import.cpp 91 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/cpp/import.h"
  5. #include <memory>
  6. #include <optional>
  7. #include <string>
  8. #include <tuple>
  9. #include <utility>
  10. #include "clang/AST/ASTContext.h"
  11. #include "clang/AST/RecordLayout.h"
  12. #include "clang/AST/UnresolvedSet.h"
  13. #include "clang/AST/VTableBuilder.h"
  14. #include "clang/Basic/FileManager.h"
  15. #include "clang/Frontend/ASTUnit.h"
  16. #include "clang/Frontend/CompilerInstance.h"
  17. #include "clang/Frontend/CompilerInvocation.h"
  18. #include "clang/Frontend/TextDiagnostic.h"
  19. #include "clang/Lex/PreprocessorOptions.h"
  20. #include "clang/Sema/Lookup.h"
  21. #include "common/check.h"
  22. #include "common/ostream.h"
  23. #include "common/raw_string_ostream.h"
  24. #include "llvm/ADT/IntrusiveRefCntPtr.h"
  25. #include "llvm/ADT/StringRef.h"
  26. #include "llvm/Support/raw_ostream.h"
  27. #include "toolchain/base/kind_switch.h"
  28. #include "toolchain/check/class.h"
  29. #include "toolchain/check/context.h"
  30. #include "toolchain/check/control_flow.h"
  31. #include "toolchain/check/convert.h"
  32. #include "toolchain/check/cpp/custom_type_mapping.h"
  33. #include "toolchain/check/cpp/thunk.h"
  34. #include "toolchain/check/diagnostic_helpers.h"
  35. #include "toolchain/check/eval.h"
  36. #include "toolchain/check/function.h"
  37. #include "toolchain/check/import.h"
  38. #include "toolchain/check/inst.h"
  39. #include "toolchain/check/literal.h"
  40. #include "toolchain/check/operator.h"
  41. #include "toolchain/check/pattern.h"
  42. #include "toolchain/check/pattern_match.h"
  43. #include "toolchain/check/type.h"
  44. #include "toolchain/check/type_completion.h"
  45. #include "toolchain/diagnostics/diagnostic.h"
  46. #include "toolchain/diagnostics/diagnostic_emitter.h"
  47. #include "toolchain/diagnostics/format_providers.h"
  48. #include "toolchain/parse/node_ids.h"
  49. #include "toolchain/sem_ir/clang_decl.h"
  50. #include "toolchain/sem_ir/class.h"
  51. #include "toolchain/sem_ir/cpp_overload_set.h"
  52. #include "toolchain/sem_ir/function.h"
  53. #include "toolchain/sem_ir/ids.h"
  54. #include "toolchain/sem_ir/inst.h"
  55. #include "toolchain/sem_ir/name_scope.h"
  56. #include "toolchain/sem_ir/typed_insts.h"
  57. namespace Carbon::Check {
  58. // Add a line marker directive pointing at the location of the `import Cpp`
  59. // declaration in the Carbon source file. This will cause Clang's diagnostics
  60. // machinery to track and report the location in Carbon code where the import
  61. // was written.
  62. static auto GenerateLineMarker(Context& context, llvm::raw_ostream& out,
  63. int line) {
  64. out << "# " << line << " \""
  65. << FormatEscaped(context.tokens().source().filename()) << "\"\n";
  66. }
  67. // Generates C++ file contents to #include all requested imports.
  68. static auto GenerateCppIncludesHeaderCode(
  69. Context& context, llvm::ArrayRef<Parse::Tree::PackagingNames> imports)
  70. -> std::string {
  71. std::string code;
  72. llvm::raw_string_ostream code_stream(code);
  73. for (const Parse::Tree::PackagingNames& import : imports) {
  74. if (import.inline_body_id.has_value()) {
  75. // Expand `import Cpp inline "code";` directly into the specified code.
  76. auto code_token = context.parse_tree().node_token(import.inline_body_id);
  77. // Compute the line number on which the C++ code starts. Usually the code
  78. // is specified as a block string literal and starts on the line after the
  79. // start of the string token.
  80. // TODO: Determine if this is a block string literal without calling
  81. // `GetTokenText`, which re-lexes the string.
  82. int line = context.tokens().GetLineNumber(code_token);
  83. if (context.tokens().GetTokenText(code_token).contains('\n')) {
  84. ++line;
  85. }
  86. GenerateLineMarker(context, code_stream, line);
  87. code_stream << context.string_literal_values().Get(
  88. context.tokens().GetStringLiteralValue(code_token))
  89. << "\n";
  90. // TODO: Inject a clang pragma here to produce an error if there are
  91. // unclosed scopes at the end of this inline C++ fragment.
  92. } else {
  93. // Translate `import Cpp library "foo.h";` into `#include "foo.h"`.
  94. GenerateLineMarker(context, code_stream,
  95. context.tokens().GetLineNumber(
  96. context.parse_tree().node_token(import.node_id)));
  97. code_stream << "#include \""
  98. << FormatEscaped(
  99. context.string_literal_values().Get(import.library_id))
  100. << "\"\n";
  101. }
  102. }
  103. // Inject a declaration of placement operator new, because the code we
  104. // generate in thunks depends on it for placement new expressions. Clang has
  105. // special-case logic for lowering a new-expression using this, so a
  106. // definition is not required.
  107. // TODO: This is a hack. We should be able to directly generate Clang AST to
  108. // construct objects in-place without this.
  109. // TODO: Once we can rely on libc++ being available, consider including
  110. // `<__new/placement_new_delete.h>` instead.
  111. code_stream << R"(# 1 "<carbon-internal>"
  112. #undef constexpr
  113. #if __cplusplus > 202302L
  114. constexpr
  115. #endif
  116. #undef void
  117. #undef operator
  118. #undef new
  119. void* operator new(__SIZE_TYPE__, void*)
  120. #if __cplusplus < 201103L
  121. #undef throw
  122. throw()
  123. #else
  124. #undef noexcept
  125. noexcept
  126. #endif
  127. ;
  128. )";
  129. return code;
  130. }
  131. // Adds the name to the scope with the given `access_kind` and `inst_id`.
  132. // `inst_id` must have a value.
  133. static auto AddNameToScope(Context& context, SemIR::NameScopeId scope_id,
  134. SemIR::NameId name_id, SemIR::AccessKind access_kind,
  135. SemIR::InstId inst_id) -> void {
  136. CARBON_CHECK(inst_id.has_value());
  137. context.name_scopes().Get(scope_id).AddRequired(
  138. {.name_id = name_id,
  139. .result = SemIR::ScopeLookupResult::MakeFound(inst_id, access_kind)});
  140. }
  141. // Maps a Clang name to a Carbon `NameId`.
  142. static auto AddIdentifierName(Context& context, llvm::StringRef name)
  143. -> SemIR::NameId {
  144. return SemIR::NameId::ForIdentifier(context.identifiers().Add(name));
  145. }
  146. // Adds the given source location and an `ImportIRInst` referring to it in
  147. // `ImportIRId::Cpp`.
  148. static auto AddImportIRInst(SemIR::File& file,
  149. clang::SourceLocation clang_source_loc)
  150. -> SemIR::ImportIRInstId {
  151. SemIR::ClangSourceLocId clang_source_loc_id =
  152. file.clang_source_locs().Add(clang_source_loc);
  153. return file.import_ir_insts().Add(SemIR::ImportIRInst(clang_source_loc_id));
  154. }
  155. namespace {
  156. // Used to convert Clang diagnostics to Carbon diagnostics.
  157. //
  158. // Handling of Clang notes is a little subtle: as far as Clang is concerned,
  159. // notes are separate diagnostics, not connected to the error or warning that
  160. // precedes them. But in Carbon's diagnostics system, notes are part of the
  161. // enclosing diagnostic. To handle this, we buffer Clang diagnostics until we
  162. // reach a point where we know we're not in the middle of a diagnostic, and then
  163. // emit a diagnostic along with all of its notes. This is triggered when adding
  164. // or removing a Carbon context note, which could otherwise get attached to the
  165. // wrong C++ diagnostics, and at the end of the Carbon program.
  166. class CarbonClangDiagnosticConsumer : public clang::DiagnosticConsumer {
  167. public:
  168. // Creates an instance with the location that triggers calling Clang. The
  169. // `context` is not stored here, and the diagnostics consumer is expected to
  170. // outlive it.
  171. explicit CarbonClangDiagnosticConsumer(
  172. Context& context, std::shared_ptr<clang::CompilerInvocation> invocation)
  173. : sem_ir_(&context.sem_ir()),
  174. emitter_(&context.emitter()),
  175. invocation_(std::move(invocation)) {
  176. emitter_->AddFlushFn([this] { EmitDiagnostics(); });
  177. }
  178. ~CarbonClangDiagnosticConsumer() override {
  179. // Do not inspect `emitter_` here; it's typically destroyed before the
  180. // consumer is.
  181. // TODO: If Clang produces diagnostics after check finishes, they'll get
  182. // added to the list of pending diagnostics and never emitted.
  183. CARBON_CHECK(diagnostic_infos_.empty(),
  184. "Missing flush before destroying diagnostic consumer");
  185. }
  186. // Generates a Carbon warning for each Clang warning and a Carbon error for
  187. // each Clang error or fatal.
  188. auto HandleDiagnostic(clang::DiagnosticsEngine::Level diag_level,
  189. const clang::Diagnostic& info) -> void override {
  190. DiagnosticConsumer::HandleDiagnostic(diag_level, info);
  191. SemIR::ImportIRInstId clang_import_ir_inst_id =
  192. AddImportIRInst(*sem_ir_, info.getLocation());
  193. llvm::SmallString<256> message;
  194. info.FormatDiagnostic(message);
  195. // Render a code snippet including any highlighted ranges and fixit hints.
  196. // TODO: Also include the #include stack and macro expansion stack in the
  197. // diagnostic output in some way.
  198. RawStringOstream snippet_stream;
  199. if (!info.hasSourceManager()) {
  200. // If we don't have a source manager, this is an error from early in the
  201. // frontend. Don't produce a snippet.
  202. CARBON_CHECK(info.getLocation().isInvalid());
  203. } else {
  204. CodeContextRenderer(snippet_stream, invocation_->getLangOpts(),
  205. invocation_->getDiagnosticOpts())
  206. .emitDiagnostic(
  207. clang::FullSourceLoc(info.getLocation(), info.getSourceManager()),
  208. diag_level, message, info.getRanges(), info.getFixItHints());
  209. }
  210. diagnostic_infos_.push_back({.level = diag_level,
  211. .import_ir_inst_id = clang_import_ir_inst_id,
  212. .message = message.str().str(),
  213. .snippet = snippet_stream.TakeStr()});
  214. }
  215. // Returns the diagnostic to use for a given Clang diagnostic level.
  216. static auto GetDiagnostic(clang::DiagnosticsEngine::Level level)
  217. -> const Diagnostics::DiagnosticBase<std::string>& {
  218. switch (level) {
  219. case clang::DiagnosticsEngine::Ignored: {
  220. CARBON_FATAL("Emitting an ignored diagnostic");
  221. break;
  222. }
  223. case clang::DiagnosticsEngine::Note: {
  224. CARBON_DIAGNOSTIC(CppInteropParseNote, Note, "{0}", std::string);
  225. return CppInteropParseNote;
  226. }
  227. case clang::DiagnosticsEngine::Remark:
  228. case clang::DiagnosticsEngine::Warning: {
  229. // TODO: Add a distinct Remark level to Carbon diagnostics, and stop
  230. // mapping remarks to warnings.
  231. CARBON_DIAGNOSTIC(CppInteropParseWarning, Warning, "{0}", std::string);
  232. return CppInteropParseWarning;
  233. }
  234. case clang::DiagnosticsEngine::Error:
  235. case clang::DiagnosticsEngine::Fatal: {
  236. CARBON_DIAGNOSTIC(CppInteropParseError, Error, "{0}", std::string);
  237. return CppInteropParseError;
  238. }
  239. }
  240. }
  241. // Outputs Carbon diagnostics based on the collected Clang diagnostics. Must
  242. // be called after the AST is set in the context.
  243. auto EmitDiagnostics() -> void {
  244. CARBON_CHECK(sem_ir_->clang_ast_unit(),
  245. "Attempted to emit diagnostics before the AST Unit is loaded");
  246. for (size_t i = 0; i != diagnostic_infos_.size(); ++i) {
  247. const ClangDiagnosticInfo& info = diagnostic_infos_[i];
  248. auto builder = emitter_->Build(SemIR::LocId(info.import_ir_inst_id),
  249. GetDiagnostic(info.level), info.message);
  250. builder.OverrideSnippet(info.snippet);
  251. for (; i + 1 < diagnostic_infos_.size() &&
  252. diagnostic_infos_[i + 1].level == clang::DiagnosticsEngine::Note;
  253. ++i) {
  254. const ClangDiagnosticInfo& note_info = diagnostic_infos_[i + 1];
  255. builder
  256. .Note(SemIR::LocId(note_info.import_ir_inst_id),
  257. GetDiagnostic(note_info.level), note_info.message)
  258. .OverrideSnippet(note_info.snippet);
  259. }
  260. // TODO: This will apply all current Carbon annotation functions. We
  261. // should instead track how Clang's context notes and Carbon's annotation
  262. // functions are interleaved, and interleave the notes in the same order.
  263. builder.Emit();
  264. }
  265. diagnostic_infos_.clear();
  266. }
  267. private:
  268. // A diagnostics renderer based on clang's TextDiagnostic that captures just
  269. // the code context (the snippet).
  270. class CodeContextRenderer : public clang::TextDiagnostic {
  271. public:
  272. using TextDiagnostic::TextDiagnostic;
  273. void emitDiagnosticMessage(
  274. clang::FullSourceLoc /*loc*/, clang::PresumedLoc /*ploc*/,
  275. clang::DiagnosticsEngine::Level /*level*/, llvm::StringRef /*message*/,
  276. llvm::ArrayRef<clang::CharSourceRange> /*ranges*/,
  277. clang::DiagOrStoredDiag /*info*/) override {}
  278. void emitDiagnosticLoc(
  279. clang::FullSourceLoc /*loc*/, clang::PresumedLoc /*ploc*/,
  280. clang::DiagnosticsEngine::Level /*level*/,
  281. llvm::ArrayRef<clang::CharSourceRange> /*ranges*/) override {}
  282. // emitCodeContext is inherited from clang::TextDiagnostic.
  283. void emitIncludeLocation(clang::FullSourceLoc /*loc*/,
  284. clang::PresumedLoc /*ploc*/) override {}
  285. void emitImportLocation(clang::FullSourceLoc /*loc*/,
  286. clang::PresumedLoc /*ploc*/,
  287. llvm::StringRef /*module_name*/) override {}
  288. void emitBuildingModuleLocation(clang::FullSourceLoc /*loc*/,
  289. clang::PresumedLoc /*ploc*/,
  290. llvm::StringRef /*module_name*/) override {}
  291. // beginDiagnostic and endDiagnostic are inherited from
  292. // clang::TextDiagnostic in case it wants to do any setup / teardown work.
  293. };
  294. // Information on a Clang diagnostic that can be converted to a Carbon
  295. // diagnostic.
  296. struct ClangDiagnosticInfo {
  297. // The Clang diagnostic level.
  298. clang::DiagnosticsEngine::Level level;
  299. // The ID of the ImportIR instruction referring to the Clang source
  300. // location.
  301. SemIR::ImportIRInstId import_ir_inst_id;
  302. // The Clang diagnostic textual message.
  303. std::string message;
  304. // The code snippet produced by clang.
  305. std::string snippet;
  306. };
  307. // The Carbon file that this C++ compilation is attached to.
  308. SemIR::File* sem_ir_;
  309. // The diagnostic emitter that we're emitting diagnostics into.
  310. DiagnosticEmitterBase* emitter_;
  311. // The compiler invocation that is producing the diagnostics.
  312. std::shared_ptr<clang::CompilerInvocation> invocation_;
  313. // Collects the information for all Clang diagnostics to be converted to
  314. // Carbon diagnostics after the context has been initialized with the Clang
  315. // AST.
  316. llvm::SmallVector<ClangDiagnosticInfo> diagnostic_infos_;
  317. };
  318. // A wrapper around a clang::CompilerInvocation that allows us to make a shallow
  319. // copy of most of the invocation and only make a deep copy of the parts that we
  320. // want to change.
  321. //
  322. // clang::CowCompilerInvocation almost allows this, but doesn't derive from
  323. // CompilerInvocation or support shallow copies from a CompilerInvocation, so is
  324. // not useful to us as we can't build an ASTUnit from it.
  325. class ShallowCopyCompilerInvocation : public clang::CompilerInvocation {
  326. public:
  327. explicit ShallowCopyCompilerInvocation(
  328. const clang::CompilerInvocation& invocation) {
  329. shallow_copy_assign(invocation);
  330. // The preprocessor options are modified to hold a replacement includes
  331. // buffer, so make our own version of those options.
  332. PPOpts = std::make_shared<clang::PreprocessorOptions>(*PPOpts);
  333. }
  334. };
  335. } // namespace
  336. // Returns an AST for the C++ imports and a bool that represents whether
  337. // compilation errors where encountered or the generated AST is null due to an
  338. // error. Sets the AST in the context's `sem_ir`.
  339. // TODO: Consider to always have a (non-null) AST.
  340. static auto GenerateAst(
  341. Context& context, llvm::ArrayRef<Parse::Tree::PackagingNames> imports,
  342. llvm::IntrusiveRefCntPtr<llvm::vfs::FileSystem> fs,
  343. std::shared_ptr<clang::CompilerInvocation> base_invocation)
  344. -> std::pair<std::unique_ptr<clang::ASTUnit>, bool> {
  345. auto invocation =
  346. std::make_shared<ShallowCopyCompilerInvocation>(*base_invocation);
  347. // Build a diagnostics engine.
  348. llvm::IntrusiveRefCntPtr<clang::DiagnosticsEngine> diags(
  349. clang::CompilerInstance::createDiagnostics(
  350. *fs, invocation->getDiagnosticOpts(),
  351. new CarbonClangDiagnosticConsumer(context, invocation),
  352. /*ShouldOwnClient=*/true));
  353. // Extract the input from the frontend invocation and make sure it makes
  354. // sense.
  355. const auto& inputs = invocation->getFrontendOpts().Inputs;
  356. CARBON_CHECK(inputs.size() == 1 &&
  357. inputs[0].getKind().getLanguage() == clang::Language::CXX &&
  358. inputs[0].getKind().getFormat() == clang::InputKind::Source);
  359. llvm::StringRef file_name = inputs[0].getFile();
  360. // Remap the imports file name to the corresponding `#include`s.
  361. // TODO: Modify the frontend options to specify this memory buffer as input
  362. // instead of remapping the file.
  363. std::string includes = GenerateCppIncludesHeaderCode(context, imports);
  364. auto includes_buffer =
  365. llvm::MemoryBuffer::getMemBufferCopy(includes, file_name);
  366. invocation->getPreprocessorOpts().addRemappedFile(file_name,
  367. includes_buffer.release());
  368. clang::DiagnosticErrorTrap trap(*diags);
  369. // Create the AST unit.
  370. auto ast = clang::ASTUnit::LoadFromCompilerInvocation(
  371. invocation, std::make_shared<clang::PCHContainerOperations>(), nullptr,
  372. diags, new clang::FileManager(invocation->getFileSystemOpts(), fs));
  373. // Attach the AST to SemIR. This needs to be done before we can emit any
  374. // diagnostics, so their locations can be properly interpreted by our
  375. // diagnostics machinery.
  376. context.sem_ir().set_clang_ast_unit(ast.get());
  377. // Emit any diagnostics we queued up while building the AST.
  378. context.emitter().Flush();
  379. return {std::move(ast), !ast || trap.hasErrorOccurred()};
  380. }
  381. // Adds a namespace for the `Cpp` import and returns its `NameScopeId`.
  382. static auto AddNamespace(Context& context, PackageNameId cpp_package_id,
  383. llvm::ArrayRef<Parse::Tree::PackagingNames> imports)
  384. -> SemIR::NameScopeId {
  385. auto& import_cpps = context.sem_ir().import_cpps();
  386. import_cpps.Reserve(imports.size());
  387. for (const Parse::Tree::PackagingNames& import : imports) {
  388. import_cpps.Add({.node_id = context.parse_tree().As<Parse::ImportDeclId>(
  389. import.node_id),
  390. .library_id = import.library_id});
  391. }
  392. return AddImportNamespaceToScope(
  393. context,
  394. GetSingletonType(context, SemIR::NamespaceType::TypeInstId),
  395. SemIR::NameId::ForPackageName(cpp_package_id),
  396. SemIR::NameScopeId::Package,
  397. /*diagnose_duplicate_namespace=*/false,
  398. [&]() {
  399. return AddInst<SemIR::ImportCppDecl>(
  400. context,
  401. context.parse_tree().As<Parse::ImportDeclId>(
  402. imports.front().node_id),
  403. {});
  404. })
  405. .add_result.name_scope_id;
  406. }
  407. auto ImportCppFiles(Context& context,
  408. llvm::ArrayRef<Parse::Tree::PackagingNames> imports,
  409. llvm::IntrusiveRefCntPtr<llvm::vfs::FileSystem> fs,
  410. std::shared_ptr<clang::CompilerInvocation> invocation)
  411. -> std::unique_ptr<clang::ASTUnit> {
  412. if (imports.empty()) {
  413. return nullptr;
  414. }
  415. CARBON_CHECK(!context.sem_ir().clang_ast_unit());
  416. PackageNameId package_id = imports.front().package_id;
  417. CARBON_CHECK(
  418. llvm::all_of(imports, [&](const Parse::Tree::PackagingNames& import) {
  419. return import.package_id == package_id;
  420. }));
  421. auto name_scope_id = AddNamespace(context, package_id, imports);
  422. auto [generated_ast, ast_has_error] =
  423. GenerateAst(context, imports, fs, std::move(invocation));
  424. SemIR::NameScope& name_scope = context.name_scopes().Get(name_scope_id);
  425. name_scope.set_is_closed_import(true);
  426. name_scope.set_clang_decl_context_id(context.clang_decls().Add(
  427. {.decl = generated_ast->getASTContext().getTranslationUnitDecl(),
  428. .inst_id = name_scope.inst_id()}));
  429. if (ast_has_error) {
  430. name_scope.set_has_error();
  431. }
  432. return std::move(generated_ast);
  433. }
  434. // Returns the Clang `DeclContext` for the given name scope. Return the
  435. // translation unit decl if no scope is provided.
  436. static auto GetDeclContext(Context& context, SemIR::NameScopeId scope_id)
  437. -> clang::DeclContext* {
  438. if (!scope_id.has_value()) {
  439. return context.ast_context().getTranslationUnitDecl();
  440. }
  441. auto scope_clang_decl_context_id =
  442. context.name_scopes().Get(scope_id).clang_decl_context_id();
  443. return dyn_cast<clang::DeclContext>(
  444. context.clang_decls().Get(scope_clang_decl_context_id).decl);
  445. }
  446. // Looks up for constructors in the class scope and returns the lookup result.
  447. static auto ClangConstructorLookup(Context& context,
  448. SemIR::NameScopeId scope_id)
  449. -> clang::DeclContextLookupResult {
  450. const SemIR::NameScope& scope = context.name_scopes().Get(scope_id);
  451. clang::Sema& sema = context.clang_sema();
  452. clang::Decl* decl =
  453. context.clang_decls().Get(scope.clang_decl_context_id()).decl;
  454. return sema.LookupConstructors(cast<clang::CXXRecordDecl>(decl));
  455. }
  456. // Returns true if the given Clang declaration is the implicit injected class
  457. // name within the class.
  458. static auto IsDeclInjectedClassName(Context& context,
  459. SemIR::NameScopeId scope_id,
  460. SemIR::NameId name_id,
  461. const clang::NamedDecl* named_decl)
  462. -> bool {
  463. if (!named_decl->isImplicit()) {
  464. return false;
  465. }
  466. const auto* record_decl = dyn_cast<clang::CXXRecordDecl>(named_decl);
  467. if (!record_decl) {
  468. return false;
  469. }
  470. const SemIR::ClangDecl& clang_decl = context.clang_decls().Get(
  471. context.name_scopes().Get(scope_id).clang_decl_context_id());
  472. const auto* scope_record_decl = cast<clang::CXXRecordDecl>(clang_decl.decl);
  473. const clang::ASTContext& ast_context = context.ast_context();
  474. CARBON_CHECK(ast_context.getCanonicalTagType(scope_record_decl) ==
  475. ast_context.getCanonicalTagType(record_decl));
  476. auto class_decl = context.insts().GetAs<SemIR::ClassDecl>(clang_decl.inst_id);
  477. CARBON_CHECK(name_id == context.classes().Get(class_decl.class_id).name_id);
  478. return true;
  479. }
  480. // Returns a Clang DeclarationName for the given `NameId`.
  481. static auto GetDeclarationName(Context& context, SemIR::NameId name_id)
  482. -> std::optional<clang::DeclarationName> {
  483. std::optional<llvm::StringRef> name =
  484. context.names().GetAsStringIfIdentifier(name_id);
  485. if (!name) {
  486. // Special names never exist in C++ code.
  487. return std::nullopt;
  488. }
  489. return clang::DeclarationName(
  490. context.clang_sema().getPreprocessor().getIdentifierInfo(*name));
  491. }
  492. // Performs a qualified name lookup of the declaration name in the given scope.
  493. // Returns the lookup result if lookup was successful.
  494. static auto ClangLookup(Context& context, SemIR::NameScopeId scope_id,
  495. clang::DeclarationName name)
  496. -> std::optional<clang::LookupResult> {
  497. clang::Sema& sema = context.clang_sema();
  498. // TODO: Map the LocId of the lookup to a clang SourceLocation and provide it
  499. // here so that clang's diagnostics can point into the carbon code that uses
  500. // the name.
  501. clang::LookupResult lookup(
  502. sema, clang::DeclarationNameInfo(name, clang::SourceLocation()),
  503. clang::Sema::LookupNameKind::LookupOrdinaryName);
  504. bool found =
  505. sema.LookupQualifiedName(lookup, GetDeclContext(context, scope_id));
  506. if (!found) {
  507. return std::nullopt;
  508. }
  509. return lookup;
  510. }
  511. // Looks up the given name in the Clang AST in a specific scope. Returns the
  512. // lookup result if lookup was successful.
  513. static auto ClangLookupName(Context& context, SemIR::NameScopeId scope_id,
  514. SemIR::NameId name_id)
  515. -> std::optional<clang::LookupResult> {
  516. auto declaration_name = GetDeclarationName(context, name_id);
  517. if (!declaration_name) {
  518. return std::nullopt;
  519. }
  520. return ClangLookup(context, scope_id, *declaration_name);
  521. }
  522. // Returns whether `decl` already mapped to an instruction.
  523. static auto IsClangDeclImported(Context& context, clang::Decl* decl) -> bool {
  524. return context.clang_decls().Lookup(decl->getCanonicalDecl()).has_value();
  525. }
  526. // If `decl` already mapped to an instruction, returns that instruction.
  527. // Otherwise returns `None`.
  528. static auto LookupClangDeclInstId(Context& context, clang::Decl* decl)
  529. -> SemIR::InstId {
  530. const auto& clang_decls = context.clang_decls();
  531. if (auto context_clang_decl_id = clang_decls.Lookup(decl->getCanonicalDecl());
  532. context_clang_decl_id.has_value()) {
  533. return clang_decls.Get(context_clang_decl_id).inst_id;
  534. }
  535. return SemIR::InstId::None;
  536. }
  537. // Returns the parent of the given declaration. Skips declaration types we
  538. // ignore.
  539. static auto GetParentDecl(clang::Decl* clang_decl) -> clang::Decl* {
  540. auto* parent_dc = clang_decl->getDeclContext();
  541. while (!parent_dc->isLookupContext()) {
  542. parent_dc = parent_dc->getParent();
  543. }
  544. return cast<clang::Decl>(parent_dc);
  545. }
  546. // Returns the given declaration's parent scope. Assumes the parent declaration
  547. // was already imported.
  548. static auto GetParentNameScopeId(Context& context, clang::Decl* clang_decl)
  549. -> SemIR::NameScopeId {
  550. SemIR::InstId parent_inst_id =
  551. LookupClangDeclInstId(context, GetParentDecl(clang_decl));
  552. CARBON_CHECK(parent_inst_id.has_value());
  553. CARBON_KIND_SWITCH(context.insts().Get(parent_inst_id)) {
  554. case CARBON_KIND(SemIR::ClassDecl class_decl): {
  555. return context.classes().Get(class_decl.class_id).scope_id;
  556. }
  557. case CARBON_KIND(SemIR::InterfaceDecl interface_decl): {
  558. return context.interfaces().Get(interface_decl.interface_id).scope_id;
  559. }
  560. case CARBON_KIND(SemIR::Namespace namespace_inst): {
  561. return namespace_inst.name_scope_id;
  562. }
  563. default: {
  564. CARBON_FATAL("Unexpected parent instruction kind");
  565. }
  566. }
  567. }
  568. // Imports a namespace declaration from Clang to Carbon. If successful, returns
  569. // the new Carbon namespace declaration `InstId`. If the declaration was already
  570. // imported, returns the mapped instruction.
  571. static auto ImportNamespaceDecl(Context& context,
  572. clang::NamespaceDecl* clang_decl)
  573. -> SemIR::InstId {
  574. // Check if the declaration is already mapped.
  575. if (SemIR::InstId existing_inst_id =
  576. LookupClangDeclInstId(context, clang_decl);
  577. existing_inst_id.has_value()) {
  578. return existing_inst_id;
  579. }
  580. auto result = AddImportNamespace(
  581. context, GetSingletonType(context, SemIR::NamespaceType::TypeInstId),
  582. AddIdentifierName(context, clang_decl->getName()),
  583. GetParentNameScopeId(context, clang_decl),
  584. /*import_id=*/SemIR::InstId::None);
  585. context.name_scopes()
  586. .Get(result.name_scope_id)
  587. .set_clang_decl_context_id(context.clang_decls().Add(
  588. {.decl = clang_decl->getCanonicalDecl(), .inst_id = result.inst_id}));
  589. return result.inst_id;
  590. }
  591. static auto ImportTypeAndDependencies(Context& context, SemIR::LocId loc_id,
  592. clang::QualType type) -> TypeExpr;
  593. // Creates a class declaration for the given class name in the given scope.
  594. // Returns the `InstId` for the declaration.
  595. static auto BuildClassDecl(Context& context,
  596. SemIR::ImportIRInstId import_ir_inst_id,
  597. SemIR::NameScopeId parent_scope_id,
  598. SemIR::NameId name_id)
  599. -> std::tuple<SemIR::ClassId, SemIR::TypeInstId> {
  600. // Add the class declaration.
  601. auto class_decl = SemIR::ClassDecl{.type_id = SemIR::TypeType::TypeId,
  602. .class_id = SemIR::ClassId::None,
  603. .decl_block_id = SemIR::InstBlockId::None};
  604. auto class_decl_id = AddPlaceholderInstInNoBlock(
  605. context,
  606. SemIR::LocIdAndInst::UncheckedLoc(import_ir_inst_id, class_decl));
  607. context.imports().push_back(class_decl_id);
  608. SemIR::Class class_info = {
  609. {.name_id = name_id,
  610. .parent_scope_id = parent_scope_id,
  611. .generic_id = SemIR::GenericId::None,
  612. .first_param_node_id = Parse::NodeId::None,
  613. .last_param_node_id = Parse::NodeId::None,
  614. .pattern_block_id = SemIR::InstBlockId::None,
  615. .implicit_param_patterns_id = SemIR::InstBlockId::None,
  616. .param_patterns_id = SemIR::InstBlockId::None,
  617. .is_extern = false,
  618. .extern_library_id = SemIR::LibraryNameId::None,
  619. .non_owning_decl_id = SemIR::InstId::None,
  620. .first_owning_decl_id = class_decl_id},
  621. {// `.self_type_id` depends on the ClassType, so is set below.
  622. .self_type_id = SemIR::TypeId::None,
  623. // TODO: Support Dynamic classes.
  624. // TODO: Support Final classes.
  625. .inheritance_kind = SemIR::Class::Base}};
  626. class_decl.class_id = context.classes().Add(class_info);
  627. // Write the class ID into the ClassDecl.
  628. ReplaceInstBeforeConstantUse(context, class_decl_id, class_decl);
  629. SetClassSelfType(context, class_decl.class_id);
  630. return {class_decl.class_id, context.types().GetAsTypeInstId(class_decl_id)};
  631. }
  632. // Imports a tag declaration from Clang to Carbon. This covers classes (which
  633. // includes structs and unions) as well as enums. If successful, returns the new
  634. // Carbon class declaration `InstId`.
  635. static auto ImportTagDecl(Context& context, clang::TagDecl* clang_decl)
  636. -> SemIR::InstId {
  637. auto import_ir_inst_id =
  638. AddImportIRInst(context.sem_ir(), clang_decl->getLocation());
  639. auto [class_id, class_inst_id] = BuildClassDecl(
  640. context, import_ir_inst_id, GetParentNameScopeId(context, clang_decl),
  641. AddIdentifierName(context, clang_decl->getName()));
  642. // TODO: The caller does the same lookup. Avoid doing it twice.
  643. auto clang_decl_id = context.clang_decls().Add(
  644. {.decl = clang_decl->getCanonicalDecl(), .inst_id = class_inst_id});
  645. // Name lookup into the Carbon class looks in the C++ class definition.
  646. auto& class_info = context.classes().Get(class_id);
  647. class_info.scope_id = context.name_scopes().Add(
  648. class_inst_id, SemIR::NameId::None, class_info.parent_scope_id);
  649. context.name_scopes()
  650. .Get(class_info.scope_id)
  651. .set_clang_decl_context_id(clang_decl_id);
  652. return class_inst_id;
  653. }
  654. // Determines the Carbon inheritance kind to use for a C++ class definition.
  655. static auto GetInheritanceKind(clang::CXXRecordDecl* class_def)
  656. -> SemIR::Class::InheritanceKind {
  657. if (class_def->isUnion()) {
  658. // Treat all unions as final classes to match their C++ semantics. While we
  659. // could support this, the author of a C++ union has no way to mark their
  660. // type as `final` to prevent it, and so we assume the intent was to
  661. // disallow inheritance.
  662. return SemIR::Class::Final;
  663. }
  664. if (class_def->hasAttr<clang::FinalAttr>()) {
  665. // The class is final in C++; don't allow Carbon types to derive from it.
  666. // Note that such a type might also be abstract in C++; we treat final as
  667. // taking precedence.
  668. //
  669. // We could also treat classes with a final destructor as being final, as
  670. // Clang does when determining whether a class is "effectively final", but
  671. // to keep our rules simpler we do not.
  672. return SemIR::Class::Final;
  673. }
  674. if (class_def->isAbstract()) {
  675. // If the class has any abstract members, it's abstract.
  676. return SemIR::Class::Abstract;
  677. }
  678. // Allow inheritance from any other C++ class type.
  679. return SemIR::Class::Base;
  680. }
  681. // Checks that the specified finished class definition is valid and builds and
  682. // returns a corresponding complete type witness instruction.
  683. static auto ImportClassObjectRepr(Context& context, SemIR::ClassId class_id,
  684. SemIR::ImportIRInstId import_ir_inst_id,
  685. SemIR::TypeInstId class_type_inst_id,
  686. const clang::CXXRecordDecl* clang_def)
  687. -> SemIR::TypeInstId {
  688. if (clang_def->isInvalidDecl()) {
  689. // Clang already diagnosed this error.
  690. return SemIR::ErrorInst::TypeInstId;
  691. }
  692. // For now, if the class is empty, produce an empty struct as the object
  693. // representation. This allows our tests to continue to pass while we don't
  694. // properly support initializing imported C++ classes.
  695. // TODO: Remove this.
  696. if (clang_def->isEmpty() && !clang_def->getNumBases()) {
  697. return context.types().GetAsTypeInstId(AddInst(
  698. context,
  699. MakeImportedLocIdAndInst(
  700. context, import_ir_inst_id,
  701. SemIR::StructType{.type_id = SemIR::TypeType::TypeId,
  702. .fields_id = SemIR::StructTypeFieldsId::Empty})));
  703. }
  704. const auto& clang_layout =
  705. context.ast_context().getASTRecordLayout(clang_def);
  706. llvm::SmallVector<uint64_t> layout;
  707. llvm::SmallVector<SemIR::StructTypeField> fields;
  708. static_assert(SemIR::CustomLayoutId::SizeIndex == 0);
  709. layout.push_back(clang_layout.getSize().getQuantity());
  710. static_assert(SemIR::CustomLayoutId::AlignIndex == 1);
  711. layout.push_back(clang_layout.getAlignment().getQuantity());
  712. static_assert(SemIR::CustomLayoutId::FirstFieldIndex == 2);
  713. // TODO: Import vptr(s).
  714. // Import bases.
  715. for (const auto& base : clang_def->bases()) {
  716. CARBON_CHECK(!base.isVirtual(),
  717. "Should not import definition for class with a virtual base");
  718. auto [base_type_inst_id, base_type_id] =
  719. ImportTypeAndDependencies(context, import_ir_inst_id, base.getType());
  720. if (!base_type_id.has_value()) {
  721. // TODO: If the base class's type can't be mapped, skip it.
  722. continue;
  723. }
  724. auto base_decl_id = AddInst(
  725. context,
  726. MakeImportedLocIdAndInst(
  727. context, import_ir_inst_id,
  728. SemIR::BaseDecl{.type_id = GetUnboundElementType(
  729. context, class_type_inst_id, base_type_inst_id),
  730. .base_type_inst_id = base_type_inst_id,
  731. .index = SemIR::ElementIndex(fields.size())}));
  732. // If there's exactly one base class, treat it as a Carbon base class too.
  733. // TODO: Improve handling for the case where the class has multiple base
  734. // classes.
  735. if (clang_def->getNumBases() == 1) {
  736. auto& class_info = context.classes().Get(class_id);
  737. CARBON_CHECK(!class_info.base_id.has_value());
  738. class_info.base_id = base_decl_id;
  739. }
  740. auto* base_class = base.getType()->getAsCXXRecordDecl();
  741. CARBON_CHECK(base_class, "Base class {0} is not a class",
  742. base.getType().getAsString());
  743. auto base_offset = base.isVirtual()
  744. ? clang_layout.getVBaseClassOffset(base_class)
  745. : clang_layout.getBaseClassOffset(base_class);
  746. layout.push_back(base_offset.getQuantity());
  747. fields.push_back(
  748. {.name_id = SemIR::NameId::Base, .type_inst_id = base_type_inst_id});
  749. }
  750. // Import fields.
  751. for (auto* decl : clang_def->decls()) {
  752. auto* field = dyn_cast<clang::FieldDecl>(decl);
  753. // Track the chain of fields from the class to this field. This chain is
  754. // only one element long unless the field is a member of an anonymous struct
  755. // or union.
  756. clang::NamedDecl* single_field_chain[1] = {field};
  757. llvm::ArrayRef<clang::NamedDecl*> chain = single_field_chain;
  758. // If this isn't a field, it might be an indirect field in an anonymous
  759. // struct or union.
  760. if (!field) {
  761. auto* indirect_field = dyn_cast<clang::IndirectFieldDecl>(decl);
  762. if (!indirect_field) {
  763. continue;
  764. }
  765. chain = indirect_field->chain();
  766. field = indirect_field->getAnonField();
  767. }
  768. if (field->isBitField()) {
  769. // TODO: Add a representation for named bitfield members.
  770. continue;
  771. }
  772. if (field->isAnonymousStructOrUnion()) {
  773. // Fields within an anonymous structure or union will be added via their
  774. // IndirectFieldDecls.
  775. continue;
  776. }
  777. auto field_name_id = AddIdentifierName(context, field->getName());
  778. auto [field_type_inst_id, field_type_id] =
  779. ImportTypeAndDependencies(context, import_ir_inst_id, field->getType());
  780. if (!field_type_inst_id.has_value()) {
  781. // TODO: For now, just skip over fields whose types we can't map.
  782. continue;
  783. }
  784. // Create a field now, as we know the index to use.
  785. // TODO: Consider doing this lazily instead.
  786. auto field_decl_id = AddInst(
  787. context, MakeImportedLocIdAndInst(
  788. context, import_ir_inst_id,
  789. SemIR::FieldDecl{
  790. .type_id = GetUnboundElementType(
  791. context, class_type_inst_id, field_type_inst_id),
  792. .name_id = field_name_id,
  793. .index = SemIR::ElementIndex(fields.size())}));
  794. context.clang_decls().Add(
  795. {.decl = decl->getCanonicalDecl(), .inst_id = field_decl_id});
  796. // Compute the offset to the field that appears directly in the class.
  797. uint64_t offset = clang_layout.getFieldOffset(
  798. cast<clang::FieldDecl>(chain.front())->getFieldIndex());
  799. // If this is an indirect field, walk the path and accumulate the offset to
  800. // the named field.
  801. for (auto* inner_decl : chain.drop_front()) {
  802. auto* inner_field = cast<clang::FieldDecl>(inner_decl);
  803. const auto& inner_layout =
  804. context.ast_context().getASTRecordLayout(inner_field->getParent());
  805. offset += inner_layout.getFieldOffset(inner_field->getFieldIndex());
  806. }
  807. layout.push_back(
  808. context.ast_context().toCharUnitsFromBits(offset).getQuantity());
  809. fields.push_back(
  810. {.name_id = field_name_id, .type_inst_id = field_type_inst_id});
  811. }
  812. // TODO: Add a field to prevent tail padding reuse if necessary.
  813. return AddTypeInst<SemIR::CustomLayoutType>(
  814. context, import_ir_inst_id,
  815. {.type_id = SemIR::TypeType::TypeId,
  816. .fields_id = context.struct_type_fields().Add(fields),
  817. .layout_id = context.custom_layouts().Add(layout)});
  818. }
  819. // Creates a Carbon class definition based on the information in the given Clang
  820. // class declaration, which is assumed to be for a class definition.
  821. static auto BuildClassDefinition(Context& context,
  822. SemIR::ImportIRInstId import_ir_inst_id,
  823. SemIR::ClassId class_id,
  824. SemIR::TypeInstId class_inst_id,
  825. clang::CXXRecordDecl* clang_def) -> void {
  826. auto& class_info = context.classes().Get(class_id);
  827. CARBON_CHECK(!class_info.has_definition_started());
  828. class_info.definition_id = class_inst_id;
  829. context.inst_block_stack().Push();
  830. class_info.inheritance_kind = GetInheritanceKind(clang_def);
  831. // Compute the class's object representation.
  832. auto object_repr_id = ImportClassObjectRepr(
  833. context, class_id, import_ir_inst_id, class_inst_id, clang_def);
  834. class_info.complete_type_witness_id = AddInst<SemIR::CompleteTypeWitness>(
  835. context, import_ir_inst_id,
  836. {.type_id = GetSingletonType(context, SemIR::WitnessType::TypeInstId),
  837. .object_repr_type_inst_id = object_repr_id});
  838. class_info.body_block_id = context.inst_block_stack().Pop();
  839. }
  840. // Computes and returns the Carbon type to use as the object representation of
  841. // the given C++ enum type. This is a builtin int type matching the enum's
  842. // representation.
  843. static auto ImportEnumObjectRepresentation(
  844. Context& context, SemIR::ImportIRInstId import_ir_inst_id,
  845. clang::EnumDecl* enum_decl) -> SemIR::TypeInstId {
  846. auto int_type = enum_decl->getIntegerType();
  847. CARBON_CHECK(!int_type.isNull(), "incomplete enum type {0}",
  848. enum_decl->getNameAsString());
  849. auto int_kind = int_type->isSignedIntegerType() ? SemIR::IntKind::Signed
  850. : SemIR::IntKind::Unsigned;
  851. auto bit_width_id = GetOrAddInst<SemIR::IntValue>(
  852. context, import_ir_inst_id,
  853. {.type_id = GetSingletonType(context, SemIR::IntLiteralType::TypeInstId),
  854. .int_id = context.ints().AddUnsigned(
  855. llvm::APInt(64, context.ast_context().getIntWidth(int_type)))});
  856. return context.types().GetAsTypeInstId(
  857. GetOrAddInst(context, SemIR::LocIdAndInst::NoLoc(SemIR::IntType{
  858. .type_id = SemIR::TypeType::TypeId,
  859. .int_kind = int_kind,
  860. .bit_width_id = bit_width_id})));
  861. }
  862. // Creates a Carbon class definition based on the information in the given Clang
  863. // enum declaration.
  864. static auto BuildEnumDefinition(Context& context,
  865. SemIR::ImportIRInstId import_ir_inst_id,
  866. SemIR::ClassId class_id,
  867. SemIR::TypeInstId class_inst_id,
  868. clang::EnumDecl* enum_decl) -> void {
  869. auto& class_info = context.classes().Get(class_id);
  870. CARBON_CHECK(!class_info.has_definition_started());
  871. class_info.definition_id = class_inst_id;
  872. context.inst_block_stack().Push();
  873. // Don't allow inheritance from C++ enums, to match the behavior in C++.
  874. class_info.inheritance_kind = SemIR::Class::Final;
  875. // Compute the enum type's object representation. An enum is an adapter for
  876. // the corresponding builtin integer type.
  877. auto object_repr_id =
  878. ImportEnumObjectRepresentation(context, import_ir_inst_id, enum_decl);
  879. class_info.adapt_id = AddInst(
  880. context, SemIR::LocIdAndInst::UncheckedLoc(
  881. import_ir_inst_id,
  882. SemIR::AdaptDecl{.adapted_type_inst_id = object_repr_id}));
  883. class_info.complete_type_witness_id = AddInst<SemIR::CompleteTypeWitness>(
  884. context, import_ir_inst_id,
  885. {.type_id = GetSingletonType(context, SemIR::WitnessType::TypeInstId),
  886. .object_repr_type_inst_id = object_repr_id});
  887. class_info.body_block_id = context.inst_block_stack().Pop();
  888. }
  889. // Imports an enumerator declaration from Clang to Carbon.
  890. static auto ImportEnumConstantDecl(Context& context,
  891. clang::EnumConstantDecl* enumerator_decl)
  892. -> SemIR::InstId {
  893. CARBON_CHECK(!IsClangDeclImported(context, enumerator_decl));
  894. // Find the enclosing enum type.
  895. auto type_inst_id = LookupClangDeclInstId(
  896. context, cast<clang::EnumDecl>(enumerator_decl->getDeclContext()));
  897. auto type_id = context.types().GetTypeIdForTypeInstId(type_inst_id);
  898. // Build a corresponding IntValue.
  899. auto int_id = context.ints().Add(enumerator_decl->getInitVal());
  900. auto loc_id =
  901. AddImportIRInst(context.sem_ir(), enumerator_decl->getLocation());
  902. auto inst_id = AddInstInNoBlock<SemIR::IntValue>(
  903. context, loc_id, {.type_id = type_id, .int_id = int_id});
  904. context.imports().push_back(inst_id);
  905. context.clang_decls().Add(
  906. {.decl = enumerator_decl->getCanonicalDecl(), .inst_id = inst_id});
  907. return inst_id;
  908. }
  909. // Mark the given `Decl` as failed in `clang_decls`.
  910. static auto MarkFailedDecl(Context& context, clang::Decl* clang_decl) {
  911. context.clang_decls().Add({.decl = clang_decl->getCanonicalDecl(),
  912. .inst_id = SemIR::ErrorInst::InstId});
  913. }
  914. // Creates an integer type of the given size.
  915. static auto MakeIntType(Context& context, IntId size_id, bool is_signed)
  916. -> TypeExpr {
  917. auto type_inst_id = MakeIntTypeLiteral(
  918. context, Parse::NodeId::None,
  919. is_signed ? SemIR::IntKind::Signed : SemIR::IntKind::Unsigned, size_id);
  920. return ExprAsType(context, Parse::NodeId::None, type_inst_id);
  921. }
  922. // Maps a C++ builtin integer type to a Carbon type.
  923. // TODO: Handle integer types that map to named aliases.
  924. static auto MapBuiltinIntegerType(Context& context, SemIR::LocId loc_id,
  925. clang::QualType qual_type,
  926. const clang::BuiltinType& type) -> TypeExpr {
  927. clang::ASTContext& ast_context = context.ast_context();
  928. unsigned width = ast_context.getIntWidth(qual_type);
  929. bool is_signed = type.isSignedInteger();
  930. auto int_n_type = ast_context.getIntTypeForBitwidth(width, is_signed);
  931. if (ast_context.hasSameType(qual_type, int_n_type)) {
  932. TypeExpr type_expr =
  933. MakeIntType(context, context.ints().Add(width), is_signed);
  934. // Try to make sure integer types of 32 or 64 bits are complete so we can
  935. // check against them when deciding whether we need to generate a thunk.
  936. if (width == 32 || width == 64) {
  937. SemIR::TypeId type_id = type_expr.type_id;
  938. if (!context.types().IsComplete(type_id)) {
  939. TryToCompleteType(context, type_id, loc_id);
  940. }
  941. }
  942. return type_expr;
  943. }
  944. if (ast_context.hasSameType(qual_type, ast_context.CharTy)) {
  945. return ExprAsType(context, Parse::NodeId::None,
  946. MakeCharTypeLiteral(context, Parse::NodeId::None));
  947. }
  948. return TypeExpr::None;
  949. }
  950. // Maps a C++ builtin type to a Carbon type.
  951. // TODO: Support more builtin types.
  952. static auto MapBuiltinType(Context& context, SemIR::LocId loc_id,
  953. clang::QualType qual_type,
  954. const clang::BuiltinType& type) -> TypeExpr {
  955. clang::ASTContext& ast_context = context.ast_context();
  956. if (type.isBooleanType()) {
  957. CARBON_CHECK(ast_context.hasSameType(qual_type, ast_context.BoolTy));
  958. return ExprAsType(context, Parse::NodeId::None,
  959. context.types().GetInstId(GetSingletonType(
  960. context, SemIR::BoolType::TypeInstId)));
  961. }
  962. if (type.isInteger()) {
  963. return MapBuiltinIntegerType(context, loc_id, qual_type, type);
  964. }
  965. if (type.isFloatingPoint()) {
  966. if (type.isFloat16Type() || type.isFloat32Type() || type.isDoubleType() ||
  967. type.isFloat128Type()) {
  968. return ExprAsType(
  969. context, Parse::NodeId::None,
  970. MakeFloatTypeLiteral(
  971. context, Parse::NodeId::None,
  972. context.ints().Add(ast_context.getTypeSize(qual_type))));
  973. }
  974. // TODO: Handle floating-point types that map to named aliases.
  975. }
  976. return TypeExpr::None;
  977. }
  978. // Determines whether record_decl is a C++ class that has a custom mapping into
  979. // Carbon, and if so, returns the corresponding Carbon type. Otherwise returns
  980. // None.
  981. static auto LookupCustomRecordType(Context& context,
  982. const clang::CXXRecordDecl* record_decl)
  983. -> TypeExpr {
  984. switch (GetCustomCppTypeMapping(record_decl)) {
  985. case CustomCppTypeMapping::None:
  986. return TypeExpr::None;
  987. case CustomCppTypeMapping::Str:
  988. return MakeStringType(
  989. context,
  990. AddImportIRInst(context.sem_ir(), record_decl->getLocation()));
  991. }
  992. }
  993. // Maps a C++ tag type (class, struct, union, enum) to a Carbon type.
  994. static auto MapTagType(Context& context, const clang::TagType& type)
  995. -> TypeExpr {
  996. auto* tag_decl = type.getOriginalDecl();
  997. CARBON_CHECK(tag_decl);
  998. // Check if the declaration is already mapped.
  999. SemIR::InstId tag_inst_id = LookupClangDeclInstId(context, tag_decl);
  1000. if (!tag_inst_id.has_value()) {
  1001. if (auto* record_decl = dyn_cast<clang::CXXRecordDecl>(tag_decl)) {
  1002. auto custom_type = LookupCustomRecordType(context, record_decl);
  1003. if (custom_type.inst_id.has_value()) {
  1004. context.clang_decls().Add(
  1005. {.decl = record_decl, .inst_id = custom_type.inst_id});
  1006. return custom_type;
  1007. }
  1008. }
  1009. tag_inst_id = ImportTagDecl(context, tag_decl);
  1010. }
  1011. SemIR::TypeInstId record_type_inst_id =
  1012. context.types().GetAsTypeInstId(tag_inst_id);
  1013. return {
  1014. .inst_id = record_type_inst_id,
  1015. .type_id = context.types().GetTypeIdForTypeInstId(record_type_inst_id)};
  1016. }
  1017. // Maps a C++ type that is not a wrapper type such as a pointer to a Carbon
  1018. // type.
  1019. // TODO: Support more types.
  1020. static auto MapNonWrapperType(Context& context, SemIR::LocId loc_id,
  1021. clang::QualType type) -> TypeExpr {
  1022. if (const auto* builtin_type = type->getAs<clang::BuiltinType>()) {
  1023. return MapBuiltinType(context, loc_id, type, *builtin_type);
  1024. }
  1025. if (const auto* tag_type = type->getAs<clang::TagType>()) {
  1026. return MapTagType(context, *tag_type);
  1027. }
  1028. CARBON_CHECK(!type.hasQualifiers() && !type->isPointerType(),
  1029. "Should not see wrapper types here");
  1030. return TypeExpr::None;
  1031. }
  1032. // Maps a qualified C++ type to a Carbon type.
  1033. static auto MapQualifiedType(Context& context, clang::QualType type,
  1034. TypeExpr type_expr) -> TypeExpr {
  1035. auto quals = type.getQualifiers();
  1036. if (quals.hasConst()) {
  1037. auto type_id = GetConstType(context, type_expr.inst_id);
  1038. type_expr = {.inst_id = context.types().GetInstId(type_id),
  1039. .type_id = type_id};
  1040. quals.removeConst();
  1041. }
  1042. // TODO: Support other qualifiers.
  1043. if (!quals.empty()) {
  1044. return TypeExpr::None;
  1045. }
  1046. return type_expr;
  1047. }
  1048. // Maps a C++ pointer type to a Carbon pointer type.
  1049. static auto MapPointerType(Context& context, clang::QualType type,
  1050. TypeExpr pointee_type_expr) -> TypeExpr {
  1051. CARBON_CHECK(type->isPointerType());
  1052. if (auto nullability = type->getNullability();
  1053. !nullability.has_value() ||
  1054. *nullability != clang::NullabilityKind::NonNull) {
  1055. // If the type was produced by C++ template substitution, then we assume it
  1056. // was deduced from a Carbon pointer type, so it's non-null.
  1057. if (!type->getAs<clang::SubstTemplateTypeParmType>()) {
  1058. // TODO: Support nullable pointers.
  1059. return TypeExpr::None;
  1060. }
  1061. }
  1062. SemIR::TypeId pointer_type_id =
  1063. GetPointerType(context, pointee_type_expr.inst_id);
  1064. return {.inst_id = context.types().GetInstId(pointer_type_id),
  1065. .type_id = pointer_type_id};
  1066. }
  1067. // Maps a C++ type to a Carbon type. `type` should not be canonicalized because
  1068. // we check for pointer nullability and nullability will be lost by
  1069. // canonicalization.
  1070. static auto MapType(Context& context, SemIR::LocId loc_id, clang::QualType type)
  1071. -> TypeExpr {
  1072. // Unwrap any type modifiers and wrappers.
  1073. llvm::SmallVector<clang::QualType> wrapper_types;
  1074. while (true) {
  1075. clang::QualType orig_type = type;
  1076. if (type.hasQualifiers()) {
  1077. type = type.getUnqualifiedType();
  1078. } else if (type->isPointerType()) {
  1079. type = type->getPointeeType();
  1080. } else {
  1081. break;
  1082. }
  1083. wrapper_types.push_back(orig_type);
  1084. }
  1085. auto mapped = MapNonWrapperType(context, loc_id, type);
  1086. for (auto wrapper : llvm::reverse(wrapper_types)) {
  1087. if (!mapped.inst_id.has_value() ||
  1088. mapped.type_id == SemIR::ErrorInst::TypeId) {
  1089. break;
  1090. }
  1091. if (wrapper.hasQualifiers()) {
  1092. mapped = MapQualifiedType(context, wrapper, mapped);
  1093. } else if (wrapper->isPointerType()) {
  1094. mapped = MapPointerType(context, wrapper, mapped);
  1095. } else {
  1096. CARBON_FATAL("Unexpected wrapper type {0}", wrapper.getAsString());
  1097. }
  1098. }
  1099. return mapped;
  1100. }
  1101. // Returns a block for the implicit parameters of the given function
  1102. // declaration. Because function templates are not yet supported, this currently
  1103. // only contains the `self` parameter. On error, produces a diagnostic and
  1104. // returns None.
  1105. static auto MakeImplicitParamPatternsBlockId(
  1106. Context& context, SemIR::LocId loc_id,
  1107. const clang::FunctionDecl& clang_decl) -> SemIR::InstBlockId {
  1108. const auto* method_decl = dyn_cast<clang::CXXMethodDecl>(&clang_decl);
  1109. if (!method_decl || method_decl->isStatic() ||
  1110. isa<clang::CXXConstructorDecl>(clang_decl)) {
  1111. return SemIR::InstBlockId::Empty;
  1112. }
  1113. // Build a `self` parameter from the object parameter.
  1114. BeginSubpattern(context);
  1115. // Perform some special-case mapping for the object parameter:
  1116. //
  1117. // - If it's a const reference to T, produce a by-value `self: T` parameter.
  1118. // - If it's a non-const reference to T, produce an `addr self: T*`
  1119. // parameter.
  1120. // - Otherwise, map it directly, which will currently fail for `&&`-qualified
  1121. // methods.
  1122. //
  1123. // TODO: Some of this mapping should be performed for all parameters.
  1124. clang::QualType param_type =
  1125. method_decl->getFunctionObjectParameterReferenceType();
  1126. bool addr_self = false;
  1127. if (param_type->isLValueReferenceType()) {
  1128. param_type = param_type.getNonReferenceType();
  1129. if (param_type.isConstQualified()) {
  1130. // TODO: Consider only doing this if `const` is the only qualifier. For
  1131. // now, any other qualifier will fail when mapping the type.
  1132. auto split_type = param_type.getSplitUnqualifiedType();
  1133. split_type.Quals.removeConst();
  1134. param_type = method_decl->getASTContext().getQualifiedType(split_type);
  1135. } else {
  1136. addr_self = true;
  1137. }
  1138. }
  1139. auto [type_inst_id, type_id] = MapType(context, loc_id, param_type);
  1140. SemIR::ExprRegionId type_expr_region_id =
  1141. EndSubpatternAsExpr(context, type_inst_id);
  1142. if (!type_id.has_value()) {
  1143. context.TODO(loc_id,
  1144. llvm::formatv("Unsupported: object parameter type: {0}",
  1145. param_type.getAsString()));
  1146. return SemIR::InstBlockId::None;
  1147. }
  1148. // TODO: Fill in a location once available.
  1149. auto pattern_id =
  1150. addr_self ? AddAddrSelfParamPattern(context, SemIR::LocId::None,
  1151. type_expr_region_id, type_inst_id)
  1152. : AddSelfParamPattern(context, SemIR::LocId::None,
  1153. type_expr_region_id, type_id);
  1154. return context.inst_blocks().Add({pattern_id});
  1155. }
  1156. // Returns a block id for the explicit parameters of the given function
  1157. // declaration. If the function declaration has no parameters, it returns
  1158. // `SemIR::InstBlockId::Empty`. In the case of an unsupported parameter type, it
  1159. // produces an error and returns `SemIR::InstBlockId::None`.
  1160. // TODO: Consider refactoring to extract and reuse more logic from
  1161. // `HandleAnyBindingPattern()`.
  1162. static auto MakeParamPatternsBlockId(Context& context, SemIR::LocId loc_id,
  1163. const clang::FunctionDecl& clang_decl)
  1164. -> SemIR::InstBlockId {
  1165. if (clang_decl.parameters().empty()) {
  1166. return SemIR::InstBlockId::Empty;
  1167. }
  1168. llvm::SmallVector<SemIR::InstId> params;
  1169. params.reserve(clang_decl.getNumNonObjectParams());
  1170. for (unsigned i : llvm::seq(clang_decl.getNumNonObjectParams())) {
  1171. const auto* param = clang_decl.getNonObjectParameter(i);
  1172. // TODO: Get the parameter type from the function, not from the
  1173. // `ParmVarDecl`. The type of the `ParmVarDecl` is the type within the
  1174. // function, and isn't in general the same as the type that's exposed to
  1175. // callers. In particular, the parameter type exposed to callers will never
  1176. // be cv-qualified.
  1177. clang::QualType param_type = param->getType();
  1178. // We map `T&` parameters to `addr param: T*`, and `T&&` parameters to
  1179. // `param: T`.
  1180. // TODO: Revisit this and decide what we really want to do here.
  1181. bool is_ref_param = param_type->isLValueReferenceType();
  1182. param_type = param_type.getNonReferenceType();
  1183. // Mark the start of a region of insts, needed for the type expression
  1184. // created later with the call of `EndSubpatternAsExpr()`.
  1185. BeginSubpattern(context);
  1186. auto [orig_type_inst_id, type_id] = MapType(context, loc_id, param_type);
  1187. // Type expression of the binding pattern - a single-entry/single-exit
  1188. // region that allows control flow in the type expression e.g. fn F(x: if C
  1189. // then i32 else i64).
  1190. SemIR::ExprRegionId type_expr_region_id =
  1191. EndSubpatternAsExpr(context, orig_type_inst_id);
  1192. if (!type_id.has_value()) {
  1193. context.TODO(loc_id, llvm::formatv("Unsupported: parameter type: {0}",
  1194. param->getType().getAsString()));
  1195. return SemIR::InstBlockId::None;
  1196. }
  1197. if (is_ref_param) {
  1198. type_id = GetPointerType(context, orig_type_inst_id);
  1199. }
  1200. llvm::StringRef param_name = param->getName();
  1201. SemIR::NameId name_id =
  1202. param_name.empty()
  1203. // Translate an unnamed parameter to an underscore to
  1204. // match Carbon's naming of unnamed/unused function params.
  1205. ? SemIR::NameId::Underscore
  1206. : AddIdentifierName(context, param_name);
  1207. // TODO: Fix this once templates are supported.
  1208. bool is_template = false;
  1209. // TODO: Fix this once generics are supported.
  1210. bool is_generic = false;
  1211. SemIR::InstId pattern_id =
  1212. // TODO: Fill in a location once available.
  1213. AddBindingPattern(context, SemIR::LocId::None, name_id, type_id,
  1214. type_expr_region_id, is_generic, is_template)
  1215. .pattern_id;
  1216. pattern_id = AddPatternInst(
  1217. context,
  1218. // TODO: Fill in a location once available.
  1219. SemIR::LocIdAndInst::NoLoc(SemIR::ValueParamPattern(
  1220. {.type_id = context.insts().Get(pattern_id).type_id(),
  1221. .subpattern_id = pattern_id,
  1222. .index = SemIR::CallParamIndex::None})));
  1223. if (is_ref_param) {
  1224. pattern_id = AddPatternInst(
  1225. context,
  1226. // TODO: Fill in a location once available.
  1227. SemIR::LocIdAndInst::NoLoc(SemIR::AddrPattern(
  1228. {.type_id = GetPatternType(
  1229. context,
  1230. context.types().GetTypeIdForTypeInstId(orig_type_inst_id)),
  1231. .inner_id = pattern_id})));
  1232. }
  1233. params.push_back(pattern_id);
  1234. }
  1235. return context.inst_blocks().Add(params);
  1236. }
  1237. // Returns the return `TypeExpr` of the given function declaration. In case of
  1238. // an unsupported return type, returns `SemIR::ErrorInst::InstId`. Constructors
  1239. // are treated as returning a class instance.
  1240. // TODO: Support more return types.
  1241. static auto GetReturnTypeExpr(Context& context, SemIR::LocId loc_id,
  1242. clang::FunctionDecl* clang_decl) -> TypeExpr {
  1243. clang::QualType ret_type = clang_decl->getReturnType();
  1244. if (!ret_type->isVoidType()) {
  1245. TypeExpr mapped_type = MapType(context, loc_id, ret_type);
  1246. if (!mapped_type.inst_id.has_value()) {
  1247. context.TODO(loc_id, llvm::formatv("Unsupported: return type: {0}",
  1248. ret_type.getAsString()));
  1249. return {.inst_id = SemIR::ErrorInst::TypeInstId,
  1250. .type_id = SemIR::ErrorInst::TypeId};
  1251. }
  1252. return mapped_type;
  1253. }
  1254. if (!isa<clang::CXXConstructorDecl>(clang_decl)) {
  1255. // void.
  1256. return TypeExpr::None;
  1257. }
  1258. // TODO: Make this a `PartialType`.
  1259. SemIR::TypeInstId record_type_inst_id = context.types().GetAsTypeInstId(
  1260. context.clang_decls()
  1261. .Get(context.clang_decls().Lookup(
  1262. cast<clang::Decl>(clang_decl->getParent())))
  1263. .inst_id);
  1264. return {
  1265. .inst_id = record_type_inst_id,
  1266. .type_id = context.types().GetTypeIdForTypeInstId(record_type_inst_id)};
  1267. }
  1268. // Returns the return pattern of the given function declaration. In case of an
  1269. // unsupported return type, it produces a diagnostic and returns
  1270. // `SemIR::ErrorInst::InstId`. Constructors are treated as returning a class
  1271. // instance.
  1272. static auto GetReturnPattern(Context& context, SemIR::LocId loc_id,
  1273. clang::FunctionDecl* clang_decl) -> SemIR::InstId {
  1274. auto [type_inst_id, type_id] = GetReturnTypeExpr(context, loc_id, clang_decl);
  1275. if (!type_inst_id.has_value()) {
  1276. // void.
  1277. return SemIR::InstId::None;
  1278. }
  1279. auto pattern_type_id = GetPatternType(context, type_id);
  1280. SemIR::InstId return_slot_pattern_id = AddPatternInst(
  1281. // TODO: Fill in a location for the return type once available.
  1282. context,
  1283. SemIR::LocIdAndInst::NoLoc(SemIR::ReturnSlotPattern(
  1284. {.type_id = pattern_type_id, .type_inst_id = type_inst_id})));
  1285. SemIR::InstId param_pattern_id = AddPatternInst(
  1286. // TODO: Fill in a location for the return type once available.
  1287. context, SemIR::LocIdAndInst::NoLoc(SemIR::OutParamPattern(
  1288. {.type_id = pattern_type_id,
  1289. .subpattern_id = return_slot_pattern_id,
  1290. .index = SemIR::CallParamIndex::None})));
  1291. return param_pattern_id;
  1292. }
  1293. namespace {
  1294. // Represents the parameter patterns block id, the return slot pattern id and
  1295. // the call parameters block id for a function declaration.
  1296. struct FunctionParamsInsts {
  1297. SemIR::InstBlockId implicit_param_patterns_id;
  1298. SemIR::InstBlockId param_patterns_id;
  1299. SemIR::InstId return_slot_pattern_id;
  1300. SemIR::InstBlockId call_params_id;
  1301. };
  1302. } // namespace
  1303. // Creates a block containing the parameter pattern instructions for the
  1304. // explicit parameters, a parameter pattern instruction for the return type and
  1305. // a block containing the call parameters of the function. Emits a callee
  1306. // pattern-match for the explicit parameter patterns and the return slot pattern
  1307. // to create the Call parameters instructions block. Currently the implicit
  1308. // parameter patterns are not taken into account. Returns the parameter patterns
  1309. // block id, the return slot pattern id, and the call parameters block id.
  1310. // Produces a diagnostic and returns `std::nullopt` if the function declaration
  1311. // has an unsupported parameter type.
  1312. static auto CreateFunctionParamsInsts(Context& context, SemIR::LocId loc_id,
  1313. clang::FunctionDecl* clang_decl)
  1314. -> std::optional<FunctionParamsInsts> {
  1315. if (isa<clang::CXXDestructorDecl>(clang_decl)) {
  1316. context.TODO(loc_id, "Unsupported: Destructor");
  1317. return std::nullopt;
  1318. }
  1319. auto implicit_param_patterns_id =
  1320. MakeImplicitParamPatternsBlockId(context, loc_id, *clang_decl);
  1321. if (!implicit_param_patterns_id.has_value()) {
  1322. return std::nullopt;
  1323. }
  1324. auto param_patterns_id =
  1325. MakeParamPatternsBlockId(context, loc_id, *clang_decl);
  1326. if (!param_patterns_id.has_value()) {
  1327. return std::nullopt;
  1328. }
  1329. auto return_slot_pattern_id = GetReturnPattern(context, loc_id, clang_decl);
  1330. if (SemIR::ErrorInst::InstId == return_slot_pattern_id) {
  1331. return std::nullopt;
  1332. }
  1333. auto call_params_id =
  1334. CalleePatternMatch(context, implicit_param_patterns_id, param_patterns_id,
  1335. return_slot_pattern_id);
  1336. return {{.implicit_param_patterns_id = implicit_param_patterns_id,
  1337. .param_patterns_id = param_patterns_id,
  1338. .return_slot_pattern_id = return_slot_pattern_id,
  1339. .call_params_id = call_params_id}};
  1340. }
  1341. // Returns the Carbon function name for the given function.
  1342. static auto GetFunctionName(Context& context, clang::FunctionDecl* clang_decl)
  1343. -> SemIR::NameId {
  1344. switch (clang_decl->getDeclName().getNameKind()) {
  1345. case clang::DeclarationName::CXXConstructorName: {
  1346. return context.classes()
  1347. .Get(context.insts()
  1348. .GetAs<SemIR::ClassDecl>(LookupClangDeclInstId(
  1349. context, cast<clang::Decl>(clang_decl->getParent())))
  1350. .class_id)
  1351. .name_id;
  1352. }
  1353. case clang::DeclarationName::CXXOperatorName: {
  1354. return SemIR::NameId::CppOperator;
  1355. }
  1356. default: {
  1357. return AddIdentifierName(context, clang_decl->getName());
  1358. }
  1359. }
  1360. }
  1361. // Creates a `FunctionDecl` and a `Function` without C++ thunk information.
  1362. // Returns std::nullopt on failure. The given Clang declaration is assumed to:
  1363. // * Have not been imported before.
  1364. // * Be of supported type (ignoring parameters).
  1365. static auto ImportFunction(Context& context, SemIR::LocId loc_id,
  1366. clang::FunctionDecl* clang_decl)
  1367. -> std::optional<SemIR::FunctionId> {
  1368. context.scope_stack().PushForDeclName();
  1369. context.inst_block_stack().Push();
  1370. context.pattern_block_stack().Push();
  1371. auto function_params_insts =
  1372. CreateFunctionParamsInsts(context, loc_id, clang_decl);
  1373. auto pattern_block_id = context.pattern_block_stack().Pop();
  1374. auto decl_block_id = context.inst_block_stack().Pop();
  1375. context.scope_stack().Pop();
  1376. if (!function_params_insts.has_value()) {
  1377. return std::nullopt;
  1378. }
  1379. auto function_decl = SemIR::FunctionDecl{
  1380. SemIR::TypeId::None, SemIR::FunctionId::None, decl_block_id};
  1381. auto decl_id =
  1382. AddPlaceholderInstInNoBlock(context, Parse::NodeId::None, function_decl);
  1383. context.imports().push_back(decl_id);
  1384. auto virtual_modifier = SemIR::Function::VirtualModifier::None;
  1385. int32_t virtual_index = -1;
  1386. if (auto* method_decl = dyn_cast<clang::CXXMethodDecl>(clang_decl)) {
  1387. if (method_decl->size_overridden_methods()) {
  1388. virtual_modifier = SemIR::Function::VirtualModifier::Override;
  1389. } else if (method_decl->isVirtual()) {
  1390. virtual_modifier = SemIR::Function::VirtualModifier::Virtual;
  1391. }
  1392. if (virtual_modifier != SemIR::Function::VirtualModifier::None) {
  1393. // TODO: Add support for Microsoft/non-Itanium vtables.
  1394. virtual_index = dyn_cast<clang::ItaniumVTableContext>(
  1395. context.ast_context().getVTableContext())
  1396. ->getMethodVTableIndex(method_decl);
  1397. }
  1398. }
  1399. auto function_info = SemIR::Function{
  1400. {.name_id = GetFunctionName(context, clang_decl),
  1401. .parent_scope_id = GetParentNameScopeId(context, clang_decl),
  1402. .generic_id = SemIR::GenericId::None,
  1403. .first_param_node_id = Parse::NodeId::None,
  1404. .last_param_node_id = Parse::NodeId::None,
  1405. .pattern_block_id = pattern_block_id,
  1406. .implicit_param_patterns_id =
  1407. function_params_insts->implicit_param_patterns_id,
  1408. .param_patterns_id = function_params_insts->param_patterns_id,
  1409. .is_extern = false,
  1410. .extern_library_id = SemIR::LibraryNameId::None,
  1411. .non_owning_decl_id = SemIR::InstId::None,
  1412. .first_owning_decl_id = decl_id,
  1413. .definition_id = SemIR::InstId::None},
  1414. {.call_params_id = function_params_insts->call_params_id,
  1415. .return_slot_pattern_id = function_params_insts->return_slot_pattern_id,
  1416. .virtual_modifier = virtual_modifier,
  1417. .virtual_index = virtual_index,
  1418. .self_param_id = FindSelfPattern(
  1419. context, function_params_insts->implicit_param_patterns_id),
  1420. .clang_decl_id = context.clang_decls().Add(
  1421. {.decl = clang_decl, .inst_id = decl_id})}};
  1422. function_decl.function_id = context.functions().Add(function_info);
  1423. function_decl.type_id = GetFunctionType(context, function_decl.function_id,
  1424. SemIR::SpecificId::None);
  1425. ReplaceInstBeforeConstantUse(context, decl_id, function_decl);
  1426. return function_decl.function_id;
  1427. }
  1428. auto ImportCppFunctionDecl(Context& context, SemIR::LocId loc_id,
  1429. clang::FunctionDecl* clang_decl) -> SemIR::InstId {
  1430. // Check if the declaration is already mapped.
  1431. if (SemIR::InstId existing_inst_id =
  1432. LookupClangDeclInstId(context, clang_decl);
  1433. existing_inst_id.has_value()) {
  1434. return existing_inst_id;
  1435. }
  1436. if (clang_decl->isVariadic()) {
  1437. context.TODO(loc_id, "Unsupported: Variadic function");
  1438. MarkFailedDecl(context, clang_decl);
  1439. return SemIR::ErrorInst::InstId;
  1440. }
  1441. if (clang_decl->getTemplatedKind() ==
  1442. clang::FunctionDecl::TK_FunctionTemplate) {
  1443. context.TODO(loc_id, "Unsupported: Template function");
  1444. MarkFailedDecl(context, clang_decl);
  1445. return SemIR::ErrorInst::InstId;
  1446. }
  1447. CARBON_CHECK(clang_decl->getFunctionType()->isFunctionProtoType(),
  1448. "Not Prototype function (non-C++ code)");
  1449. auto function_id = ImportFunction(context, loc_id, clang_decl);
  1450. if (!function_id) {
  1451. MarkFailedDecl(context, clang_decl);
  1452. return SemIR::ErrorInst::InstId;
  1453. }
  1454. SemIR::Function& function_info = context.functions().Get(*function_id);
  1455. if (IsCppThunkRequired(context, function_info)) {
  1456. Diagnostics::AnnotationScope annotate_diagnostics(
  1457. &context.emitter(), [&](auto& builder) {
  1458. CARBON_DIAGNOSTIC(InCppThunk, Note,
  1459. "in thunk for C++ function used here");
  1460. builder.Note(loc_id, InCppThunk);
  1461. });
  1462. clang::FunctionDecl* thunk_clang_decl =
  1463. BuildCppThunk(context, function_info);
  1464. if (thunk_clang_decl) {
  1465. SemIR::FunctionId thunk_function_id =
  1466. *ImportFunction(context, loc_id, thunk_clang_decl);
  1467. SemIR::InstId thunk_function_decl_id =
  1468. context.functions().Get(thunk_function_id).first_owning_decl_id;
  1469. function_info.SetHasCppThunk(thunk_function_decl_id);
  1470. }
  1471. }
  1472. return function_info.first_owning_decl_id;
  1473. }
  1474. namespace {
  1475. // An item to be imported in an import worklist.
  1476. // TODO: If worklists ever become particularly large, consider changing this
  1477. // to use a `PointerIntPair`.
  1478. struct ImportItem {
  1479. // A declaration that we want to import.
  1480. clang::Decl* decl;
  1481. // Whether we have added `decl`'s dependencies to the worklist.
  1482. bool added_dependencies;
  1483. };
  1484. // A worklist of declarations to import.
  1485. using ImportWorklist = llvm::SmallVector<ImportItem>;
  1486. } // namespace
  1487. // Adds the given declaration to our list of declarations to import.
  1488. static auto AddDependentDecl(Context& context, clang::Decl* decl,
  1489. ImportWorklist& worklist) -> void {
  1490. if (!IsClangDeclImported(context, decl)) {
  1491. worklist.push_back({.decl = decl, .added_dependencies = false});
  1492. }
  1493. }
  1494. // Finds all decls that need to be imported before importing the given type and
  1495. // adds them to the given set.
  1496. static auto AddDependentUnimportedTypeDecls(Context& context,
  1497. clang::QualType type,
  1498. ImportWorklist& worklist) -> void {
  1499. while (true) {
  1500. if (type->isPointerType() || type->isReferenceType()) {
  1501. type = type->getPointeeType();
  1502. } else if (const clang::ArrayType* array_type =
  1503. type->getAsArrayTypeUnsafe()) {
  1504. type = array_type->getElementType();
  1505. } else {
  1506. break;
  1507. }
  1508. }
  1509. if (const auto* tag_type = type->getAs<clang::TagType>()) {
  1510. AddDependentDecl(context, tag_type->getOriginalDecl(), worklist);
  1511. }
  1512. }
  1513. // Finds all decls that need to be imported before importing the given function
  1514. // and adds them to the given set.
  1515. static auto AddDependentUnimportedFunctionDecls(
  1516. Context& context, const clang::FunctionDecl& clang_decl,
  1517. ImportWorklist& worklist) -> void {
  1518. for (const auto* param : clang_decl.parameters()) {
  1519. AddDependentUnimportedTypeDecls(context, param->getType(), worklist);
  1520. }
  1521. AddDependentUnimportedTypeDecls(context, clang_decl.getReturnType(),
  1522. worklist);
  1523. }
  1524. // Finds all decls that need to be imported before importing the given
  1525. // declaration and adds them to the given set.
  1526. static auto AddDependentUnimportedDecls(Context& context,
  1527. clang::Decl* clang_decl,
  1528. ImportWorklist& worklist) -> void {
  1529. if (auto* clang_function_decl = clang_decl->getAsFunction()) {
  1530. AddDependentUnimportedFunctionDecls(context, *clang_function_decl,
  1531. worklist);
  1532. } else if (auto* type_decl = dyn_cast<clang::TypeDecl>(clang_decl)) {
  1533. if (!isa<clang::TagDecl>(clang_decl)) {
  1534. AddDependentUnimportedTypeDecls(
  1535. context, type_decl->getASTContext().getTypeDeclType(type_decl),
  1536. worklist);
  1537. }
  1538. }
  1539. if (!isa<clang::TranslationUnitDecl>(clang_decl)) {
  1540. AddDependentDecl(context, GetParentDecl(clang_decl), worklist);
  1541. }
  1542. }
  1543. static auto ImportVarDecl(Context& context, SemIR::LocId loc_id,
  1544. clang::VarDecl* var_decl) -> SemIR::InstId {
  1545. if (SemIR::InstId existing_inst_id = LookupClangDeclInstId(context, var_decl);
  1546. existing_inst_id.has_value()) {
  1547. return existing_inst_id;
  1548. }
  1549. // Extract type and name.
  1550. clang::QualType var_type = var_decl->getType();
  1551. SemIR::TypeId var_type_id = MapType(context, loc_id, var_type).type_id;
  1552. if (!var_type_id.has_value()) {
  1553. context.TODO(loc_id, llvm::formatv("Unsupported: var type: {0}",
  1554. var_type.getAsString()));
  1555. return SemIR::ErrorInst::InstId;
  1556. }
  1557. SemIR::NameId var_name_id = AddIdentifierName(context, var_decl->getName());
  1558. SemIR::VarStorage var_storage{.type_id = var_type_id,
  1559. .pattern_id = SemIR::InstId::None};
  1560. // We can't use the convenience for `AddPlaceholderInstInNoBlock()` with typed
  1561. // nodes because it doesn't support insts with cleanup.
  1562. SemIR::InstId var_storage_inst_id =
  1563. AddPlaceholderInstInNoBlock(context, {loc_id, var_storage});
  1564. auto clang_decl_id = context.clang_decls().Add(
  1565. {.decl = var_decl, .inst_id = var_storage_inst_id});
  1566. // Entity name referring to a Clang decl for mangling.
  1567. SemIR::EntityNameId entity_name_id =
  1568. context.entity_names().AddSymbolicBindingName(
  1569. var_name_id, GetParentNameScopeId(context, var_decl),
  1570. SemIR::CompileTimeBindIndex::None, false, clang_decl_id);
  1571. // Create `BindingPattern` and `VarPattern` in a `NameBindingDecl`.
  1572. context.pattern_block_stack().Push();
  1573. SemIR::TypeId pattern_type_id = GetPatternType(context, var_type_id);
  1574. SemIR::InstId binding_pattern_inst_id = AddPatternInst<SemIR::BindingPattern>(
  1575. context, loc_id,
  1576. {.type_id = pattern_type_id, .entity_name_id = entity_name_id});
  1577. var_storage.pattern_id = AddPatternInst<SemIR::VarPattern>(
  1578. context, Parse::VariablePatternId::None,
  1579. {.type_id = pattern_type_id, .subpattern_id = binding_pattern_inst_id});
  1580. context.imports().push_back(AddInstInNoBlock<SemIR::NameBindingDecl>(
  1581. context, loc_id,
  1582. {.pattern_block_id = context.pattern_block_stack().Pop()}));
  1583. // Finalize the `VarStorage` instruction.
  1584. ReplaceInstBeforeConstantUse(context, var_storage_inst_id, var_storage);
  1585. context.imports().push_back(var_storage_inst_id);
  1586. return var_storage_inst_id;
  1587. }
  1588. // Imports a declaration from Clang to Carbon. Returns the instruction for the
  1589. // new Carbon declaration, which will be an ErrorInst on failure. Assumes all
  1590. // dependencies have already been imported.
  1591. static auto ImportDeclAfterDependencies(Context& context, SemIR::LocId loc_id,
  1592. clang::Decl* clang_decl)
  1593. -> SemIR::InstId {
  1594. if (auto* clang_function_decl = clang_decl->getAsFunction()) {
  1595. return ImportCppFunctionDecl(context, loc_id, clang_function_decl);
  1596. }
  1597. if (auto* clang_namespace_decl = dyn_cast<clang::NamespaceDecl>(clang_decl)) {
  1598. return ImportNamespaceDecl(context, clang_namespace_decl);
  1599. }
  1600. if (auto* type_decl = dyn_cast<clang::TypeDecl>(clang_decl)) {
  1601. auto type = clang_decl->getASTContext().getTypeDeclType(type_decl);
  1602. auto type_inst_id = MapType(context, loc_id, type).inst_id;
  1603. if (!type_inst_id.has_value()) {
  1604. context.TODO(AddImportIRInst(context.sem_ir(), type_decl->getLocation()),
  1605. llvm::formatv("Unsupported: Type declaration: {0}",
  1606. type.getAsString()));
  1607. return SemIR::ErrorInst::InstId;
  1608. }
  1609. context.clang_decls().Add({.decl = clang_decl, .inst_id = type_inst_id});
  1610. return type_inst_id;
  1611. }
  1612. if (isa<clang::FieldDecl, clang::IndirectFieldDecl>(clang_decl)) {
  1613. // Usable fields get imported as a side effect of importing the class.
  1614. if (SemIR::InstId existing_inst_id =
  1615. LookupClangDeclInstId(context, clang_decl);
  1616. existing_inst_id.has_value()) {
  1617. return existing_inst_id;
  1618. }
  1619. context.TODO(AddImportIRInst(context.sem_ir(), clang_decl->getLocation()),
  1620. "Unsupported: field declaration has unhandled type or kind");
  1621. return SemIR::ErrorInst::InstId;
  1622. }
  1623. if (auto* enum_const_decl = dyn_cast<clang::EnumConstantDecl>(clang_decl)) {
  1624. return ImportEnumConstantDecl(context, enum_const_decl);
  1625. }
  1626. if (auto* var_decl = dyn_cast<clang::VarDecl>(clang_decl)) {
  1627. return ImportVarDecl(context, loc_id, var_decl);
  1628. }
  1629. context.TODO(AddImportIRInst(context.sem_ir(), clang_decl->getLocation()),
  1630. llvm::formatv("Unsupported: Declaration type {0}",
  1631. clang_decl->getDeclKindName()));
  1632. return SemIR::ErrorInst::InstId;
  1633. }
  1634. // Attempts to import a set of declarations. Returns `false` if an error was
  1635. // produced, `true` otherwise.
  1636. static auto ImportDeclSet(Context& context, SemIR::LocId loc_id,
  1637. ImportWorklist& worklist) -> bool {
  1638. // Walk the dependency graph in depth-first order, and import declarations
  1639. // once we've imported all of their dependencies.
  1640. while (!worklist.empty()) {
  1641. auto& item = worklist.back();
  1642. if (!item.added_dependencies) {
  1643. // Skip items we've already imported. We checked this when initially
  1644. // adding the item to the worklist, but it might have been added to the
  1645. // worklist twice before the first time we visited it. For example, this
  1646. // happens for `fn F(a: Cpp.T, b: Cpp.T)`.
  1647. if (IsClangDeclImported(context, item.decl)) {
  1648. worklist.pop_back();
  1649. continue;
  1650. }
  1651. // First time visiting this declaration (preorder): add its dependencies
  1652. // to the work list.
  1653. item.added_dependencies = true;
  1654. AddDependentUnimportedDecls(context, item.decl, worklist);
  1655. } else {
  1656. // Second time visiting this declaration (postorder): its dependencies are
  1657. // already imported, so we can import it now.
  1658. auto* decl = worklist.pop_back_val().decl;
  1659. // Functions that are part of the overload set are imported at a later
  1660. // point, once the overload resolution has selected the suitable function
  1661. // for the call.
  1662. if (decl->getAsFunction()) {
  1663. continue;
  1664. }
  1665. auto inst_id = ImportDeclAfterDependencies(context, loc_id, decl);
  1666. CARBON_CHECK(inst_id.has_value());
  1667. if (inst_id == SemIR::ErrorInst::InstId) {
  1668. return false;
  1669. }
  1670. CARBON_CHECK(IsClangDeclImported(context, decl));
  1671. }
  1672. }
  1673. return true;
  1674. }
  1675. // Imports a declaration from Clang to Carbon. If successful, returns the
  1676. // instruction for the new Carbon declaration. All unimported dependencies are
  1677. // imported first.
  1678. static auto ImportDeclAndDependencies(Context& context, SemIR::LocId loc_id,
  1679. clang::Decl* clang_decl)
  1680. -> SemIR::InstId {
  1681. // Collect dependencies by walking the dependency graph in depth-first order.
  1682. ImportWorklist worklist;
  1683. AddDependentDecl(context, clang_decl, worklist);
  1684. if (!ImportDeclSet(context, loc_id, worklist)) {
  1685. return SemIR::ErrorInst::InstId;
  1686. }
  1687. return LookupClangDeclInstId(context, clang_decl);
  1688. }
  1689. // Imports a type from Clang to Carbon. If successful, returns the imported
  1690. // TypeId. All unimported dependencies are imported first.
  1691. static auto ImportTypeAndDependencies(Context& context, SemIR::LocId loc_id,
  1692. clang::QualType type) -> TypeExpr {
  1693. // Collect dependencies by walking the dependency graph in depth-first order.
  1694. ImportWorklist worklist;
  1695. AddDependentUnimportedTypeDecls(context, type, worklist);
  1696. if (!ImportDeclSet(context, loc_id, worklist)) {
  1697. return {.inst_id = SemIR::ErrorInst::TypeInstId,
  1698. .type_id = SemIR::ErrorInst::TypeId};
  1699. }
  1700. return MapType(context, loc_id, type);
  1701. }
  1702. // Maps `clang::AccessSpecifier` to `SemIR::AccessKind`.
  1703. static auto MapAccess(clang::AccessSpecifier access_specifier)
  1704. -> SemIR::AccessKind {
  1705. switch (access_specifier) {
  1706. case clang::AS_public:
  1707. case clang::AS_none:
  1708. return SemIR::AccessKind::Public;
  1709. case clang::AS_protected:
  1710. return SemIR::AccessKind::Protected;
  1711. case clang::AS_private:
  1712. return SemIR::AccessKind::Private;
  1713. }
  1714. }
  1715. // Imports a `clang::NamedDecl` into Carbon and adds that name into the
  1716. // `NameScope`.
  1717. static auto ImportNameDeclIntoScope(Context& context, SemIR::LocId loc_id,
  1718. SemIR::NameScopeId scope_id,
  1719. SemIR::NameId name_id,
  1720. clang::NamedDecl* clang_decl,
  1721. clang::AccessSpecifier access)
  1722. -> SemIR::ScopeLookupResult {
  1723. SemIR::InstId inst_id =
  1724. ImportDeclAndDependencies(context, loc_id, clang_decl);
  1725. if (!inst_id.has_value()) {
  1726. return SemIR::ScopeLookupResult::MakeNotFound();
  1727. }
  1728. SemIR::AccessKind access_kind = MapAccess(access);
  1729. AddNameToScope(context, scope_id, name_id, access_kind, inst_id);
  1730. return SemIR::ScopeLookupResult::MakeWrappedLookupResult(inst_id,
  1731. access_kind);
  1732. }
  1733. // Returns true if the scope is the top `Cpp` scope.
  1734. static auto IsTopCppScope(Context& context, SemIR::NameScopeId scope_id)
  1735. -> bool {
  1736. const SemIR::NameScope& name_scope = context.name_scopes().Get(scope_id);
  1737. CARBON_CHECK(name_scope.is_cpp_scope());
  1738. return name_scope.parent_scope_id() == SemIR::NameScopeId::Package;
  1739. }
  1740. // For builtin names like `Cpp.long`, return the associated types.
  1741. static auto LookupBuiltinTypes(Context& context, SemIR::LocId loc_id,
  1742. SemIR::NameScopeId scope_id,
  1743. SemIR::NameId name_id) -> SemIR::InstId {
  1744. if (!IsTopCppScope(context, scope_id)) {
  1745. return SemIR::InstId::None;
  1746. }
  1747. auto name = context.names().GetAsStringIfIdentifier(name_id);
  1748. if (!name) {
  1749. return SemIR::InstId::None;
  1750. }
  1751. const clang::ASTContext& ast_context = context.ast_context();
  1752. // List of types based on
  1753. // https://github.com/carbon-language/carbon-lang/blob/trunk/proposals/p5448.md#details
  1754. auto builtin_type =
  1755. llvm::StringSwitch<clang::QualType>(*name)
  1756. .Case("signed_char", ast_context.SignedCharTy)
  1757. .Case("short", ast_context.ShortTy)
  1758. .Case("int", ast_context.IntTy)
  1759. .Case("long", ast_context.LongTy)
  1760. .Case("long_long", ast_context.LongLongTy)
  1761. .Case("unsigned_char", ast_context.UnsignedCharTy)
  1762. .Case("unsigned_short", ast_context.UnsignedShortTy)
  1763. .Case("unsigned_int", ast_context.UnsignedIntTy)
  1764. .Case("unsigned_long", ast_context.UnsignedLongTy)
  1765. .Case("unsigned_long_long", ast_context.UnsignedLongLongTy)
  1766. .Case("float", ast_context.FloatTy)
  1767. .Case("double", ast_context.DoubleTy)
  1768. .Case("long_double", ast_context.LongDoubleTy)
  1769. .Default(clang::QualType());
  1770. if (builtin_type.isNull()) {
  1771. return SemIR::InstId::None;
  1772. }
  1773. SemIR::InstId inst_id =
  1774. MapNonWrapperType(context, loc_id, builtin_type).inst_id;
  1775. if (!inst_id.has_value()) {
  1776. context.TODO(loc_id, llvm::formatv("Unsupported: builtin type: {0}",
  1777. builtin_type.getAsString()));
  1778. return SemIR::ErrorInst::InstId;
  1779. }
  1780. return inst_id;
  1781. }
  1782. auto ImportCppOverloadSet(Context& context, SemIR::NameScopeId scope_id,
  1783. SemIR::NameId name_id,
  1784. const clang::UnresolvedSet<4>& overload_set)
  1785. -> SemIR::InstId {
  1786. SemIR::CppOverloadSetId overload_set_id = context.cpp_overload_sets().Add(
  1787. SemIR::CppOverloadSet{.name_id = name_id,
  1788. .parent_scope_id = scope_id,
  1789. .candidate_functions = overload_set});
  1790. auto overload_set_inst_id =
  1791. // TODO: Add a location.
  1792. AddInstInNoBlock<SemIR::CppOverloadSetValue>(
  1793. context, Parse::NodeId::None,
  1794. {.type_id = GetCppOverloadSetType(context, overload_set_id,
  1795. SemIR::SpecificId::None),
  1796. .overload_set_id = overload_set_id});
  1797. context.imports().push_back(overload_set_inst_id);
  1798. return overload_set_inst_id;
  1799. }
  1800. // Gets the access for an overloaded function set. Returns std::nullopt
  1801. // if the access is not the same for all functions in the overload set.
  1802. // TODO: Fix to support functions with different access levels.
  1803. static auto GetOverloadSetAccess(Context& context, SemIR::LocId loc_id,
  1804. const clang::UnresolvedSet<4>& overload_set)
  1805. -> std::optional<SemIR::AccessKind> {
  1806. clang::AccessSpecifier access = overload_set.begin().getAccess();
  1807. for (auto it = overload_set.begin() + 1; it != overload_set.end(); ++it) {
  1808. if (it.getAccess() != access) {
  1809. context.TODO(loc_id, "Unsupported: Overloaded set with mixed access");
  1810. return std::nullopt;
  1811. }
  1812. }
  1813. return MapAccess(access);
  1814. }
  1815. static auto ImportOverloadSetAndDependencies(
  1816. Context& context, SemIR::LocId loc_id, SemIR::NameScopeId scope_id,
  1817. SemIR::NameId name_id, const clang::UnresolvedSet<4>& overloaded_set)
  1818. -> SemIR::InstId {
  1819. ImportWorklist worklist;
  1820. for (clang::NamedDecl* fn_decl : overloaded_set) {
  1821. AddDependentDecl(context, fn_decl, worklist);
  1822. }
  1823. if (!ImportDeclSet(context, loc_id, worklist)) {
  1824. return SemIR::ErrorInst::InstId;
  1825. }
  1826. return ImportCppOverloadSet(context, scope_id, name_id, overloaded_set);
  1827. }
  1828. // Imports an overloaded function set from Clang to Carbon and adds the
  1829. // name into the `NameScope`.
  1830. static auto ImportOverloadSetIntoScope(
  1831. Context& context, SemIR::LocId loc_id, SemIR::NameScopeId scope_id,
  1832. SemIR::NameId name_id, const clang::UnresolvedSet<4>& overload_set)
  1833. -> SemIR::ScopeLookupResult {
  1834. std::optional<SemIR::AccessKind> access_kind =
  1835. GetOverloadSetAccess(context, loc_id, overload_set);
  1836. if (!access_kind.has_value()) {
  1837. return SemIR::ScopeLookupResult::MakeError();
  1838. }
  1839. SemIR::InstId inst_id = ImportOverloadSetAndDependencies(
  1840. context, loc_id, scope_id, name_id, overload_set);
  1841. AddNameToScope(context, scope_id, name_id, access_kind.value(), inst_id);
  1842. return SemIR::ScopeLookupResult::MakeWrappedLookupResult(inst_id,
  1843. access_kind.value());
  1844. }
  1845. // Imports the constructors for a given class name. The found constructors are
  1846. // imported as part of an overload set into the scope. Currently copy/move
  1847. // constructors are not imported.
  1848. static auto ImportConstructorsIntoScope(Context& context, SemIR::LocId loc_id,
  1849. SemIR::NameScopeId scope_id,
  1850. SemIR::NameId name_id)
  1851. -> SemIR::ScopeLookupResult {
  1852. clang::DeclContextLookupResult constructors_lookup =
  1853. ClangConstructorLookup(context, scope_id);
  1854. clang::UnresolvedSet<4> overload_set;
  1855. for (clang::Decl* decl : constructors_lookup) {
  1856. auto* constructor = cast<clang::CXXConstructorDecl>(decl);
  1857. if (constructor->isDeleted() || constructor->isCopyOrMoveConstructor()) {
  1858. continue;
  1859. }
  1860. overload_set.addDecl(constructor, constructor->getAccess());
  1861. }
  1862. if (overload_set.empty()) {
  1863. return SemIR::ScopeLookupResult::MakeNotFound();
  1864. }
  1865. return ImportOverloadSetIntoScope(context, loc_id, scope_id, name_id,
  1866. overload_set);
  1867. }
  1868. // Imports a builtin type from Clang to Carbon and adds the name into the
  1869. // scope.
  1870. static auto ImportBuiltinTypesIntoScope(Context& context, SemIR::LocId loc_id,
  1871. SemIR::NameScopeId scope_id,
  1872. SemIR::NameId name_id)
  1873. -> SemIR::ScopeLookupResult {
  1874. SemIR::InstId builtin_inst_id =
  1875. LookupBuiltinTypes(context, loc_id, scope_id, name_id);
  1876. if (builtin_inst_id.has_value()) {
  1877. AddNameToScope(context, scope_id, name_id, SemIR::AccessKind::Public,
  1878. builtin_inst_id);
  1879. return SemIR::ScopeLookupResult::MakeWrappedLookupResult(
  1880. builtin_inst_id, SemIR::AccessKind::Public);
  1881. }
  1882. return SemIR::ScopeLookupResult::MakeNotFound();
  1883. }
  1884. // Checks if the name scope is a class that is not complete.
  1885. static auto IsIncompleteClass(Context& context, SemIR::NameScopeId scope_id)
  1886. -> bool {
  1887. auto class_decl = context.insts().TryGetAs<SemIR::ClassDecl>(
  1888. context.name_scopes().Get(scope_id).inst_id());
  1889. return class_decl.has_value() &&
  1890. !context.types().IsComplete(
  1891. context.classes().Get(class_decl->class_id).self_type_id);
  1892. }
  1893. // TODO: Do we need to import the dependences for all functions in the overload
  1894. // set?
  1895. auto ImportNameFromCpp(Context& context, SemIR::LocId loc_id,
  1896. SemIR::NameScopeId scope_id, SemIR::NameId name_id)
  1897. -> SemIR::ScopeLookupResult {
  1898. Diagnostics::AnnotationScope annotate_diagnostics(
  1899. &context.emitter(), [&](auto& builder) {
  1900. CARBON_DIAGNOSTIC(InCppNameLookup, Note,
  1901. "in `Cpp` name lookup for `{0}`", SemIR::NameId);
  1902. builder.Note(loc_id, InCppNameLookup, name_id);
  1903. });
  1904. if (IsIncompleteClass(context, scope_id)) {
  1905. return SemIR::ScopeLookupResult::MakeError();
  1906. }
  1907. auto lookup = ClangLookupName(context, scope_id, name_id);
  1908. if (!lookup) {
  1909. return ImportBuiltinTypesIntoScope(context, loc_id, scope_id, name_id);
  1910. }
  1911. // Access checks are performed separately by the Carbon name lookup logic.
  1912. lookup->suppressAccessDiagnostics();
  1913. if (lookup->isOverloadedResult() ||
  1914. (lookup->isSingleResult() &&
  1915. lookup->getFoundDecl()->isFunctionOrFunctionTemplate())) {
  1916. clang::UnresolvedSet<4> overload_set;
  1917. overload_set.append(lookup->begin(), lookup->end());
  1918. return ImportOverloadSetIntoScope(context, loc_id, scope_id, name_id,
  1919. overload_set);
  1920. }
  1921. if (!lookup->isSingleResult()) {
  1922. // Clang will diagnose ambiguous lookup results for us.
  1923. if (!lookup->isAmbiguous()) {
  1924. context.TODO(loc_id,
  1925. llvm::formatv("Unsupported: Lookup succeeded but couldn't "
  1926. "find a single result; LookupResultKind: {0}",
  1927. static_cast<int>(lookup->getResultKind())));
  1928. }
  1929. context.name_scopes().AddRequiredName(scope_id, name_id,
  1930. SemIR::ErrorInst::InstId);
  1931. return SemIR::ScopeLookupResult::MakeError();
  1932. }
  1933. if (IsDeclInjectedClassName(context, scope_id, name_id,
  1934. lookup->getFoundDecl())) {
  1935. return ImportConstructorsIntoScope(context, loc_id, scope_id, name_id);
  1936. }
  1937. return ImportNameDeclIntoScope(context, loc_id, scope_id, name_id,
  1938. lookup->getFoundDecl(),
  1939. lookup->begin().getAccess());
  1940. }
  1941. auto ImportClassDefinitionForClangDecl(Context& context, SemIR::LocId loc_id,
  1942. SemIR::ClassId class_id,
  1943. SemIR::ClangDeclId clang_decl_id)
  1944. -> bool {
  1945. clang::ASTUnit* ast = context.sem_ir().clang_ast_unit();
  1946. CARBON_CHECK(ast);
  1947. auto* clang_decl =
  1948. cast<clang::TagDecl>(context.clang_decls().Get(clang_decl_id).decl);
  1949. auto class_inst_id = context.types().GetAsTypeInstId(
  1950. context.classes().Get(class_id).first_owning_decl_id);
  1951. // TODO: Map loc_id into a clang location and use it for diagnostics if
  1952. // instantiation fails, instead of annotating the diagnostic with another
  1953. // location.
  1954. clang::SourceLocation loc = clang_decl->getLocation();
  1955. Diagnostics::AnnotationScope annotate_diagnostics(
  1956. &context.emitter(), [&](auto& builder) {
  1957. CARBON_DIAGNOSTIC(InCppTypeCompletion, Note,
  1958. "while completing C++ type {0}", SemIR::TypeId);
  1959. builder.Note(loc_id, InCppTypeCompletion,
  1960. context.classes().Get(class_id).self_type_id);
  1961. });
  1962. // Ask Clang whether the type is complete. This triggers template
  1963. // instantiation if necessary.
  1964. clang::DiagnosticErrorTrap trap(ast->getDiagnostics());
  1965. if (!ast->getSema().isCompleteType(
  1966. loc, context.ast_context().getCanonicalTagType(clang_decl))) {
  1967. // Type is incomplete. Nothing more to do, but tell the caller if we
  1968. // produced an error.
  1969. return !trap.hasErrorOccurred();
  1970. }
  1971. auto import_ir_inst_id =
  1972. context.insts().GetCanonicalLocId(class_inst_id).import_ir_inst_id();
  1973. if (auto* class_decl = dyn_cast<clang::CXXRecordDecl>(clang_decl)) {
  1974. auto* class_def = class_decl->getDefinition();
  1975. CARBON_CHECK(class_def, "Complete type has no definition");
  1976. if (class_def->getNumVBases()) {
  1977. // TODO: Handle virtual bases. We don't actually know where they go in the
  1978. // layout. We may also want to use a different size in the layout for
  1979. // `partial C`, excluding the virtual base. It's also not entirely safe to
  1980. // just skip over the virtual base, as the type we would construct would
  1981. // have a misleading size. For now, treat a C++ class with vbases as
  1982. // incomplete in Carbon.
  1983. context.TODO(loc_id, "class with virtual bases");
  1984. return false;
  1985. }
  1986. BuildClassDefinition(context, import_ir_inst_id, class_id, class_inst_id,
  1987. class_def);
  1988. } else if (auto* enum_decl = dyn_cast<clang::EnumDecl>(clang_decl)) {
  1989. BuildEnumDefinition(context, import_ir_inst_id, class_id, class_inst_id,
  1990. enum_decl);
  1991. }
  1992. return true;
  1993. }
  1994. } // namespace Carbon::Check