value.cpp 46 KB

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  1. // Part of the Carbon Language project, under the Apache License v2.0 with LLVM
  2. // Exceptions. See /LICENSE for license information.
  3. // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
  4. #include "explorer/interpreter/value.h"
  5. #include <algorithm>
  6. #include <optional>
  7. #include <string_view>
  8. #include "common/check.h"
  9. #include "common/error.h"
  10. #include "explorer/ast/declaration.h"
  11. #include "explorer/ast/element.h"
  12. #include "explorer/common/arena.h"
  13. #include "explorer/common/error_builders.h"
  14. #include "explorer/interpreter/action.h"
  15. #include "explorer/interpreter/element_path.h"
  16. #include "llvm/ADT/STLExtras.h"
  17. #include "llvm/ADT/StringExtras.h"
  18. #include "llvm/Support/Casting.h"
  19. #include "llvm/Support/Error.h"
  20. namespace Carbon {
  21. using llvm::cast;
  22. using llvm::dyn_cast;
  23. using llvm::dyn_cast_or_null;
  24. using llvm::isa;
  25. auto StructValue::FindField(std::string_view name) const
  26. -> std::optional<Nonnull<const Value*>> {
  27. for (const NamedValue& element : elements_) {
  28. if (element.name == name) {
  29. return element.value;
  30. }
  31. }
  32. return std::nullopt;
  33. }
  34. NominalClassValue::NominalClassValue(
  35. Nonnull<const Value*> type, Nonnull<const Value*> inits,
  36. std::optional<Nonnull<const NominalClassValue*>> base,
  37. Nonnull<const NominalClassValue** const> class_value_ptr)
  38. : Value(Kind::NominalClassValue),
  39. type_(type),
  40. inits_(inits),
  41. base_(base),
  42. class_value_ptr_(class_value_ptr) {
  43. // Update ancestors's class value to point to latest child.
  44. *class_value_ptr_ = this;
  45. }
  46. static auto FindClassField(Nonnull<const NominalClassValue*> object,
  47. std::string_view name)
  48. -> std::optional<Nonnull<const Value*>> {
  49. if (auto field = cast<StructValue>(object->inits()).FindField(name)) {
  50. return field;
  51. }
  52. if (object->base().has_value()) {
  53. return FindClassField(object->base().value(), name);
  54. }
  55. return std::nullopt;
  56. }
  57. static auto GetBaseElement(Nonnull<const NominalClassValue*> class_value,
  58. SourceLocation source_loc)
  59. -> ErrorOr<Nonnull<const Value*>> {
  60. const auto base = cast<NominalClassValue>(class_value)->base();
  61. if (!base.has_value()) {
  62. return ProgramError(source_loc)
  63. << "Non-existent base class for " << *class_value;
  64. }
  65. return base.value();
  66. }
  67. static auto GetPositionalElement(Nonnull<const TupleValue*> tuple,
  68. const ElementPath::Component& path_comp,
  69. SourceLocation source_loc)
  70. -> ErrorOr<Nonnull<const Value*>> {
  71. CARBON_CHECK(path_comp.element()->kind() == ElementKind::PositionalElement)
  72. << "Invalid non-tuple member";
  73. const auto* tuple_element = cast<PositionalElement>(path_comp.element());
  74. const size_t index = tuple_element->index();
  75. if (index < 0 || index >= tuple->elements().size()) {
  76. return ProgramError(source_loc)
  77. << "index " << index << " out of range for " << *tuple;
  78. }
  79. return tuple->elements()[index];
  80. }
  81. static auto GetNamedElement(Nonnull<Arena*> arena, Nonnull<const Value*> v,
  82. const ElementPath::Component& field,
  83. SourceLocation source_loc,
  84. Nonnull<const Value*> me_value)
  85. -> ErrorOr<Nonnull<const Value*>> {
  86. CARBON_CHECK(field.element()->kind() == ElementKind::NamedElement)
  87. << "Invalid element, expecting NamedElement";
  88. const auto* member = cast<NamedElement>(field.element());
  89. const auto f = member->name();
  90. if (field.witness().has_value()) {
  91. const auto* witness = cast<Witness>(*field.witness());
  92. // Associated constants.
  93. if (const auto* assoc_const =
  94. dyn_cast_or_null<AssociatedConstantDeclaration>(
  95. member->declaration().value_or(nullptr))) {
  96. CARBON_CHECK(field.interface()) << "have witness but no interface";
  97. // TODO: Use witness to find the value of the constant.
  98. return arena->New<AssociatedConstant>(v, *field.interface(), assoc_const,
  99. witness);
  100. }
  101. // Associated functions.
  102. if (const auto* impl_witness = dyn_cast<ImplWitness>(witness)) {
  103. if (std::optional<Nonnull<const Declaration*>> mem_decl =
  104. FindMember(f, impl_witness->declaration().members());
  105. mem_decl.has_value()) {
  106. const auto& fun_decl = cast<FunctionDeclaration>(**mem_decl);
  107. if (fun_decl.is_method()) {
  108. return arena->New<BoundMethodValue>(&fun_decl, me_value,
  109. &impl_witness->bindings());
  110. } else {
  111. // Class function.
  112. const auto* fun = cast<FunctionValue>(*fun_decl.constant_value());
  113. return arena->New<FunctionValue>(&fun->declaration(),
  114. &impl_witness->bindings());
  115. }
  116. } else {
  117. return ProgramError(source_loc)
  118. << "member " << f << " not in " << *witness;
  119. }
  120. } else {
  121. return ProgramError(source_loc)
  122. << "member lookup for " << f << " in symbolic " << *witness;
  123. }
  124. }
  125. switch (v->kind()) {
  126. case Value::Kind::StructValue: {
  127. std::optional<Nonnull<const Value*>> field =
  128. cast<StructValue>(*v).FindField(f);
  129. if (field == std::nullopt) {
  130. return ProgramError(source_loc) << "member " << f << " not in " << *v;
  131. }
  132. return *field;
  133. }
  134. case Value::Kind::NominalClassValue: {
  135. const auto& object = cast<NominalClassValue>(*v);
  136. // Look for a field.
  137. if (std::optional<Nonnull<const Value*>> field =
  138. FindClassField(&object, f)) {
  139. return *field;
  140. } else {
  141. // Look for a method in the object's class
  142. const auto& class_type = cast<NominalClassType>(object.type());
  143. std::optional<Nonnull<const FunctionValue*>> func =
  144. FindFunctionWithParents(f, class_type.declaration());
  145. if (!func) {
  146. return ProgramError(source_loc) << "member " << f << " not in " << *v
  147. << " or its " << class_type;
  148. } else if ((*func)->declaration().is_method()) {
  149. // Found a method. Turn it into a bound method.
  150. const auto& m = cast<FunctionValue>(**func);
  151. if (m.declaration().virt_override() == VirtualOverride::None) {
  152. return arena->New<BoundMethodValue>(&m.declaration(), me_value,
  153. &class_type.bindings());
  154. }
  155. // Method is virtual, get child-most class value and perform vtable
  156. // lookup.
  157. const auto& last_child_value = **object.class_value_ptr();
  158. const auto& last_child_type =
  159. cast<NominalClassType>(last_child_value.type());
  160. const auto res = last_child_type.vtable().find(f);
  161. CARBON_CHECK(res != last_child_type.vtable().end());
  162. const auto [virtual_method, level] = res->second;
  163. const auto level_diff = last_child_type.hierarchy_level() - level;
  164. const auto* m_class_value = &last_child_value;
  165. // Get class value matching the virtual method, and turn it into a
  166. // bound method.
  167. for (int i = 0; i < level_diff; ++i) {
  168. CARBON_CHECK(m_class_value->base())
  169. << "Error trying to access function class value";
  170. m_class_value = *m_class_value->base();
  171. }
  172. return arena->New<BoundMethodValue>(
  173. cast<FunctionDeclaration>(virtual_method), m_class_value,
  174. &class_type.bindings());
  175. } else {
  176. // Found a class function
  177. // TODO: This should not be reachable.
  178. return arena->New<FunctionValue>(&(*func)->declaration(),
  179. &class_type.bindings());
  180. }
  181. }
  182. }
  183. case Value::Kind::ChoiceType: {
  184. const auto& choice = cast<ChoiceType>(*v);
  185. auto alt = choice.declaration().FindAlternative(f);
  186. if (!alt) {
  187. return ProgramError(source_loc)
  188. << "alternative " << f << " not in " << *v;
  189. }
  190. if ((*alt)->parameters()) {
  191. return arena->New<AlternativeConstructorValue>(&choice, *alt);
  192. }
  193. return arena->New<AlternativeValue>(&choice, *alt, std::nullopt);
  194. }
  195. case Value::Kind::NominalClassType: {
  196. // Access a class function.
  197. const auto& class_type = cast<NominalClassType>(*v);
  198. std::optional<Nonnull<const FunctionValue*>> fun =
  199. FindFunctionWithParents(f, class_type.declaration());
  200. if (fun == std::nullopt) {
  201. return ProgramError(source_loc)
  202. << "class function " << f << " not in " << *v;
  203. }
  204. return arena->New<FunctionValue>(&(*fun)->declaration(),
  205. &class_type.bindings());
  206. }
  207. default:
  208. CARBON_FATAL() << "named element access not supported for value " << *v;
  209. }
  210. }
  211. static auto GetElement(Nonnull<Arena*> arena, Nonnull<const Value*> v,
  212. const ElementPath::Component& path_comp,
  213. SourceLocation source_loc,
  214. Nonnull<const Value*> me_value)
  215. -> ErrorOr<Nonnull<const Value*>> {
  216. switch (path_comp.element()->kind()) {
  217. case ElementKind::NamedElement:
  218. return GetNamedElement(arena, v, path_comp, source_loc, me_value);
  219. case ElementKind::PositionalElement: {
  220. if (const auto* tuple = dyn_cast<TupleValue>(v)) {
  221. return GetPositionalElement(tuple, path_comp, source_loc);
  222. } else {
  223. CARBON_FATAL() << "Invalid value for positional element";
  224. }
  225. }
  226. case ElementKind::BaseElement:
  227. switch (v->kind()) {
  228. case Value::Kind::NominalClassValue:
  229. return GetBaseElement(cast<NominalClassValue>(v), source_loc);
  230. case Value::Kind::PointerValue: {
  231. const auto* ptr = cast<PointerValue>(v);
  232. return arena->New<PointerValue>(
  233. ptr->address().ElementAddress(path_comp.element()));
  234. }
  235. default:
  236. CARBON_FATAL() << "Invalid value for base element";
  237. }
  238. }
  239. }
  240. auto Value::GetElement(Nonnull<Arena*> arena, const ElementPath& path,
  241. SourceLocation source_loc,
  242. Nonnull<const Value*> me_value) const
  243. -> ErrorOr<Nonnull<const Value*>> {
  244. Nonnull<const Value*> value(this);
  245. for (const ElementPath::Component& field : path.components_) {
  246. CARBON_ASSIGN_OR_RETURN(
  247. value, Carbon::GetElement(arena, value, field, source_loc, me_value));
  248. }
  249. return value;
  250. }
  251. static auto SetFieldImpl(
  252. Nonnull<Arena*> arena, Nonnull<const Value*> value,
  253. std::vector<ElementPath::Component>::const_iterator path_begin,
  254. std::vector<ElementPath::Component>::const_iterator path_end,
  255. Nonnull<const Value*> field_value, SourceLocation source_loc)
  256. -> ErrorOr<Nonnull<const Value*>> {
  257. if (path_begin == path_end) {
  258. return field_value;
  259. }
  260. switch (value->kind()) {
  261. case Value::Kind::StructValue: {
  262. std::vector<NamedValue> elements = cast<StructValue>(*value).elements();
  263. auto it =
  264. llvm::find_if(elements, [path_begin](const NamedValue& element) {
  265. return (*path_begin).IsNamed(element.name);
  266. });
  267. if (it == elements.end()) {
  268. return ProgramError(source_loc)
  269. << "field " << *path_begin << " not in " << *value;
  270. }
  271. CARBON_ASSIGN_OR_RETURN(
  272. it->value, SetFieldImpl(arena, it->value, path_begin + 1, path_end,
  273. field_value, source_loc));
  274. return arena->New<StructValue>(elements);
  275. }
  276. case Value::Kind::NominalClassValue: {
  277. const auto& object = cast<NominalClassValue>(*value);
  278. if (auto inits = SetFieldImpl(arena, &object.inits(), path_begin,
  279. path_end, field_value, source_loc);
  280. inits.ok()) {
  281. return arena->New<NominalClassValue>(
  282. &object.type(), *inits, object.base(), object.class_value_ptr());
  283. } else if (object.base().has_value()) {
  284. auto new_base = SetFieldImpl(arena, object.base().value(), path_begin,
  285. path_end, field_value, source_loc);
  286. if (new_base.ok()) {
  287. return arena->New<NominalClassValue>(
  288. &object.type(), &object.inits(),
  289. cast<NominalClassValue>(*new_base), object.class_value_ptr());
  290. }
  291. }
  292. // Failed to match, show full object content
  293. return ProgramError(source_loc)
  294. << "field " << *path_begin << " not in " << *value;
  295. }
  296. case Value::Kind::TupleType:
  297. case Value::Kind::TupleValue: {
  298. CARBON_CHECK((*path_begin).element()->kind() ==
  299. ElementKind::PositionalElement)
  300. << "Invalid non-positional member for tuple";
  301. std::vector<Nonnull<const Value*>> elements =
  302. cast<TupleValueBase>(*value).elements();
  303. const size_t index =
  304. cast<PositionalElement>((*path_begin).element())->index();
  305. if (index < 0 || index >= elements.size()) {
  306. return ProgramError(source_loc)
  307. << "index " << index << " out of range in " << *value;
  308. }
  309. CARBON_ASSIGN_OR_RETURN(
  310. elements[index], SetFieldImpl(arena, elements[index], path_begin + 1,
  311. path_end, field_value, source_loc));
  312. if (isa<TupleType>(value)) {
  313. return arena->New<TupleType>(elements);
  314. } else {
  315. return arena->New<TupleValue>(elements);
  316. }
  317. }
  318. default:
  319. CARBON_FATAL() << "field access not allowed for value " << *value;
  320. }
  321. }
  322. auto Value::SetField(Nonnull<Arena*> arena, const ElementPath& path,
  323. Nonnull<const Value*> field_value,
  324. SourceLocation source_loc) const
  325. -> ErrorOr<Nonnull<const Value*>> {
  326. return SetFieldImpl(arena, static_cast<Nonnull<const Value*>>(this),
  327. path.components_.begin(), path.components_.end(),
  328. field_value, source_loc);
  329. }
  330. static auto PrintNameWithBindings(llvm::raw_ostream& out,
  331. Nonnull<const Declaration*> declaration,
  332. const BindingMap& args) {
  333. out << GetName(*declaration).value_or("(anonymous)");
  334. // TODO: Print '()' if declaration is parameterized but no args are provided.
  335. if (!args.empty()) {
  336. out << "(";
  337. llvm::ListSeparator sep;
  338. for (const auto& [bind, val] : args) {
  339. out << sep << bind->name() << " = " << *val;
  340. }
  341. out << ")";
  342. }
  343. }
  344. void Value::Print(llvm::raw_ostream& out) const {
  345. switch (kind()) {
  346. case Value::Kind::AlternativeConstructorValue: {
  347. const auto& alt = cast<AlternativeConstructorValue>(*this);
  348. out << alt.choice().declaration().name() << "."
  349. << alt.alternative().name();
  350. break;
  351. }
  352. case Value::Kind::BindingPlaceholderValue: {
  353. const auto& placeholder = cast<BindingPlaceholderValue>(*this);
  354. out << "Placeholder<";
  355. if (placeholder.value_node().has_value()) {
  356. out << (*placeholder.value_node());
  357. } else {
  358. out << "_";
  359. }
  360. out << ">";
  361. break;
  362. }
  363. case Value::Kind::AddrValue: {
  364. const auto& addr = cast<AddrValue>(*this);
  365. out << "Addr<" << addr.pattern() << ">";
  366. break;
  367. }
  368. case Value::Kind::AlternativeValue: {
  369. const auto& alt = cast<AlternativeValue>(*this);
  370. out << alt.choice().declaration().name() << "."
  371. << alt.alternative().name();
  372. if (auto arg = alt.argument()) {
  373. out << **arg;
  374. }
  375. break;
  376. }
  377. case Value::Kind::StructValue: {
  378. const auto& struct_val = cast<StructValue>(*this);
  379. out << "{";
  380. llvm::ListSeparator sep;
  381. for (const NamedValue& element : struct_val.elements()) {
  382. out << sep << "." << element.name << " = " << *element.value;
  383. }
  384. out << "}";
  385. break;
  386. }
  387. case Value::Kind::NominalClassValue: {
  388. const auto& s = cast<NominalClassValue>(*this);
  389. out << cast<NominalClassType>(s.type()).declaration().name() << s.inits();
  390. if (s.base().has_value()) {
  391. out << " base " << *s.base().value();
  392. }
  393. break;
  394. }
  395. case Value::Kind::TupleType:
  396. case Value::Kind::TupleValue: {
  397. out << "(";
  398. llvm::ListSeparator sep;
  399. for (Nonnull<const Value*> element :
  400. cast<TupleValueBase>(*this).elements()) {
  401. out << sep << *element;
  402. }
  403. out << ")";
  404. break;
  405. }
  406. case Value::Kind::IntValue:
  407. out << cast<IntValue>(*this).value();
  408. break;
  409. case Value::Kind::BoolValue:
  410. out << (cast<BoolValue>(*this).value() ? "true" : "false");
  411. break;
  412. case Value::Kind::DestructorValue: {
  413. const auto& destructor = cast<DestructorValue>(*this);
  414. out << "destructor [ ";
  415. out << destructor.declaration().self_pattern();
  416. out << " ]";
  417. break;
  418. }
  419. case Value::Kind::FunctionValue: {
  420. const auto& fun = cast<FunctionValue>(*this);
  421. out << "fun<" << fun.declaration().name() << ">";
  422. if (!fun.type_args().empty()) {
  423. out << "[";
  424. llvm::ListSeparator sep;
  425. for (const auto& [ty_var, ty_arg] : fun.type_args()) {
  426. out << sep << *ty_var << "=" << *ty_arg;
  427. }
  428. out << "]";
  429. }
  430. if (!fun.witnesses().empty()) {
  431. out << "{|";
  432. llvm::ListSeparator sep;
  433. for (const auto& [impl_bind, witness] : fun.witnesses()) {
  434. out << sep << *witness;
  435. }
  436. out << "|}";
  437. }
  438. break;
  439. }
  440. case Value::Kind::BoundMethodValue: {
  441. const auto& method = cast<BoundMethodValue>(*this);
  442. out << "bound_method<" << method.declaration().name() << ">";
  443. if (!method.type_args().empty()) {
  444. out << "[";
  445. llvm::ListSeparator sep;
  446. for (const auto& [ty_var, ty_arg] : method.type_args()) {
  447. out << sep << *ty_var << "=" << *ty_arg;
  448. }
  449. out << "]";
  450. }
  451. if (!method.witnesses().empty()) {
  452. out << "{|";
  453. llvm::ListSeparator sep;
  454. for (const auto& [impl_bind, witness] : method.witnesses()) {
  455. out << sep << *witness;
  456. }
  457. out << "|}";
  458. }
  459. break;
  460. }
  461. case Value::Kind::PointerValue:
  462. out << "ptr<" << cast<PointerValue>(*this).address() << ">";
  463. break;
  464. case Value::Kind::LValue:
  465. out << "lval<" << cast<LValue>(*this).address() << ">";
  466. break;
  467. case Value::Kind::BoolType:
  468. out << "bool";
  469. break;
  470. case Value::Kind::IntType:
  471. out << "i32";
  472. break;
  473. case Value::Kind::TypeType:
  474. out << "type";
  475. break;
  476. case Value::Kind::AutoType:
  477. out << "auto";
  478. break;
  479. case Value::Kind::ContinuationType:
  480. out << "Continuation";
  481. break;
  482. case Value::Kind::PointerType:
  483. out << cast<PointerType>(*this).pointee_type() << "*";
  484. break;
  485. case Value::Kind::FunctionType: {
  486. const auto& fn_type = cast<FunctionType>(*this);
  487. out << "fn ";
  488. if (!fn_type.deduced_bindings().empty()) {
  489. out << "[";
  490. llvm::ListSeparator sep;
  491. for (Nonnull<const GenericBinding*> deduced :
  492. fn_type.deduced_bindings()) {
  493. out << sep << *deduced;
  494. }
  495. out << "]";
  496. }
  497. out << fn_type.parameters() << " -> " << fn_type.return_type();
  498. break;
  499. }
  500. case Value::Kind::StructType: {
  501. out << "{";
  502. llvm::ListSeparator sep;
  503. for (const auto& [name, type] : cast<StructType>(*this).fields()) {
  504. out << sep << "." << name << ": " << *type;
  505. }
  506. out << "}";
  507. break;
  508. }
  509. case Value::Kind::UninitializedValue: {
  510. const auto& uninit = cast<UninitializedValue>(*this);
  511. out << "Uninit<" << uninit.pattern() << ">";
  512. break;
  513. }
  514. case Value::Kind::NominalClassType: {
  515. const auto& class_type = cast<NominalClassType>(*this);
  516. out << "class ";
  517. PrintNameWithBindings(out, &class_type.declaration(),
  518. class_type.type_args());
  519. if (!class_type.witnesses().empty()) {
  520. out << " witnesses ";
  521. llvm::ListSeparator sep;
  522. for (const auto& [impl_bind, witness] : class_type.witnesses()) {
  523. out << sep << *witness;
  524. }
  525. }
  526. break;
  527. }
  528. case Value::Kind::ChoiceType: {
  529. const auto& choice_type = cast<ChoiceType>(*this);
  530. out << "choice ";
  531. PrintNameWithBindings(out, &choice_type.declaration(),
  532. choice_type.type_args());
  533. break;
  534. }
  535. case Value::Kind::MixinPseudoType: {
  536. const auto& mixin_type = cast<MixinPseudoType>(*this);
  537. out << "mixin ";
  538. PrintNameWithBindings(out, &mixin_type.declaration(), mixin_type.args());
  539. if (!mixin_type.witnesses().empty()) {
  540. out << " witnesses ";
  541. llvm::ListSeparator sep;
  542. for (const auto& [impl_bind, witness] : mixin_type.witnesses()) {
  543. out << sep << *witness;
  544. }
  545. }
  546. // TODO: print the import interface
  547. break;
  548. }
  549. case Value::Kind::InterfaceType: {
  550. const auto& iface_type = cast<InterfaceType>(*this);
  551. out << "interface ";
  552. PrintNameWithBindings(out, &iface_type.declaration(),
  553. iface_type.bindings().args());
  554. break;
  555. }
  556. case Value::Kind::NamedConstraintType: {
  557. const auto& constraint_type = cast<NamedConstraintType>(*this);
  558. out << "constraint ";
  559. PrintNameWithBindings(out, &constraint_type.declaration(),
  560. constraint_type.bindings().args());
  561. break;
  562. }
  563. case Value::Kind::ConstraintType: {
  564. const auto& constraint = cast<ConstraintType>(*this);
  565. llvm::ListSeparator combine(" & ");
  566. for (const LookupContext& ctx : constraint.lookup_contexts()) {
  567. out << combine << *ctx.context;
  568. }
  569. if (constraint.lookup_contexts().empty()) {
  570. out << "type";
  571. }
  572. out << " where ";
  573. llvm::ListSeparator sep(" and ");
  574. for (const RewriteConstraint& rewrite :
  575. constraint.rewrite_constraints()) {
  576. out << sep << ".(";
  577. PrintNameWithBindings(out, &rewrite.constant->interface().declaration(),
  578. rewrite.constant->interface().args());
  579. out << "." << *GetName(rewrite.constant->constant())
  580. << ") = " << *rewrite.unconverted_replacement;
  581. }
  582. for (const ImplConstraint& impl : constraint.impl_constraints()) {
  583. // TODO: Skip cases where `impl.type` is `.Self` and the interface is
  584. // in `lookup_contexts()`.
  585. out << sep << *impl.type << " is " << *impl.interface;
  586. }
  587. for (const EqualityConstraint& equality :
  588. constraint.equality_constraints()) {
  589. out << sep;
  590. llvm::ListSeparator equal(" == ");
  591. for (Nonnull<const Value*> value : equality.values) {
  592. out << equal << *value;
  593. }
  594. }
  595. break;
  596. }
  597. case Value::Kind::ImplWitness: {
  598. const auto& witness = cast<ImplWitness>(*this);
  599. out << "witness for impl " << *witness.declaration().impl_type() << " as "
  600. << witness.declaration().interface();
  601. break;
  602. }
  603. case Value::Kind::BindingWitness: {
  604. const auto& witness = cast<BindingWitness>(*this);
  605. out << "witness for " << *witness.binding()->type_var();
  606. break;
  607. }
  608. case Value::Kind::ConstraintWitness: {
  609. const auto& witness = cast<ConstraintWitness>(*this);
  610. out << "(";
  611. llvm::ListSeparator sep;
  612. for (const auto* elem : witness.witnesses()) {
  613. out << sep << *elem;
  614. }
  615. out << ")";
  616. break;
  617. }
  618. case Value::Kind::ConstraintImplWitness: {
  619. const auto& witness = cast<ConstraintImplWitness>(*this);
  620. out << "witness " << witness.index() << " of "
  621. << *witness.constraint_witness();
  622. break;
  623. }
  624. case Value::Kind::ParameterizedEntityName:
  625. out << *GetName(cast<ParameterizedEntityName>(*this).declaration());
  626. break;
  627. case Value::Kind::MemberName: {
  628. const auto& member_name = cast<MemberName>(*this);
  629. if (member_name.base_type().has_value()) {
  630. out << *member_name.base_type().value();
  631. }
  632. if (member_name.base_type().has_value() &&
  633. member_name.interface().has_value()) {
  634. out << "(";
  635. }
  636. if (member_name.interface().has_value()) {
  637. out << *member_name.interface().value();
  638. }
  639. out << "." << member_name;
  640. if (member_name.base_type().has_value() &&
  641. member_name.interface().has_value()) {
  642. out << ")";
  643. }
  644. break;
  645. }
  646. case Value::Kind::VariableType:
  647. out << cast<VariableType>(*this).binding().name();
  648. break;
  649. case Value::Kind::AssociatedConstant: {
  650. const auto& assoc = cast<AssociatedConstant>(*this);
  651. out << "(" << assoc.base() << ").(";
  652. PrintNameWithBindings(out, &assoc.interface().declaration(),
  653. assoc.interface().args());
  654. out << "." << *GetName(assoc.constant()) << ")";
  655. break;
  656. }
  657. case Value::Kind::ContinuationValue: {
  658. out << cast<ContinuationValue>(*this).stack();
  659. break;
  660. }
  661. case Value::Kind::StringType:
  662. out << "String";
  663. break;
  664. case Value::Kind::StringValue:
  665. out << "\"";
  666. out.write_escaped(cast<StringValue>(*this).value());
  667. out << "\"";
  668. break;
  669. case Value::Kind::TypeOfMixinPseudoType:
  670. out << "typeof("
  671. << cast<TypeOfMixinPseudoType>(*this)
  672. .mixin_type()
  673. .declaration()
  674. .name()
  675. << ")";
  676. break;
  677. case Value::Kind::TypeOfParameterizedEntityName:
  678. out << "parameterized entity name "
  679. << cast<TypeOfParameterizedEntityName>(*this).name();
  680. break;
  681. case Value::Kind::TypeOfMemberName: {
  682. out << "member name " << cast<TypeOfMemberName>(*this).member();
  683. break;
  684. }
  685. case Value::Kind::TypeOfNamespaceName: {
  686. cast<TypeOfNamespaceName>(*this).namespace_decl()->PrintID(out);
  687. break;
  688. }
  689. case Value::Kind::StaticArrayType: {
  690. const auto& array_type = cast<StaticArrayType>(*this);
  691. out << "[" << array_type.element_type() << "; " << array_type.size()
  692. << "]";
  693. break;
  694. }
  695. }
  696. }
  697. void IntrinsicConstraint::Print(llvm::raw_ostream& out) const {
  698. out << *type << " is ";
  699. switch (kind) {
  700. case IntrinsicConstraint::ImplicitAs:
  701. out << "__intrinsic_implicit_as";
  702. break;
  703. }
  704. if (!arguments.empty()) {
  705. out << "(";
  706. llvm::ListSeparator comma;
  707. for (Nonnull<const Value*> argument : arguments) {
  708. out << comma << *argument;
  709. }
  710. out << ")";
  711. }
  712. }
  713. ContinuationValue::StackFragment::~StackFragment() {
  714. CARBON_CHECK(reversed_todo_.empty())
  715. << "All StackFragments must be empty before the Carbon program ends.";
  716. }
  717. void ContinuationValue::StackFragment::StoreReversed(
  718. std::vector<std::unique_ptr<Action>> reversed_todo) {
  719. CARBON_CHECK(reversed_todo_.empty());
  720. reversed_todo_ = std::move(reversed_todo);
  721. }
  722. void ContinuationValue::StackFragment::RestoreTo(
  723. Stack<std::unique_ptr<Action>>& todo) {
  724. while (!reversed_todo_.empty()) {
  725. todo.Push(std::move(reversed_todo_.back()));
  726. reversed_todo_.pop_back();
  727. }
  728. }
  729. void ContinuationValue::StackFragment::Clear() {
  730. // We destroy the underlying Actions explicitly to ensure they're
  731. // destroyed in the correct order.
  732. for (auto& action : reversed_todo_) {
  733. action.reset();
  734. }
  735. reversed_todo_.clear();
  736. }
  737. void ContinuationValue::StackFragment::Print(llvm::raw_ostream& out) const {
  738. out << "{";
  739. llvm::ListSeparator sep(" :: ");
  740. for (const std::unique_ptr<Action>& action : reversed_todo_) {
  741. out << sep << *action;
  742. }
  743. out << "}";
  744. }
  745. // Check whether two binding maps, which are assumed to have the same keys, are
  746. // equal.
  747. static auto BindingMapEqual(
  748. const BindingMap& map1, const BindingMap& map2,
  749. std::optional<Nonnull<const EqualityContext*>> equality_ctx) -> bool {
  750. CARBON_CHECK(map1.size() == map2.size()) << "maps should have same keys";
  751. for (const auto& [key, value] : map1) {
  752. if (!ValueEqual(value, map2.at(key), equality_ctx)) {
  753. return false;
  754. }
  755. }
  756. return true;
  757. }
  758. auto TypeEqual(Nonnull<const Value*> t1, Nonnull<const Value*> t2,
  759. std::optional<Nonnull<const EqualityContext*>> equality_ctx)
  760. -> bool {
  761. if (t1 == t2) {
  762. return true;
  763. }
  764. if (t1->kind() != t2->kind()) {
  765. if (IsValueKindDependent(t1) || IsValueKindDependent(t2)) {
  766. return ValueEqual(t1, t2, equality_ctx);
  767. }
  768. return false;
  769. }
  770. switch (t1->kind()) {
  771. case Value::Kind::PointerType:
  772. return TypeEqual(&cast<PointerType>(*t1).pointee_type(),
  773. &cast<PointerType>(*t2).pointee_type(), equality_ctx);
  774. case Value::Kind::FunctionType: {
  775. const auto& fn1 = cast<FunctionType>(*t1);
  776. const auto& fn2 = cast<FunctionType>(*t2);
  777. return TypeEqual(&fn1.parameters(), &fn2.parameters(), equality_ctx) &&
  778. TypeEqual(&fn1.return_type(), &fn2.return_type(), equality_ctx);
  779. }
  780. case Value::Kind::StructType: {
  781. const auto& struct1 = cast<StructType>(*t1);
  782. const auto& struct2 = cast<StructType>(*t2);
  783. if (struct1.fields().size() != struct2.fields().size()) {
  784. return false;
  785. }
  786. for (size_t i = 0; i < struct1.fields().size(); ++i) {
  787. if (struct1.fields()[i].name != struct2.fields()[i].name ||
  788. !TypeEqual(struct1.fields()[i].value, struct2.fields()[i].value,
  789. equality_ctx)) {
  790. return false;
  791. }
  792. }
  793. return true;
  794. }
  795. case Value::Kind::NominalClassType: {
  796. const auto& class1 = cast<NominalClassType>(*t1);
  797. const auto& class2 = cast<NominalClassType>(*t2);
  798. return DeclaresSameEntity(class1.declaration(), class2.declaration()) &&
  799. BindingMapEqual(class1.bindings().args(), class2.bindings().args(),
  800. equality_ctx);
  801. }
  802. case Value::Kind::InterfaceType: {
  803. const auto& iface1 = cast<InterfaceType>(*t1);
  804. const auto& iface2 = cast<InterfaceType>(*t2);
  805. return DeclaresSameEntity(iface1.declaration(), iface2.declaration()) &&
  806. BindingMapEqual(iface1.bindings().args(), iface2.bindings().args(),
  807. equality_ctx);
  808. }
  809. case Value::Kind::NamedConstraintType: {
  810. const auto& constraint1 = cast<NamedConstraintType>(*t1);
  811. const auto& constraint2 = cast<NamedConstraintType>(*t2);
  812. return DeclaresSameEntity(constraint1.declaration(),
  813. constraint2.declaration()) &&
  814. BindingMapEqual(constraint1.bindings().args(),
  815. constraint2.bindings().args(), equality_ctx);
  816. }
  817. case Value::Kind::AssociatedConstant:
  818. // Associated constants are sometimes types.
  819. return ValueEqual(t1, t2, equality_ctx);
  820. case Value::Kind::ConstraintType: {
  821. const auto& constraint1 = cast<ConstraintType>(*t1);
  822. const auto& constraint2 = cast<ConstraintType>(*t2);
  823. if (constraint1.impl_constraints().size() !=
  824. constraint2.impl_constraints().size() ||
  825. constraint1.equality_constraints().size() !=
  826. constraint2.equality_constraints().size() ||
  827. constraint1.lookup_contexts().size() !=
  828. constraint2.lookup_contexts().size()) {
  829. return false;
  830. }
  831. for (size_t i = 0; i < constraint1.impl_constraints().size(); ++i) {
  832. const auto& impl1 = constraint1.impl_constraints()[i];
  833. const auto& impl2 = constraint2.impl_constraints()[i];
  834. if (!TypeEqual(impl1.type, impl2.type, equality_ctx) ||
  835. !TypeEqual(impl1.interface, impl2.interface, equality_ctx)) {
  836. return false;
  837. }
  838. }
  839. for (size_t i = 0; i < constraint1.equality_constraints().size(); ++i) {
  840. const auto& equality1 = constraint1.equality_constraints()[i];
  841. const auto& equality2 = constraint2.equality_constraints()[i];
  842. if (equality1.values.size() != equality2.values.size()) {
  843. return false;
  844. }
  845. for (size_t j = 0; j < equality1.values.size(); ++j) {
  846. if (!ValueEqual(equality1.values[i], equality2.values[i],
  847. equality_ctx)) {
  848. return false;
  849. }
  850. }
  851. }
  852. for (size_t i = 0; i < constraint1.lookup_contexts().size(); ++i) {
  853. const auto& context1 = constraint1.lookup_contexts()[i];
  854. const auto& context2 = constraint2.lookup_contexts()[i];
  855. if (!TypeEqual(context1.context, context2.context, equality_ctx)) {
  856. return false;
  857. }
  858. }
  859. return true;
  860. }
  861. case Value::Kind::ChoiceType: {
  862. const auto& choice1 = cast<ChoiceType>(*t1);
  863. const auto& choice2 = cast<ChoiceType>(*t2);
  864. return DeclaresSameEntity(choice1.declaration(), choice2.declaration()) &&
  865. BindingMapEqual(choice1.type_args(), choice2.type_args(),
  866. equality_ctx);
  867. }
  868. case Value::Kind::TupleType:
  869. case Value::Kind::TupleValue: {
  870. const auto& tup1 = cast<TupleValueBase>(*t1);
  871. const auto& tup2 = cast<TupleValueBase>(*t2);
  872. if (tup1.elements().size() != tup2.elements().size()) {
  873. return false;
  874. }
  875. for (size_t i = 0; i < tup1.elements().size(); ++i) {
  876. if (!TypeEqual(tup1.elements()[i], tup2.elements()[i], equality_ctx)) {
  877. return false;
  878. }
  879. }
  880. return true;
  881. }
  882. case Value::Kind::IntType:
  883. case Value::Kind::BoolType:
  884. case Value::Kind::ContinuationType:
  885. case Value::Kind::TypeType:
  886. case Value::Kind::StringType:
  887. return true;
  888. case Value::Kind::VariableType:
  889. return &cast<VariableType>(*t1).binding() ==
  890. &cast<VariableType>(*t2).binding();
  891. case Value::Kind::StaticArrayType: {
  892. const auto& array1 = cast<StaticArrayType>(*t1);
  893. const auto& array2 = cast<StaticArrayType>(*t2);
  894. return TypeEqual(&array1.element_type(), &array2.element_type(),
  895. equality_ctx) &&
  896. array1.size() == array2.size();
  897. }
  898. case Value::Kind::IntValue:
  899. case Value::Kind::BoolValue:
  900. case Value::Kind::DestructorValue:
  901. case Value::Kind::FunctionValue:
  902. case Value::Kind::BoundMethodValue:
  903. case Value::Kind::StructValue:
  904. case Value::Kind::NominalClassValue:
  905. case Value::Kind::AlternativeValue:
  906. case Value::Kind::AlternativeConstructorValue:
  907. case Value::Kind::StringValue:
  908. case Value::Kind::PointerValue:
  909. case Value::Kind::LValue:
  910. case Value::Kind::BindingPlaceholderValue:
  911. case Value::Kind::AddrValue:
  912. case Value::Kind::ContinuationValue:
  913. case Value::Kind::UninitializedValue:
  914. case Value::Kind::ParameterizedEntityName:
  915. case Value::Kind::MemberName:
  916. case Value::Kind::TypeOfParameterizedEntityName:
  917. case Value::Kind::TypeOfMemberName:
  918. case Value::Kind::MixinPseudoType:
  919. case Value::Kind::TypeOfMixinPseudoType:
  920. case Value::Kind::TypeOfNamespaceName:
  921. CARBON_FATAL() << "TypeEqual used to compare non-type values\n"
  922. << *t1 << "\n"
  923. << *t2;
  924. case Value::Kind::ImplWitness:
  925. case Value::Kind::BindingWitness:
  926. case Value::Kind::ConstraintWitness:
  927. case Value::Kind::ConstraintImplWitness:
  928. CARBON_FATAL() << "TypeEqual: unexpected Witness";
  929. break;
  930. case Value::Kind::AutoType:
  931. CARBON_FATAL() << "TypeEqual: unexpected AutoType";
  932. break;
  933. }
  934. }
  935. // Returns true if the two values are known to be equal and are written in the
  936. // same way at the top level.
  937. auto ValueStructurallyEqual(
  938. Nonnull<const Value*> v1, Nonnull<const Value*> v2,
  939. std::optional<Nonnull<const EqualityContext*>> equality_ctx) -> bool {
  940. if (v1 == v2) {
  941. return true;
  942. }
  943. if (v1->kind() != v2->kind()) {
  944. return false;
  945. }
  946. switch (v1->kind()) {
  947. case Value::Kind::IntValue:
  948. return cast<IntValue>(*v1).value() == cast<IntValue>(*v2).value();
  949. case Value::Kind::BoolValue:
  950. return cast<BoolValue>(*v1).value() == cast<BoolValue>(*v2).value();
  951. case Value::Kind::FunctionValue: {
  952. std::optional<Nonnull<const Statement*>> body1 =
  953. cast<FunctionValue>(*v1).declaration().body();
  954. std::optional<Nonnull<const Statement*>> body2 =
  955. cast<FunctionValue>(*v2).declaration().body();
  956. return body1.has_value() == body2.has_value() &&
  957. (!body1.has_value() || *body1 == *body2);
  958. }
  959. case Value::Kind::DestructorValue:
  960. return false;
  961. case Value::Kind::BoundMethodValue: {
  962. const auto& m1 = cast<BoundMethodValue>(*v1);
  963. const auto& m2 = cast<BoundMethodValue>(*v2);
  964. std::optional<Nonnull<const Statement*>> body1 = m1.declaration().body();
  965. std::optional<Nonnull<const Statement*>> body2 = m2.declaration().body();
  966. return ValueEqual(m1.receiver(), m2.receiver(), equality_ctx) &&
  967. body1.has_value() == body2.has_value() &&
  968. (!body1.has_value() || *body1 == *body2);
  969. }
  970. case Value::Kind::TupleType:
  971. case Value::Kind::TupleValue: {
  972. const std::vector<Nonnull<const Value*>>& elements1 =
  973. cast<TupleValueBase>(*v1).elements();
  974. const std::vector<Nonnull<const Value*>>& elements2 =
  975. cast<TupleValueBase>(*v2).elements();
  976. if (elements1.size() != elements2.size()) {
  977. return false;
  978. }
  979. for (size_t i = 0; i < elements1.size(); ++i) {
  980. if (!ValueEqual(elements1[i], elements2[i], equality_ctx)) {
  981. return false;
  982. }
  983. }
  984. return true;
  985. }
  986. case Value::Kind::StructValue: {
  987. const auto& struct_v1 = cast<StructValue>(*v1);
  988. const auto& struct_v2 = cast<StructValue>(*v2);
  989. CARBON_CHECK(struct_v1.elements().size() == struct_v2.elements().size());
  990. for (size_t i = 0; i < struct_v1.elements().size(); ++i) {
  991. CARBON_CHECK(struct_v1.elements()[i].name ==
  992. struct_v2.elements()[i].name);
  993. if (!ValueEqual(struct_v1.elements()[i].value,
  994. struct_v2.elements()[i].value, equality_ctx)) {
  995. return false;
  996. }
  997. }
  998. return true;
  999. }
  1000. case Value::Kind::AlternativeValue: {
  1001. const auto& alt1 = cast<AlternativeValue>(*v1);
  1002. const auto& alt2 = cast<AlternativeValue>(*v2);
  1003. if (!TypeEqual(&alt1.choice(), &alt2.choice(), equality_ctx) ||
  1004. &alt1.alternative() != &alt2.alternative()) {
  1005. return false;
  1006. }
  1007. CARBON_CHECK(alt1.argument().has_value() == alt2.argument().has_value());
  1008. return !alt1.argument().has_value() ||
  1009. ValueEqual(*alt1.argument(), *alt2.argument(), equality_ctx);
  1010. }
  1011. case Value::Kind::StringValue:
  1012. return cast<StringValue>(*v1).value() == cast<StringValue>(*v2).value();
  1013. case Value::Kind::ParameterizedEntityName: {
  1014. std::optional<std::string_view> name1 =
  1015. GetName(cast<ParameterizedEntityName>(v1)->declaration());
  1016. std::optional<std::string_view> name2 =
  1017. GetName(cast<ParameterizedEntityName>(v2)->declaration());
  1018. CARBON_CHECK(name1.has_value() && name2.has_value())
  1019. << "parameterized name refers to unnamed declaration";
  1020. return *name1 == *name2;
  1021. }
  1022. case Value::Kind::AssociatedConstant: {
  1023. // The witness value is not part of determining value equality.
  1024. const auto& assoc1 = cast<AssociatedConstant>(*v1);
  1025. const auto& assoc2 = cast<AssociatedConstant>(*v2);
  1026. return DeclaresSameEntity(assoc1.constant(), assoc2.constant()) &&
  1027. TypeEqual(&assoc1.base(), &assoc2.base(), equality_ctx) &&
  1028. TypeEqual(&assoc1.interface(), &assoc2.interface(), equality_ctx);
  1029. }
  1030. case Value::Kind::IntType:
  1031. case Value::Kind::BoolType:
  1032. case Value::Kind::TypeType:
  1033. case Value::Kind::FunctionType:
  1034. case Value::Kind::PointerType:
  1035. case Value::Kind::AutoType:
  1036. case Value::Kind::StructType:
  1037. case Value::Kind::NominalClassType:
  1038. case Value::Kind::MixinPseudoType:
  1039. case Value::Kind::InterfaceType:
  1040. case Value::Kind::NamedConstraintType:
  1041. case Value::Kind::ConstraintType:
  1042. case Value::Kind::ImplWitness:
  1043. case Value::Kind::BindingWitness:
  1044. case Value::Kind::ConstraintWitness:
  1045. case Value::Kind::ConstraintImplWitness:
  1046. case Value::Kind::ChoiceType:
  1047. case Value::Kind::ContinuationType:
  1048. case Value::Kind::VariableType:
  1049. case Value::Kind::StringType:
  1050. case Value::Kind::TypeOfMixinPseudoType:
  1051. case Value::Kind::TypeOfParameterizedEntityName:
  1052. case Value::Kind::TypeOfMemberName:
  1053. case Value::Kind::TypeOfNamespaceName:
  1054. case Value::Kind::StaticArrayType:
  1055. return TypeEqual(v1, v2, equality_ctx);
  1056. case Value::Kind::NominalClassValue:
  1057. case Value::Kind::BindingPlaceholderValue:
  1058. case Value::Kind::AddrValue:
  1059. case Value::Kind::AlternativeConstructorValue:
  1060. case Value::Kind::ContinuationValue:
  1061. case Value::Kind::PointerValue:
  1062. case Value::Kind::LValue:
  1063. case Value::Kind::UninitializedValue:
  1064. case Value::Kind::MemberName:
  1065. // TODO: support pointer comparisons once we have a clearer distinction
  1066. // between pointers and lvalues.
  1067. CARBON_FATAL() << "ValueEqual does not support this kind of value: "
  1068. << *v1;
  1069. }
  1070. }
  1071. // Returns true if the two values are equal and returns false otherwise.
  1072. //
  1073. // This function implements the `==` operator of Carbon.
  1074. auto ValueEqual(Nonnull<const Value*> v1, Nonnull<const Value*> v2,
  1075. std::optional<Nonnull<const EqualityContext*>> equality_ctx)
  1076. -> bool {
  1077. if (v1 == v2) {
  1078. return true;
  1079. }
  1080. // If we're given an equality context, check to see if it knows these values
  1081. // are equal. Only perform the check if one or the other value is an
  1082. // associated constant; otherwise we should be able to do better by looking
  1083. // at the structures of the values.
  1084. if (equality_ctx) {
  1085. if (IsValueKindDependent(v1)) {
  1086. auto visitor = [&](Nonnull<const Value*> maybe_v2) {
  1087. return !ValueStructurallyEqual(v2, maybe_v2, equality_ctx);
  1088. };
  1089. if (!(*equality_ctx)->VisitEqualValues(v1, visitor)) {
  1090. return true;
  1091. }
  1092. }
  1093. if (IsValueKindDependent(v2)) {
  1094. auto visitor = [&](Nonnull<const Value*> maybe_v1) {
  1095. return !ValueStructurallyEqual(v1, maybe_v1, equality_ctx);
  1096. };
  1097. if (!(*equality_ctx)->VisitEqualValues(v2, visitor)) {
  1098. return true;
  1099. }
  1100. }
  1101. }
  1102. return ValueStructurallyEqual(v1, v2, equality_ctx);
  1103. }
  1104. auto EqualityConstraint::VisitEqualValues(
  1105. Nonnull<const Value*> value,
  1106. llvm::function_ref<bool(Nonnull<const Value*>)> visitor) const -> bool {
  1107. // See if the given value is part of this constraint.
  1108. auto first_equal = llvm::find_if(values, [value](Nonnull<const Value*> val) {
  1109. return ValueEqual(value, val, std::nullopt);
  1110. });
  1111. if (first_equal == values.end()) {
  1112. return true;
  1113. }
  1114. // The value is in this group; pass all non-identical values in the group
  1115. // to the visitor. First visit the values we already compared.
  1116. for (const auto* val : llvm::make_range(values.begin(), first_equal)) {
  1117. if (!visitor(val)) {
  1118. return false;
  1119. }
  1120. }
  1121. // Then visit any remaining non-identical values, skipping the one we already
  1122. // found was identical.
  1123. ++first_equal;
  1124. for (const auto* val : llvm::make_range(first_equal, values.end())) {
  1125. if (!ValueEqual(value, val, std::nullopt) && !visitor(val)) {
  1126. return false;
  1127. }
  1128. }
  1129. return true;
  1130. }
  1131. auto ConstraintType::VisitEqualValues(
  1132. Nonnull<const Value*> value,
  1133. llvm::function_ref<bool(Nonnull<const Value*>)> visitor) const -> bool {
  1134. for (const auto& eq : equality_constraints()) {
  1135. if (!eq.VisitEqualValues(value, visitor)) {
  1136. return false;
  1137. }
  1138. }
  1139. return true;
  1140. }
  1141. auto FindFunction(std::string_view name,
  1142. llvm::ArrayRef<Nonnull<Declaration*>> members)
  1143. -> std::optional<Nonnull<const FunctionValue*>> {
  1144. for (const auto& member : members) {
  1145. switch (member->kind()) {
  1146. case DeclarationKind::MixDeclaration: {
  1147. const auto& mix_decl = cast<MixDeclaration>(*member);
  1148. Nonnull<const MixinPseudoType*> mixin = &mix_decl.mixin_value();
  1149. const auto res = mixin->FindFunction(name);
  1150. if (res.has_value()) {
  1151. return res;
  1152. }
  1153. break;
  1154. }
  1155. case DeclarationKind::FunctionDeclaration: {
  1156. const auto& fun = cast<FunctionDeclaration>(*member);
  1157. if (fun.name().inner_name() == name) {
  1158. return &cast<FunctionValue>(**fun.constant_value());
  1159. }
  1160. break;
  1161. }
  1162. default:
  1163. break;
  1164. }
  1165. }
  1166. return std::nullopt;
  1167. }
  1168. // TODO: Find out a way to remove code duplication
  1169. auto MixinPseudoType::FindFunction(const std::string_view& name) const
  1170. -> std::optional<Nonnull<const FunctionValue*>> {
  1171. for (const auto& member : declaration().members()) {
  1172. switch (member->kind()) {
  1173. case DeclarationKind::MixDeclaration: {
  1174. const auto& mix_decl = cast<MixDeclaration>(*member);
  1175. Nonnull<const MixinPseudoType*> mixin = &mix_decl.mixin_value();
  1176. const auto res = mixin->FindFunction(name);
  1177. if (res.has_value()) {
  1178. return res;
  1179. }
  1180. break;
  1181. }
  1182. case DeclarationKind::FunctionDeclaration: {
  1183. const auto& fun = cast<FunctionDeclaration>(*member);
  1184. if (fun.name().inner_name() == name) {
  1185. return &cast<FunctionValue>(**fun.constant_value());
  1186. }
  1187. break;
  1188. }
  1189. default:
  1190. break;
  1191. }
  1192. }
  1193. return std::nullopt;
  1194. }
  1195. auto FindFunctionWithParents(std::string_view name,
  1196. const ClassDeclaration& class_decl)
  1197. -> std::optional<Nonnull<const FunctionValue*>> {
  1198. if (auto fun = FindFunction(name, class_decl.members()); fun.has_value()) {
  1199. return fun;
  1200. }
  1201. if (const auto base_type = class_decl.base_type(); base_type.has_value()) {
  1202. return FindFunctionWithParents(name, base_type.value()->declaration());
  1203. }
  1204. return std::nullopt;
  1205. }
  1206. auto FindMember(std::string_view name,
  1207. llvm::ArrayRef<Nonnull<Declaration*>> members)
  1208. -> std::optional<Nonnull<const Declaration*>> {
  1209. for (Nonnull<const Declaration*> member : members) {
  1210. if (std::optional<std::string_view> mem_name = GetName(*member);
  1211. mem_name.has_value()) {
  1212. if (*mem_name == name) {
  1213. return member;
  1214. }
  1215. }
  1216. }
  1217. return std::nullopt;
  1218. }
  1219. void ImplBinding::Print(llvm::raw_ostream& out) const {
  1220. out << "impl binding " << *type_var_ << " as " << **iface_;
  1221. }
  1222. void ImplBinding::PrintID(llvm::raw_ostream& out) const {
  1223. out << *type_var_ << " as " << **iface_;
  1224. }
  1225. auto NominalClassType::InheritsClass(Nonnull<const Value*> other) const
  1226. -> bool {
  1227. const auto* other_class = dyn_cast<NominalClassType>(other);
  1228. if (!other_class) {
  1229. return false;
  1230. }
  1231. std::optional<Nonnull<const NominalClassType*>> ancestor_class = this;
  1232. while (ancestor_class) {
  1233. if (TypeEqual(*ancestor_class, other_class, std::nullopt)) {
  1234. return true;
  1235. }
  1236. ancestor_class = (*ancestor_class)->base();
  1237. }
  1238. return false;
  1239. }
  1240. } // namespace Carbon