type_completion.cpp 26 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 "toolchain/check/type_completion.h"
  5. #include "llvm/ADT/SmallVector.h"
  6. #include "toolchain/base/kind_switch.h"
  7. #include "toolchain/check/generic.h"
  8. #include "toolchain/check/inst.h"
  9. #include "toolchain/check/type.h"
  10. #include "toolchain/diagnostics/format_providers.h"
  11. #include "toolchain/sem_ir/ids.h"
  12. #include "toolchain/sem_ir/typed_insts.h"
  13. namespace Carbon::Check {
  14. namespace {
  15. // Worklist-based type completion mechanism.
  16. //
  17. // When attempting to complete a type, we may find other types that also need to
  18. // be completed: types nested within that type, and the value representation of
  19. // the type. In order to complete a type without recursing arbitrarily deeply,
  20. // we use a worklist of tasks:
  21. //
  22. // - An `AddNestedIncompleteTypes` step adds a task for all incomplete types
  23. // nested within a type to the work list.
  24. // - A `BuildInfo` step computes the `CompleteTypeInfo` for a type, once all of
  25. // its nested types are complete, and marks the type as complete.
  26. class TypeCompleter {
  27. public:
  28. // `context` mut not be null.
  29. TypeCompleter(Context* context, SemIRLoc loc,
  30. MakeDiagnosticBuilderFn diagnoser)
  31. : context_(context), loc_(loc), diagnoser_(diagnoser) {}
  32. // Attempts to complete the given type. Returns true if it is now complete,
  33. // false if it could not be completed.
  34. auto Complete(SemIR::TypeId type_id) -> bool;
  35. private:
  36. enum class Phase : int8_t {
  37. // The next step is to add nested types to the list of types to complete.
  38. AddNestedIncompleteTypes,
  39. // The next step is to build the `CompleteTypeInfo` for the type.
  40. BuildInfo,
  41. };
  42. struct WorkItem {
  43. SemIR::TypeId type_id;
  44. Phase phase;
  45. };
  46. // Adds `type_id` to the work list, if it's not already complete.
  47. auto Push(SemIR::TypeId type_id) -> void;
  48. // Runs the next step.
  49. auto ProcessStep() -> bool;
  50. // Adds any types nested within `type_inst` that need to be complete for
  51. // `type_inst` to be complete to our work list.
  52. auto AddNestedIncompleteTypes(SemIR::Inst type_inst) -> bool;
  53. // Makes an empty value representation, which is used for types that have no
  54. // state, such as empty structs and tuples.
  55. auto MakeEmptyValueRepr() const -> SemIR::ValueRepr;
  56. // Makes a value representation that uses pass-by-copy, copying the given
  57. // type.
  58. auto MakeCopyValueRepr(SemIR::TypeId rep_id,
  59. SemIR::ValueRepr::AggregateKind aggregate_kind =
  60. SemIR::ValueRepr::NotAggregate) const
  61. -> SemIR::ValueRepr;
  62. // Makes a value representation that uses pass-by-address with the given
  63. // pointee type.
  64. auto MakePointerValueRepr(SemIR::TypeId pointee_id,
  65. SemIR::ValueRepr::AggregateKind aggregate_kind =
  66. SemIR::ValueRepr::NotAggregate) const
  67. -> SemIR::ValueRepr;
  68. // Gets the value representation of a nested type, which should already be
  69. // complete.
  70. auto GetNestedInfo(SemIR::TypeId nested_type_id) const
  71. -> SemIR::CompleteTypeInfo;
  72. template <typename InstT>
  73. requires(InstT::Kind.template IsAnyOf<
  74. SemIR::AutoType, SemIR::BoolType, SemIR::BoundMethodType,
  75. SemIR::ErrorInst, SemIR::FacetType, SemIR::FloatType,
  76. SemIR::IntType, SemIR::IntLiteralType, SemIR::LegacyFloatType,
  77. SemIR::NamespaceType, SemIR::PointerType,
  78. SemIR::SpecificFunctionType, SemIR::TypeType, SemIR::VtableType,
  79. SemIR::WitnessType>())
  80. auto BuildInfoForInst(SemIR::TypeId type_id, InstT /*inst*/) const
  81. -> SemIR::CompleteTypeInfo {
  82. return {.value_repr = MakeCopyValueRepr(type_id)};
  83. }
  84. auto BuildInfoForInst(SemIR::TypeId type_id, SemIR::StringType /*inst*/) const
  85. -> SemIR::CompleteTypeInfo;
  86. auto BuildStructOrTupleValueRepr(size_t num_elements,
  87. SemIR::TypeId elementwise_rep,
  88. bool same_as_object_rep) const
  89. -> SemIR::ValueRepr;
  90. auto BuildInfoForInst(SemIR::TypeId type_id,
  91. SemIR::StructType struct_type) const
  92. -> SemIR::CompleteTypeInfo;
  93. auto BuildInfoForInst(SemIR::TypeId type_id,
  94. SemIR::TupleType tuple_type) const
  95. -> SemIR::CompleteTypeInfo;
  96. auto BuildInfoForInst(SemIR::TypeId type_id, SemIR::ArrayType /*inst*/) const
  97. -> SemIR::CompleteTypeInfo;
  98. auto BuildInfoForInst(SemIR::TypeId /*type_id*/, SemIR::ClassType inst) const
  99. -> SemIR::CompleteTypeInfo;
  100. template <typename InstT>
  101. requires(InstT::Kind.template IsAnyOf<
  102. SemIR::AssociatedEntityType, SemIR::FunctionType,
  103. SemIR::FunctionTypeWithSelfType, SemIR::GenericClassType,
  104. SemIR::GenericInterfaceType, SemIR::InstType,
  105. SemIR::UnboundElementType, SemIR::WhereExpr>())
  106. auto BuildInfoForInst(SemIR::TypeId /*type_id*/, InstT /*inst*/) const
  107. -> SemIR::CompleteTypeInfo {
  108. // These types have no runtime operations, so we use an empty value
  109. // representation.
  110. //
  111. // TODO: There is information we could model here:
  112. // - For an interface, we could use a witness.
  113. // - For an associated entity, we could use an index into the witness.
  114. // - For an unbound element, we could use an index or offset.
  115. return {.value_repr = MakeEmptyValueRepr()};
  116. }
  117. auto BuildInfoForInst(SemIR::TypeId /*type_id*/, SemIR::ConstType inst) const
  118. -> SemIR::CompleteTypeInfo;
  119. auto BuildInfoForInst(SemIR::TypeId /*type_id*/,
  120. SemIR::ImplWitnessAssociatedConstant inst) const
  121. -> SemIR::CompleteTypeInfo;
  122. template <typename InstT>
  123. requires(InstT::Kind.constant_kind() ==
  124. SemIR::InstConstantKind::SymbolicOnly ||
  125. InstT::Kind.is_type() == SemIR::InstIsType::Never)
  126. auto BuildInfoForInst(SemIR::TypeId type_id, InstT inst) const
  127. -> SemIR::CompleteTypeInfo {
  128. if constexpr (InstT::Kind.is_type() == SemIR::InstIsType::Never) {
  129. CARBON_FATAL("Type refers to non-type inst {0}", inst);
  130. } else {
  131. // For symbolic types, we arbitrarily pick a copy representation.
  132. return {.value_repr = MakeCopyValueRepr(type_id)};
  133. }
  134. }
  135. // Builds and returns the `CompleteTypeInfo` for the given type. All nested
  136. // types, as found by AddNestedIncompleteTypes, are known to be complete.
  137. auto BuildInfo(SemIR::TypeId type_id, SemIR::Inst inst) const
  138. -> SemIR::CompleteTypeInfo;
  139. Context* context_;
  140. llvm::SmallVector<WorkItem> work_list_;
  141. SemIRLoc loc_;
  142. MakeDiagnosticBuilderFn diagnoser_;
  143. };
  144. } // namespace
  145. auto TypeCompleter::Complete(SemIR::TypeId type_id) -> bool {
  146. Push(type_id);
  147. while (!work_list_.empty()) {
  148. if (!ProcessStep()) {
  149. return false;
  150. }
  151. }
  152. return true;
  153. }
  154. auto TypeCompleter::Push(SemIR::TypeId type_id) -> void {
  155. if (!context_->types().IsComplete(type_id)) {
  156. work_list_.push_back(
  157. {.type_id = type_id, .phase = Phase::AddNestedIncompleteTypes});
  158. }
  159. }
  160. auto TypeCompleter::ProcessStep() -> bool {
  161. auto [type_id, phase] = work_list_.back();
  162. // We might have enqueued the same type more than once. Just skip the
  163. // type if it's already complete.
  164. if (context_->types().IsComplete(type_id)) {
  165. work_list_.pop_back();
  166. return true;
  167. }
  168. auto inst_id = context_->types().GetInstId(type_id);
  169. auto inst = context_->insts().Get(inst_id);
  170. auto old_work_list_size = work_list_.size();
  171. switch (phase) {
  172. case Phase::AddNestedIncompleteTypes:
  173. if (!AddNestedIncompleteTypes(inst)) {
  174. return false;
  175. }
  176. CARBON_CHECK(work_list_.size() >= old_work_list_size,
  177. "AddNestedIncompleteTypes should not remove work items");
  178. work_list_[old_work_list_size - 1].phase = Phase::BuildInfo;
  179. break;
  180. case Phase::BuildInfo: {
  181. auto info = BuildInfo(type_id, inst);
  182. context_->types().SetComplete(type_id, info);
  183. CARBON_CHECK(old_work_list_size == work_list_.size(),
  184. "BuildInfo should not change work items");
  185. work_list_.pop_back();
  186. // Also complete the value representation type, if necessary. This
  187. // should never fail: the value representation shouldn't require any
  188. // additional nested types to be complete.
  189. if (!context_->types().IsComplete(info.value_repr.type_id)) {
  190. work_list_.push_back(
  191. {.type_id = info.value_repr.type_id, .phase = Phase::BuildInfo});
  192. }
  193. // For a pointer representation, the pointee also needs to be complete.
  194. if (info.value_repr.kind == SemIR::ValueRepr::Pointer) {
  195. if (info.value_repr.type_id == SemIR::ErrorInst::SingletonTypeId) {
  196. break;
  197. }
  198. auto pointee_type_id =
  199. context_->sem_ir().GetPointeeType(info.value_repr.type_id);
  200. if (!context_->types().IsComplete(pointee_type_id)) {
  201. work_list_.push_back(
  202. {.type_id = pointee_type_id, .phase = Phase::BuildInfo});
  203. }
  204. }
  205. break;
  206. }
  207. }
  208. return true;
  209. }
  210. auto TypeCompleter::AddNestedIncompleteTypes(SemIR::Inst type_inst) -> bool {
  211. CARBON_KIND_SWITCH(type_inst) {
  212. case CARBON_KIND(SemIR::ArrayType inst): {
  213. Push(context_->types().GetTypeIdForTypeInstId(inst.element_type_inst_id));
  214. break;
  215. }
  216. case CARBON_KIND(SemIR::StructType inst): {
  217. for (auto field : context_->struct_type_fields().Get(inst.fields_id)) {
  218. Push(field.type_id);
  219. }
  220. break;
  221. }
  222. case CARBON_KIND(SemIR::TupleType inst): {
  223. for (auto element_type_id :
  224. context_->type_blocks().Get(inst.elements_id)) {
  225. Push(element_type_id);
  226. }
  227. break;
  228. }
  229. case CARBON_KIND(SemIR::ClassType inst): {
  230. auto& class_info = context_->classes().Get(inst.class_id);
  231. if (!class_info.is_complete()) {
  232. if (diagnoser_) {
  233. auto builder = diagnoser_();
  234. NoteIncompleteClass(*context_, inst.class_id, builder);
  235. builder.Emit();
  236. }
  237. return false;
  238. }
  239. if (inst.specific_id.has_value()) {
  240. ResolveSpecificDefinition(*context_, loc_, inst.specific_id);
  241. }
  242. if (auto adapted_type_id =
  243. class_info.GetAdaptedType(context_->sem_ir(), inst.specific_id);
  244. adapted_type_id.has_value()) {
  245. Push(adapted_type_id);
  246. } else {
  247. Push(class_info.GetObjectRepr(context_->sem_ir(), inst.specific_id));
  248. }
  249. break;
  250. }
  251. case CARBON_KIND(SemIR::ConstType inst): {
  252. Push(context_->types().GetTypeIdForTypeInstId(inst.inner_id));
  253. break;
  254. }
  255. case CARBON_KIND(SemIR::FacetType inst): {
  256. auto identified_id = RequireIdentifiedFacetType(*context_, inst);
  257. const auto& identified =
  258. context_->identified_facet_types().Get(identified_id);
  259. // Every mentioned interface needs to be complete.
  260. for (auto req_interface : identified.required_interfaces()) {
  261. auto interface_id = req_interface.interface_id;
  262. const auto& interface = context_->interfaces().Get(interface_id);
  263. if (!interface.is_complete()) {
  264. if (diagnoser_) {
  265. auto builder = diagnoser_();
  266. NoteIncompleteInterface(*context_, interface_id, builder);
  267. builder.Emit();
  268. }
  269. return false;
  270. }
  271. if (req_interface.specific_id.has_value()) {
  272. ResolveSpecificDefinition(*context_, loc_, req_interface.specific_id);
  273. }
  274. }
  275. break;
  276. }
  277. default:
  278. break;
  279. }
  280. return true;
  281. }
  282. auto TypeCompleter::MakeEmptyValueRepr() const -> SemIR::ValueRepr {
  283. return {.kind = SemIR::ValueRepr::None,
  284. .type_id = GetTupleType(*context_, {})};
  285. }
  286. auto TypeCompleter::MakeCopyValueRepr(
  287. SemIR::TypeId rep_id, SemIR::ValueRepr::AggregateKind aggregate_kind) const
  288. -> SemIR::ValueRepr {
  289. return {.kind = SemIR::ValueRepr::Copy,
  290. .aggregate_kind = aggregate_kind,
  291. .type_id = rep_id};
  292. }
  293. auto TypeCompleter::MakePointerValueRepr(
  294. SemIR::TypeId pointee_id,
  295. SemIR::ValueRepr::AggregateKind aggregate_kind) const -> SemIR::ValueRepr {
  296. // TODO: Should we add `const` qualification to `pointee_id`?
  297. return {.kind = SemIR::ValueRepr::Pointer,
  298. .aggregate_kind = aggregate_kind,
  299. .type_id = GetPointerType(*context_,
  300. context_->types().GetInstId(pointee_id))};
  301. }
  302. auto TypeCompleter::GetNestedInfo(SemIR::TypeId nested_type_id) const
  303. -> SemIR::CompleteTypeInfo {
  304. CARBON_CHECK(context_->types().IsComplete(nested_type_id),
  305. "Nested type should already be complete");
  306. auto info = context_->types().GetCompleteTypeInfo(nested_type_id);
  307. CARBON_CHECK(info.value_repr.kind != SemIR::ValueRepr::Unknown,
  308. "Complete type should have a value representation");
  309. return info;
  310. }
  311. auto TypeCompleter::BuildInfoForInst(SemIR::TypeId type_id,
  312. SemIR::StringType /*inst*/) const
  313. -> SemIR::CompleteTypeInfo {
  314. // TODO: Decide on string value semantics. This should probably be a
  315. // custom value representation carrying a pointer and size or
  316. // similar.
  317. return {.value_repr = MakePointerValueRepr(type_id)};
  318. }
  319. auto TypeCompleter::BuildStructOrTupleValueRepr(size_t num_elements,
  320. SemIR::TypeId elementwise_rep,
  321. bool same_as_object_rep) const
  322. -> SemIR::ValueRepr {
  323. SemIR::ValueRepr::AggregateKind aggregate_kind =
  324. same_as_object_rep ? SemIR::ValueRepr::ValueAndObjectAggregate
  325. : SemIR::ValueRepr::ValueAggregate;
  326. if (num_elements == 1) {
  327. // The value representation for a struct or tuple with a single element
  328. // is a struct or tuple containing the value representation of the
  329. // element.
  330. // TODO: Consider doing the same whenever `elementwise_rep` is
  331. // sufficiently small.
  332. return MakeCopyValueRepr(elementwise_rep, aggregate_kind);
  333. }
  334. // For a struct or tuple with multiple fields, we use a pointer
  335. // to the elementwise value representation.
  336. return MakePointerValueRepr(elementwise_rep, aggregate_kind);
  337. }
  338. auto TypeCompleter::BuildInfoForInst(SemIR::TypeId type_id,
  339. SemIR::StructType struct_type) const
  340. -> SemIR::CompleteTypeInfo {
  341. auto fields = context_->struct_type_fields().Get(struct_type.fields_id);
  342. if (fields.empty()) {
  343. return {.value_repr = MakeEmptyValueRepr()};
  344. }
  345. // Find the value representation for each field, and construct a struct
  346. // of value representations.
  347. llvm::SmallVector<SemIR::StructTypeField> value_rep_fields;
  348. value_rep_fields.reserve(fields.size());
  349. bool same_as_object_rep = true;
  350. SemIR::ClassId abstract_class_id = SemIR::ClassId::None;
  351. for (auto field : fields) {
  352. auto field_info = GetNestedInfo(field.type_id);
  353. if (!field_info.value_repr.IsCopyOfObjectRepr(context_->sem_ir(),
  354. field.type_id)) {
  355. same_as_object_rep = false;
  356. field.type_id = field_info.value_repr.type_id;
  357. }
  358. value_rep_fields.push_back(field);
  359. // Take the first non-None abstract_class_id, if any.
  360. if (field_info.abstract_class_id.has_value() &&
  361. !abstract_class_id.has_value()) {
  362. abstract_class_id = field_info.abstract_class_id;
  363. }
  364. }
  365. auto value_rep =
  366. same_as_object_rep
  367. ? type_id
  368. : GetStructType(
  369. *context_,
  370. context_->struct_type_fields().AddCanonical(value_rep_fields));
  371. return {.value_repr = BuildStructOrTupleValueRepr(fields.size(), value_rep,
  372. same_as_object_rep),
  373. .abstract_class_id = abstract_class_id};
  374. }
  375. auto TypeCompleter::BuildInfoForInst(SemIR::TypeId type_id,
  376. SemIR::TupleType tuple_type) const
  377. -> SemIR::CompleteTypeInfo {
  378. // TODO: Share more code with structs.
  379. auto elements = context_->type_blocks().Get(tuple_type.elements_id);
  380. if (elements.empty()) {
  381. return {.value_repr = MakeEmptyValueRepr()};
  382. }
  383. // Find the value representation for each element, and construct a tuple
  384. // of value representations.
  385. llvm::SmallVector<SemIR::TypeId> value_rep_elements;
  386. value_rep_elements.reserve(elements.size());
  387. bool same_as_object_rep = true;
  388. SemIR::ClassId abstract_class_id = SemIR::ClassId::None;
  389. for (auto element_type_id : elements) {
  390. auto element_info = GetNestedInfo(element_type_id);
  391. if (!element_info.value_repr.IsCopyOfObjectRepr(context_->sem_ir(),
  392. element_type_id)) {
  393. same_as_object_rep = false;
  394. }
  395. value_rep_elements.push_back(element_info.value_repr.type_id);
  396. // Take the first non-None abstract_class_id, if any.
  397. if (element_info.abstract_class_id.has_value() &&
  398. !abstract_class_id.has_value()) {
  399. abstract_class_id = element_info.abstract_class_id;
  400. }
  401. }
  402. auto value_rep = same_as_object_rep
  403. ? type_id
  404. : GetTupleType(*context_, value_rep_elements);
  405. return {.value_repr = BuildStructOrTupleValueRepr(elements.size(), value_rep,
  406. same_as_object_rep),
  407. .abstract_class_id = abstract_class_id};
  408. }
  409. auto TypeCompleter::BuildInfoForInst(SemIR::TypeId type_id,
  410. SemIR::ArrayType /*inst*/) const
  411. -> SemIR::CompleteTypeInfo {
  412. // For arrays, it's convenient to always use a pointer representation,
  413. // even when the array has zero or one element, in order to support
  414. // indexing.
  415. return {.value_repr =
  416. MakePointerValueRepr(type_id, SemIR::ValueRepr::ObjectAggregate)};
  417. }
  418. auto TypeCompleter::BuildInfoForInst(SemIR::TypeId /*type_id*/,
  419. SemIR::ClassType inst) const
  420. -> SemIR::CompleteTypeInfo {
  421. auto& class_info = context_->classes().Get(inst.class_id);
  422. auto abstract_class_id =
  423. class_info.inheritance_kind == SemIR::Class::InheritanceKind::Abstract
  424. ? inst.class_id
  425. : SemIR::ClassId::None;
  426. // The value representation of an adapter is the value representation of
  427. // its adapted type.
  428. if (auto adapted_type_id =
  429. class_info.GetAdaptedType(context_->sem_ir(), inst.specific_id);
  430. adapted_type_id.has_value()) {
  431. auto info = GetNestedInfo(adapted_type_id);
  432. info.abstract_class_id = abstract_class_id;
  433. return info;
  434. }
  435. // Otherwise, the value representation for a class is a pointer to the
  436. // object representation.
  437. // TODO: Support customized value representations for classes.
  438. // TODO: Pick a better value representation when possible.
  439. return {.value_repr = MakePointerValueRepr(
  440. class_info.GetObjectRepr(context_->sem_ir(), inst.specific_id),
  441. SemIR::ValueRepr::ObjectAggregate),
  442. .abstract_class_id = abstract_class_id};
  443. }
  444. auto TypeCompleter::BuildInfoForInst(SemIR::TypeId /*type_id*/,
  445. SemIR::ConstType inst) const
  446. -> SemIR::CompleteTypeInfo {
  447. // The value representation of `const T` is the same as that of `T`.
  448. // Objects are not modifiable through their value representations.
  449. return GetNestedInfo(context_->types().GetTypeIdForTypeInstId(inst.inner_id));
  450. }
  451. auto TypeCompleter::BuildInfoForInst(
  452. SemIR::TypeId /*type_id*/, SemIR::ImplWitnessAssociatedConstant inst) const
  453. -> SemIR::CompleteTypeInfo {
  454. return GetNestedInfo(inst.type_id);
  455. }
  456. // Builds and returns the value representation for the given type. All nested
  457. // types, as found by AddNestedIncompleteTypes, are known to be complete.
  458. auto TypeCompleter::BuildInfo(SemIR::TypeId type_id, SemIR::Inst inst) const
  459. -> SemIR::CompleteTypeInfo {
  460. // Use overload resolution to select the implementation, producing compile
  461. // errors when BuildInfoForInst isn't defined for a given instruction.
  462. CARBON_KIND_SWITCH(inst) {
  463. #define CARBON_SEM_IR_INST_KIND(Name) \
  464. case CARBON_KIND(SemIR::Name typed_inst): { \
  465. return BuildInfoForInst(type_id, typed_inst); \
  466. }
  467. #include "toolchain/sem_ir/inst_kind.def"
  468. }
  469. }
  470. auto TryToCompleteType(Context& context, SemIR::TypeId type_id, SemIRLoc loc,
  471. MakeDiagnosticBuilderFn diagnoser) -> bool {
  472. return TypeCompleter(&context, loc, diagnoser).Complete(type_id);
  473. }
  474. auto CompleteTypeOrCheckFail(Context& context, SemIR::TypeId type_id) -> void {
  475. bool complete =
  476. TypeCompleter(&context, SemIR::LocId::None, nullptr).Complete(type_id);
  477. CARBON_CHECK(complete, "Expected {0} to be a complete type",
  478. context.types().GetAsInst(type_id));
  479. }
  480. auto RequireCompleteType(Context& context, SemIR::TypeId type_id,
  481. SemIR::LocId loc_id, MakeDiagnosticBuilderFn diagnoser)
  482. -> bool {
  483. CARBON_CHECK(diagnoser);
  484. if (!TypeCompleter(&context, loc_id, diagnoser).Complete(type_id)) {
  485. return false;
  486. }
  487. // For a symbolic type, create an instruction to require the corresponding
  488. // specific type to be complete.
  489. if (type_id.is_symbolic()) {
  490. // TODO: Deduplicate these.
  491. AddInstInNoBlock(context, loc_id,
  492. SemIR::RequireCompleteType{
  493. .type_id = GetSingletonType(
  494. context, SemIR::WitnessType::SingletonInstId),
  495. .complete_type_id = type_id});
  496. }
  497. return true;
  498. }
  499. // Adds a note to a diagnostic explaining that a class is abstract.
  500. static auto NoteAbstractClass(Context& context, SemIR::ClassId class_id,
  501. bool direct_use, DiagnosticBuilder& builder)
  502. -> void {
  503. const auto& class_info = context.classes().Get(class_id);
  504. CARBON_CHECK(
  505. class_info.inheritance_kind == SemIR::Class::InheritanceKind::Abstract,
  506. "Class is not abstract");
  507. CARBON_DIAGNOSTIC(
  508. ClassAbstractHere, Note,
  509. "{0:=0:uses class that|=1:class} was declared abstract here",
  510. Diagnostics::IntAsSelect);
  511. builder.Note(class_info.definition_id, ClassAbstractHere,
  512. static_cast<int>(direct_use));
  513. }
  514. auto RequireConcreteType(Context& context, SemIR::TypeId type_id,
  515. SemIR::LocId loc_id, MakeDiagnosticBuilderFn diagnoser,
  516. MakeDiagnosticBuilderFn abstract_diagnoser) -> bool {
  517. // TODO: For symbolic types, should add an implicit constraint that they are
  518. // not abstract.
  519. CARBON_CHECK(abstract_diagnoser);
  520. // The representation of a facet type does not depend on its definition, so
  521. // they are considered "concrete" even when not complete.
  522. if (context.types().IsFacetType(type_id)) {
  523. return true;
  524. }
  525. if (!RequireCompleteType(context, type_id, loc_id, diagnoser)) {
  526. return false;
  527. }
  528. auto complete_info = context.types().GetCompleteTypeInfo(type_id);
  529. if (complete_info.abstract_class_id.has_value()) {
  530. auto builder = abstract_diagnoser();
  531. if (builder) {
  532. bool direct_use = false;
  533. if (auto inst = context.types().TryGetAs<SemIR::ClassType>(type_id)) {
  534. if (inst->class_id == complete_info.abstract_class_id) {
  535. direct_use = true;
  536. }
  537. }
  538. NoteAbstractClass(context, complete_info.abstract_class_id, direct_use,
  539. builder);
  540. builder.Emit();
  541. }
  542. return false;
  543. }
  544. return true;
  545. }
  546. auto RequireIdentifiedFacetType(Context& context,
  547. const SemIR::FacetType& facet_type)
  548. -> SemIR::IdentifiedFacetTypeId {
  549. if (auto identified_id =
  550. context.identified_facet_types().TryGetId(facet_type.facet_type_id);
  551. identified_id.has_value()) {
  552. return identified_id;
  553. }
  554. const auto& facet_type_info =
  555. context.facet_types().Get(facet_type.facet_type_id);
  556. // TODO: expand named constraints
  557. // TODO: Process other kinds of requirements.
  558. return context.identified_facet_types().Add(
  559. facet_type.facet_type_id, {facet_type_info.extend_constraints,
  560. facet_type_info.self_impls_constraints});
  561. }
  562. auto AsCompleteType(Context& context, SemIR::TypeId type_id,
  563. SemIR::LocId loc_id, MakeDiagnosticBuilderFn diagnoser)
  564. -> SemIR::TypeId {
  565. return RequireCompleteType(context, type_id, loc_id, diagnoser)
  566. ? type_id
  567. : SemIR::ErrorInst::SingletonTypeId;
  568. }
  569. // Returns the type `type_id` if it is a concrete type, or produces an
  570. // incomplete or abstract type error and returns an error type. This is a
  571. // convenience wrapper around `RequireConcreteType`.
  572. auto AsConcreteType(Context& context, SemIR::TypeId type_id,
  573. SemIR::LocId loc_id, MakeDiagnosticBuilderFn diagnoser,
  574. MakeDiagnosticBuilderFn abstract_diagnoser)
  575. -> SemIR::TypeId {
  576. return RequireConcreteType(context, type_id, loc_id, diagnoser,
  577. abstract_diagnoser)
  578. ? type_id
  579. : SemIR::ErrorInst::SingletonTypeId;
  580. }
  581. auto NoteIncompleteClass(Context& context, SemIR::ClassId class_id,
  582. DiagnosticBuilder& builder) -> void {
  583. const auto& class_info = context.classes().Get(class_id);
  584. CARBON_CHECK(!class_info.is_complete(), "Class is not incomplete");
  585. if (class_info.has_definition_started()) {
  586. CARBON_DIAGNOSTIC(ClassIncompleteWithinDefinition, Note,
  587. "class is incomplete within its definition");
  588. builder.Note(class_info.definition_id, ClassIncompleteWithinDefinition);
  589. } else {
  590. CARBON_DIAGNOSTIC(ClassForwardDeclaredHere, Note,
  591. "class was forward declared here");
  592. builder.Note(class_info.latest_decl_id(), ClassForwardDeclaredHere);
  593. }
  594. }
  595. auto NoteIncompleteInterface(Context& context, SemIR::InterfaceId interface_id,
  596. DiagnosticBuilder& builder) -> void {
  597. const auto& interface_info = context.interfaces().Get(interface_id);
  598. CARBON_CHECK(!interface_info.is_complete(), "Interface is not incomplete");
  599. if (interface_info.is_being_defined()) {
  600. CARBON_DIAGNOSTIC(InterfaceIncompleteWithinDefinition, Note,
  601. "interface is currently being defined");
  602. builder.Note(interface_info.definition_id,
  603. InterfaceIncompleteWithinDefinition);
  604. } else {
  605. CARBON_DIAGNOSTIC(InterfaceForwardDeclaredHere, Note,
  606. "interface was forward declared here");
  607. builder.Note(interface_info.latest_decl_id(), InterfaceForwardDeclaredHere);
  608. }
  609. }
  610. } // namespace Carbon::Check