRY(iteration_statement.generate_labelled_evaluation(generator, new_label_set));
  607. } else if (is<SwitchStatement>(labelled_item)) {
  608. auto const& switch_statement = static_cast<SwitchStatement const&>(labelled_item);
  609. stmt_result = TRY(switch_statement.generate_labelled_evaluation(generator, new_label_set));
  610. } else if (is<LabelledStatement>(labelled_item)) {
  611. auto const& labelled_statement = static_cast<LabelledStatement const&>(labelled_item);
  612. stmt_result = TRY(labelled_statement.generate_labelled_evaluation(generator, new_label_set));
  613. } else {
  614. auto& labelled_break_block = generator.make_block();
  615. // NOTE: We do not need a continuable scope as `continue;` is not allowed outside of iteration statements, throwing a SyntaxError in the parser.
  616. generator.begin_breakable_scope(Bytecode::Label { labelled_break_block }, new_label_set);
  617. stmt_result = TRY(labelled_item.generate_bytecode(generator));
  618. generator.end_breakable_scope();
  619. if (!generator.is_current_block_terminated()) {
  620. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { labelled_break_block });
  621. }
  622. generator.switch_to_basic_block(labelled_break_block);
  623. }
  624. // 4. If stmtResult.[[Type]] is break and SameValue(stmtResult.[[Target]], label) is true, then
  625. // a. Set stmtResult to NormalCompletion(stmtResult.[[Value]]).
  626. // NOTE: These steps are performed by making labelled break jump straight to the appropriate break block, which preserves the statement result's value in the accumulator.
  627. // 5. Return Completion(stmtResult).
  628. return stmt_result;
  629. }
  630. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> IterationStatement::generate_labelled_evaluation(Bytecode::Generator&, Vector<DeprecatedFlyString> const&, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  631. {
  632. return Bytecode::CodeGenerationError {
  633. this,
  634. "Missing generate_labelled_evaluation()"sv,
  635. };
  636. }
  637. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> WhileStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  638. {
  639. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  640. return generate_labelled_evaluation(generator, {});
  641. }
  642. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> WhileStatement::generate_labelled_evaluation(Bytecode::Generator& generator, Vector<DeprecatedFlyString> const& label_set, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  643. {
  644. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  645. // test
  646. // jump if_false (true) end (false) body
  647. // body
  648. // jump always (true) test
  649. // end
  650. auto& test_block = generator.make_block();
  651. auto& body_block = generator.make_block();
  652. auto& end_block = generator.make_block();
  653. auto result = generator.allocate_register();
  654. generator.emit<Bytecode::Op::Mov>(result, generator.add_constant(js_undefined()));
  655. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { test_block });
  656. generator.switch_to_basic_block(test_block);
  657. auto test = TRY(m_test->generate_bytecode(generator)).value();
  658. generator.emit<Bytecode::Op::JumpIf>(
  659. test,
  660. Bytecode::Label { body_block },
  661. Bytecode::Label { end_block });
  662. generator.switch_to_basic_block(body_block);
  663. generator.begin_continuable_scope(Bytecode::Label { test_block }, label_set);
  664. generator.begin_breakable_scope(Bytecode::Label { end_block }, label_set);
  665. auto body = TRY(m_body->generate_bytecode(generator));
  666. generator.end_breakable_scope();
  667. generator.end_continuable_scope();
  668. if (!generator.is_current_block_terminated()) {
  669. if (body.has_value())
  670. generator.emit<Bytecode::Op::Mov>(result, body.value());
  671. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { test_block });
  672. }
  673. generator.switch_to_basic_block(end_block);
  674. return result;
  675. }
  676. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> DoWhileStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  677. {
  678. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  679. return generate_labelled_evaluation(generator, {});
  680. }
  681. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> DoWhileStatement::generate_labelled_evaluation(Bytecode::Generator& generator, Vector<DeprecatedFlyString> const& label_set, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  682. {
  683. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  684. // jump always (true) body
  685. // test
  686. // jump if_false (true) end (false) body
  687. // body
  688. // jump always (true) test
  689. // end
  690. auto& body_block = generator.make_block();
  691. auto& test_block = generator.make_block();
  692. auto& load_result_and_jump_to_end_block = generator.make_block();
  693. auto& end_block = generator.make_block();
  694. auto completion_value = generator.allocate_register();
  695. generator.emit<Bytecode::Op::Mov>(completion_value, generator.add_constant(js_undefined()));
  696. // jump to the body block
  697. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { body_block });
  698. generator.switch_to_basic_block(test_block);
  699. auto test = TRY(m_test->generate_bytecode(generator)).value();
  700. generator.emit<Bytecode::Op::JumpIf>(
  701. test,
  702. Bytecode::Label { body_block },
  703. Bytecode::Label { load_result_and_jump_to_end_block });
  704. generator.switch_to_basic_block(body_block);
  705. generator.begin_continuable_scope(Bytecode::Label { test_block }, label_set);
  706. generator.begin_breakable_scope(Bytecode::Label { end_block }, label_set);
  707. auto body_result = TRY(m_body->generate_bytecode(generator));
  708. generator.end_breakable_scope();
  709. generator.end_continuable_scope();
  710. if (!generator.is_current_block_terminated()) {
  711. if (body_result.has_value())
  712. generator.emit<Bytecode::Op::Mov>(completion_value, body_result.value());
  713. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { test_block });
  714. }
  715. generator.switch_to_basic_block(load_result_and_jump_to_end_block);
  716. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { end_block });
  717. generator.switch_to_basic_block(end_block);
  718. return completion_value;
  719. }
  720. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ForStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  721. {
  722. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  723. return generate_labelled_evaluation(generator, {});
  724. }
  725. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ForStatement::generate_labelled_evaluation(Bytecode::Generator& generator, Vector<DeprecatedFlyString> const& label_set, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  726. {
  727. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  728. // init
  729. // jump always (true) test
  730. // test
  731. // jump if_true (true) body (false) end
  732. // body
  733. // jump always (true) update
  734. // update
  735. // jump always (true) test
  736. // end
  737. // If 'test' is missing, fuse the 'test' and 'body' basic blocks
  738. // If 'update' is missing, fuse the 'body' and 'update' basic blocks
  739. Bytecode::BasicBlock* test_block_ptr { nullptr };
  740. Bytecode::BasicBlock* body_block_ptr { nullptr };
  741. Bytecode::BasicBlock* update_block_ptr { nullptr };
  742. bool has_lexical_environment = false;
  743. if (m_init) {
  744. if (m_init->is_variable_declaration()) {
  745. auto& variable_declaration = verify_cast<VariableDeclaration>(*m_init);
  746. auto has_non_local_variables = false;
  747. MUST(variable_declaration.for_each_bound_identifier([&](auto const& identifier) {
  748. if (!identifier.is_local())
  749. has_non_local_variables = true;
  750. }));
  751. if (variable_declaration.is_lexical_declaration() && has_non_local_variables) {
  752. has_lexical_environment = true;
  753. // FIXME: Is Block correct?
  754. generator.begin_variable_scope();
  755. bool is_const = variable_declaration.is_constant_declaration();
  756. // NOTE: Nothing in the callback throws an exception.
  757. MUST(variable_declaration.for_each_bound_identifier([&](auto const& identifier) {
  758. if (identifier.is_local())
  759. return;
  760. auto index = generator.intern_identifier(identifier.string());
  761. generator.emit<Bytecode::Op::CreateVariable>(index, Bytecode::Op::EnvironmentMode::Lexical, is_const);
  762. }));
  763. }
  764. }
  765. (void)TRY(m_init->generate_bytecode(generator));
  766. }
  767. body_block_ptr = &generator.make_block();
  768. if (m_update)
  769. update_block_ptr = &generator.make_block();
  770. else
  771. update_block_ptr = body_block_ptr;
  772. if (m_test)
  773. test_block_ptr = &generator.make_block();
  774. else
  775. test_block_ptr = body_block_ptr;
  776. auto& end_block = generator.make_block();
  777. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { *test_block_ptr });
  778. if (m_test) {
  779. generator.switch_to_basic_block(*test_block_ptr);
  780. auto test = TRY(m_test->generate_bytecode(generator)).value();
  781. generator.emit<Bytecode::Op::JumpIf>(
  782. test,
  783. Bytecode::Label { *body_block_ptr },
  784. Bytecode::Label { end_block });
  785. }
  786. if (m_update) {
  787. generator.switch_to_basic_block(*update_block_ptr);
  788. (void)TRY(m_update->generate_bytecode(generator));
  789. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { *test_block_ptr });
  790. }
  791. generator.switch_to_basic_block(*body_block_ptr);
  792. generator.begin_continuable_scope(Bytecode::Label { m_update ? *update_block_ptr : *test_block_ptr }, label_set);
  793. generator.begin_breakable_scope(Bytecode::Label { end_block }, label_set);
  794. auto body_result = TRY(m_body->generate_bytecode(generator));
  795. generator.end_breakable_scope();
  796. generator.end_continuable_scope();
  797. if (!generator.is_current_block_terminated()) {
  798. if (m_update) {
  799. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { *update_block_ptr });
  800. } else {
  801. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { *test_block_ptr });
  802. }
  803. }
  804. generator.switch_to_basic_block(end_block);
  805. if (has_lexical_environment)
  806. generator.end_variable_scope();
  807. return body_result;
  808. }
  809. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ObjectExpression::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  810. {
  811. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  812. auto object = generator.allocate_register();
  813. generator.emit<Bytecode::Op::NewObject>(object);
  814. if (m_properties.is_empty())
  815. return object;
  816. generator.push_home_object(object);
  817. for (auto& property : m_properties) {
  818. Bytecode::Op::PropertyKind property_kind;
  819. switch (property->type()) {
  820. case ObjectProperty::Type::KeyValue:
  821. property_kind = Bytecode::Op::PropertyKind::DirectKeyValue;
  822. break;
  823. case ObjectProperty::Type::Getter:
  824. property_kind = Bytecode::Op::PropertyKind::Getter;
  825. break;
  826. case ObjectProperty::Type::Setter:
  827. property_kind = Bytecode::Op::PropertyKind::Setter;
  828. break;
  829. case ObjectProperty::Type::Spread:
  830. property_kind = Bytecode::Op::PropertyKind::Spread;
  831. break;
  832. case ObjectProperty::Type::ProtoSetter:
  833. property_kind = Bytecode::Op::PropertyKind::ProtoSetter;
  834. break;
  835. }
  836. if (is<StringLiteral>(property->key())) {
  837. auto& string_literal = static_cast<StringLiteral const&>(property->key());
  838. Bytecode::IdentifierTableIndex key_name = generator.intern_identifier(string_literal.value());
  839. Optional<ScopedOperand> value;
  840. if (property_kind == Bytecode::Op::PropertyKind::ProtoSetter) {
  841. value = TRY(property->value().generate_bytecode(generator)).value();
  842. } else if (property_kind != Bytecode::Op::PropertyKind::Spread) {
  843. ByteString identifier = string_literal.value();
  844. if (property_kind == Bytecode::Op::PropertyKind::Getter)
  845. identifier = ByteString::formatted("get {}", identifier);
  846. else if (property_kind == Bytecode::Op::PropertyKind::Setter)
  847. identifier = ByteString::formatted("set {}", identifier);
  848. auto name = generator.intern_identifier(identifier);
  849. value = TRY(generator.emit_named_evaluation_if_anonymous_function(property->value(), name)).value();
  850. } else {
  851. // Spread the key.
  852. value = TRY(property->key().generate_bytecode(generator)).value();
  853. }
  854. generator.emit<Bytecode::Op::PutById>(object, key_name, *value, property_kind, generator.next_property_lookup_cache());
  855. } else {
  856. auto property_name = TRY(property->key().generate_bytecode(generator)).value();
  857. Optional<ScopedOperand> value;
  858. if (property_kind != Bytecode::Op::PropertyKind::Spread)
  859. value = TRY(property->value().generate_bytecode(generator)).value();
  860. else
  861. value = property_name;
  862. generator.emit<Bytecode::Op::PutByValue>(object, property_name, *value, property_kind);
  863. }
  864. }
  865. generator.pop_home_object();
  866. return object;
  867. }
  868. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ArrayExpression::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  869. {
  870. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  871. if (m_elements.is_empty()) {
  872. auto dst = choose_dst(generator, preferred_dst);
  873. generator.emit<Bytecode::Op::NewArray>(dst);
  874. return dst;
  875. }
  876. if (all_of(m_elements, [](auto element) { return !element || is<PrimitiveLiteral>(*element); })) {
  877. // If all elements are constant primitives, we can just emit a single instruction to initialize the array,
  878. // instead of emitting instructions to manually evaluate them one-by-one
  879. Vector<Value> values;
  880. values.resize(m_elements.size());
  881. for (auto i = 0u; i < m_elements.size(); ++i) {
  882. if (!m_elements[i])
  883. continue;
  884. values[i] = static_cast<PrimitiveLiteral const&>(*m_elements[i]).value();
  885. }
  886. auto dst = choose_dst(generator, preferred_dst);
  887. generator.emit_with_extra_value_slots<Bytecode::Op::NewPrimitiveArray>(values.size(), dst, values);
  888. return dst;
  889. }
  890. auto first_spread = find_if(m_elements.begin(), m_elements.end(), [](auto el) { return el && is<SpreadExpression>(*el); });
  891. Vector<ScopedOperand> args;
  892. args.ensure_capacity(m_elements.size());
  893. for (auto it = m_elements.begin(); it != first_spread; ++it) {
  894. if (*it) {
  895. auto reg = generator.allocate_register();
  896. auto value = TRY((*it)->generate_bytecode(generator)).value();
  897. generator.emit<Bytecode::Op::Mov>(Bytecode::Operand(reg), value);
  898. args.append(move(reg));
  899. } else {
  900. args.append(generator.add_constant(Value()));
  901. }
  902. }
  903. auto dst = choose_dst(generator, preferred_dst);
  904. if (first_spread.index() != 0) {
  905. generator.emit_with_extra_operand_slots<Bytecode::Op::NewArray>(args.size(), dst, args);
  906. } else {
  907. generator.emit<Bytecode::Op::NewArray>(dst);
  908. }
  909. if (first_spread != m_elements.end()) {
  910. for (auto it = first_spread; it != m_elements.end(); ++it) {
  911. if (!*it) {
  912. generator.emit<Bytecode::Op::ArrayAppend>(dst, generator.add_constant(Value()), false);
  913. } else {
  914. auto value = TRY((*it)->generate_bytecode(generator)).value();
  915. generator.emit<Bytecode::Op::ArrayAppend>(dst, value, *it && is<SpreadExpression>(**it));
  916. }
  917. }
  918. }
  919. return dst;
  920. }
  921. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> MemberExpression::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  922. {
  923. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  924. auto reference = TRY(generator.emit_load_from_reference(*this, preferred_dst));
  925. return reference.loaded_value;
  926. }
  927. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> FunctionDeclaration::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  928. {
  929. if (m_is_hoisted) {
  930. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  931. auto index = generator.intern_identifier(name());
  932. auto value = generator.allocate_register();
  933. generator.emit<Bytecode::Op::GetVariable>(value, index, generator.next_environment_variable_cache());
  934. generator.emit<Bytecode::Op::SetVariable>(index, value, generator.next_environment_variable_cache(), Bytecode::Op::SetVariable::InitializationMode::Set, Bytecode::Op::EnvironmentMode::Var);
  935. }
  936. return Optional<ScopedOperand> {};
  937. }
  938. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> FunctionExpression::generate_bytecode_with_lhs_name(Bytecode::Generator& generator, Optional<Bytecode::IdentifierTableIndex> lhs_name, Optional<ScopedOperand> preferred_dst) const
  939. {
  940. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  941. bool has_name = !name().is_empty();
  942. Optional<Bytecode::IdentifierTableIndex> name_identifier;
  943. if (has_name) {
  944. generator.begin_variable_scope();
  945. name_identifier = generator.intern_identifier(name());
  946. generator.emit<Bytecode::Op::CreateVariable>(*name_identifier, Bytecode::Op::EnvironmentMode::Lexical, true);
  947. }
  948. auto new_function = choose_dst(generator, preferred_dst);
  949. generator.emit_new_function(new_function, *this, lhs_name);
  950. if (has_name) {
  951. generator.emit<Bytecode::Op::SetVariable>(*name_identifier, new_function, generator.next_environment_variable_cache(), Bytecode::Op::SetVariable::InitializationMode::Initialize, Bytecode::Op::EnvironmentMode::Lexical);
  952. generator.end_variable_scope();
  953. }
  954. return new_function;
  955. }
  956. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> FunctionExpression::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  957. {
  958. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  959. return generate_bytecode_with_lhs_name(generator, {}, preferred_dst);
  960. }
  961. static Bytecode::CodeGenerationErrorOr<void> generate_object_binding_pattern_bytecode(Bytecode::Generator& generator, BindingPattern const& pattern, Bytecode::Op::SetVariable::InitializationMode initialization_mode, ScopedOperand const& object, bool create_variables)
  962. {
  963. generator.emit<Bytecode::Op::ThrowIfNullish>(object);
  964. Vector<ScopedOperand> excluded_property_names;
  965. auto has_rest = false;
  966. if (pattern.entries.size() > 0)
  967. has_rest = pattern.entries[pattern.entries.size() - 1].is_rest;
  968. for (auto& [name, alias, initializer, is_rest] : pattern.entries) {
  969. if (is_rest) {
  970. VERIFY(!initializer);
  971. if (name.has<NonnullRefPtr<Identifier const>>()) {
  972. auto identifier = name.get<NonnullRefPtr<Identifier const>>();
  973. auto interned_identifier = generator.intern_identifier(identifier->string());
  974. auto copy = generator.allocate_register();
  975. generator.emit_with_extra_operand_slots<Bytecode::Op::CopyObjectExcludingProperties>(
  976. excluded_property_names.size(), copy, object, excluded_property_names);
  977. if (create_variables) {
  978. VERIFY(!identifier->is_local());
  979. generator.emit<Bytecode::Op::CreateVariable>(interned_identifier, Bytecode::Op::EnvironmentMode::Lexical, false);
  980. }
  981. generator.emit_set_variable(*identifier, copy, initialization_mode);
  982. return {};
  983. }
  984. if (alias.has<NonnullRefPtr<MemberExpression const>>()) {
  985. auto copy = generator.allocate_register();
  986. generator.emit_with_extra_operand_slots<Bytecode::Op::CopyObjectExcludingProperties>(
  987. excluded_property_names.size(), copy, object, excluded_property_names);
  988. (void)TRY(generator.emit_store_to_reference(alias.get<NonnullRefPtr<MemberExpression const>>(), object));
  989. return {};
  990. }
  991. VERIFY_NOT_REACHED();
  992. }
  993. auto value = generator.allocate_register();
  994. if (name.has<NonnullRefPtr<Identifier const>>()) {
  995. auto const& identifier = name.get<NonnullRefPtr<Identifier const>>()->string();
  996. if (has_rest) {
  997. excluded_property_names.append(generator.add_constant(PrimitiveString::create(generator.vm(), identifier), Bytecode::Generator::DeduplicateConstant::No));
  998. }
  999. generator.emit_get_by_id(value, object, generator.intern_identifier(identifier));
  1000. } else {
  1001. auto expression = name.get<NonnullRefPtr<Expression const>>();
  1002. auto property_name = TRY(expression->generate_bytecode(generator)).value();
  1003. if (has_rest) {
  1004. auto excluded_name = generator.allocate_register();
  1005. excluded_property_names.append(excluded_name);
  1006. generator.emit<Bytecode::Op::Mov>(excluded_name, property_name);
  1007. }
  1008. generator.emit<Bytecode::Op::GetByValue>(value, object, property_name);
  1009. }
  1010. if (initializer) {
  1011. auto& if_undefined_block = generator.make_block();
  1012. auto& if_not_undefined_block = generator.make_block();
  1013. generator.emit<Bytecode::Op::JumpUndefined>(
  1014. value,
  1015. Bytecode::Label { if_undefined_block },
  1016. Bytecode::Label { if_not_undefined_block });
  1017. generator.switch_to_basic_block(if_undefined_block);
  1018. Optional<ScopedOperand> default_value;
  1019. if (auto const* alias_identifier = alias.get_pointer<NonnullRefPtr<Identifier const>>()) {
  1020. default_value = TRY(generator.emit_named_evaluation_if_anonymous_function(*initializer, generator.intern_identifier((*alias_identifier)->string()))).value();
  1021. } else if (auto const* lhs = name.get_pointer<NonnullRefPtr<Identifier const>>()) {
  1022. default_value = TRY(generator.emit_named_evaluation_if_anonymous_function(*initializer, generator.intern_identifier((*lhs)->string()))).value();
  1023. } else {
  1024. default_value = TRY(initializer->generate_bytecode(generator)).value();
  1025. }
  1026. generator.emit<Bytecode::Op::Mov>(value, *default_value);
  1027. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { if_not_undefined_block });
  1028. generator.switch_to_basic_block(if_not_undefined_block);
  1029. }
  1030. if (alias.has<NonnullRefPtr<BindingPattern const>>()) {
  1031. auto& binding_pattern = *alias.get<NonnullRefPtr<BindingPattern const>>();
  1032. auto nested_value = generator.allocate_register();
  1033. generator.emit<Bytecode::Op::Mov>(nested_value, value);
  1034. TRY(generate_binding_pattern_bytecode(generator, binding_pattern, initialization_mode, nested_value, create_variables));
  1035. } else if (alias.has<Empty>()) {
  1036. if (name.has<NonnullRefPtr<Expression const>>()) {
  1037. // This needs some sort of SetVariableByValue opcode, as it's a runtime binding
  1038. return Bytecode::CodeGenerationError {
  1039. name.get<NonnullRefPtr<Expression const>>().ptr(),
  1040. "Unimplemented name/alias pair: Empty/Expression"sv,
  1041. };
  1042. }
  1043. auto const& identifier = *name.get<NonnullRefPtr<Identifier const>>();
  1044. auto identifier_ref = generator.intern_identifier(identifier.string());
  1045. if (create_variables)
  1046. generator.emit<Bytecode::Op::CreateVariable>(identifier_ref, Bytecode::Op::EnvironmentMode::Lexical, false);
  1047. generator.emit_set_variable(identifier, value, initialization_mode);
  1048. } else if (alias.has<NonnullRefPtr<MemberExpression const>>()) {
  1049. TRY(generator.emit_store_to_reference(alias.get<NonnullRefPtr<MemberExpression const>>(), value));
  1050. } else {
  1051. auto const& identifier = *alias.get<NonnullRefPtr<Identifier const>>();
  1052. auto identifier_ref = generator.intern_identifier(identifier.string());
  1053. if (create_variables)
  1054. generator.emit<Bytecode::Op::CreateVariable>(identifier_ref, Bytecode::Op::EnvironmentMode::Lexical, false);
  1055. generator.emit_set_variable(identifier, value, initialization_mode);
  1056. }
  1057. }
  1058. return {};
  1059. }
  1060. static Bytecode::CodeGenerationErrorOr<void> generate_array_binding_pattern_bytecode(Bytecode::Generator& generator, BindingPattern const& pattern, Bytecode::Op::SetVariable::InitializationMode initialization_mode, ScopedOperand const& input_array, bool create_variables, [[maybe_unused]] Optional<ScopedOperand> preferred_dst = {})
  1061. {
  1062. /*
  1063. * Consider the following destructuring assignment:
  1064. *
  1065. * let [a, b, c, d, e] = o;
  1066. *
  1067. * It would be fairly trivial to just loop through this iterator, getting the value
  1068. * at each step and assigning them to the binding sequentially. However, this is not
  1069. * correct: once an iterator is exhausted, it must not be called again. This complicates
  1070. * the bytecode. In order to accomplish this, we do the following:
  1071. *
  1072. * - Reserve a special boolean register which holds 'true' if the iterator is exhausted,
  1073. * and false otherwise
  1074. * - When we are retrieving the value which should be bound, we first check this register.
  1075. * If it is 'true', we load undefined. Otherwise, we grab the next value from the iterator.
  1076. *
  1077. * Note that the is_exhausted register does not need to be loaded with false because the
  1078. * first IteratorNext bytecode is _not_ proceeded by an exhausted check, as it is
  1079. * unnecessary.
  1080. */
  1081. auto is_iterator_exhausted = generator.allocate_register();
  1082. generator.emit<Bytecode::Op::Mov>(is_iterator_exhausted, generator.add_constant(Value(false)));
  1083. auto iterator = generator.allocate_register();
  1084. generator.emit<Bytecode::Op::GetIterator>(iterator, input_array);
  1085. bool first = true;
  1086. auto assign_value_to_alias = [&](auto& alias, ScopedOperand value) {
  1087. return alias.visit(
  1088. [&](Empty) -> Bytecode::CodeGenerationErrorOr<void> {
  1089. // This element is an elision
  1090. return {};
  1091. },
  1092. [&](NonnullRefPtr<Identifier const> const& identifier) -> Bytecode::CodeGenerationErrorOr<void> {
  1093. auto interned_index = generator.intern_identifier(identifier->string());
  1094. if (create_variables)
  1095. generator.emit<Bytecode::Op::CreateVariable>(interned_index, Bytecode::Op::EnvironmentMode::Lexical, false);
  1096. generator.emit_set_variable(*identifier, value, initialization_mode);
  1097. return {};
  1098. },
  1099. [&](NonnullRefPtr<BindingPattern const> const& pattern) -> Bytecode::CodeGenerationErrorOr<void> {
  1100. return generate_binding_pattern_bytecode(generator, pattern, initialization_mode, value, create_variables);
  1101. },
  1102. [&](NonnullRefPtr<MemberExpression const> const& expr) -> Bytecode::CodeGenerationErrorOr<void> {
  1103. (void)generator.emit_store_to_reference(*expr, value);
  1104. return {};
  1105. });
  1106. };
  1107. auto temp_iterator_result = generator.allocate_register();
  1108. for (auto& [name, alias, initializer, is_rest] : pattern.entries) {
  1109. VERIFY(name.has<Empty>());
  1110. if (is_rest) {
  1111. VERIFY(!initializer);
  1112. auto value = generator.allocate_register();
  1113. if (first) {
  1114. // The iterator has not been called, and is thus known to be not exhausted
  1115. generator.emit<Bytecode::Op::IteratorToArray>(value, iterator);
  1116. } else {
  1117. auto& if_exhausted_block = generator.make_block();
  1118. auto& if_not_exhausted_block = generator.make_block();
  1119. auto& continuation_block = generator.make_block();
  1120. generator.emit<Bytecode::Op::JumpIf>(
  1121. is_iterator_exhausted,
  1122. Bytecode::Label { if_exhausted_block },
  1123. Bytecode::Label { if_not_exhausted_block });
  1124. value = generator.allocate_register();
  1125. generator.switch_to_basic_block(if_exhausted_block);
  1126. generator.emit<Bytecode::Op::NewArray>(value);
  1127. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { continuation_block });
  1128. generator.switch_to_basic_block(if_not_exhausted_block);
  1129. generator.emit<Bytecode::Op::IteratorToArray>(value, iterator);
  1130. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { continuation_block });
  1131. generator.switch_to_basic_block(continuation_block);
  1132. }
  1133. return assign_value_to_alias(alias, value);
  1134. }
  1135. auto& iterator_is_exhausted_block = generator.make_block();
  1136. if (!first) {
  1137. auto& iterator_is_not_exhausted_block = generator.make_block();
  1138. generator.emit<Bytecode::Op::JumpIf>(
  1139. is_iterator_exhausted,
  1140. Bytecode::Label { iterator_is_exhausted_block },
  1141. Bytecode::Label { iterator_is_not_exhausted_block });
  1142. generator.switch_to_basic_block(iterator_is_not_exhausted_block);
  1143. }
  1144. generator.emit<Bytecode::Op::IteratorNext>(temp_iterator_result, iterator);
  1145. generator.emit_iterator_complete(is_iterator_exhausted, temp_iterator_result);
  1146. // We still have to check for exhaustion here. If the iterator is exhausted,
  1147. // we need to bail before trying to get the value
  1148. auto& no_bail_block = generator.make_block();
  1149. generator.emit<Bytecode::Op::JumpIf>(
  1150. is_iterator_exhausted,
  1151. Bytecode::Label { iterator_is_exhausted_block },
  1152. Bytecode::Label { no_bail_block });
  1153. generator.switch_to_basic_block(no_bail_block);
  1154. // Get the next value in the iterator
  1155. auto value = generator.allocate_register();
  1156. generator.emit_iterator_value(value, temp_iterator_result);
  1157. auto& create_binding_block = generator.make_block();
  1158. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { create_binding_block });
  1159. // The iterator is exhausted, so we just load undefined and continue binding
  1160. generator.switch_to_basic_block(iterator_is_exhausted_block);
  1161. generator.emit<Bytecode::Op::Mov>(value, generator.add_constant(js_undefined()));
  1162. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { create_binding_block });
  1163. generator.switch_to_basic_block(create_binding_block);
  1164. if (initializer) {
  1165. auto& value_is_undefined_block = generator.make_block();
  1166. auto& value_is_not_undefined_block = generator.make_block();
  1167. generator.emit<Bytecode::Op::JumpUndefined>(
  1168. value,
  1169. Bytecode::Label { value_is_undefined_block },
  1170. Bytecode::Label { value_is_not_undefined_block });
  1171. generator.switch_to_basic_block(value_is_undefined_block);
  1172. Optional<ScopedOperand> default_value;
  1173. if (auto const* alias_identifier = alias.get_pointer<NonnullRefPtr<Identifier const>>()) {
  1174. default_value = TRY(generator.emit_named_evaluation_if_anonymous_function(*initializer, generator.intern_identifier((*alias_identifier)->string()))).value();
  1175. } else if (auto const* name_identifier = name.get_pointer<NonnullRefPtr<Identifier const>>()) {
  1176. default_value = TRY(generator.emit_named_evaluation_if_anonymous_function(*initializer, generator.intern_identifier((*name_identifier)->string()))).value();
  1177. } else {
  1178. default_value = TRY(initializer->generate_bytecode(generator)).value();
  1179. }
  1180. generator.emit<Bytecode::Op::Mov>(value, *default_value);
  1181. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { value_is_not_undefined_block });
  1182. generator.switch_to_basic_block(value_is_not_undefined_block);
  1183. }
  1184. TRY(assign_value_to_alias(alias, value));
  1185. first = false;
  1186. }
  1187. auto& done_block = generator.make_block();
  1188. auto& not_done_block = generator.make_block();
  1189. generator.emit<Bytecode::Op::JumpIf>(
  1190. is_iterator_exhausted,
  1191. Bytecode::Label { done_block },
  1192. Bytecode::Label { not_done_block });
  1193. generator.switch_to_basic_block(not_done_block);
  1194. generator.emit<Bytecode::Op::IteratorClose>(iterator, Completion::Type::Normal, Optional<Value> {});
  1195. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { done_block });
  1196. generator.switch_to_basic_block(done_block);
  1197. return {};
  1198. }
  1199. static Bytecode::CodeGenerationErrorOr<void> generate_binding_pattern_bytecode(Bytecode::Generator& generator, BindingPattern const& pattern, Bytecode::Op::SetVariable::InitializationMode initialization_mode, ScopedOperand const& input_value, bool create_variables)
  1200. {
  1201. if (pattern.kind == BindingPattern::Kind::Object)
  1202. return generate_object_binding_pattern_bytecode(generator, pattern, initialization_mode, input_value, create_variables);
  1203. return generate_array_binding_pattern_bytecode(generator, pattern, initialization_mode, input_value, create_variables);
  1204. }
  1205. static Bytecode::CodeGenerationErrorOr<void> assign_value_to_variable_declarator(Bytecode::Generator& generator, VariableDeclarator const& declarator, VariableDeclaration const& declaration, ScopedOperand value)
  1206. {
  1207. auto initialization_mode = declaration.is_lexical_declaration() ? Bytecode::Op::SetVariable::InitializationMode::Initialize : Bytecode::Op::SetVariable::InitializationMode::Set;
  1208. return declarator.target().visit(
  1209. [&](NonnullRefPtr<Identifier const> const& id) -> Bytecode::CodeGenerationErrorOr<void> {
  1210. generator.emit_set_variable(*id, value, initialization_mode);
  1211. return {};
  1212. },
  1213. [&](NonnullRefPtr<BindingPattern const> const& pattern) -> Bytecode::CodeGenerationErrorOr<void> {
  1214. return generate_binding_pattern_bytecode(generator, pattern, initialization_mode, value, false);
  1215. });
  1216. }
  1217. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> VariableDeclaration::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  1218. {
  1219. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  1220. for (auto& declarator : m_declarations) {
  1221. // NOTE: `var` declarations can have duplicates, but duplicate `let` or `const` bindings are a syntax error.
  1222. // Because of this, we can sink `let` and `const` directly into the preferred_dst if available.
  1223. // This is not safe for `var` since the preferred_dst may be used in the initializer.
  1224. Optional<ScopedOperand> init_dst;
  1225. if (declaration_kind() != DeclarationKind::Var) {
  1226. if (auto const* identifier = declarator->target().get_pointer<NonnullRefPtr<Identifier const>>()) {
  1227. if ((*identifier)->is_local()) {
  1228. init_dst = generator.local((*identifier)->local_variable_index());
  1229. }
  1230. }
  1231. }
  1232. if (declarator->init()) {
  1233. auto value = TRY([&]() -> Bytecode::CodeGenerationErrorOr<ScopedOperand> {
  1234. if (auto const* lhs = declarator->target().get_pointer<NonnullRefPtr<Identifier const>>()) {
  1235. return TRY(generator.emit_named_evaluation_if_anonymous_function(*declarator->init(), generator.intern_identifier((*lhs)->string()), init_dst)).value();
  1236. } else {
  1237. return TRY(declarator->init()->generate_bytecode(generator, init_dst)).value();
  1238. }
  1239. }());
  1240. (void)TRY(assign_value_to_variable_declarator(generator, declarator, *this, value));
  1241. } else if (m_declaration_kind != DeclarationKind::Var) {
  1242. (void)TRY(assign_value_to_variable_declarator(generator, declarator, *this, generator.add_constant(js_undefined())));
  1243. }
  1244. }
  1245. for (auto& declarator : m_declarations) {
  1246. if (auto const* identifier = declarator->target().get_pointer<NonnullRefPtr<Identifier const>>()) {
  1247. if ((*identifier)->is_local()) {
  1248. generator.set_local_initialized((*identifier)->local_variable_index());
  1249. }
  1250. }
  1251. }
  1252. // NOTE: VariableDeclaration doesn't return a completion value.
  1253. return Optional<ScopedOperand> {};
  1254. }
  1255. struct BaseAndValue {
  1256. ScopedOperand base;
  1257. ScopedOperand value;
  1258. };
  1259. static Bytecode::CodeGenerationErrorOr<BaseAndValue> get_base_and_value_from_member_expression(Bytecode::Generator& generator, MemberExpression const& member_expression)
  1260. {
  1261. // https://tc39.es/ecma262/#sec-super-keyword-runtime-semantics-evaluation
  1262. if (is<SuperExpression>(member_expression.object())) {
  1263. // 1. Let env be GetThisEnvironment().
  1264. // 2. Let actualThis be ? env.GetThisBinding().
  1265. auto this_value = generator.get_this();
  1266. Optional<ScopedOperand> computed_property;
  1267. if (member_expression.is_computed()) {
  1268. // SuperProperty : super [ Expression ]
  1269. // 3. Let propertyNameReference be ? Evaluation of Expression.
  1270. // 4. Let propertyNameValue be ? GetValue(propertyNameReference).
  1271. computed_property = TRY(member_expression.property().generate_bytecode(generator));
  1272. }
  1273. // 5/7. Return ? MakeSuperPropertyReference(actualThis, propertyKey, strict).
  1274. // https://tc39.es/ecma262/#sec-makesuperpropertyreference
  1275. // 1. Let env be GetThisEnvironment().
  1276. // 2. Assert: env.HasSuperBinding() is true.
  1277. // 3. Let baseValue be ? env.GetSuperBase().
  1278. auto super_base = generator.allocate_register();
  1279. generator.emit<Bytecode::Op::ResolveSuperBase>(super_base);
  1280. auto value = generator.allocate_register();
  1281. // 4. Return the Reference Record { [[Base]]: baseValue, [[ReferencedName]]: propertyKey, [[Strict]]: strict, [[ThisValue]]: actualThis }.
  1282. if (computed_property.has_value()) {
  1283. // 5. Let propertyKey be ? ToPropertyKey(propertyNameValue).
  1284. // FIXME: This does ToPropertyKey out of order, which is observable by Symbol.toPrimitive!
  1285. generator.emit<Bytecode::Op::GetByValueWithThis>(value, super_base, *computed_property, this_value);
  1286. } else {
  1287. // 3. Let propertyKey be StringValue of IdentifierName.
  1288. auto identifier_table_ref = generator.intern_identifier(verify_cast<Identifier>(member_expression.property()).string());
  1289. generator.emit_get_by_id_with_this(value, super_base, identifier_table_ref, this_value);
  1290. }
  1291. return BaseAndValue { this_value, value };
  1292. }
  1293. auto base = TRY(member_expression.object().generate_bytecode(generator)).value();
  1294. auto value = generator.allocate_register();
  1295. if (member_expression.is_computed()) {
  1296. auto property = TRY(member_expression.property().generate_bytecode(generator)).value();
  1297. generator.emit<Bytecode::Op::GetByValue>(value, base, property);
  1298. } else if (is<PrivateIdentifier>(member_expression.property())) {
  1299. generator.emit<Bytecode::Op::GetPrivateById>(
  1300. value,
  1301. base,
  1302. generator.intern_identifier(verify_cast<PrivateIdentifier>(member_expression.property()).string()));
  1303. } else {
  1304. auto base_identifier = generator.intern_identifier_for_expression(member_expression.object());
  1305. generator.emit_get_by_id(value, base, generator.intern_identifier(verify_cast<Identifier>(member_expression.property()).string()), move(base_identifier));
  1306. }
  1307. return BaseAndValue { base, value };
  1308. }
  1309. static Bytecode::CodeGenerationErrorOr<void> generate_optional_chain(Bytecode::Generator& generator, OptionalChain const& optional_chain, ScopedOperand current_value, ScopedOperand current_base, [[maybe_unused]] Optional<ScopedOperand> preferred_dst = {});
  1310. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> CallExpression::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  1311. {
  1312. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  1313. Optional<Bytecode::Builtin> builtin;
  1314. Optional<ScopedOperand> original_callee;
  1315. auto this_value = generator.add_constant(js_undefined());
  1316. if (is<NewExpression>(this)) {
  1317. original_callee = TRY(m_callee->generate_bytecode(generator)).value();
  1318. } else if (is<MemberExpression>(*m_callee)) {
  1319. auto& member_expression = static_cast<MemberExpression const&>(*m_callee);
  1320. auto base_and_value = TRY(get_base_and_value_from_member_expression(generator, member_expression));
  1321. original_callee = base_and_value.value;
  1322. this_value = base_and_value.base;
  1323. builtin = Bytecode::get_builtin(member_expression);
  1324. } else if (is<OptionalChain>(*m_callee)) {
  1325. auto& optional_chain = static_cast<OptionalChain const&>(*m_callee);
  1326. original_callee = generator.allocate_register();
  1327. this_value = generator.allocate_register();
  1328. TRY(generate_optional_chain(generator, optional_chain, *original_callee, this_value));
  1329. } else if (is<Identifier>(*m_callee)) {
  1330. // If the original_callee is an identifier, we may need to extract a `this` value.
  1331. // This is important when we're inside a `with` statement and calling a method on
  1332. // the environment's binding object.
  1333. // NOTE: If the identifier refers to a known "local" or "global", we know it can't be
  1334. // a `with` binding, so we can skip this.
  1335. auto& identifier = static_cast<Identifier const&>(*m_callee);
  1336. if (identifier.is_local()) {
  1337. auto local = generator.local(identifier.local_variable_index());
  1338. if (!generator.is_local_initialized(local.operand().index())) {
  1339. generator.emit<Bytecode::Op::ThrowIfTDZ>(local);
  1340. }
  1341. original_callee = local;
  1342. } else if (identifier.is_global()) {
  1343. original_callee = m_callee->generate_bytecode(generator).value();
  1344. } else {
  1345. original_callee = generator.allocate_register();
  1346. this_value = generator.allocate_register();
  1347. generator.emit<Bytecode::Op::GetCalleeAndThisFromEnvironment>(
  1348. *original_callee,
  1349. this_value,
  1350. generator.intern_identifier(identifier.string()),
  1351. generator.next_environment_variable_cache());
  1352. }
  1353. } else {
  1354. // FIXME: this = global object in sloppy mode.
  1355. original_callee = TRY(m_callee->generate_bytecode(generator)).value();
  1356. }
  1357. // NOTE: We copy the callee to a new register to avoid overwriting it while evaluating arguments.
  1358. auto callee = generator.allocate_register();
  1359. generator.emit<Bytecode::Op::Mov>(callee, *original_callee);
  1360. Bytecode::Op::CallType call_type;
  1361. if (is<NewExpression>(*this)) {
  1362. call_type = Bytecode::Op::CallType::Construct;
  1363. } else if (m_callee->is_identifier() && static_cast<Identifier const&>(*m_callee).string() == "eval"sv) {
  1364. call_type = Bytecode::Op::CallType::DirectEval;
  1365. } else {
  1366. call_type = Bytecode::Op::CallType::Call;
  1367. }
  1368. Optional<Bytecode::StringTableIndex> expression_string_index;
  1369. if (auto expression_string = this->expression_string(); expression_string.has_value())
  1370. expression_string_index = generator.intern_string(expression_string.release_value());
  1371. bool has_spread = any_of(arguments(), [](auto& argument) { return argument.is_spread; });
  1372. auto dst = choose_dst(generator, preferred_dst);
  1373. if (has_spread) {
  1374. auto arguments = TRY(arguments_to_array_for_call(generator, this->arguments())).value();
  1375. generator.emit<Bytecode::Op::CallWithArgumentArray>(call_type, dst, callee, this_value, arguments, expression_string_index);
  1376. } else {
  1377. Vector<ScopedOperand> argument_operands;
  1378. argument_operands.ensure_capacity(arguments().size());
  1379. for (auto const& argument : arguments()) {
  1380. auto argument_value = TRY(argument.value->generate_bytecode(generator)).value();
  1381. auto temporary = generator.allocate_register();
  1382. generator.emit<Bytecode::Op::Mov>(temporary, argument_value);
  1383. argument_operands.append(temporary);
  1384. }
  1385. generator.emit_with_extra_operand_slots<Bytecode::Op::Call>(
  1386. argument_operands.size(),
  1387. call_type,
  1388. dst,
  1389. callee,
  1390. this_value,
  1391. argument_operands,
  1392. expression_string_index,
  1393. builtin);
  1394. }
  1395. return dst;
  1396. }
  1397. static ScopedOperand generate_await(
  1398. Bytecode::Generator& generator,
  1399. ScopedOperand argument,
  1400. ScopedOperand received_completion,
  1401. ScopedOperand received_completion_type,
  1402. ScopedOperand received_completion_value,
  1403. Bytecode::IdentifierTableIndex type_identifier,
  1404. Bytecode::IdentifierTableIndex value_identifier);
  1405. // https://tc39.es/ecma262/#sec-return-statement-runtime-semantics-evaluation
  1406. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ReturnStatement::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand>) const
  1407. {
  1408. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  1409. Optional<ScopedOperand> return_value;
  1410. if (m_argument) {
  1411. // ReturnStatement : return Expression ;
  1412. // 1. Let exprRef be ? Evaluation of Expression.
  1413. // 2. Let exprValue be ? GetValue(exprRef).
  1414. return_value = TRY(m_argument->generate_bytecode(generator)).value();
  1415. // 3. If GetGeneratorKind() is async, set exprValue to ? Await(exprValue).
  1416. // Spec Issue?: The spec doesn't seem to do implicit await on explicit return for async functions, but does for
  1417. // async generators. However, the major engines do so, and this is observable via constructor lookups
  1418. // on Promise objects and custom thenables.
  1419. // See: https://tc39.es/ecma262/#sec-asyncblockstart
  1420. // c. Assert: If we return here, the async function either threw an exception or performed an implicit or explicit return; all awaiting is done.
  1421. if (generator.is_in_async_function()) {
  1422. auto received_completion = generator.allocate_register();
  1423. auto received_completion_type = generator.allocate_register();
  1424. auto received_completion_value = generator.allocate_register();
  1425. auto type_identifier = generator.intern_identifier("type");
  1426. auto value_identifier = generator.intern_identifier("value");
  1427. return_value = generate_await(generator, *return_value, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier);
  1428. }
  1429. // 4. Return Completion Record { [[Type]]: return, [[Value]]: exprValue, [[Target]]: empty }.
  1430. } else {
  1431. // ReturnStatement : return ;
  1432. // 1. Return Completion Record { [[Type]]: return, [[Value]]: undefined, [[Target]]: empty }.
  1433. return_value = generator.add_constant(js_undefined());
  1434. }
  1435. if (generator.is_in_generator_or_async_function()) {
  1436. generator.perform_needed_unwinds<Bytecode::Op::Yield>();
  1437. generator.emit<Bytecode::Op::Yield>(nullptr, *return_value);
  1438. } else {
  1439. generator.perform_needed_unwinds<Bytecode::Op::Return>();
  1440. generator.emit<Bytecode::Op::Return>(return_value.has_value() ? return_value->operand() : Optional<Operand> {});
  1441. }
  1442. return return_value;
  1443. }
  1444. static void get_received_completion_type_and_value(
  1445. Bytecode::Generator& generator,
  1446. ScopedOperand received_completion,
  1447. ScopedOperand received_completion_type,
  1448. ScopedOperand received_completion_value,
  1449. Bytecode::IdentifierTableIndex type_identifier,
  1450. Bytecode::IdentifierTableIndex value_identifier)
  1451. {
  1452. generator.emit_get_by_id(received_completion_type, received_completion, type_identifier);
  1453. generator.emit_get_by_id(received_completion_value, received_completion, value_identifier);
  1454. }
  1455. enum class AwaitBeforeYield {
  1456. No,
  1457. Yes,
  1458. };
  1459. static void generate_yield(Bytecode::Generator& generator,
  1460. Bytecode::Label continuation_label,
  1461. ScopedOperand argument,
  1462. ScopedOperand received_completion,
  1463. ScopedOperand received_completion_type,
  1464. ScopedOperand received_completion_value,
  1465. Bytecode::IdentifierTableIndex type_identifier,
  1466. Bytecode::IdentifierTableIndex value_identifier,
  1467. AwaitBeforeYield await_before_yield)
  1468. {
  1469. if (!generator.is_in_async_generator_function()) {
  1470. generator.emit<Bytecode::Op::Yield>(Bytecode::Label { continuation_label }, argument);
  1471. return;
  1472. }
  1473. if (await_before_yield == AwaitBeforeYield::Yes)
  1474. argument = generate_await(generator, argument, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier);
  1475. auto& unwrap_yield_resumption_block = generator.make_block();
  1476. generator.emit<Bytecode::Op::Yield>(Bytecode::Label { unwrap_yield_resumption_block }, argument);
  1477. generator.switch_to_basic_block(unwrap_yield_resumption_block);
  1478. generator.emit<Bytecode::Op::Mov>(received_completion, generator.accumulator());
  1479. get_received_completion_type_and_value(generator, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier);
  1480. // 27.6.3.7 AsyncGeneratorUnwrapYieldResumption ( resumptionValue ), https://tc39.es/ecma262/#sec-asyncgeneratorunwrapyieldresumption
  1481. // 1. If resumptionValue.[[Type]] is not return, return ? resumptionValue.
  1482. auto& resumption_value_type_is_return_block = generator.make_block();
  1483. auto resumption_value_type_is_not_return_result = generator.allocate_register();
  1484. generator.emit<Bytecode::Op::StrictlyInequals>(
  1485. resumption_value_type_is_not_return_result,
  1486. received_completion_type,
  1487. generator.add_constant(Value(to_underlying(Completion::Type::Return))));
  1488. generator.emit<Bytecode::Op::JumpIf>(
  1489. resumption_value_type_is_not_return_result,
  1490. Bytecode::Label { continuation_label },
  1491. Bytecode::Label { resumption_value_type_is_return_block });
  1492. generator.switch_to_basic_block(resumption_value_type_is_return_block);
  1493. // 2. Let awaited be Completion(Await(resumptionValue.[[Value]])).
  1494. generate_await(generator, received_completion_value, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier);
  1495. // 3. If awaited.[[Type]] is throw, return ? awaited.
  1496. auto& awaited_type_is_normal_block = generator.make_block();
  1497. auto awaited_type_is_throw_result = generator.allocate_register();
  1498. generator.emit<Bytecode::Op::StrictlyEquals>(
  1499. awaited_type_is_throw_result,
  1500. received_completion_type,
  1501. generator.add_constant(Value(to_underlying(Completion::Type::Throw))));
  1502. generator.emit<Bytecode::Op::JumpIf>(
  1503. awaited_type_is_throw_result,
  1504. Bytecode::Label { continuation_label },
  1505. Bytecode::Label { awaited_type_is_normal_block });
  1506. // 4. Assert: awaited.[[Type]] is normal.
  1507. generator.switch_to_basic_block(awaited_type_is_normal_block);
  1508. // 5. Return Completion Record { [[Type]]: return, [[Value]]: awaited.[[Value]], [[Target]]: empty }.
  1509. generator.emit<Bytecode::Op::PutById>(
  1510. received_completion,
  1511. type_identifier,
  1512. generator.add_constant(Value(to_underlying(Completion::Type::Return))),
  1513. Bytecode::Op::PropertyKind::KeyValue,
  1514. generator.next_property_lookup_cache());
  1515. generator.emit<Bytecode::Op::Jump>(continuation_label);
  1516. }
  1517. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> YieldExpression::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  1518. {
  1519. // Note: We need to catch any scheduled exceptions and reschedule them on re-entry
  1520. // as the act of yielding would otherwise clear them out
  1521. // This only applies when we are in a finalizer
  1522. bool is_in_finalizer = generator.is_in_finalizer();
  1523. Optional<ScopedOperand> saved_exception;
  1524. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  1525. VERIFY(generator.is_in_generator_function());
  1526. auto received_completion = generator.allocate_register();
  1527. auto received_completion_type = generator.allocate_register();
  1528. auto received_completion_value = generator.allocate_register();
  1529. auto type_identifier = generator.intern_identifier("type");
  1530. auto value_identifier = generator.intern_identifier("value");
  1531. if (m_is_yield_from) {
  1532. // 15.5.5 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-generator-function-definitions-runtime-semantics-evaluation
  1533. // 1. Let generatorKind be GetGeneratorKind().
  1534. // NOTE: is_in_async_generator_function differentiates the generator kind.
  1535. // 2. Let exprRef be ? Evaluation of AssignmentExpression.
  1536. // 3. Let value be ? GetValue(exprRef).
  1537. VERIFY(m_argument);
  1538. auto value = TRY(m_argument->generate_bytecode(generator)).value();
  1539. // 4. Let iteratorRecord be ? GetIterator(value, generatorKind).
  1540. auto iterator_record = generator.allocate_register();
  1541. auto iterator_hint = generator.is_in_async_generator_function() ? IteratorHint::Async : IteratorHint::Sync;
  1542. generator.emit<Bytecode::Op::GetIterator>(iterator_record, value, iterator_hint);
  1543. // 5. Let iterator be iteratorRecord.[[Iterator]].
  1544. auto iterator = generator.allocate_register();
  1545. generator.emit<Bytecode::Op::GetObjectFromIteratorRecord>(iterator, iterator_record);
  1546. // Cache iteratorRecord.[[NextMethod]] for use in step 7.a.i.
  1547. auto next_method = generator.allocate_register();
  1548. generator.emit<Bytecode::Op::GetNextMethodFromIteratorRecord>(next_method, iterator_record);
  1549. // 6. Let received be NormalCompletion(undefined).
  1550. // See get_received_completion_type_and_value above.
  1551. generator.emit<Bytecode::Op::Mov>(received_completion_type, generator.add_constant(Value(to_underlying(Completion::Type::Normal))));
  1552. generator.emit<Bytecode::Op::Mov>(received_completion_value, generator.add_constant(js_undefined()));
  1553. // 7. Repeat,
  1554. auto& loop_block = generator.make_block();
  1555. auto& continuation_block = generator.make_block();
  1556. auto& loop_end_block = generator.make_block();
  1557. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { loop_block });
  1558. generator.switch_to_basic_block(loop_block);
  1559. // a. If received.[[Type]] is normal, then
  1560. auto& type_is_normal_block = generator.make_block();
  1561. auto& is_type_throw_block = generator.make_block();
  1562. auto received_completion_type_register_is_normal = generator.allocate_register();
  1563. generator.emit<Bytecode::Op::StrictlyEquals>(
  1564. received_completion_type_register_is_normal,
  1565. received_completion_type,
  1566. generator.add_constant(Value(to_underlying(Completion::Type::Normal))));
  1567. generator.emit<Bytecode::Op::JumpIf>(
  1568. received_completion_type_register_is_normal,
  1569. Bytecode::Label { type_is_normal_block },
  1570. Bytecode::Label { is_type_throw_block });
  1571. generator.switch_to_basic_block(type_is_normal_block);
  1572. // i. Let innerResult be ? Call(iteratorRecord.[[NextMethod]], iteratorRecord.[[Iterator]], « received.[[Value]] »).
  1573. auto array = generator.allocate_register();
  1574. generator.emit_with_extra_operand_slots<Bytecode::Op::NewArray>(1, array, ReadonlySpan<ScopedOperand> { &received_completion_value, 1 });
  1575. auto inner_result = generator.allocate_register();
  1576. generator.emit<Bytecode::Op::CallWithArgumentArray>(Bytecode::Op::CallType::Call, inner_result, next_method, iterator, array);
  1577. // ii. If generatorKind is async, set innerResult to ? Await(innerResult).
  1578. if (generator.is_in_async_generator_function()) {
  1579. auto new_inner_result = generate_await(generator, inner_result, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier);
  1580. generator.emit<Bytecode::Op::Mov>(inner_result, new_inner_result);
  1581. }
  1582. // iii. If innerResult is not an Object, throw a TypeError exception.
  1583. generator.emit<Bytecode::Op::ThrowIfNotObject>(inner_result);
  1584. // iv. Let done be ? IteratorComplete(innerResult).
  1585. auto done = generator.allocate_register();
  1586. generator.emit_iterator_complete(done, inner_result);
  1587. // v. If done is true, then
  1588. auto& type_is_normal_done_block = generator.make_block();
  1589. auto& type_is_normal_not_done_block = generator.make_block();
  1590. generator.emit<Bytecode::Op::JumpIf>(
  1591. done,
  1592. Bytecode::Label { type_is_normal_done_block },
  1593. Bytecode::Label { type_is_normal_not_done_block });
  1594. generator.switch_to_basic_block(type_is_normal_done_block);
  1595. // 1. Return ? IteratorValue(innerResult).
  1596. auto return_value = generator.allocate_register();
  1597. generator.emit_iterator_value(return_value, inner_result);
  1598. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { loop_end_block });
  1599. generator.switch_to_basic_block(type_is_normal_not_done_block);
  1600. // vi. If generatorKind is async, set received to Completion(AsyncGeneratorYield(? IteratorValue(innerResult))).
  1601. // vii. Else, set received to Completion(GeneratorYield(innerResult)).
  1602. {
  1603. // FIXME: Yield currently only accepts a Value, not an object conforming to the IteratorResult interface, so we have to do an observable lookup of `value` here.
  1604. // This only matters for non-async generators.
  1605. auto current_value = generator.allocate_register();
  1606. generator.emit_iterator_value(current_value, inner_result);
  1607. if (is_in_finalizer) {
  1608. saved_exception = generator.allocate_register();
  1609. generator.emit<Bytecode::Op::Mov>(Bytecode::Operand(*saved_exception), Bytecode::Operand(Bytecode::Register::exception()));
  1610. }
  1611. generate_yield(generator,
  1612. Bytecode::Label { continuation_block },
  1613. current_value,
  1614. received_completion,
  1615. received_completion_type,
  1616. received_completion_value,
  1617. type_identifier,
  1618. value_identifier,
  1619. AwaitBeforeYield::No);
  1620. }
  1621. // b. Else if received.[[Type]] is throw, then
  1622. generator.switch_to_basic_block(is_type_throw_block);
  1623. auto& type_is_throw_block = generator.make_block();
  1624. auto& type_is_return_block = generator.make_block();
  1625. auto received_completion_type_register_is_throw = generator.allocate_register();
  1626. generator.emit<Bytecode::Op::StrictlyEquals>(
  1627. received_completion_type_register_is_throw,
  1628. received_completion_type,
  1629. generator.add_constant(Value(to_underlying(Completion::Type::Throw))));
  1630. generator.emit<Bytecode::Op::JumpIf>(
  1631. received_completion_type_register_is_throw,
  1632. Bytecode::Label { type_is_throw_block },
  1633. Bytecode::Label { type_is_return_block });
  1634. generator.switch_to_basic_block(type_is_throw_block);
  1635. // i. Let throw be ? GetMethod(iterator, "throw").
  1636. auto throw_method = generator.allocate_register();
  1637. generator.emit<Bytecode::Op::GetMethod>(throw_method, iterator, generator.intern_identifier("throw"));
  1638. // ii. If throw is not undefined, then
  1639. auto& throw_method_is_defined_block = generator.make_block();
  1640. auto& throw_method_is_undefined_block = generator.make_block();
  1641. generator.emit<Bytecode::Op::JumpUndefined>(
  1642. throw_method,
  1643. Bytecode::Label { throw_method_is_undefined_block },
  1644. Bytecode::Label { throw_method_is_defined_block });
  1645. generator.switch_to_basic_block(throw_method_is_defined_block);
  1646. // 1. Let innerResult be ? Call(throw, iterator, « received.[[Value]] »).
  1647. auto received_value_array = generator.allocate_register();
  1648. generator.emit_with_extra_operand_slots<Bytecode::Op::NewArray>(1, received_value_array, ReadonlySpan<ScopedOperand> { &received_completion_value, 1 });
  1649. generator.emit<Bytecode::Op::CallWithArgumentArray>(Bytecode::Op::CallType::Call, inner_result, throw_method, iterator, received_value_array);
  1650. // 2. If generatorKind is async, set innerResult to ? Await(innerResult).
  1651. if (generator.is_in_async_generator_function()) {
  1652. auto new_result = generate_await(generator, inner_result, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier);
  1653. generator.emit<Bytecode::Op::Mov>(inner_result, new_result);
  1654. }
  1655. // 3. NOTE: Exceptions from the inner iterator throw method are propagated. Normal completions from an inner throw method are processed similarly to an inner next.
  1656. // 4. If innerResult is not an Object, throw a TypeError exception.
  1657. generator.emit<Bytecode::Op::ThrowIfNotObject>(inner_result);
  1658. // 5. Let done be ? IteratorComplete(innerResult).
  1659. generator.emit_iterator_complete(done, inner_result);
  1660. // 6. If done is true, then
  1661. auto& type_is_throw_done_block = generator.make_block();
  1662. auto& type_is_throw_not_done_block = generator.make_block();
  1663. generator.emit<Bytecode::Op::JumpIf>(
  1664. done,
  1665. Bytecode::Label { type_is_throw_done_block },
  1666. Bytecode::Label { type_is_throw_not_done_block });
  1667. generator.switch_to_basic_block(type_is_throw_done_block);
  1668. // a. Return ? IteratorValue(innerResult).
  1669. generator.emit_iterator_value(return_value, inner_result);
  1670. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { loop_end_block });
  1671. generator.switch_to_basic_block(type_is_throw_not_done_block);
  1672. {
  1673. // 7. If generatorKind is async, set received to Completion(AsyncGeneratorYield(? IteratorValue(innerResult))).
  1674. // 8. Else, set received to Completion(GeneratorYield(innerResult)).
  1675. // FIXME: Yield currently only accepts a Value, not an object conforming to the IteratorResult interface, so we have to do an observable lookup of `value` here.
  1676. // This only matters for non-async generators.
  1677. auto yield_value = generator.allocate_register();
  1678. generator.emit_iterator_value(yield_value, inner_result);
  1679. generate_yield(generator, Bytecode::Label { continuation_block }, yield_value, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier, AwaitBeforeYield::No);
  1680. }
  1681. generator.switch_to_basic_block(throw_method_is_undefined_block);
  1682. // 1. NOTE: If iterator does not have a throw method, this throw is going to terminate the yield* loop. But first we need to give iterator a chance to clean up.
  1683. // 2. Let closeCompletion be Completion Record { [[Type]]: normal, [[Value]]: empty, [[Target]]: empty }.
  1684. // 3. If generatorKind is async, perform ? AsyncIteratorClose(iteratorRecord, closeCompletion).
  1685. if (generator.is_in_async_generator_function()) {
  1686. // FIXME: This performs `await` outside of the generator!
  1687. generator.emit<Bytecode::Op::AsyncIteratorClose>(iterator_record, Completion::Type::Normal, Optional<Value> {});
  1688. }
  1689. // 4. Else, perform ? IteratorClose(iteratorRecord, closeCompletion).
  1690. else {
  1691. generator.emit<Bytecode::Op::IteratorClose>(iterator_record, Completion::Type::Normal, Optional<Value> {});
  1692. }
  1693. // 5. NOTE: The next step throws a TypeError to indicate that there was a yield* protocol violation: iterator does not have a throw method.
  1694. // 6. Throw a TypeError exception.
  1695. auto exception = generator.allocate_register();
  1696. generator.emit<Bytecode::Op::NewTypeError>(exception, generator.intern_string(ErrorType::YieldFromIteratorMissingThrowMethod.message()));
  1697. generator.perform_needed_unwinds<Bytecode::Op::Throw>();
  1698. generator.emit<Bytecode::Op::Throw>(exception);
  1699. // c. Else,
  1700. // i. Assert: received.[[Type]] is return.
  1701. generator.switch_to_basic_block(type_is_return_block);
  1702. // ii. Let return be ? GetMethod(iterator, "return").
  1703. auto return_method = generator.allocate_register();
  1704. generator.emit<Bytecode::Op::GetMethod>(return_method, iterator, generator.intern_identifier("return"));
  1705. // iii. If return is undefined, then
  1706. auto& return_is_undefined_block = generator.make_block();
  1707. auto& return_is_defined_block = generator.make_block();
  1708. generator.emit<Bytecode::Op::JumpUndefined>(
  1709. return_method,
  1710. Bytecode::Label { return_is_undefined_block },
  1711. Bytecode::Label { return_is_defined_block });
  1712. generator.switch_to_basic_block(return_is_undefined_block);
  1713. // 1. If generatorKind is async, set received.[[Value]] to ? Await(received.[[Value]]).
  1714. if (generator.is_in_async_generator_function()) {
  1715. generate_await(generator, received_completion_value, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier);
  1716. }
  1717. // 2. Return ? received.
  1718. // NOTE: This will always be a return completion.
  1719. generator.perform_needed_unwinds<Bytecode::Op::Yield>();
  1720. generator.emit<Bytecode::Op::Yield>(nullptr, received_completion_value);
  1721. generator.switch_to_basic_block(return_is_defined_block);
  1722. // iv. Let innerReturnResult be ? Call(return, iterator, « received.[[Value]] »).
  1723. auto call_array = generator.allocate_register();
  1724. generator.emit_with_extra_operand_slots<Bytecode::Op::NewArray>(1, call_array, ReadonlySpan<ScopedOperand> { &received_completion_value, 1 });
  1725. auto inner_return_result = generator.allocate_register();
  1726. generator.emit<Bytecode::Op::CallWithArgumentArray>(Bytecode::Op::CallType::Call, inner_return_result, return_method, iterator, call_array);
  1727. // v. If generatorKind is async, set innerReturnResult to ? Await(innerReturnResult).
  1728. if (generator.is_in_async_generator_function()) {
  1729. auto new_value = generate_await(generator, inner_return_result, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier);
  1730. generator.emit<Bytecode::Op::Mov>(inner_return_result, new_value);
  1731. }
  1732. // vi. If innerReturnResult is not an Object, throw a TypeError exception.
  1733. generator.emit<Bytecode::Op::ThrowIfNotObject>(inner_return_result);
  1734. // vii. Let done be ? IteratorComplete(innerReturnResult).
  1735. generator.emit_iterator_complete(done, inner_return_result);
  1736. // viii. If done is true, then
  1737. auto& type_is_return_done_block = generator.make_block();
  1738. auto& type_is_return_not_done_block = generator.make_block();
  1739. generator.emit<Bytecode::Op::JumpIf>(
  1740. done,
  1741. Bytecode::Label { type_is_return_done_block },
  1742. Bytecode::Label { type_is_return_not_done_block });
  1743. generator.switch_to_basic_block(type_is_return_done_block);
  1744. // 1. Let value be ? IteratorValue(innerReturnResult).
  1745. auto inner_return_result_value = generator.allocate_register();
  1746. generator.emit_iterator_value(inner_return_result_value, inner_return_result);
  1747. // 2. Return Completion Record { [[Type]]: return, [[Value]]: value, [[Target]]: empty }.
  1748. generator.perform_needed_unwinds<Bytecode::Op::Yield>();
  1749. generator.emit<Bytecode::Op::Yield>(nullptr, inner_return_result_value);
  1750. generator.switch_to_basic_block(type_is_return_not_done_block);
  1751. // ix. If generatorKind is async, set received to Completion(AsyncGeneratorYield(? IteratorValue(innerReturnResult))).
  1752. // x. Else, set received to Completion(GeneratorYield(innerReturnResult)).
  1753. // FIXME: Yield currently only accepts a Value, not an object conforming to the IteratorResult interface, so we have to do an observable lookup of `value` here.
  1754. // This only matters for non-async generators.
  1755. auto received = generator.allocate_register();
  1756. generator.emit_iterator_value(received, inner_return_result);
  1757. generate_yield(generator, Bytecode::Label { continuation_block }, received, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier, AwaitBeforeYield::No);
  1758. generator.switch_to_basic_block(continuation_block);
  1759. if (is_in_finalizer)
  1760. generator.emit<Bytecode::Op::Mov>(Bytecode::Operand(Bytecode::Register::exception()), Bytecode::Operand(*saved_exception));
  1761. generator.emit<Bytecode::Op::Mov>(received_completion, generator.accumulator());
  1762. get_received_completion_type_and_value(generator, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier);
  1763. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { loop_block });
  1764. generator.switch_to_basic_block(loop_end_block);
  1765. return return_value;
  1766. }
  1767. Optional<ScopedOperand> argument;
  1768. if (m_argument)
  1769. argument = TRY(m_argument->generate_bytecode(generator)).value();
  1770. else
  1771. argument = generator.add_constant(js_undefined());
  1772. auto& continuation_block = generator.make_block();
  1773. if (is_in_finalizer) {
  1774. saved_exception = generator.allocate_register();
  1775. generator.emit<Bytecode::Op::Mov>(Bytecode::Operand(*saved_exception), Bytecode::Operand(Bytecode::Register::exception()));
  1776. }
  1777. generate_yield(generator, Bytecode::Label { continuation_block }, *argument, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier, AwaitBeforeYield::Yes);
  1778. generator.switch_to_basic_block(continuation_block);
  1779. if (is_in_finalizer)
  1780. generator.emit<Bytecode::Op::Mov>(Bytecode::Operand(Bytecode::Register::exception()), Bytecode::Operand(*saved_exception));
  1781. generator.emit<Bytecode::Op::Mov>(received_completion, generator.accumulator());
  1782. get_received_completion_type_and_value(generator, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier);
  1783. auto& normal_completion_continuation_block = generator.make_block();
  1784. auto& throw_completion_continuation_block = generator.make_block();
  1785. auto received_completion_type_is_normal = generator.allocate_register();
  1786. generator.emit<Bytecode::Op::StrictlyEquals>(
  1787. received_completion_type_is_normal,
  1788. received_completion_type,
  1789. generator.add_constant(Value(to_underlying(Completion::Type::Normal))));
  1790. generator.emit<Bytecode::Op::JumpIf>(
  1791. received_completion_type_is_normal,
  1792. Bytecode::Label { normal_completion_continuation_block },
  1793. Bytecode::Label { throw_completion_continuation_block });
  1794. auto& throw_value_block = generator.make_block();
  1795. auto& return_value_block = generator.make_block();
  1796. generator.switch_to_basic_block(throw_completion_continuation_block);
  1797. auto received_completion_type_is_throw = generator.allocate_register();
  1798. generator.emit<Bytecode::Op::StrictlyEquals>(
  1799. received_completion_type_is_throw,
  1800. received_completion_type,
  1801. generator.add_constant(Value(to_underlying(Completion::Type::Throw))));
  1802. // If type is not equal to "throw" or "normal", assume it's "return".
  1803. generator.emit<Bytecode::Op::JumpIf>(
  1804. received_completion_type_is_throw,
  1805. Bytecode::Label { throw_value_block },
  1806. Bytecode::Label { return_value_block });
  1807. generator.switch_to_basic_block(throw_value_block);
  1808. generator.perform_needed_unwinds<Bytecode::Op::Throw>();
  1809. generator.emit<Bytecode::Op::Throw>(received_completion_value);
  1810. generator.switch_to_basic_block(return_value_block);
  1811. generator.perform_needed_unwinds<Bytecode::Op::Yield>();
  1812. generator.emit<Bytecode::Op::Yield>(nullptr, received_completion_value);
  1813. generator.switch_to_basic_block(normal_completion_continuation_block);
  1814. return received_completion_value;
  1815. }
  1816. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> IfStatement::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  1817. {
  1818. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  1819. // test
  1820. // jump if_true (true) true (false) false
  1821. // true
  1822. // jump always (true) end
  1823. // false
  1824. // jump always (true) end
  1825. // end
  1826. auto& true_block = generator.make_block();
  1827. auto& false_block = generator.make_block();
  1828. auto& end_block = generator.make_block();
  1829. auto dst = choose_dst(generator, preferred_dst);
  1830. generator.emit<Bytecode::Op::Mov>(dst, generator.add_constant(js_undefined()));
  1831. auto predicate = TRY(m_predicate->generate_bytecode(generator)).value();
  1832. generator.emit<Bytecode::Op::JumpIf>(
  1833. predicate,
  1834. Bytecode::Label { true_block },
  1835. Bytecode::Label { false_block });
  1836. generator.switch_to_basic_block(true_block);
  1837. auto consequent = TRY(m_consequent->generate_bytecode(generator, dst));
  1838. if (!generator.is_current_block_terminated()) {
  1839. if (consequent.has_value())
  1840. generator.emit<Bytecode::Op::Mov>(dst, *consequent);
  1841. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { end_block });
  1842. }
  1843. generator.switch_to_basic_block(false_block);
  1844. Optional<ScopedOperand> alternate;
  1845. if (m_alternate) {
  1846. alternate = TRY(m_alternate->generate_bytecode(generator, dst));
  1847. }
  1848. if (!generator.is_current_block_terminated()) {
  1849. if (alternate.has_value())
  1850. generator.emit<Bytecode::Op::Mov>(dst, *alternate);
  1851. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { end_block });
  1852. }
  1853. generator.switch_to_basic_block(end_block);
  1854. return dst;
  1855. }
  1856. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ContinueStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  1857. {
  1858. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  1859. if (!m_target_label.has_value()) {
  1860. generator.generate_continue();
  1861. return Optional<ScopedOperand> {};
  1862. }
  1863. generator.generate_continue(m_target_label.value());
  1864. return Optional<ScopedOperand> {};
  1865. }
  1866. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> DebuggerStatement::generate_bytecode(Bytecode::Generator&, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  1867. {
  1868. return Optional<ScopedOperand> {};
  1869. }
  1870. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ConditionalExpression::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  1871. {
  1872. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  1873. // test
  1874. // jump if_true (true) true (false) false
  1875. // true
  1876. // jump always (true) end
  1877. // false
  1878. // jump always (true) end
  1879. // end
  1880. auto& true_block = generator.make_block();
  1881. auto& false_block = generator.make_block();
  1882. auto& end_block = generator.make_block();
  1883. auto test = TRY(m_test->generate_bytecode(generator)).value();
  1884. generator.emit<Bytecode::Op::JumpIf>(
  1885. test,
  1886. Bytecode::Label { true_block },
  1887. Bytecode::Label { false_block });
  1888. auto dst = choose_dst(generator, preferred_dst);
  1889. generator.switch_to_basic_block(true_block);
  1890. auto consequent = TRY(m_consequent->generate_bytecode(generator)).value();
  1891. generator.emit<Bytecode::Op::Mov>(dst, consequent);
  1892. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { end_block });
  1893. generator.switch_to_basic_block(false_block);
  1894. auto alternate = TRY(m_alternate->generate_bytecode(generator)).value();
  1895. generator.emit<Bytecode::Op::Mov>(dst, alternate);
  1896. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { end_block });
  1897. generator.switch_to_basic_block(end_block);
  1898. return dst;
  1899. }
  1900. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> SequenceExpression::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  1901. {
  1902. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  1903. Optional<ScopedOperand> last_value;
  1904. for (auto& expression : m_expressions) {
  1905. last_value = TRY(expression->generate_bytecode(generator));
  1906. }
  1907. return last_value;
  1908. }
  1909. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> TemplateLiteral::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  1910. {
  1911. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  1912. auto dst = choose_dst(generator, preferred_dst);
  1913. for (size_t i = 0; i < m_expressions.size(); i++) {
  1914. auto value = TRY(m_expressions[i]->generate_bytecode(generator)).value();
  1915. if (i == 0) {
  1916. generator.emit<Bytecode::Op::Mov>(dst, value);
  1917. } else {
  1918. generator.emit<Bytecode::Op::ConcatString>(dst, value);
  1919. }
  1920. }
  1921. return dst;
  1922. }
  1923. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> TaggedTemplateLiteral::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  1924. {
  1925. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  1926. auto tag = TRY(m_tag->generate_bytecode(generator)).value();
  1927. // FIXME: Follow
  1928. // 13.2.8.3 GetTemplateObject ( templateLiteral ), https://tc39.es/ecma262/#sec-gettemplateobject
  1929. // more closely, namely:
  1930. // * cache this somehow
  1931. // * add a raw object accessor
  1932. // * freeze array and raw member
  1933. Vector<ScopedOperand> string_regs;
  1934. auto& expressions = m_template_literal->expressions();
  1935. for (size_t i = 0; i < expressions.size(); ++i) {
  1936. if (i % 2 != 0)
  1937. continue;
  1938. // NOTE: If the string contains invalid escapes we get a null expression here,
  1939. // which we then convert to the expected `undefined` TV. See
  1940. // 12.9.6.1 Static Semantics: TV, https://tc39.es/ecma262/#sec-static-semantics-tv
  1941. auto string_reg = generator.allocate_register();
  1942. if (is<NullLiteral>(expressions[i])) {
  1943. generator.emit<Bytecode::Op::Mov>(string_reg, generator.add_constant(js_undefined()));
  1944. } else {
  1945. auto value = TRY(expressions[i]->generate_bytecode(generator)).value();
  1946. generator.emit<Bytecode::Op::Mov>(string_reg, value);
  1947. }
  1948. string_regs.append(move(string_reg));
  1949. }
  1950. auto strings_array = generator.allocate_register();
  1951. if (string_regs.is_empty()) {
  1952. generator.emit<Bytecode::Op::NewArray>(strings_array);
  1953. } else {
  1954. generator.emit_with_extra_operand_slots<Bytecode::Op::NewArray>(string_regs.size(), strings_array, string_regs);
  1955. }
  1956. Vector<ScopedOperand> argument_regs;
  1957. argument_regs.append(strings_array);
  1958. for (size_t i = 1; i < expressions.size(); i += 2) {
  1959. auto string_reg = generator.allocate_register();
  1960. auto string = TRY(expressions[i]->generate_bytecode(generator)).value();
  1961. generator.emit<Bytecode::Op::Mov>(string_reg, string);
  1962. argument_regs.append(move(string_reg));
  1963. }
  1964. Vector<ScopedOperand> raw_string_regs;
  1965. raw_string_regs.ensure_capacity(m_template_literal->raw_strings().size());
  1966. for (auto& raw_string : m_template_literal->raw_strings()) {
  1967. auto value = TRY(raw_string->generate_bytecode(generator)).value();
  1968. auto raw_string_reg = generator.allocate_register();
  1969. generator.emit<Bytecode::Op::Mov>(raw_string_reg, value);
  1970. raw_string_regs.append(move(raw_string_reg));
  1971. }
  1972. auto raw_strings_array = generator.allocate_register();
  1973. if (raw_string_regs.is_empty()) {
  1974. generator.emit<Bytecode::Op::NewArray>(raw_strings_array);
  1975. } else {
  1976. generator.emit_with_extra_operand_slots<Bytecode::Op::NewArray>(raw_string_regs.size(), raw_strings_array, raw_string_regs);
  1977. }
  1978. generator.emit<Bytecode::Op::PutById>(strings_array, generator.intern_identifier("raw"), raw_strings_array, Bytecode::Op::PropertyKind::KeyValue, generator.next_property_lookup_cache());
  1979. auto arguments = generator.allocate_register();
  1980. if (!argument_regs.is_empty())
  1981. generator.emit_with_extra_operand_slots<Bytecode::Op::NewArray>(argument_regs.size(), arguments, argument_regs);
  1982. else
  1983. generator.emit<Bytecode::Op::NewArray>(arguments);
  1984. auto dst = choose_dst(generator, preferred_dst);
  1985. generator.emit<Bytecode::Op::CallWithArgumentArray>(Bytecode::Op::CallType::Call, dst, tag, generator.add_constant(js_undefined()), arguments);
  1986. return dst;
  1987. }
  1988. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> UpdateExpression::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand>) const
  1989. {
  1990. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  1991. auto reference = TRY(generator.emit_load_from_reference(*m_argument));
  1992. Optional<ScopedOperand> previous_value_for_postfix;
  1993. if (m_op == UpdateOp::Increment) {
  1994. if (m_prefixed) {
  1995. generator.emit<Bytecode::Op::Increment>(*reference.loaded_value);
  1996. } else {
  1997. previous_value_for_postfix = generator.allocate_register();
  1998. generator.emit<Bytecode::Op::PostfixIncrement>(*previous_value_for_postfix, *reference.loaded_value);
  1999. }
  2000. } else {
  2001. if (m_prefixed) {
  2002. generator.emit<Bytecode::Op::Decrement>(*reference.loaded_value);
  2003. } else {
  2004. previous_value_for_postfix = generator.allocate_register();
  2005. generator.emit<Bytecode::Op::PostfixDecrement>(*previous_value_for_postfix, *reference.loaded_value);
  2006. }
  2007. }
  2008. if (is<Identifier>(*m_argument))
  2009. (void)TRY(generator.emit_store_to_reference(static_cast<Identifier const&>(*m_argument), *reference.loaded_value));
  2010. else
  2011. (void)TRY(generator.emit_store_to_reference(reference, *reference.loaded_value));
  2012. if (!m_prefixed)
  2013. return *previous_value_for_postfix;
  2014. return *reference.loaded_value;
  2015. }
  2016. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ThrowStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2017. {
  2018. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2019. auto argument = TRY(m_argument->generate_bytecode(generator)).value();
  2020. generator.perform_needed_unwinds<Bytecode::Op::Throw>();
  2021. generator.emit<Bytecode::Op::Throw>(argument);
  2022. return Optional<ScopedOperand> {};
  2023. }
  2024. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> BreakStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2025. {
  2026. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2027. // FIXME: Handle finally blocks in a graceful manner
  2028. // We need to execute the finally block, but tell it to resume
  2029. // execution at the designated block
  2030. if (!m_target_label.has_value()) {
  2031. generator.generate_break();
  2032. return Optional<ScopedOperand> {};
  2033. }
  2034. generator.generate_break(m_target_label.value());
  2035. return Optional<ScopedOperand> {};
  2036. }
  2037. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> TryStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2038. {
  2039. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2040. auto& saved_block = generator.current_block();
  2041. Optional<Bytecode::Label> handler_target;
  2042. Optional<Bytecode::Label> finalizer_target;
  2043. Optional<Bytecode::Generator::UnwindContext> unwind_context;
  2044. Bytecode::BasicBlock* next_block { nullptr };
  2045. Optional<ScopedOperand> dst;
  2046. if (m_finalizer) {
  2047. // FIXME: See notes in Op.h->ScheduleJump
  2048. auto& finalizer_block = generator.make_block();
  2049. generator.switch_to_basic_block(finalizer_block);
  2050. generator.emit<Bytecode::Op::LeaveUnwindContext>();
  2051. generator.start_boundary(Bytecode::Generator::BlockBoundaryType::LeaveFinally);
  2052. (void)TRY(m_finalizer->generate_bytecode(generator));
  2053. generator.end_boundary(Bytecode::Generator::BlockBoundaryType::LeaveFinally);
  2054. if (!generator.is_current_block_terminated()) {
  2055. next_block = &generator.make_block();
  2056. auto next_target = Bytecode::Label { *next_block };
  2057. generator.emit<Bytecode::Op::ContinuePendingUnwind>(next_target);
  2058. }
  2059. finalizer_target = Bytecode::Label { finalizer_block };
  2060. generator.start_boundary(Bytecode::Generator::BlockBoundaryType::ReturnToFinally);
  2061. unwind_context.emplace(generator, finalizer_target);
  2062. }
  2063. if (m_handler) {
  2064. auto& handler_block = generator.make_block();
  2065. generator.switch_to_basic_block(handler_block);
  2066. auto caught_value = generator.allocate_register();
  2067. generator.emit<Bytecode::Op::Catch>(caught_value);
  2068. if (!m_finalizer) {
  2069. generator.emit<Bytecode::Op::LeaveUnwindContext>();
  2070. generator.emit<Bytecode::Op::RestoreScheduledJump>();
  2071. }
  2072. // OPTIMIZATION: We avoid creating a lexical environment if the catch clause has no parameter.
  2073. bool did_create_variable_scope_for_catch_clause = false;
  2074. TRY(m_handler->parameter().visit(
  2075. [&](DeprecatedFlyString const& parameter) -> Bytecode::CodeGenerationErrorOr<void> {
  2076. if (!parameter.is_empty()) {
  2077. generator.begin_variable_scope();
  2078. did_create_variable_scope_for_catch_clause = true;
  2079. auto parameter_identifier = generator.intern_identifier(parameter);
  2080. generator.emit<Bytecode::Op::CreateVariable>(parameter_identifier, Bytecode::Op::EnvironmentMode::Lexical, false);
  2081. generator.emit<Bytecode::Op::SetVariable>(parameter_identifier, caught_value, generator.next_environment_variable_cache(), Bytecode::Op::SetVariable::InitializationMode::Initialize);
  2082. }
  2083. return {};
  2084. },
  2085. [&](NonnullRefPtr<BindingPattern const> const& binding_pattern) -> Bytecode::CodeGenerationErrorOr<void> {
  2086. generator.begin_variable_scope();
  2087. did_create_variable_scope_for_catch_clause = true;
  2088. TRY(generate_binding_pattern_bytecode(generator, *binding_pattern, Bytecode::Op::SetVariable::InitializationMode::Initialize, caught_value, true));
  2089. return {};
  2090. }));
  2091. auto handler_result = TRY(m_handler->body().generate_bytecode(generator));
  2092. if (handler_result.has_value() && !generator.is_current_block_terminated()) {
  2093. dst = generator.allocate_register();
  2094. generator.emit<Bytecode::Op::Mov>(*dst, *handler_result);
  2095. }
  2096. handler_target = Bytecode::Label { handler_block };
  2097. if (did_create_variable_scope_for_catch_clause)
  2098. generator.end_variable_scope();
  2099. if (!generator.is_current_block_terminated()) {
  2100. if (m_finalizer) {
  2101. generator.emit<Bytecode::Op::Jump>(*finalizer_target);
  2102. } else {
  2103. VERIFY(!next_block);
  2104. VERIFY(!unwind_context.has_value());
  2105. next_block = &generator.make_block();
  2106. auto next_target = Bytecode::Label { *next_block };
  2107. generator.emit<Bytecode::Op::Jump>(next_target);
  2108. }
  2109. }
  2110. }
  2111. if (m_finalizer)
  2112. generator.end_boundary(Bytecode::Generator::BlockBoundaryType::ReturnToFinally);
  2113. if (m_handler) {
  2114. if (!m_finalizer) {
  2115. auto const* parent_unwind_context = generator.current_unwind_context();
  2116. if (parent_unwind_context)
  2117. unwind_context.emplace(generator, parent_unwind_context->finalizer());
  2118. else
  2119. unwind_context.emplace(generator, OptionalNone());
  2120. }
  2121. unwind_context->set_handler(handler_target.value());
  2122. }
  2123. auto& target_block = generator.make_block();
  2124. generator.switch_to_basic_block(saved_block);
  2125. generator.emit<Bytecode::Op::EnterUnwindContext>(Bytecode::Label { target_block });
  2126. generator.start_boundary(Bytecode::Generator::BlockBoundaryType::Unwind);
  2127. if (m_finalizer)
  2128. generator.start_boundary(Bytecode::Generator::BlockBoundaryType::ReturnToFinally);
  2129. generator.switch_to_basic_block(target_block);
  2130. auto block_result = TRY(m_block->generate_bytecode(generator));
  2131. if (!generator.is_current_block_terminated()) {
  2132. if (block_result.has_value()) {
  2133. dst = generator.allocate_register();
  2134. generator.emit<Bytecode::Op::Mov>(*dst, *block_result);
  2135. }
  2136. if (m_finalizer) {
  2137. generator.emit<Bytecode::Op::Jump>(*finalizer_target);
  2138. } else {
  2139. VERIFY(unwind_context.has_value());
  2140. unwind_context.clear();
  2141. if (!next_block)
  2142. next_block = &generator.make_block();
  2143. generator.emit<Bytecode::Op::LeaveUnwindContext>();
  2144. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { *next_block });
  2145. }
  2146. }
  2147. if (m_finalizer)
  2148. generator.end_boundary(Bytecode::Generator::BlockBoundaryType::ReturnToFinally);
  2149. generator.end_boundary(Bytecode::Generator::BlockBoundaryType::Unwind);
  2150. generator.switch_to_basic_block(next_block ? *next_block : saved_block);
  2151. if (!dst.has_value())
  2152. return generator.add_constant(js_undefined());
  2153. return dst;
  2154. }
  2155. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> SwitchStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2156. {
  2157. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2158. return generate_labelled_evaluation(generator, {});
  2159. }
  2160. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> SwitchStatement::generate_labelled_evaluation(Bytecode::Generator& generator, Vector<DeprecatedFlyString> const& label_set, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2161. {
  2162. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2163. auto dst = generator.allocate_register();
  2164. generator.emit<Bytecode::Op::Mov>(dst, generator.add_constant(js_undefined()));
  2165. auto discriminant = TRY(m_discriminant->generate_bytecode(generator)).value();
  2166. Vector<Bytecode::BasicBlock&> case_blocks;
  2167. Bytecode::BasicBlock* entry_block_for_default { nullptr };
  2168. Bytecode::BasicBlock* next_test_block = &generator.make_block();
  2169. auto has_lexical_declarations = this->has_lexical_declarations();
  2170. if (has_lexical_declarations)
  2171. generator.block_declaration_instantiation(*this);
  2172. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { *next_test_block });
  2173. Queue<Bytecode::BasicBlock*> test_blocks;
  2174. for (auto& switch_case : m_cases) {
  2175. if (switch_case->test())
  2176. test_blocks.enqueue(&generator.make_block());
  2177. }
  2178. for (auto& switch_case : m_cases) {
  2179. auto& case_block = generator.make_block();
  2180. if (switch_case->test()) {
  2181. generator.switch_to_basic_block(*next_test_block);
  2182. auto test_value = TRY(switch_case->test()->generate_bytecode(generator)).value();
  2183. auto result = generator.allocate_register();
  2184. generator.emit<Bytecode::Op::StrictlyEquals>(result, test_value, discriminant);
  2185. next_test_block = test_blocks.dequeue();
  2186. generator.emit<Bytecode::Op::JumpIf>(
  2187. result,
  2188. Bytecode::Label { case_block },
  2189. Bytecode::Label { *next_test_block });
  2190. } else {
  2191. entry_block_for_default = &case_block;
  2192. }
  2193. case_blocks.append(case_block);
  2194. }
  2195. generator.switch_to_basic_block(*next_test_block);
  2196. auto& end_block = generator.make_block();
  2197. if (entry_block_for_default != nullptr) {
  2198. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { *entry_block_for_default });
  2199. } else {
  2200. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { end_block });
  2201. }
  2202. auto current_block = case_blocks.begin();
  2203. generator.begin_breakable_scope(Bytecode::Label { end_block }, label_set);
  2204. for (auto& switch_case : m_cases) {
  2205. generator.switch_to_basic_block(*current_block);
  2206. for (auto& statement : switch_case->children()) {
  2207. auto result = TRY(statement->generate_bytecode(generator));
  2208. if (generator.is_current_block_terminated())
  2209. break;
  2210. if (result.has_value())
  2211. generator.emit<Bytecode::Op::Mov>(dst, *result);
  2212. else
  2213. generator.emit<Bytecode::Op::Mov>(dst, generator.add_constant(js_undefined()));
  2214. }
  2215. if (!generator.is_current_block_terminated()) {
  2216. auto next_block = current_block;
  2217. next_block++;
  2218. if (next_block.is_end()) {
  2219. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { end_block });
  2220. } else {
  2221. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { *next_block });
  2222. }
  2223. }
  2224. current_block++;
  2225. }
  2226. generator.end_breakable_scope();
  2227. generator.switch_to_basic_block(end_block);
  2228. if (has_lexical_declarations)
  2229. generator.end_variable_scope();
  2230. return dst;
  2231. }
  2232. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> SuperExpression::generate_bytecode(Bytecode::Generator&, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2233. {
  2234. // The semantics for SuperExpression are handled in CallExpression and SuperCall.
  2235. VERIFY_NOT_REACHED();
  2236. }
  2237. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ClassDeclaration::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2238. {
  2239. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2240. auto value = TRY(m_class_expression->generate_bytecode(generator)).value();
  2241. generator.emit_set_variable(*m_class_expression.ptr()->m_name, value, Bytecode::Op::SetVariable::InitializationMode::Initialize);
  2242. // NOTE: ClassDeclaration does not produce a value.
  2243. return Optional<ScopedOperand> {};
  2244. }
  2245. // 15.7.14 Runtime Semantics: ClassDefinitionEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-classdefinitionevaluation
  2246. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ClassExpression::generate_bytecode_with_lhs_name(Bytecode::Generator& generator, Optional<Bytecode::IdentifierTableIndex> lhs_name, Optional<ScopedOperand> preferred_dst) const
  2247. {
  2248. // NOTE: Step 2 is not a part of NewClass instruction because it is assumed to be done before super class expression evaluation
  2249. generator.emit<Bytecode::Op::CreateLexicalEnvironment>();
  2250. if (has_name() || !lhs_name.has_value()) {
  2251. // NOTE: Step 3.a is not a part of NewClass instruction because it is assumed to be done before super class expression evaluation
  2252. auto interned_index = generator.intern_identifier(name());
  2253. generator.emit<Bytecode::Op::CreateVariable>(interned_index, Bytecode::Op::EnvironmentMode::Lexical, true);
  2254. }
  2255. Optional<ScopedOperand> super_class;
  2256. if (m_super_class)
  2257. super_class = TRY(m_super_class->generate_bytecode(generator)).value();
  2258. auto dst = choose_dst(generator, preferred_dst);
  2259. generator.emit<Bytecode::Op::NewClass>(dst, super_class.has_value() ? super_class->operand() : Optional<Operand> {}, *this, lhs_name);
  2260. return dst;
  2261. }
  2262. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ClassExpression::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  2263. {
  2264. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2265. return generate_bytecode_with_lhs_name(generator, {}, preferred_dst);
  2266. }
  2267. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> SpreadExpression::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2268. {
  2269. // NOTE: All users of this should handle the behaviour of this on their own,
  2270. // assuming it returns an Array-like object
  2271. return m_target->generate_bytecode(generator);
  2272. }
  2273. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ThisExpression::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  2274. {
  2275. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2276. return generator.get_this(preferred_dst);
  2277. }
  2278. static ScopedOperand generate_await(
  2279. Bytecode::Generator& generator,
  2280. ScopedOperand argument,
  2281. ScopedOperand received_completion,
  2282. ScopedOperand received_completion_type,
  2283. ScopedOperand received_completion_value,
  2284. Bytecode::IdentifierTableIndex type_identifier,
  2285. Bytecode::IdentifierTableIndex value_identifier)
  2286. {
  2287. VERIFY(generator.is_in_async_function());
  2288. auto& continuation_block = generator.make_block();
  2289. generator.emit<Bytecode::Op::Await>(Bytecode::Label { continuation_block }, argument);
  2290. generator.switch_to_basic_block(continuation_block);
  2291. // FIXME: It's really magical that we can just assume that the completion value is in register 0.
  2292. // It ends up there because we "return" from the Await instruction above via the synthetic
  2293. // generator function that actually drives async execution.
  2294. generator.emit<Bytecode::Op::Mov>(received_completion, generator.accumulator());
  2295. get_received_completion_type_and_value(generator, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier);
  2296. auto& normal_completion_continuation_block = generator.make_block();
  2297. auto& throw_value_block = generator.make_block();
  2298. auto received_completion_type_is_normal = generator.allocate_register();
  2299. generator.emit<Bytecode::Op::StrictlyEquals>(
  2300. received_completion_type_is_normal,
  2301. received_completion_type,
  2302. generator.add_constant(Value(to_underlying(Completion::Type::Normal))));
  2303. generator.emit<Bytecode::Op::JumpIf>(
  2304. received_completion_type_is_normal,
  2305. Bytecode::Label { normal_completion_continuation_block },
  2306. Bytecode::Label { throw_value_block });
  2307. // Simplification: The only abrupt completion we receive from AsyncFunctionDriverWrapper or AsyncGenerator is Type::Throw
  2308. // So we do not need to account for the Type::Return path
  2309. generator.switch_to_basic_block(throw_value_block);
  2310. generator.perform_needed_unwinds<Bytecode::Op::Throw>();
  2311. generator.emit<Bytecode::Op::Throw>(received_completion_value);
  2312. generator.switch_to_basic_block(normal_completion_continuation_block);
  2313. return received_completion_value;
  2314. }
  2315. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> AwaitExpression::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2316. {
  2317. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2318. auto argument = TRY(m_argument->generate_bytecode(generator)).value();
  2319. auto received_completion = generator.allocate_register();
  2320. auto received_completion_type = generator.allocate_register();
  2321. auto received_completion_value = generator.allocate_register();
  2322. generator.emit<Bytecode::Op::Mov>(received_completion, generator.accumulator());
  2323. auto type_identifier = generator.intern_identifier("type");
  2324. auto value_identifier = generator.intern_identifier("value");
  2325. return generate_await(generator, argument, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier);
  2326. }
  2327. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> WithStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2328. {
  2329. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2330. auto object = TRY(m_object->generate_bytecode(generator)).value();
  2331. generator.emit<Bytecode::Op::EnterObjectEnvironment>(object);
  2332. // EnterObjectEnvironment sets the running execution context's lexical_environment to a new Object Environment.
  2333. generator.start_boundary(Bytecode::Generator::BlockBoundaryType::LeaveLexicalEnvironment);
  2334. auto body_result = TRY(m_body->generate_bytecode(generator));
  2335. if (!body_result.has_value())
  2336. body_result = generator.add_constant(js_undefined());
  2337. generator.end_boundary(Bytecode::Generator::BlockBoundaryType::LeaveLexicalEnvironment);
  2338. if (!generator.is_current_block_terminated())
  2339. generator.emit<Bytecode::Op::LeaveLexicalEnvironment>();
  2340. return body_result;
  2341. }
  2342. enum class LHSKind {
  2343. Assignment,
  2344. VarBinding,
  2345. LexicalBinding,
  2346. };
  2347. enum class IterationKind {
  2348. Enumerate,
  2349. Iterate,
  2350. AsyncIterate,
  2351. };
  2352. // 14.7.5.6 ForIn/OfHeadEvaluation ( uninitializedBoundNames, expr, iterationKind ), https://tc39.es/ecma262/#sec-runtime-semantics-forinofheadevaluation
  2353. struct ForInOfHeadEvaluationResult {
  2354. bool is_destructuring { false };
  2355. LHSKind lhs_kind { LHSKind::Assignment };
  2356. Optional<ScopedOperand> iterator;
  2357. };
  2358. static Bytecode::CodeGenerationErrorOr<ForInOfHeadEvaluationResult> for_in_of_head_evaluation(Bytecode::Generator& generator, IterationKind iteration_kind, Variant<NonnullRefPtr<ASTNode const>, NonnullRefPtr<BindingPattern const>> const& lhs, NonnullRefPtr<ASTNode const> const& rhs)
  2359. {
  2360. ForInOfHeadEvaluationResult result {};
  2361. bool entered_lexical_scope = false;
  2362. if (auto* ast_ptr = lhs.get_pointer<NonnullRefPtr<ASTNode const>>(); ast_ptr && is<VariableDeclaration>(**ast_ptr)) {
  2363. // Runtime Semantics: ForInOfLoopEvaluation, for any of:
  2364. // ForInOfStatement : for ( var ForBinding in Expression ) Statement
  2365. // ForInOfStatement : for ( ForDeclaration in Expression ) Statement
  2366. // ForInOfStatement : for ( var ForBinding of AssignmentExpression ) Statement
  2367. // ForInOfStatement : for ( ForDeclaration of AssignmentExpression ) Statement
  2368. auto& variable_declaration = static_cast<VariableDeclaration const&>(**ast_ptr);
  2369. result.is_destructuring = variable_declaration.declarations().first()->target().has<NonnullRefPtr<BindingPattern const>>();
  2370. result.lhs_kind = variable_declaration.is_lexical_declaration() ? LHSKind::LexicalBinding : LHSKind::VarBinding;
  2371. if (variable_declaration.declaration_kind() == DeclarationKind::Var) {
  2372. // B.3.5 Initializers in ForIn Statement Heads, https://tc39.es/ecma262/#sec-initializers-in-forin-statement-heads
  2373. auto& variable = variable_declaration.declarations().first();
  2374. if (variable->init()) {
  2375. VERIFY(variable->target().has<NonnullRefPtr<Identifier const>>());
  2376. auto identifier = variable->target().get<NonnullRefPtr<Identifier const>>();
  2377. auto identifier_table_ref = generator.intern_identifier(identifier->string());
  2378. auto value = TRY(generator.emit_named_evaluation_if_anonymous_function(*variable->init(), identifier_table_ref)).value();
  2379. generator.emit_set_variable(*identifier, value);
  2380. }
  2381. } else {
  2382. auto has_non_local_variables = false;
  2383. MUST(variable_declaration.for_each_bound_identifier([&](auto const& identifier) {
  2384. if (!identifier.is_local())
  2385. has_non_local_variables = true;
  2386. }));
  2387. if (has_non_local_variables) {
  2388. // 1. Let oldEnv be the running execution context's LexicalEnvironment.
  2389. // NOTE: 'uninitializedBoundNames' refers to the lexical bindings (i.e. Const/Let) present in the second and last form.
  2390. // 2. If uninitializedBoundNames is not an empty List, then
  2391. entered_lexical_scope = true;
  2392. // a. Assert: uninitializedBoundNames has no duplicate entries.
  2393. // b. Let newEnv be NewDeclarativeEnvironment(oldEnv).
  2394. generator.begin_variable_scope();
  2395. // c. For each String name of uninitializedBoundNames, do
  2396. // NOTE: Nothing in the callback throws an exception.
  2397. MUST(variable_declaration.for_each_bound_identifier([&](auto const& identifier) {
  2398. if (identifier.is_local())
  2399. return;
  2400. // i. Perform ! newEnv.CreateMutableBinding(name, false).
  2401. auto interned_identifier = generator.intern_identifier(identifier.string());
  2402. generator.emit<Bytecode::Op::CreateVariable>(interned_identifier, Bytecode::Op::EnvironmentMode::Lexical, false);
  2403. }));
  2404. // d. Set the running execution context's LexicalEnvironment to newEnv.
  2405. // NOTE: Done by CreateLexicalEnvironment.
  2406. }
  2407. }
  2408. } else {
  2409. // Runtime Semantics: ForInOfLoopEvaluation, for any of:
  2410. // ForInOfStatement : for ( LeftHandSideExpression in Expression ) Statement
  2411. // ForInOfStatement : for ( LeftHandSideExpression of AssignmentExpression ) Statement
  2412. result.lhs_kind = LHSKind::Assignment;
  2413. }
  2414. // 3. Let exprRef be the result of evaluating expr.
  2415. auto object = TRY(rhs->generate_bytecode(generator)).value();
  2416. // 4. Set the running execution context's LexicalEnvironment to oldEnv.
  2417. if (entered_lexical_scope)
  2418. generator.end_variable_scope();
  2419. // 5. Let exprValue be ? GetValue(exprRef).
  2420. // NOTE: No need to store this anywhere.
  2421. auto iterator = generator.allocate_register();
  2422. // 6. If iterationKind is enumerate, then
  2423. if (iteration_kind == IterationKind::Enumerate) {
  2424. // a. If exprValue is undefined or null, then
  2425. auto& nullish_block = generator.make_block();
  2426. auto& continuation_block = generator.make_block();
  2427. generator.emit<Bytecode::Op::JumpNullish>(
  2428. object,
  2429. Bytecode::Label { nullish_block },
  2430. Bytecode::Label { continuation_block });
  2431. // i. Return Completion Record { [[Type]]: break, [[Value]]: empty, [[Target]]: empty }.
  2432. generator.switch_to_basic_block(nullish_block);
  2433. generator.generate_break();
  2434. generator.switch_to_basic_block(continuation_block);
  2435. // b. Let obj be ! ToObject(exprValue).
  2436. // NOTE: GetObjectPropertyIterator does this.
  2437. // c. Let iterator be EnumerateObjectProperties(obj).
  2438. // d. Let nextMethod be ! GetV(iterator, "next").
  2439. // e. Return the Iterator Record { [[Iterator]]: iterator, [[NextMethod]]: nextMethod, [[Done]]: false }.
  2440. generator.emit<Bytecode::Op::GetObjectPropertyIterator>(iterator, object);
  2441. }
  2442. // 7. Else,
  2443. else {
  2444. // a. Assert: iterationKind is iterate or async-iterate.
  2445. // b. If iterationKind is async-iterate, let iteratorKind be async.
  2446. // c. Else, let iteratorKind be sync.
  2447. auto iterator_kind = iteration_kind == IterationKind::AsyncIterate ? IteratorHint::Async : IteratorHint::Sync;
  2448. // d. Return ? GetIterator(exprValue, iteratorKind).
  2449. generator.emit<Bytecode::Op::GetIterator>(iterator, object, iterator_kind);
  2450. }
  2451. result.iterator = iterator;
  2452. return result;
  2453. }
  2454. // 14.7.5.7 ForIn/OfBodyEvaluation ( lhs, stmt, iteratorRecord, iterationKind, lhsKind, labelSet [ , iteratorKind ] ), https://tc39.es/ecma262/#sec-runtime-semantics-forin-div-ofbodyevaluation-lhs-stmt-iterator-lhskind-labelset
  2455. static Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> for_in_of_body_evaluation(Bytecode::Generator& generator, ASTNode const& node, Variant<NonnullRefPtr<ASTNode const>, NonnullRefPtr<BindingPattern const>> const& lhs, ASTNode const& body, ForInOfHeadEvaluationResult const& head_result, Vector<DeprecatedFlyString> const& label_set, Bytecode::BasicBlock& loop_end, Bytecode::BasicBlock& loop_update, IteratorHint iterator_kind = IteratorHint::Sync, [[maybe_unused]] Optional<ScopedOperand> preferred_dst = {})
  2456. {
  2457. // 1. If iteratorKind is not present, set iteratorKind to sync.
  2458. // 2. Let oldEnv be the running execution context's LexicalEnvironment.
  2459. bool has_lexical_binding = false;
  2460. // 3. Let V be undefined.
  2461. auto completion_value = generator.allocate_register();
  2462. generator.emit<Bytecode::Op::Mov>(completion_value, generator.add_constant(js_undefined()));
  2463. // 4. Let destructuring be IsDestructuring of lhs.
  2464. auto destructuring = head_result.is_destructuring;
  2465. // 5. If destructuring is true and if lhsKind is assignment, then
  2466. if (destructuring && head_result.lhs_kind == LHSKind::Assignment) {
  2467. // a. Assert: lhs is a LeftHandSideExpression.
  2468. // b. Let assignmentPattern be the AssignmentPattern that is covered by lhs.
  2469. // FIXME: Implement this.
  2470. return Bytecode::CodeGenerationError {
  2471. &node,
  2472. "Unimplemented: assignment destructuring in for/of"sv,
  2473. };
  2474. }
  2475. // 6. Repeat,
  2476. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { loop_update });
  2477. generator.switch_to_basic_block(loop_update);
  2478. generator.begin_continuable_scope(Bytecode::Label { loop_update }, label_set);
  2479. // a. Let nextResult be ? Call(iteratorRecord.[[NextMethod]], iteratorRecord.[[Iterator]]).
  2480. auto next_result = generator.allocate_register();
  2481. generator.emit<Bytecode::Op::IteratorNext>(next_result, *head_result.iterator);
  2482. // b. If iteratorKind is async, set nextResult to ? Await(nextResult).
  2483. if (iterator_kind == IteratorHint::Async) {
  2484. auto received_completion = generator.allocate_register();
  2485. auto received_completion_type = generator.allocate_register();
  2486. auto received_completion_value = generator.allocate_register();
  2487. auto type_identifier = generator.intern_identifier("type");
  2488. auto value_identifier = generator.intern_identifier("value");
  2489. generator.emit<Bytecode::Op::Mov>(received_completion, generator.accumulator());
  2490. auto new_result = generate_await(generator, next_result, received_completion, received_completion_type, received_completion_value, type_identifier, value_identifier);
  2491. generator.emit<Bytecode::Op::Mov>(next_result, new_result);
  2492. }
  2493. // c. If Type(nextResult) is not Object, throw a TypeError exception.
  2494. generator.emit<Bytecode::Op::ThrowIfNotObject>(next_result);
  2495. // d. Let done be ? IteratorComplete(nextResult).
  2496. auto done = generator.allocate_register();
  2497. generator.emit_iterator_complete(done, next_result);
  2498. // e. If done is true, return V.
  2499. auto& loop_continue = generator.make_block();
  2500. generator.emit<Bytecode::Op::JumpIf>(
  2501. done,
  2502. Bytecode::Label { loop_end },
  2503. Bytecode::Label { loop_continue });
  2504. generator.switch_to_basic_block(loop_continue);
  2505. // f. Let nextValue be ? IteratorValue(nextResult).
  2506. auto next_value = generator.allocate_register();
  2507. generator.emit_iterator_value(next_value, next_result);
  2508. // g. If lhsKind is either assignment or varBinding, then
  2509. if (head_result.lhs_kind != LHSKind::LexicalBinding) {
  2510. // i. If destructuring is false, then
  2511. if (!destructuring) {
  2512. // 1. Let lhsRef be the result of evaluating lhs. (It may be evaluated repeatedly.)
  2513. // NOTE: We're skipping all the completion stuff that the spec does, as the unwinding mechanism will take case of doing that.
  2514. if (head_result.lhs_kind == LHSKind::VarBinding) {
  2515. auto& declaration = static_cast<VariableDeclaration const&>(*lhs.get<NonnullRefPtr<ASTNode const>>());
  2516. VERIFY(declaration.declarations().size() == 1);
  2517. TRY(assign_value_to_variable_declarator(generator, declaration.declarations().first(), declaration, next_value));
  2518. } else {
  2519. if (auto ptr = lhs.get_pointer<NonnullRefPtr<ASTNode const>>()) {
  2520. TRY(generator.emit_store_to_reference(**ptr, next_value));
  2521. } else {
  2522. auto& binding_pattern = lhs.get<NonnullRefPtr<BindingPattern const>>();
  2523. TRY(generate_binding_pattern_bytecode(generator, *binding_pattern, Bytecode::Op::SetVariable::InitializationMode::Set, next_value, false));
  2524. }
  2525. }
  2526. }
  2527. }
  2528. // h. Else,
  2529. else {
  2530. // i. Assert: lhsKind is lexicalBinding.
  2531. // ii. Assert: lhs is a ForDeclaration.
  2532. // iii. Let iterationEnv be NewDeclarativeEnvironment(oldEnv).
  2533. // iv. Perform ForDeclarationBindingInstantiation of lhs with argument iterationEnv.
  2534. // v. Set the running execution context's LexicalEnvironment to iterationEnv.
  2535. // 14.7.5.4 Runtime Semantics: ForDeclarationBindingInstantiation, https://tc39.es/ecma262/#sec-runtime-semantics-fordeclarationbindinginstantiation
  2536. // 1. Assert: environment is a declarative Environment Record.
  2537. // NOTE: We just made it.
  2538. auto& variable_declaration = static_cast<VariableDeclaration const&>(*lhs.get<NonnullRefPtr<ASTNode const>>());
  2539. // 2. For each element name of the BoundNames of ForBinding, do
  2540. // NOTE: Nothing in the callback throws an exception.
  2541. auto has_non_local_variables = false;
  2542. MUST(variable_declaration.for_each_bound_identifier([&](auto const& identifier) {
  2543. if (!identifier.is_local())
  2544. has_non_local_variables = true;
  2545. }));
  2546. if (has_non_local_variables) {
  2547. generator.begin_variable_scope();
  2548. has_lexical_binding = true;
  2549. MUST(variable_declaration.for_each_bound_identifier([&](auto const& identifier) {
  2550. if (identifier.is_local())
  2551. return;
  2552. auto interned_identifier = generator.intern_identifier(identifier.string());
  2553. // a. If IsConstantDeclaration of LetOrConst is true, then
  2554. if (variable_declaration.is_constant_declaration()) {
  2555. // i. Perform ! environment.CreateImmutableBinding(name, true).
  2556. generator.emit<Bytecode::Op::CreateVariable>(interned_identifier, Bytecode::Op::EnvironmentMode::Lexical, true, false, true);
  2557. }
  2558. // b. Else,
  2559. else {
  2560. // i. Perform ! environment.CreateMutableBinding(name, false).
  2561. generator.emit<Bytecode::Op::CreateVariable>(interned_identifier, Bytecode::Op::EnvironmentMode::Lexical, false);
  2562. }
  2563. }));
  2564. // 3. Return unused.
  2565. // NOTE: No need to do that as we've inlined this.
  2566. }
  2567. // vi. If destructuring is false, then
  2568. if (!destructuring) {
  2569. // 1. Assert: lhs binds a single name.
  2570. // 2. Let lhsName be the sole element of BoundNames of lhs.
  2571. auto lhs_name = variable_declaration.declarations().first()->target().get<NonnullRefPtr<Identifier const>>();
  2572. // 3. Let lhsRef be ! ResolveBinding(lhsName).
  2573. // NOTE: We're skipping all the completion stuff that the spec does, as the unwinding mechanism will take case of doing that.
  2574. generator.emit_set_variable(*lhs_name, next_value, Bytecode::Op::SetVariable::InitializationMode::Initialize, Bytecode::Op::EnvironmentMode::Lexical);
  2575. }
  2576. }
  2577. // i. If destructuring is false, then
  2578. if (!destructuring) {
  2579. // i. If lhsRef is an abrupt completion, then
  2580. // 1. Let status be lhsRef.
  2581. // ii. Else if lhsKind is lexicalBinding, then
  2582. // 1. Let status be Completion(InitializeReferencedBinding(lhsRef, nextValue)).
  2583. // iii. Else,
  2584. // 1. Let status be Completion(PutValue(lhsRef, nextValue)).
  2585. // NOTE: This is performed above.
  2586. }
  2587. // j. Else,
  2588. else {
  2589. // FIXME: i. If lhsKind is assignment, then
  2590. // 1. Let status be Completion(DestructuringAssignmentEvaluation of assignmentPattern with argument nextValue).
  2591. // ii. Else if lhsKind is varBinding, then
  2592. // 1. Assert: lhs is a ForBinding.
  2593. // 2. Let status be Completion(BindingInitialization of lhs with arguments nextValue and undefined).
  2594. // iii. Else,
  2595. // 1. Assert: lhsKind is lexicalBinding.
  2596. // 2. Assert: lhs is a ForDeclaration.
  2597. // 3. Let status be Completion(ForDeclarationBindingInitialization of lhs with arguments nextValue and iterationEnv).
  2598. if (head_result.lhs_kind == LHSKind::VarBinding || head_result.lhs_kind == LHSKind::LexicalBinding) {
  2599. auto& declaration = static_cast<VariableDeclaration const&>(*lhs.get<NonnullRefPtr<ASTNode const>>());
  2600. VERIFY(declaration.declarations().size() == 1);
  2601. auto& binding_pattern = declaration.declarations().first()->target().get<NonnullRefPtr<BindingPattern const>>();
  2602. (void)TRY(generate_binding_pattern_bytecode(
  2603. generator,
  2604. *binding_pattern,
  2605. head_result.lhs_kind == LHSKind::VarBinding ? Bytecode::Op::SetVariable::InitializationMode::Set : Bytecode::Op::SetVariable::InitializationMode::Initialize,
  2606. next_value,
  2607. false));
  2608. } else {
  2609. return Bytecode::CodeGenerationError {
  2610. &node,
  2611. "Unimplemented: assignment destructuring in for/of"sv,
  2612. };
  2613. }
  2614. }
  2615. // FIXME: Implement iteration closure.
  2616. // k. If status is an abrupt completion, then
  2617. // i. Set the running execution context's LexicalEnvironment to oldEnv.
  2618. // ii. If iteratorKind is async, return ? AsyncIteratorClose(iteratorRecord, status).
  2619. // iii. If iterationKind is enumerate, then
  2620. // 1. Return ? status.
  2621. // iv. Else,
  2622. // 1. Assert: iterationKind is iterate.
  2623. // 2. Return ? IteratorClose(iteratorRecord, status).
  2624. // l. Let result be the result of evaluating stmt.
  2625. auto result = TRY(body.generate_bytecode(generator));
  2626. // m. Set the running execution context's LexicalEnvironment to oldEnv.
  2627. if (has_lexical_binding)
  2628. generator.end_variable_scope();
  2629. generator.end_continuable_scope();
  2630. generator.end_breakable_scope();
  2631. // NOTE: If we're here, then the loop definitely continues.
  2632. // n. If LoopContinues(result, labelSet) is false, then
  2633. // i. If iterationKind is enumerate, then
  2634. // 1. Return ? UpdateEmpty(result, V).
  2635. // ii. Else,
  2636. // 1. Assert: iterationKind is iterate.
  2637. // 2. Set status to Completion(UpdateEmpty(result, V)).
  2638. // 3. If iteratorKind is async, return ? AsyncIteratorClose(iteratorRecord, status).
  2639. // 4. Return ? IteratorClose(iteratorRecord, status).
  2640. // o. If result.[[Value]] is not empty, set V to result.[[Value]].
  2641. // The body can contain an unconditional block terminator (e.g. return, throw), so we have to check for that before generating the Jump.
  2642. if (!generator.is_current_block_terminated()) {
  2643. if (result.has_value())
  2644. generator.emit<Bytecode::Op::Mov>(completion_value, *result);
  2645. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { loop_update });
  2646. }
  2647. generator.switch_to_basic_block(loop_end);
  2648. return completion_value;
  2649. }
  2650. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ForInStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2651. {
  2652. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2653. return generate_labelled_evaluation(generator, {});
  2654. }
  2655. // 14.7.5.5 Runtime Semantics: ForInOfLoopEvaluation, https://tc39.es/ecma262/#sec-runtime-semantics-forinofloopevaluation
  2656. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ForInStatement::generate_labelled_evaluation(Bytecode::Generator& generator, Vector<DeprecatedFlyString> const& label_set, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2657. {
  2658. auto& loop_end = generator.make_block();
  2659. auto& loop_update = generator.make_block();
  2660. generator.begin_breakable_scope(Bytecode::Label { loop_end }, label_set);
  2661. auto head_result = TRY(for_in_of_head_evaluation(generator, IterationKind::Enumerate, m_lhs, m_rhs));
  2662. return for_in_of_body_evaluation(generator, *this, m_lhs, body(), head_result, label_set, loop_end, loop_update);
  2663. }
  2664. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ForOfStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2665. {
  2666. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2667. return generate_labelled_evaluation(generator, {});
  2668. }
  2669. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ForOfStatement::generate_labelled_evaluation(Bytecode::Generator& generator, Vector<DeprecatedFlyString> const& label_set, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2670. {
  2671. auto& loop_end = generator.make_block();
  2672. auto& loop_update = generator.make_block();
  2673. generator.begin_breakable_scope(Bytecode::Label { loop_end }, label_set);
  2674. auto head_result = TRY(for_in_of_head_evaluation(generator, IterationKind::Iterate, m_lhs, m_rhs));
  2675. return for_in_of_body_evaluation(generator, *this, m_lhs, body(), head_result, label_set, loop_end, loop_update);
  2676. }
  2677. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ForAwaitOfStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2678. {
  2679. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2680. return generate_labelled_evaluation(generator, {});
  2681. }
  2682. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ForAwaitOfStatement::generate_labelled_evaluation(Bytecode::Generator& generator, Vector<DeprecatedFlyString> const& label_set, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2683. {
  2684. auto& loop_end = generator.make_block();
  2685. auto& loop_update = generator.make_block();
  2686. generator.begin_breakable_scope(Bytecode::Label { loop_end }, label_set);
  2687. auto head_result = TRY(for_in_of_head_evaluation(generator, IterationKind::AsyncIterate, m_lhs, m_rhs));
  2688. return for_in_of_body_evaluation(generator, *this, m_lhs, m_body, head_result, label_set, loop_end, loop_update, IteratorHint::Async);
  2689. }
  2690. // 13.3.12.1 Runtime Semantics: Evaluation, https://tc39.es/ecma262/#sec-meta-properties-runtime-semantics-evaluation
  2691. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> MetaProperty::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  2692. {
  2693. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2694. // NewTarget : new . target
  2695. if (m_type == MetaProperty::Type::NewTarget) {
  2696. // 1. Return GetNewTarget().
  2697. auto dst = choose_dst(generator, preferred_dst);
  2698. generator.emit<Bytecode::Op::GetNewTarget>(dst);
  2699. return dst;
  2700. }
  2701. // ImportMeta : import . meta
  2702. if (m_type == MetaProperty::Type::ImportMeta) {
  2703. auto dst = choose_dst(generator, preferred_dst);
  2704. generator.emit<Bytecode::Op::GetImportMeta>(dst);
  2705. return dst;
  2706. }
  2707. VERIFY_NOT_REACHED();
  2708. }
  2709. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ClassFieldInitializerStatement::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  2710. {
  2711. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2712. auto value = TRY(generator.emit_named_evaluation_if_anonymous_function(*m_expression, generator.intern_identifier(m_class_field_identifier_name), preferred_dst));
  2713. generator.perform_needed_unwinds<Bytecode::Op::Return>();
  2714. generator.emit<Bytecode::Op::Return>(value.has_value() ? value->operand() : Optional<Operand> {});
  2715. return value;
  2716. }
  2717. static Bytecode::CodeGenerationErrorOr<void> generate_optional_chain(Bytecode::Generator& generator, OptionalChain const& optional_chain, ScopedOperand current_value, ScopedOperand current_base, [[maybe_unused]] Optional<ScopedOperand> preferred_dst)
  2718. {
  2719. Optional<ScopedOperand> new_current_value;
  2720. if (is<MemberExpression>(optional_chain.base())) {
  2721. auto& member_expression = static_cast<MemberExpression const&>(optional_chain.base());
  2722. auto base_and_value = TRY(get_base_and_value_from_member_expression(generator, member_expression));
  2723. new_current_value = base_and_value.value;
  2724. generator.emit<Bytecode::Op::Mov>(current_base, base_and_value.base);
  2725. } else if (is<OptionalChain>(optional_chain.base())) {
  2726. auto& sub_optional_chain = static_cast<OptionalChain const&>(optional_chain.base());
  2727. TRY(generate_optional_chain(generator, sub_optional_chain, current_value, current_base));
  2728. new_current_value = current_value;
  2729. } else {
  2730. new_current_value = TRY(optional_chain.base().generate_bytecode(generator)).value();
  2731. }
  2732. generator.emit<Bytecode::Op::Mov>(current_value, *new_current_value);
  2733. auto& load_undefined_and_jump_to_end_block = generator.make_block();
  2734. auto& end_block = generator.make_block();
  2735. for (auto& reference : optional_chain.references()) {
  2736. auto is_optional = reference.visit([](auto& ref) { return ref.mode; }) == OptionalChain::Mode::Optional;
  2737. if (is_optional) {
  2738. auto& not_nullish_block = generator.make_block();
  2739. generator.emit<Bytecode::Op::JumpNullish>(
  2740. current_value,
  2741. Bytecode::Label { load_undefined_and_jump_to_end_block },
  2742. Bytecode::Label { not_nullish_block });
  2743. generator.switch_to_basic_block(not_nullish_block);
  2744. }
  2745. TRY(reference.visit(
  2746. [&](OptionalChain::Call const& call) -> Bytecode::CodeGenerationErrorOr<void> {
  2747. auto arguments = TRY(arguments_to_array_for_call(generator, call.arguments)).value();
  2748. generator.emit<Bytecode::Op::CallWithArgumentArray>(Bytecode::Op::CallType::Call, current_value, current_value, current_base, arguments);
  2749. generator.emit<Bytecode::Op::Mov>(current_base, generator.add_constant(js_undefined()));
  2750. return {};
  2751. },
  2752. [&](OptionalChain::ComputedReference const& ref) -> Bytecode::CodeGenerationErrorOr<void> {
  2753. generator.emit<Bytecode::Op::Mov>(current_base, current_value);
  2754. auto property = TRY(ref.expression->generate_bytecode(generator)).value();
  2755. generator.emit<Bytecode::Op::GetByValue>(current_value, current_value, property);
  2756. return {};
  2757. },
  2758. [&](OptionalChain::MemberReference const& ref) -> Bytecode::CodeGenerationErrorOr<void> {
  2759. generator.emit<Bytecode::Op::Mov>(current_base, current_value);
  2760. generator.emit_get_by_id(current_value, current_value, generator.intern_identifier(ref.identifier->string()));
  2761. return {};
  2762. },
  2763. [&](OptionalChain::PrivateMemberReference const& ref) -> Bytecode::CodeGenerationErrorOr<void> {
  2764. generator.emit<Bytecode::Op::Mov>(current_base, current_value);
  2765. generator.emit<Bytecode::Op::GetPrivateById>(current_value, current_value, generator.intern_identifier(ref.private_identifier->string()));
  2766. return {};
  2767. }));
  2768. }
  2769. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { end_block });
  2770. generator.switch_to_basic_block(load_undefined_and_jump_to_end_block);
  2771. generator.emit<Bytecode::Op::Mov>(current_value, generator.add_constant(js_undefined()));
  2772. generator.emit<Bytecode::Op::Jump>(Bytecode::Label { end_block });
  2773. generator.switch_to_basic_block(end_block);
  2774. return {};
  2775. }
  2776. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> OptionalChain::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2777. {
  2778. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2779. auto current_base = generator.allocate_register();
  2780. auto current_value = choose_dst(generator, preferred_dst);
  2781. generator.emit<Bytecode::Op::Mov>(current_base, generator.add_constant(js_undefined()));
  2782. TRY(generate_optional_chain(generator, *this, current_value, current_base));
  2783. return current_value;
  2784. }
  2785. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ImportCall::generate_bytecode(Bytecode::Generator& generator, Optional<ScopedOperand> preferred_dst) const
  2786. {
  2787. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2788. auto specifier = TRY(m_specifier->generate_bytecode(generator)).value();
  2789. Optional<ScopedOperand> options;
  2790. if (m_options) {
  2791. options = TRY(m_options->generate_bytecode(generator)).value();
  2792. } else {
  2793. options = generator.add_constant(js_undefined());
  2794. }
  2795. auto dst = choose_dst(generator, preferred_dst);
  2796. generator.emit<Bytecode::Op::ImportCall>(dst, specifier, *options);
  2797. return dst;
  2798. }
  2799. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ExportStatement::generate_bytecode(Bytecode::Generator& generator, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2800. {
  2801. Bytecode::Generator::SourceLocationScope scope(generator, *this);
  2802. if (!is_default_export()) {
  2803. if (m_statement) {
  2804. return m_statement->generate_bytecode(generator);
  2805. }
  2806. return Optional<ScopedOperand> {};
  2807. }
  2808. VERIFY(m_statement);
  2809. if (is<FunctionDeclaration>(*m_statement) || is<ClassDeclaration>(*m_statement)) {
  2810. return m_statement->generate_bytecode(generator);
  2811. }
  2812. if (is<ClassExpression>(*m_statement)) {
  2813. auto value = TRY(generator.emit_named_evaluation_if_anonymous_function(static_cast<ClassExpression const&>(*m_statement), generator.intern_identifier("default"sv))).value();
  2814. if (!static_cast<ClassExpression const&>(*m_statement).has_name()) {
  2815. generator.emit<Bytecode::Op::SetVariable>(
  2816. generator.intern_identifier(ExportStatement::local_name_for_default),
  2817. value,
  2818. generator.next_environment_variable_cache(),
  2819. Bytecode::Op::SetVariable::InitializationMode::Initialize);
  2820. }
  2821. return value;
  2822. }
  2823. // ExportDeclaration : export default AssignmentExpression ;
  2824. VERIFY(is<Expression>(*m_statement));
  2825. auto value = TRY(generator.emit_named_evaluation_if_anonymous_function(static_cast<Expression const&>(*m_statement), generator.intern_identifier("default"sv))).value();
  2826. generator.emit<Bytecode::Op::SetVariable>(
  2827. generator.intern_identifier(ExportStatement::local_name_for_default),
  2828. value,
  2829. generator.next_environment_variable_cache(),
  2830. Bytecode::Op::SetVariable::InitializationMode::Initialize);
  2831. return value;
  2832. }
  2833. Bytecode::CodeGenerationErrorOr<Optional<ScopedOperand>> ImportStatement::generate_bytecode(Bytecode::Generator&, [[maybe_unused]] Optional<ScopedOperand> preferred_dst) const
  2834. {
  2835. return Optional<ScopedOperand> {};
  2836. }
  2837. }