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TypeSystemClang.cpp
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1//===-- TypeSystemClang.cpp -----------------------------------------------===//
2//
3// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
4// See https://llvm.org/LICENSE.txt for license information.
5// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
6//
7//===----------------------------------------------------------------------===//
8
9#include "TypeSystemClang.h"
10
11#include "clang/AST/DeclBase.h"
12#include "clang/AST/ExprCXX.h"
13#include "clang/Frontend/ASTConsumers.h"
14#include "llvm/ADT/ScopeExit.h"
15#include "llvm/Support/Casting.h"
16#include "llvm/Support/ErrorExtras.h"
17#include "llvm/Support/FormatAdapters.h"
18#include "llvm/Support/FormatVariadic.h"
19
20#include <mutex>
21#include <memory>
22#include <string>
23#include <vector>
24
25#include "clang/AST/ASTContext.h"
26#include "clang/AST/ASTImporter.h"
27#include "clang/AST/Attr.h"
28#include "clang/AST/CXXInheritance.h"
29#include "clang/AST/DeclObjC.h"
30#include "clang/AST/DeclTemplate.h"
31#include "clang/AST/Mangle.h"
32#include "clang/AST/QualTypeNames.h"
33#include "clang/AST/RecordLayout.h"
34#include "clang/AST/Type.h"
35#include "clang/AST/VTableBuilder.h"
36#include "clang/Basic/Builtins.h"
37#include "clang/Basic/Diagnostic.h"
38#include "clang/Basic/FileManager.h"
39#include "clang/Basic/FileSystemOptions.h"
40#include "clang/Basic/LangStandard.h"
41#include "clang/Basic/SourceManager.h"
42#include "clang/Basic/TargetInfo.h"
43#include "clang/Basic/TargetOptions.h"
44#include "clang/Driver/CreateInvocationFromArgs.h"
45#include "clang/Driver/Driver.h"
46#include "clang/Frontend/CompilerInstance.h"
47#include "clang/Frontend/CompilerInvocation.h"
48#include "clang/Frontend/FrontendActions.h"
49#include "clang/Frontend/FrontendOptions.h"
50#include "clang/Lex/HeaderSearch.h"
51#include "clang/Lex/HeaderSearchOptions.h"
52#include "clang/Lex/ModuleMap.h"
53#include "clang/Sema/Sema.h"
54#include "clang/Serialization/ObjectFilePCHContainerReader.h"
55
56#include "llvm/Support/Signals.h"
57#include "llvm/Support/Threading.h"
58
67#include "lldb/Core/Debugger.h"
69#include "lldb/Core/Module.h"
83#include "lldb/Target/Process.h"
84#include "lldb/Target/Target.h"
87#include "lldb/Utility/Flags.h"
91#include "lldb/Utility/Scalar.h"
93
98
99#include <cstdio>
100
101#include <optional>
102
103using namespace lldb;
104using namespace lldb_private;
105using namespace lldb_private::plugin::dwarf;
106using namespace llvm::dwarf;
107using namespace clang;
108using llvm::StringSwitch;
109
111
112namespace {
113static void VerifyDecl(clang::Decl *decl) {
114 assert(decl && "VerifyDecl called with nullptr?");
115#ifndef NDEBUG
116 // We don't care about the actual access value here but only want to trigger
117 // that Clang calls its internal Decl::AccessDeclContextCheck validation.
118 decl->getAccess();
119#endif
120}
121
122static inline bool
123TypeSystemClangSupportsLanguage(lldb::LanguageType language) {
124 return language == eLanguageTypeUnknown || // Clang is the default type system
129 // Use Clang for Rust until there is a proper language plugin for it
130 language == eLanguageTypeRust ||
131 // Use Clang for D until there is a proper language plugin for it
132 language == eLanguageTypeD ||
133 // Open Dylan compiler debug info is designed to be Clang-compatible
134 language == eLanguageTypeDylan;
135}
136
137// Checks whether m1 is an overload of m2 (as opposed to an override). This is
138// called by addOverridesForMethod to distinguish overrides (which share a
139// vtable entry) from overloads (which require distinct entries).
140bool isOverload(clang::CXXMethodDecl *m1, clang::CXXMethodDecl *m2) {
141 // FIXME: This should detect covariant return types, but currently doesn't.
142 lldbassert(&m1->getASTContext() == &m2->getASTContext() &&
143 "Methods should have the same AST context");
144 clang::ASTContext &context = m1->getASTContext();
145
146 const auto *m1Type = llvm::cast<clang::FunctionProtoType>(
147 context.getCanonicalType(m1->getType()));
148
149 const auto *m2Type = llvm::cast<clang::FunctionProtoType>(
150 context.getCanonicalType(m2->getType()));
151
152 auto compareArgTypes = [&context](const clang::QualType &m1p,
153 const clang::QualType &m2p) {
154 return context.hasSameType(m1p.getUnqualifiedType(),
155 m2p.getUnqualifiedType());
156 };
157
158 // FIXME: In C++14 and later, we can just pass m2Type->param_type_end()
159 // as a fourth parameter to std::equal().
160 return (m1->getNumParams() != m2->getNumParams()) ||
161 !std::equal(m1Type->param_type_begin(), m1Type->param_type_end(),
162 m2Type->param_type_begin(), compareArgTypes);
163}
164
165// If decl is a virtual method, walk the base classes looking for methods that
166// decl overrides. This table of overridden methods is used by IRGen to
167// determine the vtable layout for decl's parent class.
168void addOverridesForMethod(clang::CXXMethodDecl *decl) {
169 if (!decl->isVirtual())
170 return;
171
172 clang::CXXBasePaths paths;
173 llvm::SmallVector<clang::NamedDecl *, 4> decls;
174
175 auto find_overridden_methods =
176 [&decls, decl](const clang::CXXBaseSpecifier *specifier,
177 clang::CXXBasePath &path) {
178 if (auto *base_record = specifier->getType()->getAsCXXRecordDecl()) {
179
180 clang::DeclarationName name = decl->getDeclName();
181
182 // If this is a destructor, check whether the base class destructor is
183 // virtual.
184 if (name.getNameKind() == clang::DeclarationName::CXXDestructorName)
185 if (auto *baseDtorDecl = base_record->getDestructor()) {
186 if (baseDtorDecl->isVirtual()) {
187 decls.push_back(baseDtorDecl);
188 return true;
189 } else
190 return false;
191 }
192
193 // Otherwise, search for name in the base class.
194 for (path.Decls = base_record->lookup(name).begin();
195 path.Decls != path.Decls.end(); ++path.Decls) {
196 if (auto *method_decl =
197 llvm::dyn_cast<clang::CXXMethodDecl>(*path.Decls))
198 if (method_decl->isVirtual() && !isOverload(decl, method_decl)) {
199 decls.push_back(method_decl);
200 return true;
201 }
202 }
203 }
204
205 return false;
206 };
207
208 if (decl->getParent()->lookupInBases(find_overridden_methods, paths)) {
209 for (auto *overridden_decl : decls)
210 decl->addOverriddenMethod(
211 llvm::cast<clang::CXXMethodDecl>(overridden_decl));
212 }
213}
214}
215
217 VTableContextBase &vtable_ctx,
218 ValueObject &valobj,
219 const ASTRecordLayout &record_layout) {
220 // Retrieve type info
221 CompilerType pointee_type;
222 CompilerType this_type(valobj.GetCompilerType());
223 uint32_t type_info = this_type.GetTypeInfo(&pointee_type);
224 if (!type_info)
226
227 // Check if it's a pointer or reference
228 bool ptr_or_ref = false;
229 if (type_info & (eTypeIsPointer | eTypeIsReference)) {
230 ptr_or_ref = true;
231 type_info = pointee_type.GetTypeInfo();
232 }
233
234 // We process only C++ classes
235 const uint32_t cpp_class = eTypeIsClass | eTypeIsCPlusPlus;
236 if ((type_info & cpp_class) != cpp_class)
238
239 // Calculate offset to VTable pointer
240 lldb::offset_t vbtable_ptr_offset =
241 vtable_ctx.isMicrosoft() ? record_layout.getVBPtrOffset().getQuantity()
242 : 0;
243
244 if (ptr_or_ref) {
245 // We have a pointer / ref to object, so read
246 // VTable pointer from process memory
247
250
251 auto vbtable_ptr_addr = valobj.GetValueAsUnsigned(LLDB_INVALID_ADDRESS);
252 if (vbtable_ptr_addr == LLDB_INVALID_ADDRESS)
254
255 vbtable_ptr_addr += vbtable_ptr_offset;
256
257 llvm::Expected<lldb::addr_t> vbtable_ptr_addr_or_err =
258 process.ReadPointerFromMemory(vbtable_ptr_addr);
259 if (!vbtable_ptr_addr_or_err) {
260 llvm::consumeError(vbtable_ptr_addr_or_err.takeError());
262 }
263 return *vbtable_ptr_addr_or_err;
264 }
265
266 // We have an object already read from process memory,
267 // so just extract VTable pointer from it
268
269 DataExtractor data;
270 Status err;
271 auto size = valobj.GetData(data, err);
272 if (err.Fail() || vbtable_ptr_offset + data.GetAddressByteSize() > size)
274
275 return data.GetAddress(&vbtable_ptr_offset);
276}
277
278static int64_t ReadVBaseOffsetFromVTable(Process &process,
279 VTableContextBase &vtable_ctx,
280 lldb::addr_t vtable_ptr,
281 const CXXRecordDecl *cxx_record_decl,
282 const CXXRecordDecl *base_class_decl) {
283 if (vtable_ctx.isMicrosoft()) {
284 clang::MicrosoftVTableContext &msoft_vtable_ctx =
285 static_cast<clang::MicrosoftVTableContext &>(vtable_ctx);
286
287 // Get the index into the virtual base table. The
288 // index is the index in uint32_t from vbtable_ptr
289 const unsigned vbtable_index =
290 msoft_vtable_ctx.getVBTableIndex(cxx_record_decl, base_class_decl);
291 const lldb::addr_t base_offset_addr = vtable_ptr + vbtable_index * 4;
292 Status err;
293 return process.ReadSignedIntegerFromMemory(base_offset_addr, 4, INT64_MAX,
294 err);
295 }
296
297 clang::ItaniumVTableContext &itanium_vtable_ctx =
298 static_cast<clang::ItaniumVTableContext &>(vtable_ctx);
299
300 clang::CharUnits base_offset_offset =
301 itanium_vtable_ctx.getVirtualBaseOffsetOffset(cxx_record_decl,
302 base_class_decl);
303 const lldb::addr_t base_offset_addr =
304 vtable_ptr + base_offset_offset.getQuantity();
305 const uint32_t base_offset_size = process.GetAddressByteSize();
306 Status err;
307 return process.ReadSignedIntegerFromMemory(base_offset_addr, base_offset_size,
308 INT64_MAX, err);
309}
310
311static bool GetVBaseBitOffset(VTableContextBase &vtable_ctx,
312 ValueObject &valobj,
313 const ASTRecordLayout &record_layout,
314 const CXXRecordDecl *cxx_record_decl,
315 const CXXRecordDecl *base_class_decl,
316 int32_t &bit_offset) {
318 Process *process = exe_ctx.GetProcessPtr();
319 if (!process)
320 return false;
321
322 lldb::addr_t vtable_ptr =
323 GetVTableAddress(*process, vtable_ctx, valobj, record_layout);
324 if (vtable_ptr == LLDB_INVALID_ADDRESS)
325 return false;
326
327 auto base_offset = ReadVBaseOffsetFromVTable(
328 *process, vtable_ctx, vtable_ptr, cxx_record_decl, base_class_decl);
329 if (base_offset == INT64_MAX)
330 return false;
331
332 if (vtable_ctx.isMicrosoft())
333 base_offset += record_layout.getVBPtrOffset().getQuantity();
334 bit_offset = base_offset * 8;
335
336 return true;
337}
338
341
343 static ClangASTMap *g_map_ptr = nullptr;
344 static llvm::once_flag g_once_flag;
345 llvm::call_once(g_once_flag, []() {
346 g_map_ptr = new ClangASTMap(); // leaked on purpose to avoid spins
347 });
348 return *g_map_ptr;
349}
350
352 bool is_complete_objc_class)
353 : m_payload(owning_module.GetValue()) {
354 SetIsCompleteObjCClass(is_complete_objc_class);
355}
356
358 assert(id.GetValue() < ObjCClassBit);
359 bool is_complete = IsCompleteObjCClass();
360 m_payload = id.GetValue();
361 SetIsCompleteObjCClass(is_complete);
362}
363
364static void SetMemberOwningModule(clang::Decl *member,
365 const clang::Decl *parent) {
366 if (!member || !parent)
367 return;
368
369 OptionalClangModuleID id(parent->getOwningModuleID());
370 if (!id.HasValue())
371 return;
372
373 member->setFromASTFile();
374 member->setOwningModuleID(id.GetValue());
375 member->setModuleOwnershipKind(clang::Decl::ModuleOwnershipKind::Visible);
376 if (llvm::isa<clang::NamedDecl>(member))
377 if (auto *dc = llvm::dyn_cast<clang::DeclContext>(parent)) {
378 dc->setHasExternalVisibleStorage(true);
379 // This triggers ExternalASTSource::FindExternalVisibleDeclsByName() to be
380 // called when searching for members.
381 dc->setHasExternalLexicalStorage(true);
382 }
383}
384
386
387bool TypeSystemClang::IsOperator(llvm::StringRef name,
388 clang::OverloadedOperatorKind &op_kind) {
389 // All operators have to start with "operator".
390 if (!name.consume_front("operator"))
391 return false;
392
393 // Remember if there was a space after "operator". This is necessary to
394 // check for collisions with strangely named functions like "operatorint()".
395 bool space_after_operator = name.consume_front(" ");
396
397 op_kind = StringSwitch<clang::OverloadedOperatorKind>(name)
398 .Case("+", clang::OO_Plus)
399 .Case("+=", clang::OO_PlusEqual)
400 .Case("++", clang::OO_PlusPlus)
401 .Case("-", clang::OO_Minus)
402 .Case("-=", clang::OO_MinusEqual)
403 .Case("--", clang::OO_MinusMinus)
404 .Case("->", clang::OO_Arrow)
405 .Case("->*", clang::OO_ArrowStar)
406 .Case("*", clang::OO_Star)
407 .Case("*=", clang::OO_StarEqual)
408 .Case("/", clang::OO_Slash)
409 .Case("/=", clang::OO_SlashEqual)
410 .Case("%", clang::OO_Percent)
411 .Case("%=", clang::OO_PercentEqual)
412 .Case("^", clang::OO_Caret)
413 .Case("^=", clang::OO_CaretEqual)
414 .Case("&", clang::OO_Amp)
415 .Case("&=", clang::OO_AmpEqual)
416 .Case("&&", clang::OO_AmpAmp)
417 .Case("|", clang::OO_Pipe)
418 .Case("|=", clang::OO_PipeEqual)
419 .Case("||", clang::OO_PipePipe)
420 .Case("~", clang::OO_Tilde)
421 .Case("!", clang::OO_Exclaim)
422 .Case("!=", clang::OO_ExclaimEqual)
423 .Case("=", clang::OO_Equal)
424 .Case("==", clang::OO_EqualEqual)
425 .Case("<", clang::OO_Less)
426 .Case("<=>", clang::OO_Spaceship)
427 .Case("<<", clang::OO_LessLess)
428 .Case("<<=", clang::OO_LessLessEqual)
429 .Case("<=", clang::OO_LessEqual)
430 .Case(">", clang::OO_Greater)
431 .Case(">>", clang::OO_GreaterGreater)
432 .Case(">>=", clang::OO_GreaterGreaterEqual)
433 .Case(">=", clang::OO_GreaterEqual)
434 .Case("()", clang::OO_Call)
435 .Case("[]", clang::OO_Subscript)
436 .Case(",", clang::OO_Comma)
437 .Default(clang::NUM_OVERLOADED_OPERATORS);
438
439 // We found a fitting operator, so we can exit now.
440 if (op_kind != clang::NUM_OVERLOADED_OPERATORS)
441 return true;
442
443 // After the "operator " or "operator" part is something unknown. This means
444 // it's either one of the named operators (new/delete), a conversion operator
445 // (e.g. operator bool) or a function which name starts with "operator"
446 // (e.g. void operatorbool).
447
448 // If it's a function that starts with operator it can't have a space after
449 // "operator" because identifiers can't contain spaces.
450 // E.g. "operator int" (conversion operator)
451 // vs. "operatorint" (function with colliding name).
452 if (!space_after_operator)
453 return false; // not an operator.
454
455 // Now the operator is either one of the named operators or a conversion
456 // operator.
457 op_kind = StringSwitch<clang::OverloadedOperatorKind>(name)
458 .Case("new", clang::OO_New)
459 .Case("new[]", clang::OO_Array_New)
460 .Case("delete", clang::OO_Delete)
461 .Case("delete[]", clang::OO_Array_Delete)
462 // conversion operators hit this case.
463 .Default(clang::NUM_OVERLOADED_OPERATORS);
464
465 return true;
466}
467
468clang::AccessSpecifier
470 switch (access) {
471 default:
472 break;
473 case eAccessNone:
474 return AS_none;
475 case eAccessPublic:
476 return AS_public;
477 case eAccessPrivate:
478 return AS_private;
479 case eAccessProtected:
480 return AS_protected;
481 }
482 return AS_none;
483}
484
485static void ParseLangArgs(LangOptions &Opts, ArchSpec arch) {
486 // FIXME: Cleanup per-file based stuff.
487
488 std::vector<std::string> Includes;
489 LangOptions::setLangDefaults(Opts, clang::Language::ObjCXX, arch.GetTriple(),
490 Includes, clang::LangStandard::lang_gnucxx98);
491
492 Opts.setValueVisibilityMode(DefaultVisibility);
493
494 // Mimicing gcc's behavior, trigraphs are only enabled if -trigraphs is
495 // specified, or -std is set to a conforming mode.
496 Opts.Trigraphs = !Opts.GNUMode;
497 Opts.CharIsSigned = arch.CharIsSignedByDefault();
498
499 // This is needed to allocate the extra space for the owning module
500 // on each decl.
501 Opts.ModulesLocalVisibility = 1;
502}
503
505 llvm::Triple target_triple) {
506 m_display_name = name.str();
507 if (!target_triple.str().empty())
508 SetTargetTriple(target_triple.str());
509 // The caller didn't pass an ASTContext so create a new one for this
510 // TypeSystemClang.
512
513 LogCreation();
514}
515
516TypeSystemClang::TypeSystemClang(llvm::StringRef name,
517 ASTContext &existing_ctxt) {
518 m_display_name = name.str();
519 SetTargetTriple(existing_ctxt.getTargetInfo().getTriple().str());
520
521 m_ast_up.reset(&existing_ctxt);
522 GetASTMap().Insert(&existing_ctxt, this);
523
524 LogCreation();
525}
526
527// Destructor
529
531 lldb_private::Module *module,
532 Target *target) {
533 if (!TypeSystemClangSupportsLanguage(language))
534 return lldb::TypeSystemSP();
535 ArchSpec arch;
536 if (module)
537 arch = module->GetArchitecture();
538 else if (target)
539 arch = target->GetArchitecture();
540
541 if (!arch.IsValid())
542 return lldb::TypeSystemSP();
543
544 llvm::Triple triple = arch.GetTriple();
545 // LLVM wants this to be set to iOS or MacOSX; if we're working on
546 // a bare-boards type image, change the triple for llvm's benefit.
547 if (triple.getVendor() == llvm::Triple::Apple &&
548 triple.getOS() == llvm::Triple::UnknownOS) {
549 if (triple.getArch() == llvm::Triple::arm ||
550 triple.getArch() == llvm::Triple::aarch64 ||
551 triple.getArch() == llvm::Triple::aarch64_32 ||
552 triple.getArch() == llvm::Triple::thumb) {
553 triple.setOS(llvm::Triple::IOS);
554 } else {
555 triple.setOS(llvm::Triple::MacOSX);
556 }
557 }
558
559 if (module) {
560 std::string ast_name =
561 "ASTContext for '" + module->GetFileSpec().GetPath() + "'";
562 return std::make_shared<TypeSystemClang>(ast_name, triple);
563 } else if (target && target->IsValid())
564 return std::make_shared<ScratchTypeSystemClang>(*target, triple);
565 return lldb::TypeSystemSP();
566}
567
585
597
598namespace {
599class CommandObjectTargetModulesDumpClangPCMInfo : public CommandObjectParsed {
600public:
601 CommandObjectTargetModulesDumpClangPCMInfo(CommandInterpreter &interpreter)
603 interpreter, "target modules dump pcm-info",
604 "Dump information about the given clang module (pcm).") {
605 // Take a single file argument.
606 AddSimpleArgumentList(eArgTypeFilename);
607 }
608
609 ~CommandObjectTargetModulesDumpClangPCMInfo() override = default;
610
611protected:
612 void DoExecute(Args &command, CommandReturnObject &result) override {
613 if (command.GetArgumentCount() != 1) {
614 result.AppendErrorWithFormat("'%s' takes exactly one pcm path argument",
615 m_cmd_name.c_str());
616 return;
617 }
618
619 const char *pcm_path = command.GetArgumentAtIndex(0);
620 const FileSpec pcm_file{pcm_path};
621
622 if (pcm_file.GetFileNameExtension() != ".pcm") {
623 result.AppendError("file must have a .pcm extension");
624 return;
625 }
626
627 if (!FileSystem::Instance().Exists(pcm_file)) {
628 result.AppendError("pcm file does not exist");
629 return;
630 }
631
632 const char *clang_args[] = {"clang", pcm_path};
633 clang::CompilerInstance compiler(clang::createInvocation(clang_args));
634 compiler.setVirtualFileSystem(
635 FileSystem::Instance().GetVirtualFileSystem());
636 compiler.createDiagnostics();
637
638 // Pass empty deleter to not attempt to free memory that was allocated
639 // outside of the current scope, possibly statically.
640 std::shared_ptr<llvm::raw_ostream> Out(
641 &result.GetOutputStream().AsRawOstream(), [](llvm::raw_ostream *) {});
642 clang::DumpModuleInfoAction dump_module_info(Out);
643 // DumpModuleInfoAction requires ObjectFilePCHContainerReader.
644 compiler.getPCHContainerOperations()->registerReader(
645 std::make_unique<clang::ObjectFilePCHContainerReader>());
646
647 if (compiler.ExecuteAction(dump_module_info))
649 }
650};
651} // namespace
652
655 GetPluginNameStatic(), "clang base AST context plug-in", CreateInstance,
658
659 llvm::SmallString<128> path;
660 if (clang::driver::Driver::getDefaultModuleCachePath(path))
662 FileSpec(path));
663}
664
668
670 CommandInterpreter &interpreter = debugger.GetCommandInterpreter();
671 llvm::StringRef parent = "target modules dump";
672 if (CommandObject *dump = interpreter.GetCommandObjectForCommand(parent))
673 dump->LoadSubCommand(
674 "pcm-info",
675 std::make_shared<CommandObjectTargetModulesDumpClangPCMInfo>(
676 interpreter));
677}
678
680 assert(m_ast_up);
681 GetASTMap().Erase(m_ast_up.get());
682 if (!m_ast_owned)
683 m_ast_up.release();
684
685 m_builtins_up.reset();
686 m_selector_table_up.reset();
687 m_identifier_table_up.reset();
688 m_target_info_up.reset();
689 m_target_options_rp.reset();
691 m_source_manager_up.reset();
692 m_language_options_up.reset();
693}
694
696 // Ensure that the new sema actually belongs to our ASTContext.
697 assert(s == nullptr || &s->getASTContext() == m_ast_up.get());
698 m_sema = s;
699}
700
702 return m_target_triple.c_str();
703}
704
705void TypeSystemClang::SetTargetTriple(llvm::StringRef target_triple) {
706 m_target_triple = target_triple.str();
707}
708
710 llvm::IntrusiveRefCntPtr<ExternalASTSource> ast_source_sp) {
711 ASTContext &ast = getASTContext();
712 ast.getTranslationUnitDecl()->setHasExternalLexicalStorage(true);
713 ast.setExternalSource(std::move(ast_source_sp));
714}
715
717 assert(m_ast_up);
718 return *m_ast_up;
719}
720
721class NullDiagnosticConsumer : public DiagnosticConsumer {
722public:
724
725 void HandleDiagnostic(DiagnosticsEngine::Level DiagLevel,
726 const clang::Diagnostic &info) override {
727 if (m_log) {
728 llvm::SmallVector<char, 32> diag_str(10);
729 info.FormatDiagnostic(diag_str);
730 diag_str.push_back('\0');
731 LLDB_LOGF(m_log, "Compiler diagnostic: %s\n", diag_str.data());
732 }
733 }
734
735 DiagnosticConsumer *clone(DiagnosticsEngine &Diags) const {
736 return new NullDiagnosticConsumer();
737 }
738
739private:
741};
742
744 assert(!m_ast_up);
745 m_ast_owned = true;
746
747 m_language_options_up = std::make_unique<LangOptions>();
749
751 std::make_unique<IdentifierTable>(*m_language_options_up, nullptr);
752 m_builtins_up = std::make_unique<Builtin::Context>();
753
754 m_selector_table_up = std::make_unique<SelectorTable>();
755
756 clang::FileSystemOptions file_system_options;
757 m_file_manager_up = std::make_unique<clang::FileManager>(
758 file_system_options, FileSystem::Instance().GetVirtualFileSystem());
759
760 m_diagnostic_options_up = std::make_unique<DiagnosticOptions>();
761 m_diagnostics_engine_up = std::make_unique<DiagnosticsEngine>(
762 DiagnosticIDs::create(), *m_diagnostic_options_up);
763
764 m_source_manager_up = std::make_unique<clang::SourceManager>(
766 m_ast_up = std::make_unique<ASTContext>(
768 *m_selector_table_up, *m_builtins_up, TU_Complete);
769
770 m_diagnostic_consumer_up = std::make_unique<NullDiagnosticConsumer>();
771 m_ast_up->getDiagnostics().setClient(m_diagnostic_consumer_up.get(), false);
772
773 // This can be NULL if we don't know anything about the architecture or if
774 // the target for an architecture isn't enabled in the llvm/clang that we
775 // built
776 TargetInfo *target_info = getTargetInfo();
777 if (target_info)
778 m_ast_up->InitBuiltinTypes(*target_info);
779 else {
780 std::string err =
781 llvm::formatv(
782 "Failed to initialize builtin ASTContext types for target '{0}'. "
783 "Printing variables may behave unexpectedly.",
785 .str();
786
788
789 static std::once_flag s_uninitialized_target_warning;
790 Debugger::ReportWarning(std::move(err), /*debugger_id=*/std::nullopt,
791 &s_uninitialized_target_warning);
792 }
793
794 GetASTMap().Insert(m_ast_up.get(), this);
795
796 auto ast_source_sp =
797 llvm::makeIntrusiveRefCnt<ClangExternalASTSourceCallbacks>(*this);
798 SetExternalSource(ast_source_sp);
799}
800
802 TypeSystemClang *clang_ast = GetASTMap().Lookup(ast);
803 return clang_ast;
804}
805
806clang::MangleContext *TypeSystemClang::getMangleContext() {
807 if (m_mangle_ctx_up == nullptr)
808 m_mangle_ctx_up.reset(getASTContext().createMangleContext());
809 return m_mangle_ctx_up.get();
810}
811
812std::shared_ptr<clang::TargetOptions> &TypeSystemClang::getTargetOptions() {
813 if (m_target_options_rp == nullptr && !m_target_triple.empty()) {
814 m_target_options_rp = std::make_shared<clang::TargetOptions>();
815 if (m_target_options_rp != nullptr)
817 }
818 return m_target_options_rp;
819}
820
822 // target_triple should be something like "x86_64-apple-macosx"
823 if (m_target_info_up == nullptr && !m_target_triple.empty())
824 m_target_info_up.reset(TargetInfo::CreateTargetInfo(
825 getASTContext().getDiagnostics(), *getTargetOptions()));
826 return m_target_info_up.get();
827}
828
829#pragma mark Basic Types
830
831static inline bool QualTypeMatchesBitSize(const uint64_t bit_size,
832 ASTContext &ast, QualType qual_type) {
833 uint64_t qual_type_bit_size = ast.getTypeSize(qual_type);
834 return qual_type_bit_size == bit_size;
835}
836
839 size_t bit_size) {
840 ASTContext &ast = getASTContext();
841
842 if (!ast.VoidPtrTy)
843 return {};
844
845 switch (encoding) {
846 case eEncodingInvalid:
847 if (QualTypeMatchesBitSize(bit_size, ast, ast.VoidPtrTy))
848 return GetType(ast.VoidPtrTy);
849 break;
850
851 case eEncodingUint:
852 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedCharTy))
853 return GetType(ast.UnsignedCharTy);
854 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedShortTy))
855 return GetType(ast.UnsignedShortTy);
856 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedIntTy))
857 return GetType(ast.UnsignedIntTy);
858 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedLongTy))
859 return GetType(ast.UnsignedLongTy);
860 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedLongLongTy))
861 return GetType(ast.UnsignedLongLongTy);
862 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedInt128Ty))
863 return GetType(ast.UnsignedInt128Ty);
864 break;
865
866 case eEncodingSint:
867 if (QualTypeMatchesBitSize(bit_size, ast, ast.SignedCharTy))
868 return GetType(ast.SignedCharTy);
869 if (QualTypeMatchesBitSize(bit_size, ast, ast.ShortTy))
870 return GetType(ast.ShortTy);
871 if (QualTypeMatchesBitSize(bit_size, ast, ast.IntTy))
872 return GetType(ast.IntTy);
873 if (QualTypeMatchesBitSize(bit_size, ast, ast.LongTy))
874 return GetType(ast.LongTy);
875 if (QualTypeMatchesBitSize(bit_size, ast, ast.LongLongTy))
876 return GetType(ast.LongLongTy);
877 if (QualTypeMatchesBitSize(bit_size, ast, ast.Int128Ty))
878 return GetType(ast.Int128Ty);
879 break;
880
881 case eEncodingIEEE754:
882 if (QualTypeMatchesBitSize(bit_size, ast, ast.FloatTy))
883 return GetType(ast.FloatTy);
884 if (QualTypeMatchesBitSize(bit_size, ast, ast.DoubleTy))
885 return GetType(ast.DoubleTy);
886 if (QualTypeMatchesBitSize(bit_size, ast, ast.LongDoubleTy))
887 return GetType(ast.LongDoubleTy);
888 if (QualTypeMatchesBitSize(bit_size, ast, ast.HalfTy))
889 return GetType(ast.HalfTy);
890 if (QualTypeMatchesBitSize(bit_size, ast, ast.Float128Ty))
891 return GetType(ast.Float128Ty);
892 break;
893
894 case eEncodingVector:
895 // Sanity check that bit_size is a multiple of 8's.
896 if (bit_size && !(bit_size & 0x7u))
897 return GetType(ast.getExtVectorType(ast.UnsignedCharTy, bit_size / 8));
898 break;
899 }
900
901 return CompilerType();
902}
903
905 static const llvm::StringMap<lldb::BasicType> g_type_map = {
906 // "void"
907 {"void", eBasicTypeVoid},
908
909 // "char"
910 {"char", eBasicTypeChar},
911 {"signed char", eBasicTypeSignedChar},
912 {"unsigned char", eBasicTypeUnsignedChar},
913 {"wchar_t", eBasicTypeWChar},
914 {"signed wchar_t", eBasicTypeSignedWChar},
915 {"unsigned wchar_t", eBasicTypeUnsignedWChar},
916
917 // "short"
918 {"short", eBasicTypeShort},
919 {"short int", eBasicTypeShort},
920 {"unsigned short", eBasicTypeUnsignedShort},
921 {"unsigned short int", eBasicTypeUnsignedShort},
922
923 // "int"
924 {"int", eBasicTypeInt},
925 {"signed int", eBasicTypeInt},
926 {"unsigned int", eBasicTypeUnsignedInt},
927 {"unsigned", eBasicTypeUnsignedInt},
928
929 // "long"
930 {"long", eBasicTypeLong},
931 {"long int", eBasicTypeLong},
932 {"unsigned long", eBasicTypeUnsignedLong},
933 {"unsigned long int", eBasicTypeUnsignedLong},
934
935 // "long long"
936 {"long long", eBasicTypeLongLong},
937 {"long long int", eBasicTypeLongLong},
938 {"unsigned long long", eBasicTypeUnsignedLongLong},
939 {"unsigned long long int", eBasicTypeUnsignedLongLong},
940
941 // "int128"
942 //
943 // The following two lines are here only
944 // for the sake of backward-compatibility.
945 // Neither "__int128_t", nor "__uint128_t" are basic-types.
946 // They are typedefs.
947 {"__int128_t", eBasicTypeInt128},
948 {"__uint128_t", eBasicTypeUnsignedInt128},
949 // In order to be consistent with:
950 // - gcc's C programming language extension related to 128-bit integers
951 // https://gcc.gnu.org/onlinedocs/gcc/_005f_005fint128.html
952 // - the "BuiltinType::getName" method in LLVM
953 // the following two lines must be present:
954 {"__int128", eBasicTypeInt128},
955 {"unsigned __int128", eBasicTypeUnsignedInt128},
956
957 // "bool"
958 {"bool", eBasicTypeBool},
959 {"_Bool", eBasicTypeBool},
960
961 // Miscellaneous
962 {"float", eBasicTypeFloat},
963 {"double", eBasicTypeDouble},
964 {"long double", eBasicTypeLongDouble},
965 {"id", eBasicTypeObjCID},
966 {"SEL", eBasicTypeObjCSel},
967 {"nullptr", eBasicTypeNullPtr},
968 };
969
970 auto iter = g_type_map.find(name);
971 if (iter == g_type_map.end())
972 return eBasicTypeInvalid;
973
974 return iter->second;
975}
976
978 if (m_pointer_byte_size != 0)
979 return m_pointer_byte_size;
980 auto size_or_err =
982 if (!size_or_err) {
983 LLDB_LOG_ERROR(GetLog(LLDBLog::Types), size_or_err.takeError(), "{0}");
984 return m_pointer_byte_size;
985 }
986 m_pointer_byte_size = *size_or_err;
987 return m_pointer_byte_size;
988}
989
991 clang::ASTContext &ast = getASTContext();
992
994 GetOpaqueCompilerType(&ast, basic_type);
995
996 if (clang_type)
997 return CompilerType(weak_from_this(), clang_type);
998 return CompilerType();
999}
1000
1002 llvm::StringRef type_name, uint32_t dw_ate, uint32_t bit_size) {
1003 ASTContext &ast = getASTContext();
1004
1005 if (!ast.VoidPtrTy)
1006 return {};
1007
1008 switch (dw_ate) {
1009 default:
1010 break;
1011
1012 case DW_ATE_address:
1013 if (QualTypeMatchesBitSize(bit_size, ast, ast.VoidPtrTy))
1014 return GetType(ast.VoidPtrTy);
1015 break;
1016
1017 case DW_ATE_boolean:
1018 if (QualTypeMatchesBitSize(bit_size, ast, ast.BoolTy))
1019 return GetType(ast.BoolTy);
1020 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedCharTy))
1021 return GetType(ast.UnsignedCharTy);
1022 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedShortTy))
1023 return GetType(ast.UnsignedShortTy);
1024 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedIntTy))
1025 return GetType(ast.UnsignedIntTy);
1026 break;
1027
1028 case DW_ATE_lo_user:
1029 // This has been seen to mean DW_AT_complex_integer
1030 if (type_name.contains("complex")) {
1031 CompilerType complex_int_clang_type =
1032 GetBuiltinTypeForDWARFEncodingAndBitSize("int", DW_ATE_signed,
1033 bit_size / 2);
1034 return GetType(
1035 ast.getComplexType(ClangUtil::GetQualType(complex_int_clang_type)));
1036 }
1037 break;
1038
1039 case DW_ATE_complex_float: {
1040 CanQualType FloatComplexTy = ast.getComplexType(ast.FloatTy);
1041 if (QualTypeMatchesBitSize(bit_size, ast, FloatComplexTy))
1042 return GetType(FloatComplexTy);
1043
1044 CanQualType DoubleComplexTy = ast.getComplexType(ast.DoubleTy);
1045 if (QualTypeMatchesBitSize(bit_size, ast, DoubleComplexTy))
1046 return GetType(DoubleComplexTy);
1047
1048 CanQualType LongDoubleComplexTy = ast.getComplexType(ast.LongDoubleTy);
1049 if (QualTypeMatchesBitSize(bit_size, ast, LongDoubleComplexTy))
1050 return GetType(LongDoubleComplexTy);
1051
1052 CompilerType complex_float_clang_type =
1053 GetBuiltinTypeForDWARFEncodingAndBitSize("float", DW_ATE_float,
1054 bit_size / 2);
1055 return GetType(
1056 ast.getComplexType(ClangUtil::GetQualType(complex_float_clang_type)));
1057 }
1058
1059 case DW_ATE_float:
1060 if (type_name == "float" &&
1061 QualTypeMatchesBitSize(bit_size, ast, ast.FloatTy))
1062 return GetType(ast.FloatTy);
1063 if (type_name == "double" &&
1064 QualTypeMatchesBitSize(bit_size, ast, ast.DoubleTy))
1065 return GetType(ast.DoubleTy);
1066 if (type_name == "long double" &&
1067 QualTypeMatchesBitSize(bit_size, ast, ast.LongDoubleTy))
1068 return GetType(ast.LongDoubleTy);
1069 if (type_name == "__bf16" &&
1070 QualTypeMatchesBitSize(bit_size, ast, ast.BFloat16Ty))
1071 return GetType(ast.BFloat16Ty);
1072 if (type_name == "_Float16" &&
1073 QualTypeMatchesBitSize(bit_size, ast, ast.Float16Ty))
1074 return GetType(ast.Float16Ty);
1075 // As Rust currently uses `TypeSystemClang`, match `f128` here as well so it
1076 // doesn't get misinterpreted as `long double` on targets where they are
1077 // the same size but different formats.
1078 if ((type_name == "__float128" || type_name == "_Float128" ||
1079 type_name == "f128") &&
1080 QualTypeMatchesBitSize(bit_size, ast, ast.Float128Ty))
1081 return GetType(ast.Float128Ty);
1082 // Fall back to not requiring a name match
1083 if (QualTypeMatchesBitSize(bit_size, ast, ast.FloatTy))
1084 return GetType(ast.FloatTy);
1085 if (QualTypeMatchesBitSize(bit_size, ast, ast.DoubleTy))
1086 return GetType(ast.DoubleTy);
1087 if (QualTypeMatchesBitSize(bit_size, ast, ast.LongDoubleTy))
1088 return GetType(ast.LongDoubleTy);
1089 if (QualTypeMatchesBitSize(bit_size, ast, ast.HalfTy))
1090 return GetType(ast.HalfTy);
1091 if (QualTypeMatchesBitSize(bit_size, ast, ast.Float128Ty))
1092 return GetType(ast.Float128Ty);
1093 break;
1094
1095 case DW_ATE_signed:
1096 if (!type_name.empty()) {
1097 if (type_name.starts_with("_BitInt"))
1098 return GetType(ast.getBitIntType(/*Unsigned=*/false, bit_size));
1099 if (type_name == "wchar_t" &&
1100 QualTypeMatchesBitSize(bit_size, ast, ast.WCharTy) &&
1101 (getTargetInfo() &&
1102 TargetInfo::isTypeSigned(getTargetInfo()->getWCharType())))
1103 return GetType(ast.WCharTy);
1104 if (type_name == "void" &&
1105 QualTypeMatchesBitSize(bit_size, ast, ast.VoidTy))
1106 return GetType(ast.VoidTy);
1107 if (type_name.contains("long long") &&
1108 QualTypeMatchesBitSize(bit_size, ast, ast.LongLongTy))
1109 return GetType(ast.LongLongTy);
1110 if (type_name.contains("long") &&
1111 QualTypeMatchesBitSize(bit_size, ast, ast.LongTy))
1112 return GetType(ast.LongTy);
1113 if (type_name.contains("short") &&
1114 QualTypeMatchesBitSize(bit_size, ast, ast.ShortTy))
1115 return GetType(ast.ShortTy);
1116 if (type_name.contains("char")) {
1117 if (QualTypeMatchesBitSize(bit_size, ast, ast.CharTy))
1118 return GetType(ast.CharTy);
1119 if (QualTypeMatchesBitSize(bit_size, ast, ast.SignedCharTy))
1120 return GetType(ast.SignedCharTy);
1121 }
1122 if (type_name.contains("int")) {
1123 if (QualTypeMatchesBitSize(bit_size, ast, ast.IntTy))
1124 return GetType(ast.IntTy);
1125 if (QualTypeMatchesBitSize(bit_size, ast, ast.Int128Ty))
1126 return GetType(ast.Int128Ty);
1127 }
1128 }
1129 // We weren't able to match up a type name, just search by size
1130 if (QualTypeMatchesBitSize(bit_size, ast, ast.CharTy))
1131 return GetType(ast.CharTy);
1132 if (QualTypeMatchesBitSize(bit_size, ast, ast.ShortTy))
1133 return GetType(ast.ShortTy);
1134 if (QualTypeMatchesBitSize(bit_size, ast, ast.IntTy))
1135 return GetType(ast.IntTy);
1136 if (QualTypeMatchesBitSize(bit_size, ast, ast.LongTy))
1137 return GetType(ast.LongTy);
1138 if (QualTypeMatchesBitSize(bit_size, ast, ast.LongLongTy))
1139 return GetType(ast.LongLongTy);
1140 if (QualTypeMatchesBitSize(bit_size, ast, ast.Int128Ty))
1141 return GetType(ast.Int128Ty);
1142 break;
1143
1144 case DW_ATE_signed_char:
1145 if (type_name == "char") {
1146 if (QualTypeMatchesBitSize(bit_size, ast, ast.CharTy))
1147 return GetType(ast.CharTy);
1148 }
1149 if (QualTypeMatchesBitSize(bit_size, ast, ast.SignedCharTy))
1150 return GetType(ast.SignedCharTy);
1151 break;
1152
1153 case DW_ATE_unsigned:
1154 if (!type_name.empty()) {
1155 if (type_name.starts_with("unsigned _BitInt"))
1156 return GetType(ast.getBitIntType(/*Unsigned=*/true, bit_size));
1157 if (type_name == "wchar_t") {
1158 if (QualTypeMatchesBitSize(bit_size, ast, ast.WCharTy)) {
1159 if (!(getTargetInfo() &&
1160 TargetInfo::isTypeSigned(getTargetInfo()->getWCharType())))
1161 return GetType(ast.WCharTy);
1162 }
1163 }
1164 if (type_name.contains("long long")) {
1165 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedLongLongTy))
1166 return GetType(ast.UnsignedLongLongTy);
1167 } else if (type_name.contains("long")) {
1168 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedLongTy))
1169 return GetType(ast.UnsignedLongTy);
1170 } else if (type_name.contains("short")) {
1171 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedShortTy))
1172 return GetType(ast.UnsignedShortTy);
1173 } else if (type_name.contains("char")) {
1174 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedCharTy))
1175 return GetType(ast.UnsignedCharTy);
1176 } else if (type_name.contains("int")) {
1177 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedIntTy))
1178 return GetType(ast.UnsignedIntTy);
1179 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedInt128Ty))
1180 return GetType(ast.UnsignedInt128Ty);
1181 }
1182 }
1183 // We weren't able to match up a type name, just search by size
1184 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedCharTy))
1185 return GetType(ast.UnsignedCharTy);
1186 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedShortTy))
1187 return GetType(ast.UnsignedShortTy);
1188 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedIntTy))
1189 return GetType(ast.UnsignedIntTy);
1190 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedLongTy))
1191 return GetType(ast.UnsignedLongTy);
1192 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedLongLongTy))
1193 return GetType(ast.UnsignedLongLongTy);
1194 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedInt128Ty))
1195 return GetType(ast.UnsignedInt128Ty);
1196 break;
1197
1198 case DW_ATE_unsigned_char:
1199 if (type_name == "char") {
1200 if (QualTypeMatchesBitSize(bit_size, ast, ast.CharTy))
1201 return GetType(ast.CharTy);
1202 }
1203 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedCharTy))
1204 return GetType(ast.UnsignedCharTy);
1205 if (QualTypeMatchesBitSize(bit_size, ast, ast.UnsignedShortTy))
1206 return GetType(ast.UnsignedShortTy);
1207 break;
1208
1209 case DW_ATE_imaginary_float:
1210 break;
1211
1212 case DW_ATE_UTF:
1213 switch (bit_size) {
1214 case 8:
1215 return GetType(ast.Char8Ty);
1216 case 16:
1217 return GetType(ast.Char16Ty);
1218 case 32:
1219 return GetType(ast.Char32Ty);
1220 default:
1221 if (!type_name.empty()) {
1222 if (type_name == "char16_t")
1223 return GetType(ast.Char16Ty);
1224 if (type_name == "char32_t")
1225 return GetType(ast.Char32Ty);
1226 if (type_name == "char8_t")
1227 return GetType(ast.Char8Ty);
1228 }
1229 }
1230 break;
1231 }
1232
1233 Log *log = GetLog(LLDBLog::Types);
1234 LLDB_LOG(log,
1235 "error: need to add support for DW_TAG_base_type '{0}' "
1236 "encoded with DW_ATE = {1:x}, bit_size = {2}",
1237 type_name, dw_ate, bit_size);
1238 return CompilerType();
1239}
1240
1242 ASTContext &ast = getASTContext();
1243 QualType char_type(ast.CharTy);
1244
1245 if (is_const)
1246 char_type.addConst();
1247
1248 return GetType(ast.getPointerType(char_type));
1249}
1250
1252 bool ignore_qualifiers) {
1253 auto ast = type1.GetTypeSystem<TypeSystemClang>();
1254 if (!ast || type1.GetTypeSystem() != type2.GetTypeSystem())
1255 return false;
1256
1257 if (type1.GetOpaqueQualType() == type2.GetOpaqueQualType())
1258 return true;
1259
1260 QualType type1_qual = ClangUtil::GetQualType(type1);
1261 QualType type2_qual = ClangUtil::GetQualType(type2);
1262
1263 if (ignore_qualifiers) {
1264 type1_qual = type1_qual.getUnqualifiedType();
1265 type2_qual = type2_qual.getUnqualifiedType();
1266 }
1267
1268 return ast->getASTContext().hasSameType(type1_qual, type2_qual);
1269}
1270
1272 if (!opaque_decl)
1273 return CompilerType();
1274
1275 clang::Decl *decl = static_cast<clang::Decl *>(opaque_decl);
1276 if (auto *named_decl = llvm::dyn_cast<clang::NamedDecl>(decl))
1277 return GetTypeForDecl(named_decl);
1278 return CompilerType();
1279}
1280
1282 // Check that the DeclContext actually belongs to this ASTContext.
1283 assert(&ctx->getParentASTContext() == &getASTContext());
1284 return CompilerDeclContext(this, ctx);
1285}
1286
1288 if (clang::ObjCInterfaceDecl *interface_decl =
1289 llvm::dyn_cast<clang::ObjCInterfaceDecl>(decl))
1290 return GetTypeForDecl(interface_decl);
1291 if (clang::TagDecl *tag_decl = llvm::dyn_cast<clang::TagDecl>(decl))
1292 return GetTypeForDecl(tag_decl);
1293 if (clang::ValueDecl *value_decl = llvm::dyn_cast<clang::ValueDecl>(decl))
1294 return GetTypeForDecl(value_decl);
1295 return CompilerType();
1296}
1297
1299 return GetType(getASTContext().getCanonicalTagType(decl));
1300}
1301
1302CompilerType TypeSystemClang::GetTypeForDecl(ObjCInterfaceDecl *decl) {
1303 return GetType(getASTContext().getObjCInterfaceType(decl));
1304}
1305
1306CompilerType TypeSystemClang::GetTypeForDecl(clang::ValueDecl *value_decl) {
1307 return GetType(value_decl->getType());
1308}
1309
1310#pragma mark Structure, Unions, Classes
1311
1313 OptionalClangModuleID owning_module) {
1314 if (!decl || !owning_module.HasValue())
1315 return;
1316
1317 decl->setFromASTFile();
1318 decl->setOwningModuleID(owning_module.GetValue());
1319 decl->setModuleOwnershipKind(clang::Decl::ModuleOwnershipKind::Visible);
1320}
1321
1324 OptionalClangModuleID parent,
1325 bool is_framework, bool is_explicit) {
1326 // Get the external AST source which holds the modules.
1327 auto *ast_source = llvm::dyn_cast_or_null<ClangExternalASTSourceCallbacks>(
1328 getASTContext().getExternalSource());
1329 assert(ast_source && "external ast source was lost");
1330 if (!ast_source)
1331 return {};
1332
1333 // Lazily initialize the module map.
1334 if (!m_header_search_up) {
1335 m_header_search_opts_up = std::make_unique<clang::HeaderSearchOptions>();
1336 m_header_search_up = std::make_unique<clang::HeaderSearch>(
1339 m_target_info_up.get());
1340 m_module_map_up = std::make_unique<clang::ModuleMap>(
1343 }
1344
1345 // Get or create the module context.
1346 bool created;
1347 clang::Module *module;
1348 auto parent_desc = ast_source->getSourceDescriptor(parent.GetValue());
1349 std::tie(module, created) = m_module_map_up->findOrCreateModule(
1350 name, parent_desc ? parent_desc->getModuleOrNull() : nullptr,
1351 is_framework, is_explicit);
1352 if (!created)
1353 return ast_source->GetIDForModule(module);
1354
1355 return ast_source->RegisterModule(module);
1356}
1357
1359 clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module,
1360 llvm::StringRef name, int kind, LanguageType language,
1361 std::optional<ClangASTMetadata> metadata, bool exports_symbols) {
1362 ASTContext &ast = getASTContext();
1363
1364 if (decl_ctx == nullptr)
1365 decl_ctx = ast.getTranslationUnitDecl();
1366
1367 if (language == eLanguageTypeObjC ||
1368 language == eLanguageTypeObjC_plus_plus) {
1369 bool isInternal = false;
1370 return CreateObjCClass(name, decl_ctx, owning_module, isInternal, metadata);
1371 }
1372
1373 // NOTE: Eventually CXXRecordDecl will be merged back into RecordDecl and
1374 // we will need to update this code. I was told to currently always use the
1375 // CXXRecordDecl class since we often don't know from debug information if
1376 // something is struct or a class, so we default to always use the more
1377 // complete definition just in case.
1378
1379 bool has_name = !name.empty();
1380 CXXRecordDecl *decl = CXXRecordDecl::CreateDeserialized(ast, GlobalDeclID());
1381 decl->setTagKind(static_cast<TagDecl::TagKind>(kind));
1382 decl->setDeclContext(decl_ctx);
1383 if (has_name)
1384 decl->setDeclName(&ast.Idents.get(name));
1385 SetOwningModule(decl, owning_module);
1386
1387 if (!has_name) {
1388 // In C++ a lambda is also represented as an unnamed class. This is
1389 // different from an *anonymous class* that the user wrote:
1390 //
1391 // struct A {
1392 // // anonymous class (GNU/MSVC extension)
1393 // struct {
1394 // int x;
1395 // };
1396 // // unnamed class within a class
1397 // struct {
1398 // int y;
1399 // } B;
1400 // };
1401 //
1402 // void f() {
1403 // // unammed class outside of a class
1404 // struct {
1405 // int z;
1406 // } C;
1407 // }
1408 //
1409 // Anonymous classes is a GNU/MSVC extension that clang supports. It
1410 // requires the anonymous class be embedded within a class. So the new
1411 // heuristic verifies this condition.
1412 if (isa<CXXRecordDecl>(decl_ctx) && exports_symbols)
1413 decl->setAnonymousStructOrUnion(true);
1414 }
1415
1416 if (metadata)
1417 SetMetadata(decl, *metadata);
1418
1419 decl->setAccess(AS_public);
1420
1421 if (decl_ctx)
1422 decl_ctx->addDecl(decl);
1423
1424 return GetType(ast.getCanonicalTagType(decl));
1425}
1426
1427namespace {
1428/// Returns the type of the template argument iff the given TemplateArgument
1429/// should be represented as an NonTypeTemplateParmDecl in the AST. Returns
1430/// a null QualType otherwise.
1431QualType GetValueParamType(const clang::TemplateArgument &argument) {
1432 switch (argument.getKind()) {
1433 case TemplateArgument::Integral:
1434 return argument.getIntegralType();
1435 case TemplateArgument::StructuralValue:
1436 return argument.getStructuralValueType();
1437 default:
1438 return {};
1439 }
1440}
1441} // namespace
1442
1443static TemplateParameterList *CreateTemplateParameterList(
1444 ASTContext &ast,
1445 const TypeSystemClang::TemplateParameterInfos &template_param_infos,
1446 llvm::SmallVector<NamedDecl *, 8> &template_param_decls) {
1447 const bool parameter_pack = false;
1448 const bool is_typename = false;
1449 const unsigned depth = 0;
1450 const size_t num_template_params = template_param_infos.Size();
1451 DeclContext *const decl_context =
1452 ast.getTranslationUnitDecl(); // Is this the right decl context?,
1453
1454 auto const &args = template_param_infos.GetArgs();
1455 auto const &names = template_param_infos.GetNames();
1456 for (size_t i = 0; i < num_template_params; ++i) {
1457 const char *name = names[i];
1458
1459 IdentifierInfo *identifier_info = nullptr;
1460 if (name && name[0])
1461 identifier_info = &ast.Idents.get(name);
1462 TemplateArgument const &targ = args[i];
1463 QualType template_param_type = GetValueParamType(targ);
1464 if (!template_param_type.isNull()) {
1465 template_param_decls.push_back(NonTypeTemplateParmDecl::Create(
1466 ast, decl_context, SourceLocation(), SourceLocation(), depth, i,
1467 identifier_info, template_param_type, parameter_pack,
1468 ast.getTrivialTypeSourceInfo(template_param_type)));
1469 } else {
1470 template_param_decls.push_back(TemplateTypeParmDecl::Create(
1471 ast, decl_context, SourceLocation(), SourceLocation(), depth, i,
1472 identifier_info, is_typename, parameter_pack));
1473 }
1474 }
1475
1476 if (template_param_infos.hasParameterPack()) {
1477 IdentifierInfo *identifier_info = nullptr;
1478 if (template_param_infos.HasPackName())
1479 identifier_info = &ast.Idents.get(template_param_infos.GetPackName());
1480 const bool parameter_pack_true = true;
1481
1482 QualType template_param_type =
1483 !template_param_infos.GetParameterPack().IsEmpty()
1484 ? GetValueParamType(template_param_infos.GetParameterPack().Front())
1485 : QualType();
1486 if (!template_param_type.isNull()) {
1487 template_param_decls.push_back(NonTypeTemplateParmDecl::Create(
1488 ast, decl_context, SourceLocation(), SourceLocation(), depth,
1489 num_template_params, identifier_info, template_param_type,
1490 parameter_pack_true,
1491 ast.getTrivialTypeSourceInfo(template_param_type)));
1492 } else {
1493 template_param_decls.push_back(TemplateTypeParmDecl::Create(
1494 ast, decl_context, SourceLocation(), SourceLocation(), depth,
1495 num_template_params, identifier_info, is_typename,
1496 parameter_pack_true));
1497 }
1498 }
1499 clang::Expr *const requires_clause = nullptr; // TODO: Concepts
1500 TemplateParameterList *template_param_list = TemplateParameterList::Create(
1501 ast, SourceLocation(), SourceLocation(), template_param_decls,
1502 SourceLocation(), requires_clause);
1503 return template_param_list;
1504}
1505
1507 clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module,
1508 clang::FunctionDecl *func_decl,
1509 const TemplateParameterInfos &template_param_infos) {
1510 // /// Create a function template node.
1511 ASTContext &ast = getASTContext();
1512
1513 llvm::SmallVector<NamedDecl *, 8> template_param_decls;
1514 TemplateParameterList *template_param_list = CreateTemplateParameterList(
1515 ast, template_param_infos, template_param_decls);
1516 FunctionTemplateDecl *func_tmpl_decl =
1517 FunctionTemplateDecl::CreateDeserialized(ast, GlobalDeclID());
1518 func_tmpl_decl->setDeclContext(decl_ctx);
1519 func_tmpl_decl->setLocation(func_decl->getLocation());
1520 func_tmpl_decl->setDeclName(func_decl->getDeclName());
1521 func_tmpl_decl->setTemplateParameters(template_param_list);
1522 func_tmpl_decl->init(func_decl);
1523 SetOwningModule(func_tmpl_decl, owning_module);
1524
1525 for (size_t i = 0, template_param_decl_count = template_param_decls.size();
1526 i < template_param_decl_count; ++i) {
1527 // TODO: verify which decl context we should put template_param_decls into..
1528 template_param_decls[i]->setDeclContext(func_decl);
1529 }
1530 func_tmpl_decl->setAccess(clang::AccessSpecifier::AS_public);
1531
1532 return func_tmpl_decl;
1533}
1534
1536 FunctionDecl *func_decl, clang::FunctionTemplateDecl *func_tmpl_decl,
1537 const TemplateParameterInfos &infos) {
1538 TemplateArgumentList *template_args_ptr = TemplateArgumentList::CreateCopy(
1539 func_decl->getASTContext(), infos.GetArgs());
1540
1541 func_decl->setFunctionTemplateSpecialization(func_tmpl_decl,
1542 template_args_ptr, {});
1543}
1544
1545/// Returns true if the given template parameter can represent the given value.
1546/// For example, `typename T` can represent `int` but not integral values such
1547/// as `int I = 3`.
1548static bool TemplateParameterAllowsValue(NamedDecl *param,
1549 const TemplateArgument &value) {
1550 if (llvm::isa<TemplateTypeParmDecl>(param)) {
1551 // Compare the argument kind, i.e. ensure that <typename> != <int>.
1552 if (value.getKind() != TemplateArgument::Type)
1553 return false;
1554 } else if (auto *type_param =
1555 llvm::dyn_cast<NonTypeTemplateParmDecl>(param)) {
1556 // Compare the argument kind, i.e. ensure that <typename> != <int>.
1557 QualType value_param_type = GetValueParamType(value);
1558 if (value_param_type.isNull())
1559 return false;
1560
1561 // Compare the integral type, i.e. ensure that <int> != <char>.
1562 if (type_param->getType() != value_param_type)
1563 return false;
1564 } else {
1565 // There is no way to create other parameter decls at the moment, so we
1566 // can't reach this case during normal LLDB usage. Log that this happened
1567 // and assert.
1569 LLDB_LOG(log,
1570 "Don't know how to compare template parameter to passed"
1571 " value. Decl kind of parameter is: {0}",
1572 param->getDeclKindName());
1573 lldbassert(false && "Can't compare this TemplateParmDecl subclass");
1574 // In release builds just fall back to marking the parameter as not
1575 // accepting the value so that we don't try to fit an instantiation to a
1576 // template that doesn't fit. E.g., avoid that `S<1>` is being connected to
1577 // `template<typename T> struct S;`.
1578 return false;
1579 }
1580 return true;
1581}
1582
1583/// Returns true if the given class template declaration could produce an
1584/// instantiation with the specified values.
1585/// For example, `<typename T>` allows the arguments `float`, but not for
1586/// example `bool, float` or `3` (as an integer parameter value).
1588 ClassTemplateDecl *class_template_decl,
1589 const TypeSystemClang::TemplateParameterInfos &instantiation_values) {
1590
1591 TemplateParameterList &params = *class_template_decl->getTemplateParameters();
1592
1593 // Save some work by iterating only once over the found parameters and
1594 // calculate the information related to parameter packs.
1595
1596 // Contains the first pack parameter (or non if there are none).
1597 std::optional<NamedDecl *> pack_parameter;
1598 // Contains the number of non-pack parameters.
1599 size_t non_pack_params = params.size();
1600 for (size_t i = 0; i < params.size(); ++i) {
1601 NamedDecl *param = params.getParam(i);
1602 if (param->isParameterPack()) {
1603 pack_parameter = param;
1604 non_pack_params = i;
1605 break;
1606 }
1607 }
1608
1609 // The found template needs to have compatible non-pack template arguments.
1610 // E.g., ensure that <typename, typename> != <typename>.
1611 // The pack parameters are compared later.
1612 if (non_pack_params != instantiation_values.Size())
1613 return false;
1614
1615 // Ensure that <typename...> != <typename>.
1616 if (pack_parameter.has_value() != instantiation_values.hasParameterPack())
1617 return false;
1618
1619 // Compare the first pack parameter that was found with the first pack
1620 // parameter value. The special case of having an empty parameter pack value
1621 // always fits to a pack parameter.
1622 // E.g., ensure that <int...> != <typename...>.
1623 if (pack_parameter && !instantiation_values.GetParameterPack().IsEmpty() &&
1625 *pack_parameter, instantiation_values.GetParameterPack().Front()))
1626 return false;
1627
1628 // Compare all the non-pack parameters now.
1629 // E.g., ensure that <int> != <long>.
1630 for (const auto pair :
1631 llvm::zip_first(instantiation_values.GetArgs(), params)) {
1632 const TemplateArgument &passed_arg = std::get<0>(pair);
1633 NamedDecl *found_param = std::get<1>(pair);
1634 if (!TemplateParameterAllowsValue(found_param, passed_arg))
1635 return false;
1636 }
1637
1638 return class_template_decl;
1639}
1640
1642 DeclContext *decl_ctx, OptionalClangModuleID owning_module,
1643 llvm::StringRef class_name, int kind,
1644 const TemplateParameterInfos &template_param_infos) {
1645 ASTContext &ast = getASTContext();
1646
1647 ClassTemplateDecl *class_template_decl = nullptr;
1648 if (decl_ctx == nullptr)
1649 decl_ctx = ast.getTranslationUnitDecl();
1650
1651 IdentifierInfo &identifier_info = ast.Idents.get(class_name);
1652 DeclarationName decl_name(&identifier_info);
1653
1654 // Search the AST for an existing ClassTemplateDecl that could be reused.
1655 clang::DeclContext::lookup_result result = decl_ctx->lookup(decl_name);
1656 for (NamedDecl *decl : result) {
1657 class_template_decl = dyn_cast<clang::ClassTemplateDecl>(decl);
1658 if (!class_template_decl)
1659 continue;
1660 // The class template has to be able to represents the instantiation
1661 // values we received. Without this we might end up putting an instantiation
1662 // with arguments such as <int, int> to a template such as:
1663 // template<typename T> struct S;
1664 // Connecting the instantiation to an incompatible template could cause
1665 // problems later on.
1666 if (!ClassTemplateAllowsToInstantiationArgs(class_template_decl,
1667 template_param_infos))
1668 continue;
1669 return class_template_decl;
1670 }
1671
1672 llvm::SmallVector<NamedDecl *, 8> template_param_decls;
1673
1674 TemplateParameterList *template_param_list = CreateTemplateParameterList(
1675 ast, template_param_infos, template_param_decls);
1676
1677 CXXRecordDecl *template_cxx_decl =
1678 CXXRecordDecl::CreateDeserialized(ast, GlobalDeclID());
1679 template_cxx_decl->setTagKind(static_cast<TagDecl::TagKind>(kind));
1680 // What decl context do we use here? TU? The actual decl context?
1681 template_cxx_decl->setDeclContext(decl_ctx);
1682 template_cxx_decl->setDeclName(decl_name);
1683 SetOwningModule(template_cxx_decl, owning_module);
1684
1685 for (size_t i = 0, template_param_decl_count = template_param_decls.size();
1686 i < template_param_decl_count; ++i) {
1687 template_param_decls[i]->setDeclContext(template_cxx_decl);
1688 }
1689
1690 // With templated classes, we say that a class is templated with
1691 // specializations, but that the bare class has no functions.
1692 // template_cxx_decl->startDefinition();
1693 // template_cxx_decl->completeDefinition();
1694
1695 class_template_decl =
1696 ClassTemplateDecl::CreateDeserialized(ast, GlobalDeclID());
1697 // What decl context do we use here? TU? The actual decl context?
1698 class_template_decl->setDeclContext(decl_ctx);
1699 class_template_decl->setDeclName(decl_name);
1700 class_template_decl->setTemplateParameters(template_param_list);
1701 class_template_decl->init(template_cxx_decl);
1702 template_cxx_decl->setDescribedClassTemplate(class_template_decl);
1703 SetOwningModule(class_template_decl, owning_module);
1704
1705 class_template_decl->setAccess(AS_public);
1706
1707 decl_ctx->addDecl(class_template_decl);
1708
1709 VerifyDecl(class_template_decl);
1710
1711 return class_template_decl;
1712}
1713
1714TemplateTemplateParmDecl *
1716 ASTContext &ast = getASTContext();
1717
1718 auto *decl_ctx = ast.getTranslationUnitDecl();
1719
1720 IdentifierInfo &identifier_info = ast.Idents.get(template_name);
1721 llvm::SmallVector<NamedDecl *, 8> template_param_decls;
1722
1723 TypeSystemClang::TemplateParameterInfos template_param_infos;
1724 template_param_infos.SetParameterPack(
1725 std::make_unique<TemplateParameterInfos>());
1726 TemplateParameterList *template_param_list = CreateTemplateParameterList(
1727 ast, template_param_infos, template_param_decls);
1728
1729 // LLDB needs to create those decls only to be able to display a
1730 // type that includes a template template argument. Only the name matters for
1731 // this purpose, so we use dummy values for the other characteristics of the
1732 // type.
1733 return TemplateTemplateParmDecl::Create(
1734 ast, decl_ctx, SourceLocation(),
1735 /*Depth*/ 0, /*Position*/ 0,
1736 /*IsParameterPack=*/false, &identifier_info,
1737 TemplateNameKind::TNK_Type_template, /*DeclaredWithTypename=*/true,
1738 template_param_list);
1739}
1740
1741ClassTemplateSpecializationDecl *
1743 DeclContext *decl_ctx, OptionalClangModuleID owning_module,
1744 ClassTemplateDecl *class_template_decl, int kind,
1745 const TemplateParameterInfos &template_param_infos) {
1746 ASTContext &ast = getASTContext();
1747 llvm::SmallVector<clang::TemplateArgument, 2> args(
1748 template_param_infos.Size() +
1749 (template_param_infos.hasParameterPack() ? 1 : 0));
1750
1751 auto const &orig_args = template_param_infos.GetArgs();
1752 std::copy(orig_args.begin(), orig_args.end(), args.begin());
1753 if (template_param_infos.hasParameterPack()) {
1754 args[args.size() - 1] = TemplateArgument::CreatePackCopy(
1755 ast, template_param_infos.GetParameterPackArgs());
1756 }
1757 ClassTemplateSpecializationDecl *class_template_specialization_decl =
1758 ClassTemplateSpecializationDecl::CreateDeserialized(ast, GlobalDeclID());
1759 class_template_specialization_decl->setTagKind(
1760 static_cast<TagDecl::TagKind>(kind));
1761 class_template_specialization_decl->setDeclContext(decl_ctx);
1762 class_template_specialization_decl->setInstantiationOf(class_template_decl);
1763 class_template_specialization_decl->setTemplateArgs(
1764 TemplateArgumentList::CreateCopy(ast, args));
1765 llvm::FoldingSetInsertToken insert_token;
1766 if (class_template_decl->findSpecialization(args, insert_token))
1767 return nullptr;
1768 class_template_decl->AddSpecialization(class_template_specialization_decl,
1769 insert_token);
1770 class_template_specialization_decl->setDeclName(
1771 class_template_decl->getDeclName());
1772
1773 // FIXME: set to fixed value for now so it's not uninitialized.
1774 // One way to determine StrictPackMatch would be
1775 // Sema::CheckTemplateTemplateArgument.
1776 class_template_specialization_decl->setStrictPackMatch(false);
1777
1778 SetOwningModule(class_template_specialization_decl, owning_module);
1779 decl_ctx->addDecl(class_template_specialization_decl);
1780
1781 class_template_specialization_decl->setSpecializationKind(
1782 TSK_ExplicitSpecialization);
1783
1784 return class_template_specialization_decl;
1785}
1786
1788 ClassTemplateSpecializationDecl *class_template_specialization_decl) {
1789 if (class_template_specialization_decl) {
1790 ASTContext &ast = getASTContext();
1791 return GetType(ast.getCanonicalTagType(class_template_specialization_decl));
1792 }
1793 return CompilerType();
1794}
1795
1796static inline bool check_op_param(bool is_method,
1797 clang::OverloadedOperatorKind op_kind,
1798 bool unary, bool binary,
1799 uint32_t num_params) {
1800 // Special-case call since it can take any number of operands
1801 if (op_kind == OO_Call)
1802 return true;
1803
1804 // The parameter count doesn't include "this"
1805 if (is_method)
1806 ++num_params;
1807 if (num_params == 1)
1808 return unary;
1809 if (num_params == 2)
1810 return binary;
1811 else
1812 return false;
1813}
1814
1816 bool is_method, clang::OverloadedOperatorKind op_kind,
1817 uint32_t num_params) {
1818 switch (op_kind) {
1819 default:
1820 break;
1821 // C++ standard allows any number of arguments to new/delete
1822 case OO_New:
1823 case OO_Array_New:
1824 case OO_Delete:
1825 case OO_Array_Delete:
1826 return true;
1827 }
1828
1829#define OVERLOADED_OPERATOR(Name, Spelling, Token, Unary, Binary, MemberOnly) \
1830 case OO_##Name: \
1831 return check_op_param(is_method, op_kind, Unary, Binary, num_params);
1832 switch (op_kind) {
1833#include "clang/Basic/OperatorKinds.def"
1834 default:
1835 break;
1836 }
1837 return false;
1838}
1839
1841 uint32_t &bitfield_bit_size) {
1842 ASTContext &ast = getASTContext();
1843 if (field == nullptr)
1844 return false;
1845
1846 if (field->isBitField()) {
1847 Expr *bit_width_expr = field->getBitWidth();
1848 if (bit_width_expr) {
1849 if (std::optional<llvm::APSInt> bit_width_apsint =
1850 bit_width_expr->getIntegerConstantExpr(ast)) {
1851 bitfield_bit_size = bit_width_apsint->getLimitedValue(UINT32_MAX);
1852 return true;
1853 }
1854 }
1855 }
1856 return false;
1857}
1858
1859bool TypeSystemClang::RecordHasFields(const RecordDecl *record_decl) {
1860 if (record_decl == nullptr)
1861 return false;
1862
1863 if (!record_decl->field_empty())
1864 return true;
1865
1866 // No fields, lets check this is a CXX record and check the base classes
1867 const CXXRecordDecl *cxx_record_decl = dyn_cast<CXXRecordDecl>(record_decl);
1868 if (cxx_record_decl) {
1869 CXXRecordDecl::base_class_const_iterator base_class, base_class_end;
1870 for (base_class = cxx_record_decl->bases_begin(),
1871 base_class_end = cxx_record_decl->bases_end();
1872 base_class != base_class_end; ++base_class) {
1873 assert(record_decl != base_class->getType()->getAsCXXRecordDecl() &&
1874 "Base can't inherit from itself.");
1875 if (RecordHasFields(base_class->getType()->getAsCXXRecordDecl()))
1876 return true;
1877 }
1878 }
1879
1880 // We always want forcefully completed types to show up so we can print a
1881 // message in the summary that indicates that the type is incomplete.
1882 // This will help users know when they are running into issues with
1883 // -flimit-debug-info instead of just seeing nothing if this is a base class
1884 // (since we were hiding empty base classes), or nothing when you turn open
1885 // an valiable whose type was incomplete.
1886 if (std::optional<ClangASTMetadata> meta_data = GetMetadata(record_decl);
1887 meta_data && meta_data->IsForcefullyCompleted())
1888 return true;
1889
1890 return false;
1891}
1892
1893#pragma mark Objective-C Classes
1894
1896 llvm::StringRef name, clang::DeclContext *decl_ctx,
1897 OptionalClangModuleID owning_module, bool isInternal,
1898 std::optional<ClangASTMetadata> metadata) {
1899 ASTContext &ast = getASTContext();
1900 assert(!name.empty());
1901 if (!decl_ctx)
1902 decl_ctx = ast.getTranslationUnitDecl();
1903
1904 ObjCInterfaceDecl *decl =
1905 ObjCInterfaceDecl::CreateDeserialized(ast, GlobalDeclID());
1906 decl->setDeclContext(decl_ctx);
1907 decl->setDeclName(&ast.Idents.get(name));
1908 decl->setImplicit(isInternal);
1909 SetOwningModule(decl, owning_module);
1910
1911 if (metadata)
1912 SetMetadata(decl, *metadata);
1913
1914 return GetType(ast.getObjCInterfaceType(decl));
1915}
1916
1917bool TypeSystemClang::BaseSpecifierIsEmpty(const CXXBaseSpecifier *b) {
1918 return !TypeSystemClang::RecordHasFields(b->getType()->getAsCXXRecordDecl());
1919}
1920
1921uint32_t
1922TypeSystemClang::GetNumBaseClasses(const CXXRecordDecl *cxx_record_decl,
1923 bool omit_empty_base_classes) {
1924 uint32_t num_bases = 0;
1925 if (cxx_record_decl) {
1926 if (omit_empty_base_classes) {
1927 CXXRecordDecl::base_class_const_iterator base_class, base_class_end;
1928 for (base_class = cxx_record_decl->bases_begin(),
1929 base_class_end = cxx_record_decl->bases_end();
1930 base_class != base_class_end; ++base_class) {
1931 // Skip empty base classes
1932 if (BaseSpecifierIsEmpty(base_class))
1933 continue;
1934 ++num_bases;
1935 }
1936 } else
1937 num_bases = cxx_record_decl->getNumBases();
1938 }
1939 return num_bases;
1940}
1941
1942#pragma mark Namespace Declarations
1943
1945 const char *name, clang::DeclContext *decl_ctx,
1946 OptionalClangModuleID owning_module, bool is_inline) {
1947 NamespaceDecl *namespace_decl = nullptr;
1948 ASTContext &ast = getASTContext();
1949 TranslationUnitDecl *translation_unit_decl = ast.getTranslationUnitDecl();
1950 if (!decl_ctx)
1951 decl_ctx = translation_unit_decl;
1952
1953 if (name) {
1954 IdentifierInfo &identifier_info = ast.Idents.get(name);
1955 DeclarationName decl_name(&identifier_info);
1956 clang::DeclContext::lookup_result result = decl_ctx->lookup(decl_name);
1957 for (NamedDecl *decl : result) {
1958 namespace_decl = dyn_cast<clang::NamespaceDecl>(decl);
1959 if (namespace_decl)
1960 return namespace_decl;
1961 }
1962
1963 namespace_decl = NamespaceDecl::Create(ast, decl_ctx, is_inline,
1964 SourceLocation(), SourceLocation(),
1965 &identifier_info, nullptr, false);
1966
1967 decl_ctx->addDecl(namespace_decl);
1968 } else {
1969 if (decl_ctx == translation_unit_decl) {
1970 namespace_decl = translation_unit_decl->getAnonymousNamespace();
1971 if (namespace_decl)
1972 return namespace_decl;
1973
1974 namespace_decl =
1975 NamespaceDecl::Create(ast, decl_ctx, false, SourceLocation(),
1976 SourceLocation(), nullptr, nullptr, false);
1977 translation_unit_decl->setAnonymousNamespace(namespace_decl);
1978 translation_unit_decl->addDecl(namespace_decl);
1979 assert(namespace_decl == translation_unit_decl->getAnonymousNamespace());
1980 } else {
1981 NamespaceDecl *parent_namespace_decl = cast<NamespaceDecl>(decl_ctx);
1982 if (parent_namespace_decl) {
1983 namespace_decl = parent_namespace_decl->getAnonymousNamespace();
1984 if (namespace_decl)
1985 return namespace_decl;
1986 namespace_decl =
1987 NamespaceDecl::Create(ast, decl_ctx, false, SourceLocation(),
1988 SourceLocation(), nullptr, nullptr, false);
1989 parent_namespace_decl->setAnonymousNamespace(namespace_decl);
1990 parent_namespace_decl->addDecl(namespace_decl);
1991 assert(namespace_decl ==
1992 parent_namespace_decl->getAnonymousNamespace());
1993 } else {
1994 assert(false && "GetUniqueNamespaceDeclaration called with no name and "
1995 "no namespace as decl_ctx");
1996 }
1997 }
1998 }
1999 // Note: namespaces can span multiple modules, so perhaps this isn't a good
2000 // idea.
2001 SetOwningModule(namespace_decl, owning_module);
2002
2003 VerifyDecl(namespace_decl);
2004 return namespace_decl;
2005}
2006
2007clang::BlockDecl *
2009 OptionalClangModuleID owning_module) {
2010 if (ctx) {
2011 clang::BlockDecl *decl =
2012 clang::BlockDecl::CreateDeserialized(getASTContext(), GlobalDeclID());
2013 decl->setDeclContext(ctx);
2014 ctx->addDecl(decl);
2015 SetOwningModule(decl, owning_module);
2016 return decl;
2017 }
2018 return nullptr;
2019}
2020
2021clang::DeclContext *FindLCABetweenDecls(clang::DeclContext *left,
2022 clang::DeclContext *right,
2023 clang::DeclContext *root) {
2024 if (root == nullptr)
2025 return nullptr;
2026
2027 std::set<clang::DeclContext *> path_left;
2028 for (clang::DeclContext *d = left; d != nullptr; d = d->getParent())
2029 path_left.insert(d);
2030
2031 for (clang::DeclContext *d = right; d != nullptr; d = d->getParent())
2032 if (path_left.find(d) != path_left.end())
2033 return d;
2034
2035 return nullptr;
2036}
2037
2039 clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module,
2040 clang::NamespaceDecl *ns_decl) {
2041 if (decl_ctx && ns_decl) {
2042 auto *translation_unit = getASTContext().getTranslationUnitDecl();
2043 clang::UsingDirectiveDecl *using_decl = clang::UsingDirectiveDecl::Create(
2044 getASTContext(), decl_ctx, clang::SourceLocation(),
2045 clang::SourceLocation(), clang::NestedNameSpecifierLoc(),
2046 clang::SourceLocation(), ns_decl,
2047 FindLCABetweenDecls(decl_ctx, ns_decl,
2048 translation_unit));
2049 decl_ctx->addDecl(using_decl);
2050 SetOwningModule(using_decl, owning_module);
2051 return using_decl;
2052 }
2053 return nullptr;
2054}
2055
2056clang::UsingDecl *
2057TypeSystemClang::CreateUsingDeclaration(clang::DeclContext *current_decl_ctx,
2058 OptionalClangModuleID owning_module,
2059 clang::NamedDecl *target) {
2060 if (current_decl_ctx && target) {
2061 clang::UsingDecl *using_decl = clang::UsingDecl::Create(
2062 getASTContext(), current_decl_ctx, clang::SourceLocation(),
2063 clang::NestedNameSpecifierLoc(), clang::DeclarationNameInfo(), false);
2064 SetOwningModule(using_decl, owning_module);
2065 clang::UsingShadowDecl *shadow_decl = clang::UsingShadowDecl::Create(
2066 getASTContext(), current_decl_ctx, clang::SourceLocation(),
2067 target->getDeclName(), using_decl, target);
2068 SetOwningModule(shadow_decl, owning_module);
2069 using_decl->addShadowDecl(shadow_decl);
2070 current_decl_ctx->addDecl(using_decl);
2071 return using_decl;
2072 }
2073 return nullptr;
2074}
2075
2077 clang::DeclContext *decl_context, OptionalClangModuleID owning_module,
2078 const char *name, clang::QualType type) {
2079 if (decl_context) {
2080 clang::VarDecl *var_decl =
2081 clang::VarDecl::CreateDeserialized(getASTContext(), GlobalDeclID());
2082 var_decl->setDeclContext(decl_context);
2083 if (name && name[0])
2084 var_decl->setDeclName(&getASTContext().Idents.getOwn(name));
2085 var_decl->setType(type);
2086 SetOwningModule(var_decl, owning_module);
2087 var_decl->setAccess(clang::AS_public);
2088 decl_context->addDecl(var_decl);
2089 return var_decl;
2090 }
2091 return nullptr;
2092}
2093
2096 lldb::BasicType basic_type) {
2097 switch (basic_type) {
2098 case eBasicTypeVoid:
2099 return ast->VoidTy.getAsOpaquePtr();
2100 case eBasicTypeChar:
2101 return ast->CharTy.getAsOpaquePtr();
2103 return ast->SignedCharTy.getAsOpaquePtr();
2105 return ast->UnsignedCharTy.getAsOpaquePtr();
2106 case eBasicTypeWChar:
2107 return ast->getWCharType().getAsOpaquePtr();
2109 return ast->getSignedWCharType().getAsOpaquePtr();
2111 return ast->getUnsignedWCharType().getAsOpaquePtr();
2112 case eBasicTypeChar8:
2113 return ast->Char8Ty.getAsOpaquePtr();
2114 case eBasicTypeChar16:
2115 return ast->Char16Ty.getAsOpaquePtr();
2116 case eBasicTypeChar32:
2117 return ast->Char32Ty.getAsOpaquePtr();
2118 case eBasicTypeShort:
2119 return ast->ShortTy.getAsOpaquePtr();
2121 return ast->UnsignedShortTy.getAsOpaquePtr();
2122 case eBasicTypeInt:
2123 return ast->IntTy.getAsOpaquePtr();
2125 return ast->UnsignedIntTy.getAsOpaquePtr();
2126 case eBasicTypeLong:
2127 return ast->LongTy.getAsOpaquePtr();
2129 return ast->UnsignedLongTy.getAsOpaquePtr();
2130 case eBasicTypeLongLong:
2131 return ast->LongLongTy.getAsOpaquePtr();
2133 return ast->UnsignedLongLongTy.getAsOpaquePtr();
2134 case eBasicTypeInt128:
2135 return ast->Int128Ty.getAsOpaquePtr();
2137 return ast->UnsignedInt128Ty.getAsOpaquePtr();
2138 case eBasicTypeBool:
2139 return ast->BoolTy.getAsOpaquePtr();
2140 case eBasicTypeHalf:
2141 return ast->HalfTy.getAsOpaquePtr();
2142 case eBasicTypeFloat:
2143 return ast->FloatTy.getAsOpaquePtr();
2144 case eBasicTypeDouble:
2145 return ast->DoubleTy.getAsOpaquePtr();
2147 return ast->LongDoubleTy.getAsOpaquePtr();
2148 case eBasicTypeFloat128:
2149 return ast->Float128Ty.getAsOpaquePtr();
2151 return ast->getComplexType(ast->FloatTy).getAsOpaquePtr();
2153 return ast->getComplexType(ast->DoubleTy).getAsOpaquePtr();
2155 return ast->getComplexType(ast->LongDoubleTy).getAsOpaquePtr();
2156 case eBasicTypeObjCID:
2157 return ast->getObjCIdType().getAsOpaquePtr();
2159 return ast->getObjCClassType().getAsOpaquePtr();
2160 case eBasicTypeObjCSel:
2161 return ast->getObjCSelType().getAsOpaquePtr();
2162 case eBasicTypeNullPtr:
2163 return ast->NullPtrTy.getAsOpaquePtr();
2164 default:
2165 return nullptr;
2166 }
2167}
2168
2169#pragma mark Function Types
2170
2171clang::DeclarationName
2173 const CompilerType &function_clang_type) {
2174 clang::OverloadedOperatorKind op_kind = clang::NUM_OVERLOADED_OPERATORS;
2175 if (!IsOperator(name, op_kind) || op_kind == clang::NUM_OVERLOADED_OPERATORS)
2176 return DeclarationName(&getASTContext().Idents.get(
2177 name)); // Not operator, but a regular function.
2178
2179 // Check the number of operator parameters. Sometimes we have seen bad DWARF
2180 // that doesn't correctly describe operators and if we try to create a method
2181 // and add it to the class, clang will assert and crash, so we need to make
2182 // sure things are acceptable.
2183 clang::QualType method_qual_type(ClangUtil::GetQualType(function_clang_type));
2184 const clang::FunctionProtoType *function_type =
2185 llvm::dyn_cast<clang::FunctionProtoType>(method_qual_type.getTypePtr());
2186 if (function_type == nullptr)
2187 return clang::DeclarationName();
2188
2189 const bool is_method = false;
2190 const unsigned int num_params = function_type->getNumParams();
2192 is_method, op_kind, num_params))
2193 return clang::DeclarationName();
2194
2195 return getASTContext().DeclarationNames.getCXXOperatorName(op_kind);
2196}
2197
2199 clang::PrintingPolicy printing_policy(getASTContext().getPrintingPolicy());
2200 printing_policy.SuppressTagKeyword = true;
2201 // Inline namespaces are important for some type formatters (e.g., libc++
2202 // and libstdc++ are differentiated by their inline namespaces).
2203 printing_policy.SuppressInlineNamespace =
2204 llvm::to_underlying(PrintingPolicy::SuppressInlineNamespaceMode::None);
2205 printing_policy.SuppressUnwrittenScope = false;
2206 // Default arguments are also always important for type formatters. Otherwise
2207 // we would need to always specify two type names for the setups where we do
2208 // know the default arguments and where we don't know default arguments.
2209 //
2210 // For example, without this we would need to have formatters for both:
2211 // std::basic_string<char>
2212 // and
2213 // std::basic_string<char, std::char_traits<char>, std::allocator<char> >
2214 // to support setups where LLDB was able to reconstruct default arguments
2215 // (and we then would have suppressed them from the type name) and also setups
2216 // where LLDB wasn't able to reconstruct the default arguments.
2217 printing_policy.SuppressDefaultTemplateArgs = false;
2218 return printing_policy;
2219}
2220
2221std::string TypeSystemClang::GetTypeNameForDecl(const NamedDecl *named_decl,
2222 bool qualified) {
2223 clang::PrintingPolicy printing_policy = GetTypePrintingPolicy();
2224 std::string result;
2225 llvm::raw_string_ostream os(result);
2226 named_decl->getNameForDiagnostic(os, printing_policy, qualified);
2227 return result;
2228}
2229
2231 clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module,
2232 llvm::StringRef name, const CompilerType &function_clang_type,
2233 clang::StorageClass storage, bool is_inline, llvm::StringRef asm_label) {
2234 FunctionDecl *func_decl = nullptr;
2235 ASTContext &ast = getASTContext();
2236 if (!decl_ctx)
2237 decl_ctx = ast.getTranslationUnitDecl();
2238
2239 const bool hasWrittenPrototype = true;
2240 const bool isConstexprSpecified = false;
2241
2242 clang::DeclarationName declarationName =
2243 GetDeclarationName(name, function_clang_type);
2244 func_decl = FunctionDecl::CreateDeserialized(ast, GlobalDeclID());
2245 func_decl->setDeclContext(decl_ctx);
2246 func_decl->setDeclName(declarationName);
2247 func_decl->setType(ClangUtil::GetQualType(function_clang_type));
2248 func_decl->setStorageClass(storage);
2249 func_decl->setInlineSpecified(is_inline);
2250 func_decl->setHasWrittenPrototype(hasWrittenPrototype);
2251 func_decl->setConstexprKind(isConstexprSpecified
2252 ? ConstexprSpecKind::Constexpr
2253 : ConstexprSpecKind::Unspecified);
2254
2255 // Attach an asm(<mangled_name>) label to the FunctionDecl.
2256 // This ensures that clang::CodeGen emits function calls
2257 // using symbols that are mangled according to the DW_AT_linkage_name.
2258 // If we didn't do this, the external symbols wouldn't exactly
2259 // match the mangled name LLDB knows about and the IRExecutionUnit
2260 // would have to fall back to searching object files for
2261 // approximately matching function names. The motivating
2262 // example is generating calls to ABI-tagged template functions.
2263 // This is done separately for member functions in
2264 // AddMethodToCXXRecordType.
2265 if (!asm_label.empty())
2266 func_decl->addAttr(clang::AsmLabelAttr::CreateImplicit(ast, asm_label));
2267
2268 SetOwningModule(func_decl, owning_module);
2269 decl_ctx->addDecl(func_decl);
2270
2271 VerifyDecl(func_decl);
2272
2273 return func_decl;
2274}
2275
2277 const CompilerType &result_type, llvm::ArrayRef<CompilerType> args,
2278 bool is_variadic, unsigned type_quals, clang::CallingConv cc,
2279 clang::RefQualifierKind ref_qual) {
2280 if (!result_type || !ClangUtil::IsClangType(result_type))
2281 return CompilerType(); // invalid return type
2282
2283 std::vector<QualType> qual_type_args;
2284 // Verify that all arguments are valid and the right type
2285 for (const auto &arg : args) {
2286 if (arg) {
2287 // Make sure we have a clang type in args[i] and not a type from another
2288 // language whose name might match
2289 const bool is_clang_type = ClangUtil::IsClangType(arg);
2290 lldbassert(is_clang_type);
2291 if (is_clang_type)
2292 qual_type_args.push_back(ClangUtil::GetQualType(arg));
2293 else
2294 return CompilerType(); // invalid argument type (must be a clang type)
2295 } else
2296 return CompilerType(); // invalid argument type (empty)
2297 }
2298
2299 // TODO: Detect calling convention in DWARF?
2300 FunctionProtoType::ExtProtoInfo proto_info;
2301 proto_info.ExtInfo = cc;
2302 proto_info.Variadic = is_variadic;
2303 proto_info.ExceptionSpec = EST_None;
2304 proto_info.TypeQuals = clang::Qualifiers::fromFastMask(type_quals);
2305 proto_info.RefQualifier = ref_qual;
2306
2307 return GetType(getASTContext().getFunctionType(
2308 ClangUtil::GetQualType(result_type), qual_type_args, proto_info));
2309}
2310
2312 clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module,
2313 const char *name, const CompilerType &param_type, int storage,
2314 bool add_decl) {
2315 ASTContext &ast = getASTContext();
2316 auto *decl = ParmVarDecl::CreateDeserialized(ast, GlobalDeclID());
2317 decl->setDeclContext(decl_ctx);
2318 if (name && name[0])
2319 decl->setDeclName(&ast.Idents.get(name));
2320 decl->setType(ClangUtil::GetQualType(param_type));
2321 decl->setStorageClass(static_cast<clang::StorageClass>(storage));
2322 SetOwningModule(decl, owning_module);
2323 if (add_decl)
2324 decl_ctx->addDecl(decl);
2325
2326 return decl;
2327}
2328
2331 QualType block_type = m_ast_up->getBlockPointerType(
2332 clang::QualType::getFromOpaquePtr(function_type.GetOpaqueQualType()));
2333
2334 return GetType(block_type);
2335}
2336
2337#pragma mark Array Types
2338
2341 std::optional<size_t> element_count,
2342 bool is_vector) {
2343 if (!element_type.IsValid())
2344 return {};
2345
2346 ASTContext &ast = getASTContext();
2347
2348 // Unknown number of elements; this is an incomplete array
2349 // (e.g., variable length array with non-constant bounds, or
2350 // a flexible array member).
2351 if (!element_count)
2352 return GetType(
2353 ast.getIncompleteArrayType(ClangUtil::GetQualType(element_type),
2354 clang::ArraySizeModifier::Normal, 0));
2355
2356 if (is_vector)
2357 return GetType(ast.getExtVectorType(ClangUtil::GetQualType(element_type),
2358 *element_count));
2359
2360 llvm::APInt ap_element_count(64, *element_count);
2361 return GetType(ast.getConstantArrayType(ClangUtil::GetQualType(element_type),
2362 ap_element_count, nullptr,
2363 clang::ArraySizeModifier::Normal, 0));
2364}
2365
2367 llvm::StringRef type_name,
2368 const std::initializer_list<std::pair<const char *, CompilerType>>
2369 &type_fields,
2370 bool packed) {
2371 CompilerType type;
2372 if (!type_name.empty() && (type = GetTypeForIdentifier<clang::CXXRecordDecl>(
2373 getASTContext(), type_name))
2374 .IsValid()) {
2375 lldbassert(0 && "Trying to create a type for an existing name");
2376 return type;
2377 }
2378
2379 type = CreateRecordType(nullptr, OptionalClangModuleID(), type_name,
2380 llvm::to_underlying(clang::TagTypeKind::Struct),
2383 for (const auto &field : type_fields)
2384 AddFieldToRecordType(type, field.first, field.second, 0);
2385 if (packed)
2386 SetIsPacked(type);
2388 return type;
2389}
2390
2392 llvm::StringRef type_name,
2393 const std::initializer_list<std::pair<const char *, CompilerType>>
2394 &type_fields,
2395 bool packed) {
2396 CompilerType type;
2398 type_name))
2399 .IsValid())
2400 return type;
2401
2402 return CreateStructForIdentifier(type_name, type_fields, packed);
2403}
2404
2405#pragma mark Enumeration Types
2406
2408 llvm::StringRef name, clang::DeclContext *decl_ctx,
2409 OptionalClangModuleID owning_module, const Declaration &decl,
2410 const CompilerType &integer_clang_type, bool is_scoped,
2411 std::optional<clang::EnumExtensibilityAttr::Kind> enum_kind) {
2412 // TODO: Do something intelligent with the Declaration object passed in
2413 // like maybe filling in the SourceLocation with it...
2414 ASTContext &ast = getASTContext();
2415
2416 // TODO: ask about these...
2417 // const bool IsFixed = false;
2418 EnumDecl *enum_decl = EnumDecl::CreateDeserialized(ast, GlobalDeclID());
2419 enum_decl->setDeclContext(decl_ctx);
2420 if (!name.empty())
2421 enum_decl->setDeclName(&ast.Idents.get(name));
2422 enum_decl->setScoped(is_scoped);
2423 enum_decl->setScopedUsingClassTag(is_scoped);
2424 enum_decl->setFixed(false);
2425 SetOwningModule(enum_decl, owning_module);
2426 if (decl_ctx)
2427 decl_ctx->addDecl(enum_decl);
2428
2429 if (enum_kind)
2430 enum_decl->addAttr(
2431 clang::EnumExtensibilityAttr::CreateImplicit(ast, *enum_kind));
2432
2433 // TODO: check if we should be setting the promotion type too?
2434 enum_decl->setIntegerType(ClangUtil::GetQualType(integer_clang_type));
2435
2436 enum_decl->setAccess(AS_public);
2437
2438 return GetType(ast.getCanonicalTagType(enum_decl));
2439}
2440
2442 bool is_signed) {
2443 clang::ASTContext &ast = getASTContext();
2444
2445 if (!ast.VoidPtrTy)
2446 return {};
2447
2448 if (is_signed) {
2449 if (bit_size == ast.getTypeSize(ast.SignedCharTy))
2450 return GetType(ast.SignedCharTy);
2451
2452 if (bit_size == ast.getTypeSize(ast.ShortTy))
2453 return GetType(ast.ShortTy);
2454
2455 if (bit_size == ast.getTypeSize(ast.IntTy))
2456 return GetType(ast.IntTy);
2457
2458 if (bit_size == ast.getTypeSize(ast.LongTy))
2459 return GetType(ast.LongTy);
2460
2461 if (bit_size == ast.getTypeSize(ast.LongLongTy))
2462 return GetType(ast.LongLongTy);
2463
2464 if (bit_size == ast.getTypeSize(ast.Int128Ty))
2465 return GetType(ast.Int128Ty);
2466 } else {
2467 if (bit_size == ast.getTypeSize(ast.UnsignedCharTy))
2468 return GetType(ast.UnsignedCharTy);
2469
2470 if (bit_size == ast.getTypeSize(ast.UnsignedShortTy))
2471 return GetType(ast.UnsignedShortTy);
2472
2473 if (bit_size == ast.getTypeSize(ast.UnsignedIntTy))
2474 return GetType(ast.UnsignedIntTy);
2475
2476 if (bit_size == ast.getTypeSize(ast.UnsignedLongTy))
2477 return GetType(ast.UnsignedLongTy);
2478
2479 if (bit_size == ast.getTypeSize(ast.UnsignedLongLongTy))
2480 return GetType(ast.UnsignedLongLongTy);
2481
2482 if (bit_size == ast.getTypeSize(ast.UnsignedInt128Ty))
2483 return GetType(ast.UnsignedInt128Ty);
2484 }
2485 return CompilerType();
2486}
2487
2489 if (!getASTContext().VoidPtrTy)
2490 return {};
2491
2492 return GetIntTypeFromBitSize(
2493 getASTContext().getTypeSize(getASTContext().VoidPtrTy), is_signed);
2494}
2495
2497 // Check if builtin types are initialized.
2498 if (!getASTContext().VoidPtrTy)
2499 return {};
2500
2501 if (is_signed)
2502 return GetType(getASTContext().getPointerDiffType());
2503 return GetType(getASTContext().getUnsignedPointerDiffType());
2504}
2505
2507 // Check if builtin types are initialized.
2508 if (!getASTContext().VoidPtrTy)
2509 return {};
2510
2511 return GetType(getASTContext().getSizeType());
2512}
2513
2514void TypeSystemClang::DumpDeclContextHiearchy(clang::DeclContext *decl_ctx) {
2515 if (decl_ctx) {
2516 DumpDeclContextHiearchy(decl_ctx->getParent());
2517
2518 clang::NamedDecl *named_decl = llvm::dyn_cast<clang::NamedDecl>(decl_ctx);
2519 if (named_decl) {
2520 printf("%20s: %s\n", decl_ctx->getDeclKindName(),
2521 named_decl->getDeclName().getAsString().c_str());
2522 } else {
2523 printf("%20s\n", decl_ctx->getDeclKindName());
2524 }
2525 }
2526}
2527
2528void TypeSystemClang::DumpDeclHiearchy(clang::Decl *decl) {
2529 if (decl == nullptr)
2530 return;
2531 DumpDeclContextHiearchy(decl->getDeclContext());
2532
2533 clang::RecordDecl *record_decl = llvm::dyn_cast<clang::RecordDecl>(decl);
2534 if (record_decl) {
2535 bool is_injected_class_name =
2536 llvm::isa<clang::CXXRecordDecl>(record_decl) &&
2537 llvm::cast<CXXRecordDecl>(record_decl)->isInjectedClassName();
2538 printf("%20s: %s%s\n", decl->getDeclKindName(),
2539 record_decl->getDeclName().getAsString().c_str(),
2540 is_injected_class_name ? " (injected class name)" : "");
2541
2542 } else {
2543 clang::NamedDecl *named_decl = llvm::dyn_cast<clang::NamedDecl>(decl);
2544 if (named_decl) {
2545 printf("%20s: %s\n", decl->getDeclKindName(),
2546 named_decl->getDeclName().getAsString().c_str());
2547 } else {
2548 printf("%20s\n", decl->getDeclKindName());
2549 }
2550 }
2551}
2552
2553bool TypeSystemClang::GetCompleteDecl(clang::ASTContext *ast,
2554 clang::Decl *decl) {
2555 if (!decl)
2556 return false;
2557
2558 ExternalASTSource *ast_source = ast->getExternalSource();
2559
2560 if (!ast_source)
2561 return false;
2562
2563 if (clang::TagDecl *tag_decl = llvm::dyn_cast<clang::TagDecl>(decl)) {
2564 if (tag_decl->isCompleteDefinition())
2565 return true;
2566
2567 if (!tag_decl->hasExternalLexicalStorage())
2568 return false;
2569
2570 ast_source->CompleteType(tag_decl);
2571
2572 return !ast->getCanonicalTagType(tag_decl)->isIncompleteType();
2573 } else if (clang::ObjCInterfaceDecl *objc_interface_decl =
2574 llvm::dyn_cast<clang::ObjCInterfaceDecl>(decl)) {
2575 if (objc_interface_decl->getDefinition())
2576 return true;
2577
2578 if (!objc_interface_decl->hasExternalLexicalStorage())
2579 return false;
2580
2581 ast_source->CompleteType(objc_interface_decl);
2582
2583 return !objc_interface_decl->getTypeForDecl()->isIncompleteType();
2584 } else {
2585 return false;
2586 }
2587}
2588
2589void TypeSystemClang::SetMetadataAsUserID(const clang::Decl *decl,
2590 user_id_t user_id) {
2591 ClangASTMetadata meta_data;
2592 meta_data.SetUserID(user_id);
2593 SetMetadata(decl, meta_data);
2594}
2595
2596void TypeSystemClang::SetMetadataAsUserID(const clang::Type *type,
2597 user_id_t user_id) {
2598 ClangASTMetadata meta_data;
2599 meta_data.SetUserID(user_id);
2600 SetMetadata(type, meta_data);
2601}
2602
2603void TypeSystemClang::SetMetadata(const clang::Decl *object,
2604 ClangASTMetadata metadata) {
2605 m_decl_metadata[object] = metadata;
2606}
2607
2608void TypeSystemClang::SetMetadata(const clang::Type *object,
2609 ClangASTMetadata metadata) {
2610 m_type_metadata[object] = metadata;
2611}
2612
2613std::optional<ClangASTMetadata>
2614TypeSystemClang::GetMetadata(const clang::Decl *object) {
2615 auto It = m_decl_metadata.find(object);
2616 if (It != m_decl_metadata.end())
2617 return It->second;
2618
2619 return std::nullopt;
2620}
2621
2622std::optional<ClangASTMetadata>
2623TypeSystemClang::GetMetadata(const clang::Type *object) {
2624 auto It = m_type_metadata.find(object);
2625 if (It != m_type_metadata.end())
2626 return It->second;
2627
2628 return std::nullopt;
2629}
2630
2631clang::DeclContext *
2635
2638 if (auto *decl_context = GetDeclContextForType(type))
2639 return CreateDeclContext(decl_context);
2640 return CompilerDeclContext();
2641}
2642
2643/// Aggressively desugar the provided type, skipping past various kinds of
2644/// syntactic sugar and other constructs one typically wants to ignore.
2645/// The \p mask argument allows one to skip certain kinds of simplifications,
2646/// when one wishes to handle a certain kind of type directly.
2647static QualType
2648RemoveWrappingTypes(QualType type, ArrayRef<clang::Type::TypeClass> mask = {}) {
2649 while (true) {
2650 if (find(mask, type->getTypeClass()) != mask.end())
2651 return type;
2652 switch (type->getTypeClass()) {
2653 // This is not fully correct as _Atomic is more than sugar, but it is
2654 // sufficient for the purposes we care about.
2655 case clang::Type::Atomic:
2656 type = cast<clang::AtomicType>(type)->getValueType();
2657 break;
2658 case clang::Type::Auto:
2659 case clang::Type::Decltype:
2660 case clang::Type::Paren:
2661 case clang::Type::SubstTemplateTypeParm:
2662 case clang::Type::TemplateSpecialization:
2663 case clang::Type::Typedef:
2664 case clang::Type::TypeOf:
2665 case clang::Type::TypeOfExpr:
2666 case clang::Type::Using:
2667 case clang::Type::PredefinedSugar:
2668 type = type->getLocallyUnqualifiedSingleStepDesugaredType();
2669 break;
2670 default:
2671 return type;
2672 }
2673 }
2674}
2675
2676clang::DeclContext *
2678 if (type.isNull())
2679 return nullptr;
2680
2681 clang::QualType qual_type = RemoveWrappingTypes(type.getCanonicalType());
2682 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
2683 switch (type_class) {
2684 case clang::Type::ObjCInterface:
2685 return llvm::cast<clang::ObjCObjectType>(qual_type.getTypePtr())
2686 ->getInterface();
2687 case clang::Type::ObjCObjectPointer:
2688 return GetDeclContextForType(
2689 llvm::cast<clang::ObjCObjectPointerType>(qual_type.getTypePtr())
2690 ->getPointeeType());
2691 case clang::Type::Enum:
2692 case clang::Type::Record:
2693 return llvm::cast<clang::TagType>(qual_type)
2694 ->getDecl()
2695 ->getDefinitionOrSelf();
2696 default:
2697 break;
2698 }
2699 // No DeclContext in this type...
2700 return nullptr;
2701}
2702
2703/// Returns the clang::RecordType of the specified \ref qual_type. This
2704/// function will try to complete the type if necessary (and allowed
2705/// by the specified \ref allow_completion). If we fail to return a *complete*
2706/// type, returns nullptr.
2707static const clang::RecordType *
2708GetCompleteRecordType(const clang::ASTContext *ast, clang::QualType qual_type) {
2709 assert(qual_type->isRecordType());
2710
2711 const auto *tag_type = llvm::cast<clang::RecordType>(qual_type.getTypePtr());
2712
2713 clang::CXXRecordDecl *cxx_record_decl = qual_type->getAsCXXRecordDecl();
2714
2715 // RecordType with no way of completing it, return the plain
2716 // TagType.
2717 if (!cxx_record_decl || !cxx_record_decl->hasExternalLexicalStorage())
2718 return tag_type;
2719
2720 const bool is_complete = cxx_record_decl->isCompleteDefinition();
2721 const bool fields_loaded =
2722 cxx_record_decl->hasLoadedFieldsFromExternalStorage();
2723
2724 // Already completed this type, nothing to be done.
2725 if (is_complete && fields_loaded)
2726 return tag_type;
2727
2728 // Call the field_begin() accessor to for it to use the external source
2729 // to load the fields...
2730 //
2731 // TODO: if we need to complete the type but have no external source,
2732 // shouldn't we error out instead?
2733 clang::ExternalASTSource *external_ast_source = ast->getExternalSource();
2734 if (external_ast_source) {
2735 external_ast_source->CompleteType(cxx_record_decl);
2736 if (cxx_record_decl->isCompleteDefinition()) {
2737 cxx_record_decl->field_begin();
2738 cxx_record_decl->setHasLoadedFieldsFromExternalStorage(true);
2739 }
2740 }
2741
2742 return tag_type;
2743}
2744
2745/// Returns the clang::EnumType of the specified \ref qual_type. This
2746/// function will try to complete the type if necessary (and allowed
2747/// by the specified \ref allow_completion). If we fail to return a *complete*
2748/// type, returns nullptr.
2749static const clang::EnumType *GetCompleteEnumType(const clang::ASTContext *ast,
2750 clang::QualType qual_type) {
2751 assert(qual_type->isEnumeralType());
2752 assert(ast);
2753
2754 const clang::EnumType *enum_type =
2755 llvm::cast<clang::EnumType>(qual_type.getTypePtr());
2756
2757 auto *tag_decl = enum_type->getAsTagDecl();
2758 assert(tag_decl);
2759
2760 // Already completed, nothing to be done.
2761 if (tag_decl->getDefinition())
2762 return enum_type;
2763
2764 // No definition but can't complete it, error out.
2765 if (!tag_decl->hasExternalLexicalStorage())
2766 return nullptr;
2767
2768 // We can't complete the type without an external source.
2769 clang::ExternalASTSource *external_ast_source = ast->getExternalSource();
2770 if (!external_ast_source)
2771 return nullptr;
2772
2773 external_ast_source->CompleteType(tag_decl);
2774 return enum_type;
2775}
2776
2777/// Returns the clang::ObjCObjectType of the specified \ref qual_type. This
2778/// function will try to complete the type if necessary (and allowed
2779/// by the specified \ref allow_completion). If we fail to return a *complete*
2780/// type, returns nullptr.
2781static const clang::ObjCObjectType *
2782GetCompleteObjCObjectType(const clang::ASTContext *ast, QualType qual_type) {
2783 assert(qual_type->isObjCObjectType());
2784 assert(ast);
2785
2786 const clang::ObjCObjectType *objc_class_type =
2787 llvm::cast<clang::ObjCObjectType>(qual_type);
2788
2789 clang::ObjCInterfaceDecl *class_interface_decl =
2790 objc_class_type->getInterface();
2791 // We currently can't complete objective C types through the newly added
2792 // ASTContext because it only supports TagDecl objects right now...
2793 if (!class_interface_decl)
2794 return objc_class_type;
2795
2796 // Already complete, nothing to be done.
2797 if (class_interface_decl->getDefinition())
2798 return objc_class_type;
2799
2800 // No definition but can't complete it, error out.
2801 if (!class_interface_decl->hasExternalLexicalStorage())
2802 return nullptr;
2803
2804 // We can't complete the type without an external source.
2805 clang::ExternalASTSource *external_ast_source = ast->getExternalSource();
2806 if (!external_ast_source)
2807 return nullptr;
2808
2809 external_ast_source->CompleteType(class_interface_decl);
2810 return objc_class_type;
2811}
2812
2813static bool GetCompleteQualType(const clang::ASTContext *ast,
2814 clang::QualType qual_type) {
2815 qual_type = RemoveWrappingTypes(qual_type);
2816 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
2817 switch (type_class) {
2818 case clang::Type::ConstantArray:
2819 case clang::Type::IncompleteArray:
2820 case clang::Type::VariableArray: {
2821 const clang::ArrayType *array_type =
2822 llvm::dyn_cast<clang::ArrayType>(qual_type.getTypePtr());
2823
2824 if (array_type)
2825 return GetCompleteQualType(ast, array_type->getElementType());
2826 } break;
2827 case clang::Type::Record: {
2828 if (const auto *RT = GetCompleteRecordType(ast, qual_type))
2829 return !RT->isIncompleteType();
2830
2831 return false;
2832 } break;
2833
2834 case clang::Type::Enum: {
2835 if (const auto *ET = GetCompleteEnumType(ast, qual_type))
2836 return !ET->isIncompleteType();
2837
2838 return false;
2839 } break;
2840 case clang::Type::ObjCObject:
2841 case clang::Type::ObjCInterface: {
2842 if (const auto *OT = GetCompleteObjCObjectType(ast, qual_type))
2843 return !OT->isIncompleteType();
2844
2845 return false;
2846 } break;
2847
2848 case clang::Type::Attributed:
2849 return GetCompleteQualType(
2850 ast, llvm::cast<clang::AttributedType>(qual_type)->getModifiedType());
2851
2852 case clang::Type::MemberPointer:
2853 // MS C++ ABI requires type of the class to be complete of which the pointee
2854 // is a member.
2855 if (ast->getTargetInfo().getCXXABI().isMicrosoft()) {
2856 auto *MPT = qual_type.getTypePtr()->castAs<clang::MemberPointerType>();
2857 if (auto *RD = MPT->getMostRecentCXXRecordDecl())
2858 GetCompleteRecordType(ast, ast->getCanonicalTagType(RD));
2859
2860 return !qual_type.getTypePtr()->isIncompleteType();
2861 }
2862 break;
2863
2864 default:
2865 break;
2866 }
2867
2868 return true;
2869}
2870
2871// Tests
2872
2873#ifndef NDEBUG
2875 return !type || llvm::isa<clang::Type>(GetQualType(type).getTypePtr());
2876}
2877#endif
2878
2880 clang::QualType qual_type(RemoveWrappingTypes(GetCanonicalQualType(type)));
2881
2882 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
2883 switch (type_class) {
2884 case clang::Type::IncompleteArray:
2885 case clang::Type::VariableArray:
2886 case clang::Type::ConstantArray:
2887 case clang::Type::ExtVector:
2888 case clang::Type::Vector:
2889 case clang::Type::Record:
2890 case clang::Type::ObjCObject:
2891 case clang::Type::ObjCInterface:
2892 return true;
2893 default:
2894 break;
2895 }
2896 // The clang type does have a value
2897 return false;
2898}
2899
2901 clang::QualType qual_type(RemoveWrappingTypes(GetCanonicalQualType(type)));
2902
2903 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
2904 switch (type_class) {
2905 case clang::Type::Record: {
2906 if (const clang::RecordType *record_type =
2907 llvm::dyn_cast_or_null<clang::RecordType>(
2908 qual_type.getTypePtrOrNull())) {
2909 if (const clang::RecordDecl *record_decl = record_type->getDecl()) {
2910 return record_decl->isAnonymousStructOrUnion();
2911 }
2912 }
2913 break;
2914 }
2915 default:
2916 break;
2917 }
2918 // The clang type does have a value
2919 return false;
2920}
2921
2923 CompilerType *element_type_ptr,
2924 uint64_t *size, bool *is_incomplete) {
2925 clang::QualType qual_type(RemoveWrappingTypes(GetCanonicalQualType(type)));
2926
2927 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
2928 switch (type_class) {
2929 default:
2930 break;
2931
2932 case clang::Type::ConstantArray:
2933 if (element_type_ptr)
2934 element_type_ptr->SetCompilerType(
2935 weak_from_this(), llvm::cast<clang::ConstantArrayType>(qual_type)
2936 ->getElementType()
2937 .getAsOpaquePtr());
2938 if (size)
2939 *size = llvm::cast<clang::ConstantArrayType>(qual_type)
2940 ->getSize()
2941 .getLimitedValue(ULLONG_MAX);
2942 if (is_incomplete)
2943 *is_incomplete = false;
2944 return true;
2945
2946 case clang::Type::IncompleteArray:
2947 if (element_type_ptr)
2948 element_type_ptr->SetCompilerType(
2949 weak_from_this(), llvm::cast<clang::IncompleteArrayType>(qual_type)
2950 ->getElementType()
2951 .getAsOpaquePtr());
2952 if (size)
2953 *size = 0;
2954 if (is_incomplete)
2955 *is_incomplete = true;
2956 return true;
2957
2958 case clang::Type::VariableArray:
2959 if (element_type_ptr)
2960 element_type_ptr->SetCompilerType(
2961 weak_from_this(), llvm::cast<clang::VariableArrayType>(qual_type)
2962 ->getElementType()
2963 .getAsOpaquePtr());
2964 if (size)
2965 *size = 0;
2966 if (is_incomplete)
2967 *is_incomplete = false;
2968 return true;
2969
2970 case clang::Type::DependentSizedArray:
2971 if (element_type_ptr)
2972 element_type_ptr->SetCompilerType(
2973 weak_from_this(),
2974 llvm::cast<clang::DependentSizedArrayType>(qual_type)
2975 ->getElementType()
2976 .getAsOpaquePtr());
2977 if (size)
2978 *size = 0;
2979 if (is_incomplete)
2980 *is_incomplete = false;
2981 return true;
2982 }
2983 if (element_type_ptr)
2984 element_type_ptr->Clear();
2985 if (size)
2986 *size = 0;
2987 if (is_incomplete)
2988 *is_incomplete = false;
2989 return false;
2990}
2991
2993 CompilerType *element_type, uint64_t *size) {
2994 clang::QualType qual_type(GetCanonicalQualType(type));
2995
2996 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
2997 switch (type_class) {
2998 case clang::Type::Vector: {
2999 const clang::VectorType *vector_type =
3000 qual_type->getAs<clang::VectorType>();
3001 if (vector_type) {
3002 if (size)
3003 *size = vector_type->getNumElements();
3004 if (element_type)
3005 *element_type = GetType(vector_type->getElementType());
3006 }
3007 return true;
3008 } break;
3009 case clang::Type::ExtVector: {
3010 const clang::ExtVectorType *ext_vector_type =
3011 qual_type->getAs<clang::ExtVectorType>();
3012 if (ext_vector_type) {
3013 if (size)
3014 *size = ext_vector_type->getNumElements();
3015 if (element_type)
3016 *element_type =
3017 CompilerType(weak_from_this(),
3018 ext_vector_type->getElementType().getAsOpaquePtr());
3019 }
3020 return true;
3021 }
3022 default:
3023 break;
3024 }
3025 return false;
3026}
3027
3030 clang::DeclContext *decl_ctx = GetDeclContextForType(GetQualType(type));
3031 if (!decl_ctx)
3032 return false;
3033
3034 if (!llvm::isa<clang::ObjCInterfaceDecl>(decl_ctx))
3035 return false;
3036
3037 clang::ObjCInterfaceDecl *result_iface_decl =
3038 llvm::dyn_cast<clang::ObjCInterfaceDecl>(decl_ctx);
3039
3040 std::optional<ClangASTMetadata> ast_metadata = GetMetadata(result_iface_decl);
3041 if (!ast_metadata)
3042 return false;
3043
3044 return (ast_metadata->GetISAPtr() != 0);
3045}
3046
3048 return GetQualType(type).getUnqualifiedType()->isCharType();
3049}
3050
3052 // If the type hasn't been lazily completed yet, complete it now so that we
3053 // can give the caller an accurate answer whether the type actually has a
3054 // definition. Without completing the type now we would just tell the user
3055 // the current (internal) completeness state of the type and most users don't
3056 // care (or even know) about this behavior.
3058}
3059
3061 return GetQualType(type).isConstQualified();
3062}
3063
3065 uint32_t &length) {
3066 CompilerType pointee_or_element_clang_type;
3067 length = 0;
3068 Flags type_flags(GetTypeInfo(type, &pointee_or_element_clang_type));
3069
3070 if (!pointee_or_element_clang_type.IsValid())
3071 return false;
3072
3073 if (type_flags.AnySet(eTypeIsArray | eTypeIsPointer)) {
3074 if (pointee_or_element_clang_type.IsCharType()) {
3075 if (type_flags.Test(eTypeIsArray)) {
3076 // We know the size of the array and it could be a C string since it is
3077 // an array of characters
3078 length = llvm::cast<clang::ConstantArrayType>(
3079 GetCanonicalQualType(type).getTypePtr())
3080 ->getSize()
3081 .getLimitedValue();
3082 }
3083 return true;
3084 }
3085 }
3086 return false;
3087}
3088
3090 if (type) {
3091 clang::QualType qual_type(GetCanonicalQualType(type));
3092 if (auto pointer_auth = qual_type.getPointerAuth())
3093 return pointer_auth.getKey();
3094 }
3095 return 0;
3096}
3097
3098unsigned
3100 if (type) {
3101 clang::QualType qual_type(GetCanonicalQualType(type));
3102 if (auto pointer_auth = qual_type.getPointerAuth())
3103 return pointer_auth.getExtraDiscriminator();
3104 }
3105 return 0;
3106}
3107
3110 if (type) {
3111 clang::QualType qual_type(GetCanonicalQualType(type));
3112 if (auto pointer_auth = qual_type.getPointerAuth())
3113 return pointer_auth.isAddressDiscriminated();
3114 }
3115 return false;
3116}
3117
3119 auto isFunctionType = [&](clang::QualType qual_type) {
3120 return qual_type->isFunctionType();
3121 };
3122
3123 return IsTypeImpl(type, isFunctionType);
3124}
3125
3126// Used to detect "Homogeneous Floating-point Aggregates"
3127uint32_t
3129 CompilerType *base_type_ptr) {
3130 if (!type)
3131 return 0;
3132
3133 clang::QualType qual_type(RemoveWrappingTypes(GetCanonicalQualType(type)));
3134 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
3135 switch (type_class) {
3136 case clang::Type::Record:
3137 if (GetCompleteType(type)) {
3138 const clang::CXXRecordDecl *cxx_record_decl =
3139 qual_type->getAsCXXRecordDecl();
3140 if (cxx_record_decl) {
3141 if (cxx_record_decl->getNumBases() || cxx_record_decl->isDynamicClass())
3142 return 0;
3143 }
3144 const clang::RecordType *record_type =
3145 llvm::cast<clang::RecordType>(qual_type.getTypePtr());
3146 if (record_type) {
3147 if (const clang::RecordDecl *record_decl =
3148 record_type->getDecl()->getDefinition()) {
3149 // We are looking for a structure that contains only floating point
3150 // types
3151 clang::RecordDecl::field_iterator field_pos,
3152 field_end = record_decl->field_end();
3153 uint32_t num_fields = 0;
3154 bool is_hva = false;
3155 bool is_hfa = false;
3156 clang::QualType base_qual_type;
3157 uint64_t base_bitwidth = 0;
3158 for (field_pos = record_decl->field_begin(); field_pos != field_end;
3159 ++field_pos) {
3160 clang::QualType field_qual_type = field_pos->getType();
3161 uint64_t field_bitwidth = getASTContext().getTypeSize(qual_type);
3162 if (field_qual_type->isFloatingType()) {
3163 if (field_qual_type->isComplexType())
3164 return 0;
3165 else {
3166 if (num_fields == 0)
3167 base_qual_type = field_qual_type;
3168 else {
3169 if (is_hva)
3170 return 0;
3171 is_hfa = true;
3172 if (field_qual_type.getTypePtr() !=
3173 base_qual_type.getTypePtr())
3174 return 0;
3175 }
3176 }
3177 } else if (field_qual_type->isVectorType() ||
3178 field_qual_type->isExtVectorType()) {
3179 if (num_fields == 0) {
3180 base_qual_type = field_qual_type;
3181 base_bitwidth = field_bitwidth;
3182 } else {
3183 if (is_hfa)
3184 return 0;
3185 is_hva = true;
3186 if (base_bitwidth != field_bitwidth)
3187 return 0;
3188 if (field_qual_type.getTypePtr() != base_qual_type.getTypePtr())
3189 return 0;
3190 }
3191 } else
3192 return 0;
3193 ++num_fields;
3194 }
3195 if (base_type_ptr)
3196 *base_type_ptr =
3197 CompilerType(weak_from_this(), base_qual_type.getAsOpaquePtr());
3198 return num_fields;
3199 }
3200 }
3201 }
3202 break;
3203
3204 default:
3205 break;
3206 }
3207 return 0;
3208}
3209
3212 if (type) {
3213 clang::QualType qual_type(GetCanonicalQualType(type));
3214 const clang::FunctionProtoType *func =
3215 llvm::dyn_cast<clang::FunctionProtoType>(qual_type.getTypePtr());
3216 if (func)
3217 return func->getNumParams();
3218 }
3219 return 0;
3220}
3221
3224 const size_t index) {
3225 if (type) {
3226 clang::QualType qual_type(GetQualType(type));
3227 const clang::FunctionProtoType *func =
3228 llvm::dyn_cast<clang::FunctionProtoType>(qual_type.getTypePtr());
3229 if (func) {
3230 if (index < func->getNumParams())
3231 return CompilerType(weak_from_this(), func->getParamType(index).getAsOpaquePtr());
3232 }
3233 }
3234 return CompilerType();
3235}
3236
3239 llvm::function_ref<bool(clang::QualType)> predicate) const {
3240 if (type) {
3241 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
3242
3243 if (predicate(qual_type))
3244 return true;
3245
3246 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
3247 switch (type_class) {
3248 default:
3249 break;
3250
3251 case clang::Type::LValueReference:
3252 case clang::Type::RValueReference: {
3253 const clang::ReferenceType *reference_type =
3254 llvm::cast<clang::ReferenceType>(qual_type.getTypePtr());
3255 if (reference_type)
3256 return IsTypeImpl(reference_type->getPointeeType().getAsOpaquePtr(), predicate);
3257 } break;
3258 }
3259 }
3260 return false;
3261}
3262
3265 auto isMemberFunctionPointerType = [](clang::QualType qual_type) {
3266 return qual_type->isMemberFunctionPointerType();
3267 };
3268
3269 return IsTypeImpl(type, isMemberFunctionPointerType);
3270}
3271
3274 auto isMemberDataPointerType = [](clang::QualType qual_type) {
3275 return qual_type->isMemberDataPointerType();
3276 };
3277
3278 return IsTypeImpl(type, isMemberDataPointerType);
3279}
3280
3282 auto isFunctionPointerType = [](clang::QualType qual_type) {
3283 return qual_type->isFunctionPointerType();
3284 };
3285
3286 return IsTypeImpl(type, isFunctionPointerType);
3287}
3288
3291 CompilerType *function_pointer_type_ptr) {
3292 auto isBlockPointerType = [&](clang::QualType qual_type) {
3293 if (qual_type->isBlockPointerType()) {
3294 if (function_pointer_type_ptr) {
3295 const clang::BlockPointerType *block_pointer_type =
3296 qual_type->castAs<clang::BlockPointerType>();
3297 QualType pointee_type = block_pointer_type->getPointeeType();
3298 QualType function_pointer_type = m_ast_up->getPointerType(pointee_type);
3299 *function_pointer_type_ptr = CompilerType(
3300 weak_from_this(), function_pointer_type.getAsOpaquePtr());
3301 }
3302 return true;
3303 }
3304
3305 return false;
3306 };
3307
3308 return IsTypeImpl(type, isBlockPointerType);
3309}
3310
3312 bool &is_signed) {
3313 if (!type)
3314 return false;
3315
3316 clang::QualType qual_type(GetCanonicalQualType(type));
3317 if (qual_type.isNull())
3318 return false;
3319
3320 // Note, using 'isIntegralType' as opposed to 'isIntegerType' because
3321 // the latter treats unscoped enums as integer types (which is not true
3322 // in C++). The former accounts for this.
3323 if (!qual_type->isIntegralType(getASTContext()))
3324 return false;
3325
3326 is_signed = qual_type->isSignedIntegerType();
3327
3328 return true;
3329}
3330
3332 bool &is_signed) {
3333 if (type) {
3334 const clang::EnumType *enum_type = llvm::dyn_cast<clang::EnumType>(
3335 GetCanonicalQualType(type)->getCanonicalTypeInternal());
3336
3337 if (enum_type) {
3338 is_signed = enum_type->isSignedIntegerOrEnumerationType();
3339 return true;
3340 }
3341 }
3342
3343 return false;
3344}
3345
3348 if (type) {
3349 const clang::EnumType *enum_type = llvm::dyn_cast<clang::EnumType>(
3350 GetCanonicalQualType(type)->getCanonicalTypeInternal());
3351
3352 if (enum_type) {
3353 return enum_type->isScopedEnumeralType();
3354 }
3355 }
3356
3357 return false;
3358}
3359
3361 CompilerType *pointee_type) {
3362 if (type) {
3363 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
3364 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
3365 switch (type_class) {
3366 case clang::Type::Builtin:
3367 switch (llvm::cast<clang::BuiltinType>(qual_type)->getKind()) {
3368 default:
3369 break;
3370 case clang::BuiltinType::ObjCId:
3371 case clang::BuiltinType::ObjCClass:
3372 return true;
3373 }
3374 return false;
3375 case clang::Type::ObjCObjectPointer:
3376 if (pointee_type)
3377 pointee_type->SetCompilerType(
3378 weak_from_this(),
3379 llvm::cast<clang::ObjCObjectPointerType>(qual_type)
3380 ->getPointeeType()
3381 .getAsOpaquePtr());
3382 return true;
3383 case clang::Type::BlockPointer:
3384 if (pointee_type)
3385 pointee_type->SetCompilerType(
3386 weak_from_this(), llvm::cast<clang::BlockPointerType>(qual_type)
3387 ->getPointeeType()
3388 .getAsOpaquePtr());
3389 return true;
3390 case clang::Type::Pointer:
3391 if (pointee_type)
3392 pointee_type->SetCompilerType(weak_from_this(),
3393 llvm::cast<clang::PointerType>(qual_type)
3394 ->getPointeeType()
3395 .getAsOpaquePtr());
3396 return true;
3397 case clang::Type::MemberPointer:
3398 if (pointee_type)
3399 pointee_type->SetCompilerType(
3400 weak_from_this(), llvm::cast<clang::MemberPointerType>(qual_type)
3401 ->getPointeeType()
3402 .getAsOpaquePtr());
3403 return true;
3404 default:
3405 break;
3406 }
3407 }
3408 if (pointee_type)
3409 pointee_type->Clear();
3410 return false;
3411}
3412
3414 lldb::opaque_compiler_type_t type, CompilerType *pointee_type) {
3415 if (type) {
3416 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
3417 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
3418 switch (type_class) {
3419 case clang::Type::Builtin:
3420 switch (llvm::cast<clang::BuiltinType>(qual_type)->getKind()) {
3421 default:
3422 break;
3423 case clang::BuiltinType::ObjCId:
3424 case clang::BuiltinType::ObjCClass:
3425 return true;
3426 }
3427 return false;
3428 case clang::Type::ObjCObjectPointer:
3429 if (pointee_type)
3430 pointee_type->SetCompilerType(
3431 weak_from_this(),
3432 llvm::cast<clang::ObjCObjectPointerType>(qual_type)
3433 ->getPointeeType()
3434 .getAsOpaquePtr());
3435 return true;
3436 case clang::Type::BlockPointer:
3437 if (pointee_type)
3438 pointee_type->SetCompilerType(
3439 weak_from_this(), llvm::cast<clang::BlockPointerType>(qual_type)
3440 ->getPointeeType()
3441 .getAsOpaquePtr());
3442 return true;
3443 case clang::Type::Pointer:
3444 if (pointee_type)
3445 pointee_type->SetCompilerType(weak_from_this(),
3446 llvm::cast<clang::PointerType>(qual_type)
3447 ->getPointeeType()
3448 .getAsOpaquePtr());
3449 return true;
3450 case clang::Type::MemberPointer:
3451 if (pointee_type)
3452 pointee_type->SetCompilerType(
3453 weak_from_this(), llvm::cast<clang::MemberPointerType>(qual_type)
3454 ->getPointeeType()
3455 .getAsOpaquePtr());
3456 return true;
3457 case clang::Type::LValueReference:
3458 if (pointee_type)
3459 pointee_type->SetCompilerType(
3460 weak_from_this(), llvm::cast<clang::LValueReferenceType>(qual_type)
3461 ->desugar()
3462 .getAsOpaquePtr());
3463 return true;
3464 case clang::Type::RValueReference:
3465 if (pointee_type)
3466 pointee_type->SetCompilerType(
3467 weak_from_this(), llvm::cast<clang::RValueReferenceType>(qual_type)
3468 ->desugar()
3469 .getAsOpaquePtr());
3470 return true;
3471 default:
3472 break;
3473 }
3474 }
3475 if (pointee_type)
3476 pointee_type->Clear();
3477 return false;
3478}
3479
3481 CompilerType *pointee_type,
3482 bool *is_rvalue) {
3483 if (type) {
3484 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
3485 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
3486
3487 switch (type_class) {
3488 case clang::Type::LValueReference:
3489 if (pointee_type)
3490 pointee_type->SetCompilerType(
3491 weak_from_this(), llvm::cast<clang::LValueReferenceType>(qual_type)
3492 ->desugar()
3493 .getAsOpaquePtr());
3494 if (is_rvalue)
3495 *is_rvalue = false;
3496 return true;
3497 case clang::Type::RValueReference:
3498 if (pointee_type)
3499 pointee_type->SetCompilerType(
3500 weak_from_this(), llvm::cast<clang::RValueReferenceType>(qual_type)
3501 ->desugar()
3502 .getAsOpaquePtr());
3503 if (is_rvalue)
3504 *is_rvalue = true;
3505 return true;
3506
3507 default:
3508 break;
3509 }
3510 }
3511 if (pointee_type)
3512 pointee_type->Clear();
3513 return false;
3514}
3515
3517 if (!type)
3518 return false;
3519
3520 clang::QualType qual_type(GetCanonicalQualType(type));
3521 if (qual_type.isNull())
3522 return false;
3523
3524 return qual_type->isFloatingType();
3525}
3526
3528 if (!type)
3529 return false;
3530
3531 clang::QualType qual_type(GetQualType(type));
3532 const clang::TagType *tag_type =
3533 llvm::dyn_cast<clang::TagType>(qual_type.getTypePtr());
3534 if (tag_type) {
3535 if (clang::TagDecl *tag_decl = tag_type->getDecl()->getDefinition())
3536 return tag_decl->isCompleteDefinition();
3537 return false;
3538 } else {
3539 const clang::ObjCObjectType *objc_class_type =
3540 llvm::dyn_cast<clang::ObjCObjectType>(qual_type);
3541 if (objc_class_type) {
3542 clang::ObjCInterfaceDecl *class_interface_decl =
3543 objc_class_type->getInterface();
3544 if (class_interface_decl)
3545 return class_interface_decl->getDefinition() != nullptr;
3546 return false;
3547 }
3548 }
3549 return true;
3550}
3551
3553 if (ClangUtil::IsClangType(type)) {
3554 clang::QualType qual_type(ClangUtil::GetCanonicalQualType(type));
3555
3556 const clang::ObjCObjectPointerType *obj_pointer_type =
3557 llvm::dyn_cast<clang::ObjCObjectPointerType>(qual_type);
3558
3559 if (obj_pointer_type)
3560 return obj_pointer_type->isObjCClassType();
3561 }
3562 return false;
3563}
3564
3566 if (ClangUtil::IsClangType(type))
3567 return ClangUtil::GetCanonicalQualType(type)->isObjCObjectOrInterfaceType();
3568 return false;
3569}
3570
3572 if (!type)
3573 return false;
3574 clang::QualType qual_type(GetCanonicalQualType(type));
3575 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
3576 return (type_class == clang::Type::Record);
3577}
3578
3580 if (!type)
3581 return false;
3582 clang::QualType qual_type(GetCanonicalQualType(type));
3583 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
3584 return (type_class == clang::Type::Enum);
3585}
3586
3588 if (type) {
3589 clang::QualType qual_type(GetCanonicalQualType(type));
3590 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
3591 switch (type_class) {
3592 case clang::Type::Record:
3593 if (GetCompleteType(type)) {
3594 if (const auto *cxx_record_decl = qual_type->getAsCXXRecordDecl()) {
3595 // We can't just call is isPolymorphic() here because that just
3596 // means the current class has virtual functions, it doesn't check
3597 // if any inherited classes have virtual functions. The doc string
3598 // in SBType::IsPolymorphicClass() says it is looking for both
3599 // if the class has virtual methods or if any bases do, so this
3600 // should be more correct.
3601 return cxx_record_decl->isDynamicClass();
3602 }
3603 }
3604 break;
3605
3606 default:
3607 break;
3608 }
3609 }
3610 return false;
3611}
3612
3614 CompilerType *dynamic_pointee_type,
3615 bool check_cplusplus,
3616 bool check_objc) {
3617 if (dynamic_pointee_type)
3618 dynamic_pointee_type->Clear();
3619 if (!type)
3620 return false;
3621
3622 auto set_dynamic_pointee_type = [&](clang::QualType type) {
3623 if (dynamic_pointee_type)
3624 dynamic_pointee_type->SetCompilerType(weak_from_this(),
3625 type.getAsOpaquePtr());
3626 };
3627
3628 clang::QualType pointee_qual_type;
3629 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
3630 switch (qual_type->getTypeClass()) {
3631 case clang::Type::Builtin:
3632 if (check_objc && llvm::cast<clang::BuiltinType>(qual_type)->getKind() ==
3633 clang::BuiltinType::ObjCId) {
3634 set_dynamic_pointee_type(qual_type);
3635 return true;
3636 }
3637 return false;
3638
3639 case clang::Type::ObjCObjectPointer:
3640 if (!check_objc)
3641 return false;
3642 if (const auto *objc_pointee_type =
3643 qual_type->getPointeeType().getTypePtrOrNull()) {
3644 if (const auto *objc_object_type =
3645 llvm::dyn_cast_or_null<clang::ObjCObjectType>(
3646 objc_pointee_type)) {
3647 if (objc_object_type->isObjCClass())
3648 return false;
3649 }
3650 }
3651 set_dynamic_pointee_type(
3652 llvm::cast<clang::ObjCObjectPointerType>(qual_type)->getPointeeType());
3653 return true;
3654
3655 case clang::Type::Pointer:
3656 pointee_qual_type =
3657 llvm::cast<clang::PointerType>(qual_type)->getPointeeType();
3658 break;
3659
3660 case clang::Type::LValueReference:
3661 case clang::Type::RValueReference:
3662 pointee_qual_type =
3663 llvm::cast<clang::ReferenceType>(qual_type)->getPointeeType();
3664 break;
3665
3666 default:
3667 return false;
3668 }
3669
3670 // Check to make sure what we are pointing to is a possible dynamic C++ type
3671 // We currently accept any "void *" (in case we have a class that has been
3672 // watered down to an opaque pointer) and virtual C++ classes.
3673 switch (pointee_qual_type.getCanonicalType()->getTypeClass()) {
3674 case clang::Type::Builtin:
3675 switch (llvm::cast<clang::BuiltinType>(pointee_qual_type)->getKind()) {
3676 case clang::BuiltinType::UnknownAny:
3677 case clang::BuiltinType::Void:
3678 set_dynamic_pointee_type(pointee_qual_type);
3679 return true;
3680 default:
3681 return false;
3682 }
3683
3684 case clang::Type::Record: {
3685 if (!check_cplusplus)
3686 return false;
3687 clang::CXXRecordDecl *cxx_record_decl =
3688 pointee_qual_type->getAsCXXRecordDecl();
3689 if (!cxx_record_decl)
3690 return false;
3691
3692 bool success;
3693 if (cxx_record_decl->isCompleteDefinition())
3694 success = cxx_record_decl->isDynamicClass();
3695 else {
3696 std::optional<ClangASTMetadata> metadata = GetMetadata(cxx_record_decl);
3697 std::optional<bool> is_dynamic =
3698 metadata ? metadata->GetIsDynamicCXXType() : std::nullopt;
3699 if (is_dynamic)
3700 success = *is_dynamic;
3701 else if (GetType(pointee_qual_type).GetCompleteType())
3702 success = cxx_record_decl->isDynamicClass();
3703 else
3704 success = false;
3705 }
3706
3707 if (success)
3708 set_dynamic_pointee_type(pointee_qual_type);
3709 return success;
3710 }
3711
3712 case clang::Type::ObjCObject:
3713 case clang::Type::ObjCInterface:
3714 if (check_objc) {
3715 set_dynamic_pointee_type(pointee_qual_type);
3716 return true;
3717 }
3718 break;
3719
3720 default:
3721 break;
3722 }
3723 return false;
3724}
3725
3727 if (!type)
3728 return false;
3729
3730 return (GetTypeInfo(type, nullptr) & eTypeIsScalar) != 0;
3731}
3732
3734 if (!type)
3735 return false;
3736 return RemoveWrappingTypes(GetQualType(type), {clang::Type::Typedef})
3737 ->getTypeClass() == clang::Type::Typedef;
3738}
3739
3741 if (!type)
3742 return false;
3743 return GetCanonicalQualType(type)->isVoidType();
3744}
3745
3748 if (!type)
3749 return false;
3750 return GetCanonicalQualType(type).getPointerAuth().isPresent();
3751}
3752
3754 if (auto *record_decl =
3756 return record_decl->canPassInRegisters();
3757 }
3758 return false;
3759}
3760
3762 return TypeSystemClangSupportsLanguage(language);
3763}
3764
3765std::optional<std::string>
3767 if (!type)
3768 return std::nullopt;
3769
3770 clang::QualType qual_type(ClangUtil::GetCanonicalQualType(type));
3771 if (qual_type.isNull())
3772 return std::nullopt;
3773
3774 clang::CXXRecordDecl *cxx_record_decl = qual_type->getAsCXXRecordDecl();
3775 if (!cxx_record_decl)
3776 return std::nullopt;
3777
3778 return std::string(cxx_record_decl->getIdentifier()->getNameStart());
3779}
3780
3782 if (!type)
3783 return false;
3784
3785 clang::QualType qual_type(ClangUtil::GetCanonicalQualType(type));
3786 return !qual_type.isNull() && qual_type->getAsCXXRecordDecl() != nullptr;
3787}
3788
3790 if (!type)
3791 return false;
3792 clang::QualType qual_type(GetCanonicalQualType(type));
3793 const clang::TagType *tag_type = llvm::dyn_cast<clang::TagType>(qual_type);
3794 if (tag_type)
3795 return tag_type->getDecl()->isEntityBeingDefined();
3796 return false;
3797}
3798
3800 CompilerType *class_type_ptr) {
3801 if (!ClangUtil::IsClangType(type))
3802 return false;
3803
3804 clang::QualType qual_type(ClangUtil::GetCanonicalQualType(type));
3805
3806 if (!qual_type.isNull() && qual_type->isObjCObjectPointerType()) {
3807 if (class_type_ptr) {
3808 if (!qual_type->isObjCClassType() && !qual_type->isObjCIdType()) {
3809 const clang::ObjCObjectPointerType *obj_pointer_type =
3810 llvm::dyn_cast<clang::ObjCObjectPointerType>(qual_type);
3811 if (obj_pointer_type == nullptr)
3812 class_type_ptr->Clear();
3813 else
3814 class_type_ptr->SetCompilerType(
3815 type.GetTypeSystem(),
3816 clang::QualType(obj_pointer_type->getInterfaceType(), 0)
3817 .getAsOpaquePtr());
3818 }
3819 }
3820 return true;
3821 }
3822 if (class_type_ptr)
3823 class_type_ptr->Clear();
3824 return false;
3825}
3826
3827// Type Completion
3828
3830 if (!type)
3831 return false;
3833}
3834
3836 bool base_only) {
3837 if (!type)
3838 return ConstString();
3839
3840 clang::QualType qual_type(GetQualType(type));
3841
3842 // Remove certain type sugar from the name. Sugar such as elaborated types
3843 // or template types which only serve to improve diagnostics shouldn't
3844 // act as their own types from the user's perspective (e.g., formatter
3845 // shouldn't format a variable differently depending on how the ser has
3846 // specified the type. '::Type' and 'Type' should behave the same).
3847 // Typedefs and atomic derived types are not removed as they are actually
3848 // useful for identifiying specific types.
3849 qual_type = RemoveWrappingTypes(qual_type,
3850 {clang::Type::Typedef, clang::Type::Atomic});
3851
3852 // For a typedef just return the qualified name.
3853 if (const auto *typedef_type = qual_type->getAs<clang::TypedefType>()) {
3854 const clang::TypedefNameDecl *typedef_decl = typedef_type->getDecl();
3855 return ConstString(GetTypeNameForDecl(typedef_decl));
3856 }
3857
3858 // For consistency, this follows the same code path that clang uses to emit
3859 // debug info. This also handles when we don't want any scopes preceding the
3860 // name.
3861 if (auto *named_decl = qual_type->getAsTagDecl())
3862 return ConstString(GetTypeNameForDecl(named_decl, !base_only));
3863
3864 return ConstString(qual_type.getAsString(GetTypePrintingPolicy()));
3865}
3866
3869 if (!type)
3870 return ConstString();
3871
3872 clang::QualType qual_type(GetQualType(type));
3873 clang::PrintingPolicy printing_policy(getASTContext().getPrintingPolicy());
3874 printing_policy.SuppressTagKeyword = true;
3875 printing_policy.SuppressScope = false;
3876 printing_policy.SuppressUnwrittenScope = true;
3877 printing_policy.SuppressInlineNamespace =
3878 llvm::to_underlying(PrintingPolicy::SuppressInlineNamespaceMode::All);
3879 return ConstString(qual_type.getAsString(printing_policy));
3880}
3881
3882uint32_t
3884 CompilerType *pointee_or_element_clang_type) {
3885 if (!type)
3886 return 0;
3887
3888 if (pointee_or_element_clang_type)
3889 pointee_or_element_clang_type->Clear();
3890
3891 clang::QualType qual_type =
3892 RemoveWrappingTypes(GetQualType(type), {clang::Type::Typedef});
3893
3894 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
3895 switch (type_class) {
3896 case clang::Type::Attributed:
3897 return GetTypeInfo(qual_type->castAs<clang::AttributedType>()
3898 ->getModifiedType()
3899 .getAsOpaquePtr(),
3900 pointee_or_element_clang_type);
3901 case clang::Type::BitInt: {
3902 uint32_t type_flags = eTypeIsScalar | eTypeIsInteger | eTypeHasValue;
3903 if (qual_type->isSignedIntegerType())
3904 type_flags |= eTypeIsSigned;
3905
3906 return type_flags;
3907 }
3908 case clang::Type::Builtin: {
3909 const clang::BuiltinType *builtin_type =
3910 llvm::cast<clang::BuiltinType>(qual_type->getCanonicalTypeInternal());
3911
3912 uint32_t builtin_type_flags = eTypeIsBuiltIn | eTypeHasValue;
3913 switch (builtin_type->getKind()) {
3914 case clang::BuiltinType::ObjCId:
3915 case clang::BuiltinType::ObjCClass:
3916 if (pointee_or_element_clang_type)
3917 pointee_or_element_clang_type->SetCompilerType(
3918 weak_from_this(),
3919 getASTContext().ObjCBuiltinClassTy.getAsOpaquePtr());
3920 builtin_type_flags |= eTypeIsPointer | eTypeIsObjC;
3921 break;
3922
3923 case clang::BuiltinType::ObjCSel:
3924 if (pointee_or_element_clang_type)
3925 pointee_or_element_clang_type->SetCompilerType(
3926 weak_from_this(), getASTContext().CharTy.getAsOpaquePtr());
3927 builtin_type_flags |= eTypeIsPointer | eTypeIsObjC;
3928 break;
3929
3930 case clang::BuiltinType::Bool:
3931 case clang::BuiltinType::Char_U:
3932 case clang::BuiltinType::UChar:
3933 case clang::BuiltinType::WChar_U:
3934 case clang::BuiltinType::Char16:
3935 case clang::BuiltinType::Char32:
3936 case clang::BuiltinType::UShort:
3937 case clang::BuiltinType::UInt:
3938 case clang::BuiltinType::ULong:
3939 case clang::BuiltinType::ULongLong:
3940 case clang::BuiltinType::UInt128:
3941 case clang::BuiltinType::Char_S:
3942 case clang::BuiltinType::SChar:
3943 case clang::BuiltinType::WChar_S:
3944 case clang::BuiltinType::Short:
3945 case clang::BuiltinType::Int:
3946 case clang::BuiltinType::Long:
3947 case clang::BuiltinType::LongLong:
3948 case clang::BuiltinType::Int128:
3949 case clang::BuiltinType::Float:
3950 case clang::BuiltinType::Double:
3951 case clang::BuiltinType::LongDouble:
3952 builtin_type_flags |= eTypeIsScalar;
3953 if (builtin_type->isInteger()) {
3954 builtin_type_flags |= eTypeIsInteger;
3955 if (builtin_type->isSignedInteger())
3956 builtin_type_flags |= eTypeIsSigned;
3957 } else if (builtin_type->isFloatingPoint())
3958 builtin_type_flags |= eTypeIsFloat;
3959 break;
3960 default:
3961 break;
3962 }
3963 return builtin_type_flags;
3964 }
3965
3966 case clang::Type::BlockPointer:
3967 if (pointee_or_element_clang_type)
3968 pointee_or_element_clang_type->SetCompilerType(
3969 weak_from_this(), qual_type->getPointeeType().getAsOpaquePtr());
3970 return eTypeIsPointer | eTypeHasChildren | eTypeIsBlock;
3971
3972 case clang::Type::Complex: {
3973 uint32_t complex_type_flags =
3974 eTypeIsBuiltIn | eTypeHasValue | eTypeIsComplex;
3975 const clang::ComplexType *complex_type = llvm::dyn_cast<clang::ComplexType>(
3976 qual_type->getCanonicalTypeInternal());
3977 if (complex_type) {
3978 clang::QualType complex_element_type(complex_type->getElementType());
3979 if (complex_element_type->isIntegerType())
3980 complex_type_flags |= eTypeIsInteger;
3981 else if (complex_element_type->isFloatingType())
3982 complex_type_flags |= eTypeIsFloat;
3983 }
3984 return complex_type_flags;
3985 } break;
3986
3987 case clang::Type::ConstantArray:
3988 case clang::Type::DependentSizedArray:
3989 case clang::Type::IncompleteArray:
3990 case clang::Type::VariableArray:
3991 if (pointee_or_element_clang_type)
3992 pointee_or_element_clang_type->SetCompilerType(
3993 weak_from_this(), llvm::cast<clang::ArrayType>(qual_type.getTypePtr())
3994 ->getElementType()
3995 .getAsOpaquePtr());
3996 return eTypeHasChildren | eTypeIsArray;
3997
3998 case clang::Type::DependentName:
3999 return 0;
4000 case clang::Type::DependentSizedExtVector:
4001 return eTypeHasChildren | eTypeIsVector;
4002
4003 case clang::Type::Enum:
4004 if (pointee_or_element_clang_type)
4005 pointee_or_element_clang_type->SetCompilerType(
4006 weak_from_this(), llvm::cast<clang::EnumType>(qual_type)
4007 ->getDecl()
4008 ->getDefinitionOrSelf()
4009 ->getIntegerType()
4010 .getAsOpaquePtr());
4011 return eTypeIsEnumeration | eTypeHasValue;
4012
4013 case clang::Type::FunctionProto:
4014 return eTypeIsFuncPrototype | eTypeHasValue;
4015 case clang::Type::FunctionNoProto:
4016 return eTypeIsFuncPrototype | eTypeHasValue;
4017 case clang::Type::InjectedClassName:
4018 return 0;
4019
4020 case clang::Type::LValueReference:
4021 case clang::Type::RValueReference:
4022 if (pointee_or_element_clang_type)
4023 pointee_or_element_clang_type->SetCompilerType(
4024 weak_from_this(),
4025 llvm::cast<clang::ReferenceType>(qual_type.getTypePtr())
4026 ->getPointeeType()
4027 .getAsOpaquePtr());
4028 return eTypeHasChildren | eTypeIsReference | eTypeHasValue;
4029
4030 case clang::Type::MemberPointer:
4031 return eTypeIsPointer | eTypeIsMember | eTypeHasValue;
4032
4033 case clang::Type::ObjCObjectPointer:
4034 if (pointee_or_element_clang_type)
4035 pointee_or_element_clang_type->SetCompilerType(
4036 weak_from_this(), qual_type->getPointeeType().getAsOpaquePtr());
4037 return eTypeHasChildren | eTypeIsObjC | eTypeIsClass | eTypeIsPointer |
4038 eTypeHasValue;
4039
4040 case clang::Type::ObjCObject:
4041 return eTypeHasChildren | eTypeIsObjC | eTypeIsClass;
4042 case clang::Type::ObjCInterface:
4043 return eTypeHasChildren | eTypeIsObjC | eTypeIsClass;
4044
4045 case clang::Type::Pointer:
4046 if (pointee_or_element_clang_type)
4047 pointee_or_element_clang_type->SetCompilerType(
4048 weak_from_this(), qual_type->getPointeeType().getAsOpaquePtr());
4049 return eTypeHasChildren | eTypeIsPointer | eTypeHasValue;
4050
4051 case clang::Type::Record:
4052 if (qual_type->getAsCXXRecordDecl())
4053 return eTypeHasChildren | eTypeIsClass | eTypeIsCPlusPlus;
4054 else
4055 return eTypeHasChildren | eTypeIsStructUnion;
4056 break;
4057 case clang::Type::SubstTemplateTypeParm:
4058 return eTypeIsTemplate;
4059 case clang::Type::TemplateTypeParm:
4060 return eTypeIsTemplate;
4061 case clang::Type::TemplateSpecialization:
4062 return eTypeIsTemplate;
4063
4064 case clang::Type::Typedef:
4065 return eTypeIsTypedef | GetType(llvm::cast<clang::TypedefType>(qual_type)
4066 ->getDecl()
4067 ->getUnderlyingType())
4068 .GetTypeInfo(pointee_or_element_clang_type);
4069 case clang::Type::UnresolvedUsing:
4070 return 0;
4071
4072 case clang::Type::ExtVector:
4073 case clang::Type::Vector: {
4074 uint32_t vector_type_flags = eTypeHasChildren | eTypeIsVector;
4075 const clang::VectorType *vector_type = llvm::dyn_cast<clang::VectorType>(
4076 qual_type->getCanonicalTypeInternal());
4077 if (!vector_type)
4078 return 0;
4079
4080 QualType element_type = vector_type->getElementType();
4081 if (element_type.isNull())
4082 return 0;
4083
4084 if (element_type->isIntegerType())
4085 vector_type_flags |= eTypeIsInteger;
4086 else if (element_type->isFloatingType())
4087 vector_type_flags |= eTypeIsFloat;
4088 return vector_type_flags;
4089 }
4090 default:
4091 return 0;
4092 }
4093 return 0;
4094}
4095
4098 if (!type)
4099 return lldb::eLanguageTypeC;
4100
4101 // If the type is a reference, then resolve it to what it refers to first:
4102 clang::QualType qual_type(GetCanonicalQualType(type).getNonReferenceType());
4103 if (qual_type->isAnyPointerType()) {
4104 if (qual_type->isObjCObjectPointerType())
4106 if (qual_type->getPointeeCXXRecordDecl())
4108
4109 clang::QualType pointee_type(qual_type->getPointeeType());
4110 if (pointee_type->getPointeeCXXRecordDecl())
4112 if (pointee_type->isObjCObjectOrInterfaceType())
4114 if (pointee_type->isObjCClassType())
4116 if (pointee_type.getTypePtr() ==
4117 getASTContext().ObjCBuiltinIdTy.getTypePtr())
4119 } else {
4120 if (qual_type->isObjCObjectOrInterfaceType())
4122 if (qual_type->getAsCXXRecordDecl())
4124 switch (qual_type->getTypeClass()) {
4125 default:
4126 break;
4127 case clang::Type::Builtin:
4128 switch (llvm::cast<clang::BuiltinType>(qual_type)->getKind()) {
4129 default:
4130 case clang::BuiltinType::Void:
4131 case clang::BuiltinType::Bool:
4132 case clang::BuiltinType::Char_U:
4133 case clang::BuiltinType::UChar:
4134 case clang::BuiltinType::WChar_U:
4135 case clang::BuiltinType::Char16:
4136 case clang::BuiltinType::Char32:
4137 case clang::BuiltinType::UShort:
4138 case clang::BuiltinType::UInt:
4139 case clang::BuiltinType::ULong:
4140 case clang::BuiltinType::ULongLong:
4141 case clang::BuiltinType::UInt128:
4142 case clang::BuiltinType::Char_S:
4143 case clang::BuiltinType::SChar:
4144 case clang::BuiltinType::WChar_S:
4145 case clang::BuiltinType::Short:
4146 case clang::BuiltinType::Int:
4147 case clang::BuiltinType::Long:
4148 case clang::BuiltinType::LongLong:
4149 case clang::BuiltinType::Int128:
4150 case clang::BuiltinType::Float:
4151 case clang::BuiltinType::Double:
4152 case clang::BuiltinType::LongDouble:
4153 break;
4154
4155 case clang::BuiltinType::NullPtr:
4157
4158 case clang::BuiltinType::ObjCId:
4159 case clang::BuiltinType::ObjCClass:
4160 case clang::BuiltinType::ObjCSel:
4161 return eLanguageTypeObjC;
4162
4163 case clang::BuiltinType::Dependent:
4164 case clang::BuiltinType::Overload:
4165 case clang::BuiltinType::BoundMember:
4166 case clang::BuiltinType::UnknownAny:
4167 break;
4168 }
4169 break;
4170 case clang::Type::Typedef:
4171 return GetType(llvm::cast<clang::TypedefType>(qual_type)
4172 ->getDecl()
4173 ->getUnderlyingType())
4175 }
4176 }
4177 return lldb::eLanguageTypeC;
4178}
4179
4180lldb::TypeClass
4182 if (!type)
4183 return lldb::eTypeClassInvalid;
4184
4185 clang::QualType qual_type =
4186 RemoveWrappingTypes(GetQualType(type), {clang::Type::Typedef});
4187
4188 switch (qual_type->getTypeClass()) {
4189 case clang::Type::Atomic:
4190 case clang::Type::Auto:
4191 case clang::Type::CountAttributed:
4192 case clang::Type::Decltype:
4193 case clang::Type::Paren:
4194 case clang::Type::TypeOf:
4195 case clang::Type::TypeOfExpr:
4196 case clang::Type::Using:
4197 case clang::Type::PredefinedSugar:
4198 llvm_unreachable("Handled in RemoveWrappingTypes!");
4199 case clang::Type::LateParsedAttr:
4200 llvm_unreachable("LateParsedAttrType is a transient parsing placeholder "
4201 "that is resolved before the AST is finalized.");
4202 case clang::Type::UnaryTransform:
4203 break;
4204 case clang::Type::FunctionNoProto:
4205 return lldb::eTypeClassFunction;
4206 case clang::Type::FunctionProto:
4207 return lldb::eTypeClassFunction;
4208 case clang::Type::IncompleteArray:
4209 return lldb::eTypeClassArray;
4210 case clang::Type::VariableArray:
4211 return lldb::eTypeClassArray;
4212 case clang::Type::ConstantArray:
4213 return lldb::eTypeClassArray;
4214 case clang::Type::DependentSizedArray:
4215 return lldb::eTypeClassArray;
4216 case clang::Type::ArrayParameter:
4217 return lldb::eTypeClassArray;
4218 case clang::Type::DependentSizedExtVector:
4219 return lldb::eTypeClassVector;
4220 case clang::Type::DependentVector:
4221 return lldb::eTypeClassVector;
4222 case clang::Type::ExtVector:
4223 return lldb::eTypeClassVector;
4224 case clang::Type::Vector:
4225 return lldb::eTypeClassVector;
4226 case clang::Type::Builtin:
4227 // Ext-Int is just an integer type.
4228 case clang::Type::BitInt:
4229 case clang::Type::DependentBitInt:
4230 case clang::Type::OverflowBehavior:
4231 return lldb::eTypeClassBuiltin;
4232 case clang::Type::ObjCObjectPointer:
4233 return lldb::eTypeClassObjCObjectPointer;
4234 case clang::Type::BlockPointer:
4235 return lldb::eTypeClassBlockPointer;
4236 case clang::Type::Pointer:
4237 return lldb::eTypeClassPointer;
4238 case clang::Type::LValueReference:
4239 return lldb::eTypeClassReference;
4240 case clang::Type::RValueReference:
4241 return lldb::eTypeClassReference;
4242 case clang::Type::MemberPointer:
4243 return lldb::eTypeClassMemberPointer;
4244 case clang::Type::Complex:
4245 if (qual_type->isComplexType())
4246 return lldb::eTypeClassComplexFloat;
4247 else
4248 return lldb::eTypeClassComplexInteger;
4249 case clang::Type::ObjCObject:
4250 return lldb::eTypeClassObjCObject;
4251 case clang::Type::ObjCInterface:
4252 return lldb::eTypeClassObjCInterface;
4253 case clang::Type::Record: {
4254 const clang::RecordType *record_type =
4255 llvm::cast<clang::RecordType>(qual_type.getTypePtr());
4256 const clang::RecordDecl *record_decl = record_type->getDecl();
4257 if (record_decl->isUnion())
4258 return lldb::eTypeClassUnion;
4259 else if (record_decl->isStruct())
4260 return lldb::eTypeClassStruct;
4261 else
4262 return lldb::eTypeClassClass;
4263 } break;
4264 case clang::Type::Enum:
4265 return lldb::eTypeClassEnumeration;
4266 case clang::Type::Typedef:
4267 return lldb::eTypeClassTypedef;
4268 case clang::Type::UnresolvedUsing:
4269 break;
4270
4271 case clang::Type::Attributed:
4272 case clang::Type::BTFTagAttributed:
4273 break;
4274 case clang::Type::TemplateTypeParm:
4275 break;
4276 case clang::Type::SubstTemplateTypeParm:
4277 break;
4278 case clang::Type::SubstTemplateTypeParmPack:
4279 break;
4280 case clang::Type::InjectedClassName:
4281 break;
4282 case clang::Type::DependentName:
4283 break;
4284 case clang::Type::PackExpansion:
4285 break;
4286
4287 case clang::Type::TemplateSpecialization:
4288 break;
4289 case clang::Type::DeducedTemplateSpecialization:
4290 break;
4291 case clang::Type::Pipe:
4292 break;
4293
4294 // pointer type decayed from an array or function type.
4295 case clang::Type::Decayed:
4296 break;
4297 case clang::Type::Adjusted:
4298 break;
4299 case clang::Type::ObjCTypeParam:
4300 break;
4301
4302 case clang::Type::DependentAddressSpace:
4303 break;
4304 case clang::Type::MacroQualified:
4305 break;
4306
4307 // Matrix types that we're not sure how to display at the moment.
4308 case clang::Type::ConstantMatrix:
4309 case clang::Type::DependentSizedMatrix:
4310 break;
4311
4312 // We don't handle pack indexing yet
4313 case clang::Type::PackIndexing:
4314 break;
4315
4316 case clang::Type::HLSLAttributedResource:
4317 break;
4318 case clang::Type::HLSLInlineSpirv:
4319 break;
4320 case clang::Type::SubstBuiltinTemplatePack:
4321 break;
4322 }
4323 // We don't know hot to display this type...
4324 return lldb::eTypeClassOther;
4325}
4326
4328 if (type)
4329 return GetQualType(type).getQualifiers().getCVRQualifiers();
4330 return 0;
4331}
4332
4333// Creating related types
4334
4337 ExecutionContextScope *exe_scope) {
4338 if (type) {
4339 clang::QualType qual_type(GetQualType(type));
4340
4341 const clang::Type *array_eletype =
4342 qual_type.getTypePtr()->getArrayElementTypeNoTypeQual();
4343
4344 if (!array_eletype)
4345 return CompilerType();
4346
4347 return GetType(clang::QualType(array_eletype, 0));
4348 }
4349 return CompilerType();
4350}
4351
4353 uint64_t size) {
4354 if (type) {
4355 clang::QualType qual_type(GetCanonicalQualType(type));
4356 clang::ASTContext &ast_ctx = getASTContext();
4357 if (size != 0)
4358 return GetType(ast_ctx.getConstantArrayType(
4359 qual_type, llvm::APInt(64, size), nullptr,
4360 clang::ArraySizeModifier::Normal, 0));
4361 else
4362 return GetType(ast_ctx.getIncompleteArrayType(
4363 qual_type, clang::ArraySizeModifier::Normal, 0));
4364 }
4365
4366 return CompilerType();
4367}
4368
4375
4376static clang::QualType GetFullyUnqualifiedType_Impl(clang::ASTContext *ast,
4377 clang::QualType qual_type) {
4378 if (qual_type->isPointerType())
4379 qual_type = ast->getPointerType(
4380 GetFullyUnqualifiedType_Impl(ast, qual_type->getPointeeType()));
4381 else if (const ConstantArrayType *arr =
4382 ast->getAsConstantArrayType(qual_type)) {
4383 qual_type = ast->getConstantArrayType(
4384 GetFullyUnqualifiedType_Impl(ast, arr->getElementType()),
4385 arr->getSize(), arr->getSizeExpr(), arr->getSizeModifier(),
4386 arr->getIndexTypeQualifiers().getAsOpaqueValue());
4387 } else
4388 qual_type = qual_type.getUnqualifiedType();
4389 qual_type.removeLocalConst();
4390 qual_type.removeLocalRestrict();
4391 qual_type.removeLocalVolatile();
4392 return qual_type;
4393}
4394
4402
4409
4412 if (type) {
4413 const clang::FunctionProtoType *func =
4414 llvm::dyn_cast<clang::FunctionProtoType>(GetCanonicalQualType(type));
4415 if (func)
4416 return func->getNumParams();
4417 }
4418 return -1;
4419}
4420
4422 lldb::opaque_compiler_type_t type, size_t idx) {
4423 if (type) {
4424 const clang::FunctionProtoType *func =
4425 llvm::dyn_cast<clang::FunctionProtoType>(GetQualType(type));
4426 if (func) {
4427 const uint32_t num_args = func->getNumParams();
4428 if (idx < num_args)
4429 return GetType(func->getParamType(idx));
4430 }
4431 }
4432 return CompilerType();
4433}
4434
4437 if (type) {
4438 clang::QualType qual_type(GetQualType(type));
4439 const clang::FunctionProtoType *func =
4440 llvm::dyn_cast<clang::FunctionProtoType>(qual_type.getTypePtr());
4441 if (func)
4442 return GetType(func->getReturnType());
4443 }
4444 return CompilerType();
4445}
4446
4447size_t
4449 size_t num_functions = 0;
4450 if (type) {
4451 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
4452 switch (qual_type->getTypeClass()) {
4453 case clang::Type::Record:
4454 if (GetCompleteQualType(&getASTContext(), qual_type))
4455 if (const auto *cxx_record_decl = qual_type->getAsCXXRecordDecl())
4456 num_functions = std::distance(cxx_record_decl->method_begin(),
4457 cxx_record_decl->method_end());
4458 break;
4459
4460 case clang::Type::ObjCObjectPointer: {
4461 const clang::ObjCObjectPointerType *objc_class_type =
4462 qual_type->castAs<clang::ObjCObjectPointerType>();
4463 const clang::ObjCInterfaceType *objc_interface_type =
4464 objc_class_type->getInterfaceType();
4465 if (objc_interface_type &&
4467 const_cast<clang::ObjCInterfaceType *>(objc_interface_type)))) {
4468 clang::ObjCInterfaceDecl *class_interface_decl =
4469 objc_interface_type->getDecl();
4470 if (class_interface_decl) {
4471 num_functions = std::distance(class_interface_decl->meth_begin(),
4472 class_interface_decl->meth_end());
4473 }
4474 }
4475 break;
4476 }
4477
4478 case clang::Type::ObjCObject:
4479 case clang::Type::ObjCInterface:
4480 if (GetCompleteType(type)) {
4481 const clang::ObjCObjectType *objc_class_type =
4482 llvm::dyn_cast<clang::ObjCObjectType>(qual_type.getTypePtr());
4483 if (objc_class_type) {
4484 clang::ObjCInterfaceDecl *class_interface_decl =
4485 objc_class_type->getInterface();
4486 if (class_interface_decl)
4487 num_functions = std::distance(class_interface_decl->meth_begin(),
4488 class_interface_decl->meth_end());
4489 }
4490 }
4491 break;
4492
4493 default:
4494 break;
4495 }
4496 }
4497 return num_functions;
4498}
4499
4502 size_t idx) {
4503 std::string name;
4505 CompilerType clang_type;
4506 CompilerDecl clang_decl;
4507 if (type) {
4508 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
4509 switch (qual_type->getTypeClass()) {
4510 case clang::Type::Record:
4511 if (GetCompleteQualType(&getASTContext(), qual_type)) {
4512 if (const auto *cxx_record_decl = qual_type->getAsCXXRecordDecl()) {
4513 auto method_iter = cxx_record_decl->method_begin();
4514 auto method_end = cxx_record_decl->method_end();
4515 if (idx <
4516 static_cast<size_t>(std::distance(method_iter, method_end))) {
4517 std::advance(method_iter, idx);
4518 clang::CXXMethodDecl *cxx_method_decl =
4519 method_iter->getCanonicalDecl();
4520 if (cxx_method_decl) {
4521 name = cxx_method_decl->getDeclName().getAsString();
4522 if (cxx_method_decl->isStatic())
4524 else if (llvm::isa<clang::CXXConstructorDecl>(cxx_method_decl))
4526 else if (llvm::isa<clang::CXXDestructorDecl>(cxx_method_decl))
4528 else
4530 clang_type = GetType(cxx_method_decl->getType());
4531 clang_decl = GetCompilerDecl(cxx_method_decl);
4532 }
4533 }
4534 }
4535 }
4536 break;
4537
4538 case clang::Type::ObjCObjectPointer: {
4539 const clang::ObjCObjectPointerType *objc_class_type =
4540 qual_type->castAs<clang::ObjCObjectPointerType>();
4541 const clang::ObjCInterfaceType *objc_interface_type =
4542 objc_class_type->getInterfaceType();
4543 if (objc_interface_type &&
4545 const_cast<clang::ObjCInterfaceType *>(objc_interface_type)))) {
4546 clang::ObjCInterfaceDecl *class_interface_decl =
4547 objc_interface_type->getDecl();
4548 if (class_interface_decl) {
4549 auto method_iter = class_interface_decl->meth_begin();
4550 auto method_end = class_interface_decl->meth_end();
4551 if (idx <
4552 static_cast<size_t>(std::distance(method_iter, method_end))) {
4553 std::advance(method_iter, idx);
4554 clang::ObjCMethodDecl *objc_method_decl =
4555 method_iter->getCanonicalDecl();
4556 if (objc_method_decl) {
4557 clang_decl = GetCompilerDecl(objc_method_decl);
4558 name = objc_method_decl->getSelector().getAsString();
4559 if (objc_method_decl->isClassMethod())
4561 else
4563 }
4564 }
4565 }
4566 }
4567 break;
4568 }
4569
4570 case clang::Type::ObjCObject:
4571 case clang::Type::ObjCInterface:
4572 if (GetCompleteType(type)) {
4573 const clang::ObjCObjectType *objc_class_type =
4574 llvm::dyn_cast<clang::ObjCObjectType>(qual_type.getTypePtr());
4575 if (objc_class_type) {
4576 clang::ObjCInterfaceDecl *class_interface_decl =
4577 objc_class_type->getInterface();
4578 if (class_interface_decl) {
4579 auto method_iter = class_interface_decl->meth_begin();
4580 auto method_end = class_interface_decl->meth_end();
4581 if (idx <
4582 static_cast<size_t>(std::distance(method_iter, method_end))) {
4583 std::advance(method_iter, idx);
4584 clang::ObjCMethodDecl *objc_method_decl =
4585 method_iter->getCanonicalDecl();
4586 if (objc_method_decl) {
4587 clang_decl = GetCompilerDecl(objc_method_decl);
4588 name = objc_method_decl->getSelector().getAsString();
4589 if (objc_method_decl->isClassMethod())
4591 else
4593 }
4594 }
4595 }
4596 }
4597 }
4598 break;
4599
4600 default:
4601 break;
4602 }
4603 }
4604
4605 if (kind == eMemberFunctionKindUnknown)
4606 return TypeMemberFunctionImpl();
4607 else
4608 return TypeMemberFunctionImpl(clang_type, clang_decl, name, kind);
4609}
4610
4613 if (type)
4614 return GetType(GetQualType(type).getNonReferenceType());
4615 return CompilerType();
4616}
4617
4620 if (type) {
4621 clang::QualType qual_type(GetQualType(type));
4622 return GetType(qual_type.getTypePtr()->getPointeeType());
4623 }
4624 return CompilerType();
4625}
4626
4629 if (type) {
4630 clang::QualType qual_type(GetQualType(type));
4631
4632 switch (qual_type.getDesugaredType(getASTContext())->getTypeClass()) {
4633 case clang::Type::ObjCObject:
4634 case clang::Type::ObjCInterface:
4635 return GetType(getASTContext().getObjCObjectPointerType(qual_type));
4636
4637 default:
4638 return GetType(getASTContext().getPointerType(qual_type));
4639 }
4640 }
4641 return CompilerType();
4642}
4643
4646 if (type)
4647 return GetType(getASTContext().getLValueReferenceType(GetQualType(type)));
4648 else
4649 return CompilerType();
4650}
4651
4654 if (type)
4655 return GetType(getASTContext().getRValueReferenceType(GetQualType(type)));
4656 else
4657 return CompilerType();
4658}
4659
4661 if (!type)
4662 return CompilerType();
4663 return GetType(getASTContext().getAtomicType(GetQualType(type)));
4664}
4665
4668 if (type) {
4669 clang::QualType result(GetQualType(type));
4670 result.addConst();
4671 return GetType(result);
4672 }
4673 return CompilerType();
4674}
4675
4678 uint32_t payload) {
4679 if (type) {
4680 clang::ASTContext &clang_ast = getASTContext();
4681 auto pauth = PointerAuthQualifier::fromOpaqueValue(payload);
4682 clang::QualType result =
4683 clang_ast.getPointerAuthType(GetQualType(type), pauth);
4684 return GetType(result);
4685 }
4686 return CompilerType();
4687}
4688
4691 if (type) {
4692 clang::QualType result(GetQualType(type));
4693 result.addVolatile();
4694 return GetType(result);
4695 }
4696 return CompilerType();
4697}
4698
4701 if (type) {
4702 clang::QualType result(GetQualType(type));
4703 result.addRestrict();
4704 return GetType(result);
4705 }
4706 return CompilerType();
4707}
4708
4710 lldb::opaque_compiler_type_t type, const char *typedef_name,
4711 const CompilerDeclContext &compiler_decl_ctx, uint32_t payload) {
4712 if (type && typedef_name && typedef_name[0]) {
4713 clang::ASTContext &clang_ast = getASTContext();
4714 clang::QualType qual_type(GetQualType(type));
4715
4716 clang::DeclContext *decl_ctx =
4718 if (!decl_ctx)
4719 decl_ctx = getASTContext().getTranslationUnitDecl();
4720
4721 clang::TypedefDecl *decl =
4722 clang::TypedefDecl::CreateDeserialized(clang_ast, GlobalDeclID());
4723 decl->setDeclContext(decl_ctx);
4724 decl->setDeclName(&clang_ast.Idents.get(typedef_name));
4725 decl->setTypeSourceInfo(clang_ast.getTrivialTypeSourceInfo(qual_type));
4726 decl_ctx->addDecl(decl);
4727 SetOwningModule(decl, TypePayloadClang(payload).GetOwningModule());
4728
4729 clang::TagDecl *tdecl = nullptr;
4730 if (!qual_type.isNull()) {
4731 if (const clang::RecordType *rt = qual_type->getAs<clang::RecordType>())
4732 tdecl = rt->getDecl();
4733 if (const clang::EnumType *et = qual_type->getAs<clang::EnumType>())
4734 tdecl = et->getDecl();
4735 }
4736
4737 // Check whether this declaration is an anonymous struct, union, or enum,
4738 // hidden behind a typedef. If so, we try to check whether we have a
4739 // typedef tag to attach to the original record declaration
4740 if (tdecl && !tdecl->getIdentifier() && !tdecl->getTypedefNameForAnonDecl())
4741 tdecl->setTypedefNameForAnonDecl(decl);
4742
4743 decl->setAccess(clang::AS_public);
4744
4745 // Get a uniqued clang::QualType for the typedef decl type
4746 NestedNameSpecifier Qualifier =
4747 clang::TypeName::getFullyQualifiedDeclaredContext(clang_ast, decl);
4748 return GetType(
4749 clang_ast.getTypedefType(ElaboratedTypeKeyword::None, Qualifier, decl));
4750 }
4751 return CompilerType();
4752}
4753
4756 if (type) {
4757 const clang::TypedefType *typedef_type = llvm::dyn_cast<clang::TypedefType>(
4758 RemoveWrappingTypes(GetQualType(type), {clang::Type::Typedef}));
4759 if (typedef_type)
4760 return GetType(typedef_type->getDecl()->getUnderlyingType());
4761 }
4762 return CompilerType();
4763}
4764
4765// Create related types using the current type's AST
4766
4770
4772 clang::ASTContext &ast = getASTContext();
4773 const FunctionType::ExtInfo generic_ext_info(
4774 /*noReturn=*/false,
4775 /*hasRegParm=*/false,
4776 /*regParm=*/0,
4777 CallingConv::CC_C,
4778 /*producesResult=*/false,
4779 /*noCallerSavedRegs=*/false,
4780 /*NoCfCheck=*/false,
4781 /*cmseNSCall=*/false);
4782 QualType func_type = ast.getFunctionNoProtoType(ast.VoidTy, generic_ext_info);
4783 return GetType(func_type);
4784}
4785// Exploring the type
4786
4787const llvm::fltSemantics &
4789 clang::ASTContext &ast = getASTContext();
4790 const size_t bit_size = byte_size * 8;
4791 if (bit_size == ast.getTypeSize(ast.FloatTy))
4792 return ast.getFloatTypeSemantics(ast.FloatTy);
4793 else if (bit_size == ast.getTypeSize(ast.DoubleTy))
4794 return ast.getFloatTypeSemantics(ast.DoubleTy);
4795 else if (format == eFormatFloat128 &&
4796 bit_size == ast.getTypeSize(ast.Float128Ty))
4797 return ast.getFloatTypeSemantics(ast.Float128Ty);
4798 else if (bit_size == ast.getTypeSize(ast.LongDoubleTy) ||
4799 bit_size == llvm::APFloat::semanticsSizeInBits(
4800 ast.getFloatTypeSemantics(ast.LongDoubleTy)))
4801 return ast.getFloatTypeSemantics(ast.LongDoubleTy);
4802 else if (bit_size == ast.getTypeSize(ast.HalfTy))
4803 return ast.getFloatTypeSemantics(ast.HalfTy);
4804 else if (bit_size == ast.getTypeSize(ast.Float128Ty))
4805 return ast.getFloatTypeSemantics(ast.Float128Ty);
4806 return llvm::APFloatBase::Bogus();
4807}
4808
4809llvm::Expected<uint64_t>
4811 ExecutionContextScope *exe_scope) {
4812 assert(qual_type->isObjCObjectOrInterfaceType());
4813 ExecutionContext exe_ctx(exe_scope);
4814 if (Process *process = exe_ctx.GetProcessPtr()) {
4815 if (ObjCLanguageRuntime *objc_runtime =
4816 ObjCLanguageRuntime::Get(*process)) {
4817 if (std::optional<uint64_t> bit_size =
4818 objc_runtime->GetTypeBitSize(GetType(qual_type)))
4819 return *bit_size;
4820 }
4821 } else {
4822 static bool g_printed = false;
4823 if (!g_printed) {
4824 StreamString s;
4825 DumpTypeDescription(qual_type.getAsOpaquePtr(), s);
4826
4827 llvm::outs() << "warning: trying to determine the size of type ";
4828 llvm::outs() << s.GetString() << "\n";
4829 llvm::outs() << "without a valid ExecutionContext. this is not "
4830 "reliable. please file a bug against LLDB.\n";
4831 llvm::outs() << "backtrace:\n";
4832 llvm::sys::PrintStackTrace(llvm::outs());
4833 llvm::outs() << "\n";
4834 g_printed = true;
4835 }
4836 }
4837
4838 return getASTContext().getTypeSize(qual_type) +
4839 getASTContext().getTypeSize(getASTContext().ObjCBuiltinClassTy);
4840}
4841
4842llvm::Expected<uint64_t>
4844 ExecutionContextScope *exe_scope) {
4845 const bool base_name_only = true;
4846 if (!GetCompleteType(type))
4847 return llvm::createStringError(
4848 "could not complete type %s",
4849 GetTypeName(type, base_name_only).AsCString(""));
4850
4851 clang::QualType qual_type(GetCanonicalQualType(type));
4852 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
4853 switch (type_class) {
4854 case clang::Type::ConstantArray:
4855 case clang::Type::FunctionProto:
4856 case clang::Type::Record:
4857 return getASTContext().getTypeSize(qual_type);
4858 case clang::Type::ObjCInterface:
4859 case clang::Type::ObjCObject:
4860 return GetObjCBitSize(qual_type, exe_scope);
4861 case clang::Type::IncompleteArray: {
4862 const uint64_t bit_size = getASTContext().getTypeSize(qual_type);
4863 if (bit_size == 0)
4864 return getASTContext().getTypeSize(
4865 qual_type->getArrayElementTypeNoTypeQual()
4866 ->getCanonicalTypeUnqualified());
4867
4868 return bit_size;
4869 }
4870 default:
4871 if (const uint64_t bit_size = getASTContext().getTypeSize(qual_type))
4872 return bit_size;
4873 }
4874
4875 return llvm::createStringError(
4876 "could not get size of type %s",
4877 GetTypeName(type, base_name_only).AsCString(""));
4878}
4879
4880std::optional<size_t>
4882 ExecutionContextScope *exe_scope) {
4883 if (GetCompleteType(type))
4884 return getASTContext().getTypeAlign(GetQualType(type));
4885 return {};
4886}
4887
4889 if (!type)
4891
4892 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
4893
4894 switch (qual_type->getTypeClass()) {
4895 case clang::Type::Atomic:
4896 case clang::Type::Auto:
4897 case clang::Type::CountAttributed:
4898 case clang::Type::Decltype:
4899 case clang::Type::Paren:
4900 case clang::Type::Typedef:
4901 case clang::Type::TypeOf:
4902 case clang::Type::TypeOfExpr:
4903 case clang::Type::Using:
4904 case clang::Type::PredefinedSugar:
4905 llvm_unreachable("Handled in RemoveWrappingTypes!");
4906 case clang::Type::LateParsedAttr:
4907 llvm_unreachable("LateParsedAttrType is a transient parsing placeholder "
4908 "that is resolved before the AST is finalized.");
4909
4910 case clang::Type::UnaryTransform:
4911 break;
4912
4913 case clang::Type::FunctionNoProto:
4914 case clang::Type::FunctionProto:
4915 return lldb::eEncodingUint;
4916
4917 case clang::Type::IncompleteArray:
4918 case clang::Type::VariableArray:
4919 case clang::Type::ArrayParameter:
4920 break;
4921
4922 case clang::Type::ConstantArray:
4923 break;
4924
4925 case clang::Type::DependentVector:
4926 case clang::Type::ExtVector:
4927 case clang::Type::Vector:
4928 break;
4929
4930 case clang::Type::BitInt:
4931 case clang::Type::DependentBitInt:
4932 case clang::Type::OverflowBehavior:
4933 return qual_type->isUnsignedIntegerType() ? lldb::eEncodingUint
4935
4936 case clang::Type::Builtin:
4937 switch (llvm::cast<clang::BuiltinType>(qual_type)->getKind()) {
4938 case clang::BuiltinType::Void:
4939 break;
4940
4941 case clang::BuiltinType::Char_S:
4942 case clang::BuiltinType::SChar:
4943 case clang::BuiltinType::WChar_S:
4944 case clang::BuiltinType::Short:
4945 case clang::BuiltinType::Int:
4946 case clang::BuiltinType::Long:
4947 case clang::BuiltinType::LongLong:
4948 case clang::BuiltinType::Int128:
4949 return lldb::eEncodingSint;
4950
4951 case clang::BuiltinType::Bool:
4952 case clang::BuiltinType::Char_U:
4953 case clang::BuiltinType::UChar:
4954 case clang::BuiltinType::WChar_U:
4955 case clang::BuiltinType::Char8:
4956 case clang::BuiltinType::Char16:
4957 case clang::BuiltinType::Char32:
4958 case clang::BuiltinType::UShort:
4959 case clang::BuiltinType::UInt:
4960 case clang::BuiltinType::ULong:
4961 case clang::BuiltinType::ULongLong:
4962 case clang::BuiltinType::UInt128:
4963 return lldb::eEncodingUint;
4964
4965 // Fixed point types. Note that they are currently ignored.
4966 case clang::BuiltinType::ShortAccum:
4967 case clang::BuiltinType::Accum:
4968 case clang::BuiltinType::LongAccum:
4969 case clang::BuiltinType::UShortAccum:
4970 case clang::BuiltinType::UAccum:
4971 case clang::BuiltinType::ULongAccum:
4972 case clang::BuiltinType::ShortFract:
4973 case clang::BuiltinType::Fract:
4974 case clang::BuiltinType::LongFract:
4975 case clang::BuiltinType::UShortFract:
4976 case clang::BuiltinType::UFract:
4977 case clang::BuiltinType::ULongFract:
4978 case clang::BuiltinType::SatShortAccum:
4979 case clang::BuiltinType::SatAccum:
4980 case clang::BuiltinType::SatLongAccum:
4981 case clang::BuiltinType::SatUShortAccum:
4982 case clang::BuiltinType::SatUAccum:
4983 case clang::BuiltinType::SatULongAccum:
4984 case clang::BuiltinType::SatShortFract:
4985 case clang::BuiltinType::SatFract:
4986 case clang::BuiltinType::SatLongFract:
4987 case clang::BuiltinType::SatUShortFract:
4988 case clang::BuiltinType::SatUFract:
4989 case clang::BuiltinType::SatULongFract:
4990 break;
4991
4992 case clang::BuiltinType::Half:
4993 case clang::BuiltinType::Float:
4994 case clang::BuiltinType::Float16:
4995 case clang::BuiltinType::Float128:
4996 case clang::BuiltinType::Double:
4997 case clang::BuiltinType::LongDouble:
4998 case clang::BuiltinType::BFloat16:
4999 case clang::BuiltinType::Ibm128:
5001
5002 case clang::BuiltinType::ObjCClass:
5003 case clang::BuiltinType::ObjCId:
5004 case clang::BuiltinType::ObjCSel:
5005 return lldb::eEncodingUint;
5006
5007 case clang::BuiltinType::NullPtr:
5008 return lldb::eEncodingUint;
5009
5010 case clang::BuiltinType::MetaInfo:
5011 // HLSL -- Packed Types
5012#define HLSL_PACKED_TYPE(Name, Id, SingletonId) case clang::BuiltinType::Id:
5013#include "clang/Basic/HLSLPackedTypes.def"
5014 return lldb::eEncodingUint;
5015
5016 case clang::BuiltinType::Kind::ARCUnbridgedCast:
5017 case clang::BuiltinType::Kind::BoundMember:
5018 case clang::BuiltinType::Kind::BuiltinFn:
5019 case clang::BuiltinType::Kind::Dependent:
5020 case clang::BuiltinType::Kind::OCLClkEvent:
5021 case clang::BuiltinType::Kind::OCLEvent:
5022 case clang::BuiltinType::Kind::OCLImage1dRO:
5023 case clang::BuiltinType::Kind::OCLImage1dWO:
5024 case clang::BuiltinType::Kind::OCLImage1dRW:
5025 case clang::BuiltinType::Kind::OCLImage1dArrayRO:
5026 case clang::BuiltinType::Kind::OCLImage1dArrayWO:
5027 case clang::BuiltinType::Kind::OCLImage1dArrayRW:
5028 case clang::BuiltinType::Kind::OCLImage1dBufferRO:
5029 case clang::BuiltinType::Kind::OCLImage1dBufferWO:
5030 case clang::BuiltinType::Kind::OCLImage1dBufferRW:
5031 case clang::BuiltinType::Kind::OCLImage2dRO:
5032 case clang::BuiltinType::Kind::OCLImage2dWO:
5033 case clang::BuiltinType::Kind::OCLImage2dRW:
5034 case clang::BuiltinType::Kind::OCLImage2dArrayRO:
5035 case clang::BuiltinType::Kind::OCLImage2dArrayWO:
5036 case clang::BuiltinType::Kind::OCLImage2dArrayRW:
5037 case clang::BuiltinType::Kind::OCLImage2dArrayDepthRO:
5038 case clang::BuiltinType::Kind::OCLImage2dArrayDepthWO:
5039 case clang::BuiltinType::Kind::OCLImage2dArrayDepthRW:
5040 case clang::BuiltinType::Kind::OCLImage2dArrayMSAARO:
5041 case clang::BuiltinType::Kind::OCLImage2dArrayMSAAWO:
5042 case clang::BuiltinType::Kind::OCLImage2dArrayMSAARW:
5043 case clang::BuiltinType::Kind::OCLImage2dArrayMSAADepthRO:
5044 case clang::BuiltinType::Kind::OCLImage2dArrayMSAADepthWO:
5045 case clang::BuiltinType::Kind::OCLImage2dArrayMSAADepthRW:
5046 case clang::BuiltinType::Kind::OCLImage2dDepthRO:
5047 case clang::BuiltinType::Kind::OCLImage2dDepthWO:
5048 case clang::BuiltinType::Kind::OCLImage2dDepthRW:
5049 case clang::BuiltinType::Kind::OCLImage2dMSAARO:
5050 case clang::BuiltinType::Kind::OCLImage2dMSAAWO:
5051 case clang::BuiltinType::Kind::OCLImage2dMSAARW:
5052 case clang::BuiltinType::Kind::OCLImage2dMSAADepthRO:
5053 case clang::BuiltinType::Kind::OCLImage2dMSAADepthWO:
5054 case clang::BuiltinType::Kind::OCLImage2dMSAADepthRW:
5055 case clang::BuiltinType::Kind::OCLImage3dRO:
5056 case clang::BuiltinType::Kind::OCLImage3dWO:
5057 case clang::BuiltinType::Kind::OCLImage3dRW:
5058 case clang::BuiltinType::Kind::OCLQueue:
5059 case clang::BuiltinType::Kind::OCLReserveID:
5060 case clang::BuiltinType::Kind::OCLSampler:
5061 case clang::BuiltinType::Kind::HLSLResource:
5062 case clang::BuiltinType::Kind::ArraySection:
5063 case clang::BuiltinType::Kind::OMPArrayShaping:
5064 case clang::BuiltinType::Kind::OMPIterator:
5065 case clang::BuiltinType::Kind::Overload:
5066 case clang::BuiltinType::Kind::PseudoObject:
5067 case clang::BuiltinType::Kind::UnknownAny:
5068 break;
5069
5070 case clang::BuiltinType::OCLIntelSubgroupAVCMcePayload:
5071 case clang::BuiltinType::OCLIntelSubgroupAVCImePayload:
5072 case clang::BuiltinType::OCLIntelSubgroupAVCRefPayload:
5073 case clang::BuiltinType::OCLIntelSubgroupAVCSicPayload:
5074 case clang::BuiltinType::OCLIntelSubgroupAVCMceResult:
5075 case clang::BuiltinType::OCLIntelSubgroupAVCImeResult:
5076 case clang::BuiltinType::OCLIntelSubgroupAVCRefResult:
5077 case clang::BuiltinType::OCLIntelSubgroupAVCSicResult:
5078 case clang::BuiltinType::OCLIntelSubgroupAVCImeResultSingleReferenceStreamout:
5079 case clang::BuiltinType::OCLIntelSubgroupAVCImeResultDualReferenceStreamout:
5080 case clang::BuiltinType::OCLIntelSubgroupAVCImeSingleReferenceStreamin:
5081 case clang::BuiltinType::OCLIntelSubgroupAVCImeDualReferenceStreamin:
5082 break;
5083
5084 // PowerPC -- Matrix Multiply Assist
5085 case clang::BuiltinType::VectorPair:
5086 case clang::BuiltinType::VectorQuad:
5087 case clang::BuiltinType::DMR1024:
5088 case clang::BuiltinType::DMR2048:
5089 break;
5090
5091 // ARM -- Scalable Vector Extension
5092#define SVE_TYPE(Name, Id, SingletonId) case clang::BuiltinType::Id:
5093#include "clang/Basic/AArch64ACLETypes.def"
5094 break;
5095
5096 // RISC-V V builtin types.
5097#define RVV_TYPE(Name, Id, SingletonId) case clang::BuiltinType::Id:
5098#include "clang/Basic/RISCVVTypes.def"
5099 break;
5100
5101 // WebAssembly builtin types.
5102 case clang::BuiltinType::WasmExternRef:
5103 break;
5104
5105 case clang::BuiltinType::IncompleteMatrixIdx:
5106 break;
5107
5108 case clang::BuiltinType::UnresolvedTemplate:
5109 break;
5110
5111 // AMD GPU builtin types.
5112#define AMDGPU_TYPE(Name, Id, SingletonId, Width, Align) \
5113 case clang::BuiltinType::Id:
5114#include "clang/Basic/AMDGPUTypes.def"
5115 break;
5116
5117 // SPIR-V builtin types.
5118#define SPIRV_TYPE(Name, Id, SingletonId) case clang::BuiltinType::Id:
5119#include "clang/Basic/SPIRVTypes.def"
5120 break;
5121 }
5122 break;
5123 // All pointer types are represented as unsigned integer encodings. We may
5124 // nee to add a eEncodingPointer if we ever need to know the difference
5125 case clang::Type::ObjCObjectPointer:
5126 case clang::Type::BlockPointer:
5127 case clang::Type::Pointer:
5128 case clang::Type::LValueReference:
5129 case clang::Type::RValueReference:
5130 case clang::Type::MemberPointer:
5131 return lldb::eEncodingUint;
5132 case clang::Type::Complex: {
5134 if (qual_type->isComplexType())
5135 encoding = lldb::eEncodingIEEE754;
5136 else {
5137 const clang::ComplexType *complex_type =
5138 qual_type->getAsComplexIntegerType();
5139 if (complex_type)
5140 encoding = GetType(complex_type->getElementType()).GetEncoding();
5141 else
5142 encoding = lldb::eEncodingSint;
5143 }
5144 return encoding;
5145 }
5146
5147 case clang::Type::ObjCInterface:
5148 break;
5149 case clang::Type::Record:
5150 break;
5151 case clang::Type::Enum:
5152 return qual_type->isUnsignedIntegerOrEnumerationType()
5155 case clang::Type::DependentSizedArray:
5156 case clang::Type::DependentSizedExtVector:
5157 case clang::Type::UnresolvedUsing:
5158 case clang::Type::Attributed:
5159 case clang::Type::BTFTagAttributed:
5160 case clang::Type::TemplateTypeParm:
5161 case clang::Type::SubstTemplateTypeParm:
5162 case clang::Type::SubstTemplateTypeParmPack:
5163 case clang::Type::InjectedClassName:
5164 case clang::Type::DependentName:
5165 case clang::Type::PackExpansion:
5166 case clang::Type::ObjCObject:
5167
5168 case clang::Type::TemplateSpecialization:
5169 case clang::Type::DeducedTemplateSpecialization:
5170 case clang::Type::Adjusted:
5171 case clang::Type::Pipe:
5172 break;
5173
5174 // pointer type decayed from an array or function type.
5175 case clang::Type::Decayed:
5176 break;
5177 case clang::Type::ObjCTypeParam:
5178 break;
5179
5180 case clang::Type::DependentAddressSpace:
5181 break;
5182 case clang::Type::MacroQualified:
5183 break;
5184
5185 case clang::Type::ConstantMatrix:
5186 case clang::Type::DependentSizedMatrix:
5187 break;
5188
5189 // We don't handle pack indexing yet
5190 case clang::Type::PackIndexing:
5191 break;
5192
5193 case clang::Type::HLSLAttributedResource:
5194 break;
5195 case clang::Type::HLSLInlineSpirv:
5196 break;
5197 case clang::Type::SubstBuiltinTemplatePack:
5198 break;
5199 }
5200
5202}
5203
5205 if (!type)
5206 return lldb::eFormatDefault;
5207
5208 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
5209
5210 switch (qual_type->getTypeClass()) {
5211 case clang::Type::Atomic:
5212 case clang::Type::Auto:
5213 case clang::Type::CountAttributed:
5214 case clang::Type::Decltype:
5215 case clang::Type::Paren:
5216 case clang::Type::Typedef:
5217 case clang::Type::TypeOf:
5218 case clang::Type::TypeOfExpr:
5219 case clang::Type::Using:
5220 case clang::Type::PredefinedSugar:
5221 llvm_unreachable("Handled in RemoveWrappingTypes!");
5222 case clang::Type::LateParsedAttr:
5223 llvm_unreachable("LateParsedAttrType is a transient parsing placeholder "
5224 "that is resolved before the AST is finalized.");
5225 case clang::Type::UnaryTransform:
5226 break;
5227
5228 case clang::Type::FunctionNoProto:
5229 case clang::Type::FunctionProto:
5230 break;
5231
5232 case clang::Type::IncompleteArray:
5233 case clang::Type::VariableArray:
5234 case clang::Type::ArrayParameter:
5235 break;
5236
5237 case clang::Type::ConstantArray:
5238 return lldb::eFormatVoid; // no value
5239
5240 case clang::Type::DependentVector:
5241 case clang::Type::ExtVector:
5242 case clang::Type::Vector:
5243 break;
5244
5245 case clang::Type::BitInt:
5246 case clang::Type::DependentBitInt:
5247 case clang::Type::OverflowBehavior:
5248 return qual_type->isUnsignedIntegerType() ? lldb::eFormatUnsigned
5250
5251 case clang::Type::Builtin:
5252 switch (llvm::cast<clang::BuiltinType>(qual_type)->getKind()) {
5253 case clang::BuiltinType::UnknownAny:
5254 case clang::BuiltinType::Void:
5255 case clang::BuiltinType::BoundMember:
5256 break;
5257
5258 case clang::BuiltinType::Bool:
5259 return lldb::eFormatBoolean;
5260 case clang::BuiltinType::Char_S:
5261 case clang::BuiltinType::SChar:
5262 case clang::BuiltinType::WChar_S:
5263 case clang::BuiltinType::Char_U:
5264 case clang::BuiltinType::UChar:
5265 case clang::BuiltinType::WChar_U:
5266 return lldb::eFormatChar;
5267 case clang::BuiltinType::Char8:
5268 return lldb::eFormatUnicode8;
5269 case clang::BuiltinType::Char16:
5271 case clang::BuiltinType::Char32:
5273 case clang::BuiltinType::UShort:
5274 return lldb::eFormatUnsigned;
5275 case clang::BuiltinType::Short:
5276 return lldb::eFormatDecimal;
5277 case clang::BuiltinType::UInt:
5278 return lldb::eFormatUnsigned;
5279 case clang::BuiltinType::Int:
5280 return lldb::eFormatDecimal;
5281 case clang::BuiltinType::ULong:
5282 return lldb::eFormatUnsigned;
5283 case clang::BuiltinType::Long:
5284 return lldb::eFormatDecimal;
5285 case clang::BuiltinType::ULongLong:
5286 return lldb::eFormatUnsigned;
5287 case clang::BuiltinType::LongLong:
5288 return lldb::eFormatDecimal;
5289 case clang::BuiltinType::UInt128:
5290 return lldb::eFormatUnsigned;
5291 case clang::BuiltinType::Int128:
5292 return lldb::eFormatDecimal;
5293 case clang::BuiltinType::Half:
5294 case clang::BuiltinType::Float:
5295 case clang::BuiltinType::Double:
5296 case clang::BuiltinType::LongDouble:
5297 return lldb::eFormatFloat;
5298 case clang::BuiltinType::Float128:
5299 return lldb::eFormatFloat128;
5300 default:
5301 return lldb::eFormatHex;
5302 }
5303 break;
5304 case clang::Type::ObjCObjectPointer:
5305 return lldb::eFormatHex;
5306 case clang::Type::BlockPointer:
5307 return lldb::eFormatHex;
5308 case clang::Type::Pointer:
5309 return lldb::eFormatHex;
5310 case clang::Type::LValueReference:
5311 case clang::Type::RValueReference:
5312 return lldb::eFormatHex;
5313 case clang::Type::MemberPointer:
5314 return lldb::eFormatHex;
5315 case clang::Type::Complex: {
5316 if (qual_type->isComplexType())
5317 return lldb::eFormatComplex;
5318 else
5320 }
5321 case clang::Type::ObjCInterface:
5322 break;
5323 case clang::Type::Record:
5324 break;
5325 case clang::Type::Enum:
5326 return lldb::eFormatEnum;
5327 case clang::Type::DependentSizedArray:
5328 case clang::Type::DependentSizedExtVector:
5329 case clang::Type::UnresolvedUsing:
5330 case clang::Type::Attributed:
5331 case clang::Type::BTFTagAttributed:
5332 case clang::Type::TemplateTypeParm:
5333 case clang::Type::SubstTemplateTypeParm:
5334 case clang::Type::SubstTemplateTypeParmPack:
5335 case clang::Type::InjectedClassName:
5336 case clang::Type::DependentName:
5337 case clang::Type::PackExpansion:
5338 case clang::Type::ObjCObject:
5339
5340 case clang::Type::TemplateSpecialization:
5341 case clang::Type::DeducedTemplateSpecialization:
5342 case clang::Type::Adjusted:
5343 case clang::Type::Pipe:
5344 break;
5345
5346 // pointer type decayed from an array or function type.
5347 case clang::Type::Decayed:
5348 break;
5349 case clang::Type::ObjCTypeParam:
5350 break;
5351
5352 case clang::Type::DependentAddressSpace:
5353 break;
5354 case clang::Type::MacroQualified:
5355 break;
5356
5357 // Matrix types we're not sure how to display yet.
5358 case clang::Type::ConstantMatrix:
5359 case clang::Type::DependentSizedMatrix:
5360 break;
5361
5362 // We don't handle pack indexing yet
5363 case clang::Type::PackIndexing:
5364 break;
5365
5366 case clang::Type::HLSLAttributedResource:
5367 break;
5368 case clang::Type::HLSLInlineSpirv:
5369 break;
5370 case clang::Type::SubstBuiltinTemplatePack:
5371 break;
5372 }
5373 // We don't know hot to display this type...
5374 return lldb::eFormatBytes;
5375}
5376
5377static bool ObjCDeclHasIVars(clang::ObjCInterfaceDecl *class_interface_decl) {
5378 while (class_interface_decl) {
5379 if (class_interface_decl->ivar_size() > 0)
5380 return true;
5381
5382 class_interface_decl = class_interface_decl->getSuperClass();
5383 }
5384 return false;
5385}
5386
5387static std::optional<SymbolFile::ArrayInfo>
5389 clang::QualType qual_type,
5390 const ExecutionContext *exe_ctx) {
5391 if (qual_type->isIncompleteArrayType())
5392 if (std::optional<ClangASTMetadata> metadata =
5393 ast.GetMetadata(qual_type.getTypePtr()))
5394 return sym_file->GetDynamicArrayInfoForUID(metadata->GetUserID(),
5395 exe_ctx);
5396 return std::nullopt;
5397}
5398
5399llvm::Expected<uint32_t>
5401 bool omit_empty_base_classes,
5402 const ExecutionContext *exe_ctx) {
5403 if (!type)
5404 return llvm::createStringError("invalid clang type");
5405
5406 uint32_t num_children = 0;
5407 clang::QualType qual_type(RemoveWrappingTypes(GetQualType(type)));
5408 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
5409 switch (type_class) {
5410 case clang::Type::Builtin:
5411 switch (llvm::cast<clang::BuiltinType>(qual_type)->getKind()) {
5412 case clang::BuiltinType::ObjCId: // child is Class
5413 case clang::BuiltinType::ObjCClass: // child is Class
5414 num_children = 1;
5415 break;
5416
5417 default:
5418 break;
5419 }
5420 break;
5421
5422 case clang::Type::Complex:
5423 return 0;
5424 case clang::Type::Record:
5425 if (GetCompleteQualType(&getASTContext(), qual_type)) {
5426 const clang::RecordType *record_type =
5427 llvm::cast<clang::RecordType>(qual_type.getTypePtr());
5428 const clang::RecordDecl *record_decl =
5429 record_type->getDecl()->getDefinitionOrSelf();
5430 const clang::CXXRecordDecl *cxx_record_decl =
5431 llvm::dyn_cast<clang::CXXRecordDecl>(record_decl);
5432
5433 num_children +=
5434 GetNumBaseClasses(cxx_record_decl, omit_empty_base_classes);
5435 num_children += std::distance(record_decl->field_begin(),
5436 record_decl->field_end());
5437 } else
5438 return llvm::createStringError(
5439 "incomplete type \"" + GetDisplayTypeName(type).GetString() + "\"");
5440 break;
5441 case clang::Type::ObjCObject:
5442 case clang::Type::ObjCInterface:
5443 if (GetCompleteQualType(&getASTContext(), qual_type)) {
5444 const clang::ObjCObjectType *objc_class_type =
5445 llvm::dyn_cast<clang::ObjCObjectType>(qual_type.getTypePtr());
5446 assert(objc_class_type);
5447 if (objc_class_type) {
5448 clang::ObjCInterfaceDecl *class_interface_decl =
5449 objc_class_type->getInterface();
5450
5451 if (class_interface_decl) {
5452
5453 clang::ObjCInterfaceDecl *superclass_interface_decl =
5454 class_interface_decl->getSuperClass();
5455 if (superclass_interface_decl) {
5456 if (omit_empty_base_classes) {
5457 if (ObjCDeclHasIVars(superclass_interface_decl))
5458 ++num_children;
5459 } else
5460 ++num_children;
5461 }
5462
5463 num_children += class_interface_decl->ivar_size();
5464 }
5465 }
5466 }
5467 break;
5468
5469 case clang::Type::LValueReference:
5470 case clang::Type::RValueReference:
5471 case clang::Type::ObjCObjectPointer: {
5472 CompilerType pointee_clang_type(GetPointeeType(type));
5473
5474 uint32_t num_pointee_children = 0;
5475 if (pointee_clang_type.IsAggregateType()) {
5476 auto num_children_or_err =
5477 pointee_clang_type.GetNumChildren(omit_empty_base_classes, exe_ctx);
5478 if (!num_children_or_err)
5479 return num_children_or_err;
5480 num_pointee_children = *num_children_or_err;
5481 }
5482 // If this type points to a simple type, then it has 1 child
5483 if (num_pointee_children == 0)
5484 num_children = 1;
5485 else
5486 num_children = num_pointee_children;
5487 } break;
5488
5489 case clang::Type::Vector:
5490 case clang::Type::ExtVector:
5491 num_children =
5492 llvm::cast<clang::VectorType>(qual_type.getTypePtr())->getNumElements();
5493 break;
5494
5495 case clang::Type::ConstantArray:
5496 num_children = llvm::cast<clang::ConstantArrayType>(qual_type.getTypePtr())
5497 ->getSize()
5498 .getLimitedValue();
5499 break;
5500 case clang::Type::IncompleteArray:
5501 if (auto array_info =
5502 GetDynamicArrayInfo(*this, GetSymbolFile(), qual_type, exe_ctx))
5503 // FIXME: Only 1-dimensional arrays are supported.
5504 num_children = array_info->element_orders.size()
5505 ? array_info->element_orders.back().value_or(0)
5506 : 0;
5507 break;
5508
5509 case clang::Type::Pointer: {
5510 const clang::PointerType *pointer_type =
5511 llvm::cast<clang::PointerType>(qual_type.getTypePtr());
5512 clang::QualType pointee_type(pointer_type->getPointeeType());
5513 CompilerType pointee_clang_type(GetType(pointee_type));
5514 uint32_t num_pointee_children = 0;
5515 if (pointee_clang_type.IsAggregateType()) {
5516 auto num_children_or_err =
5517 pointee_clang_type.GetNumChildren(omit_empty_base_classes, exe_ctx);
5518 if (!num_children_or_err)
5519 return num_children_or_err;
5520 num_pointee_children = *num_children_or_err;
5521 }
5522 if (num_pointee_children == 0) {
5523 // We have a pointer to a pointee type that claims it has no children. We
5524 // will want to look at
5525 num_children = GetNumPointeeChildren(pointee_type);
5526 } else
5527 num_children = num_pointee_children;
5528 } break;
5529
5530 default:
5531 break;
5532 }
5533 return num_children;
5534}
5535
5537 StringRef name_ref = name.GetStringRef();
5538 // We compile the regex only the type name fulfills certain
5539 // necessary conditions. Otherwise we do not bother.
5540 if (name_ref.consume_front("unsigned _BitInt(") ||
5541 name_ref.consume_front("_BitInt(")) {
5542 uint64_t bit_size;
5543 if (name_ref.consumeInteger(/*Radix=*/10, bit_size))
5544 return {};
5545
5546 if (!name_ref.consume_front(")"))
5547 return {};
5548
5549 return GetType(getASTContext().getBitIntType(
5550 name.GetStringRef().starts_with("unsigned"), bit_size));
5551 }
5553}
5554
5557 if (type) {
5558 clang::QualType qual_type(GetCanonicalQualType(type));
5559 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
5560 if (type_class == clang::Type::Builtin) {
5561 switch (llvm::cast<clang::BuiltinType>(qual_type)->getKind()) {
5562 case clang::BuiltinType::Void:
5563 return eBasicTypeVoid;
5564 case clang::BuiltinType::Bool:
5565 return eBasicTypeBool;
5566 case clang::BuiltinType::Char_S:
5567 return eBasicTypeSignedChar;
5568 case clang::BuiltinType::Char_U:
5570 case clang::BuiltinType::Char8:
5571 return eBasicTypeChar8;
5572 case clang::BuiltinType::Char16:
5573 return eBasicTypeChar16;
5574 case clang::BuiltinType::Char32:
5575 return eBasicTypeChar32;
5576 case clang::BuiltinType::UChar:
5578 case clang::BuiltinType::SChar:
5579 return eBasicTypeSignedChar;
5580 case clang::BuiltinType::WChar_S:
5581 return eBasicTypeSignedWChar;
5582 case clang::BuiltinType::WChar_U:
5584 case clang::BuiltinType::Short:
5585 return eBasicTypeShort;
5586 case clang::BuiltinType::UShort:
5588 case clang::BuiltinType::Int:
5589 return eBasicTypeInt;
5590 case clang::BuiltinType::UInt:
5591 return eBasicTypeUnsignedInt;
5592 case clang::BuiltinType::Long:
5593 return eBasicTypeLong;
5594 case clang::BuiltinType::ULong:
5596 case clang::BuiltinType::LongLong:
5597 return eBasicTypeLongLong;
5598 case clang::BuiltinType::ULongLong:
5600 case clang::BuiltinType::Int128:
5601 return eBasicTypeInt128;
5602 case clang::BuiltinType::UInt128:
5604
5605 case clang::BuiltinType::Half:
5606 return eBasicTypeHalf;
5607 case clang::BuiltinType::Float:
5608 return eBasicTypeFloat;
5609 case clang::BuiltinType::Double:
5610 return eBasicTypeDouble;
5611 case clang::BuiltinType::LongDouble:
5612 return eBasicTypeLongDouble;
5613 case clang::BuiltinType::Float128:
5614 return eBasicTypeFloat128;
5615
5616 case clang::BuiltinType::NullPtr:
5617 return eBasicTypeNullPtr;
5618 case clang::BuiltinType::ObjCId:
5619 return eBasicTypeObjCID;
5620 case clang::BuiltinType::ObjCClass:
5621 return eBasicTypeObjCClass;
5622 case clang::BuiltinType::ObjCSel:
5623 return eBasicTypeObjCSel;
5624 default:
5625 return eBasicTypeOther;
5626 }
5627 }
5628 }
5629 return eBasicTypeInvalid;
5630}
5631
5634 std::function<bool(const CompilerType &integer_type,
5635 ConstString name,
5636 const llvm::APSInt &value)> const &callback) {
5637 const clang::EnumType *enum_type =
5638 llvm::dyn_cast<clang::EnumType>(GetCanonicalQualType(type));
5639 if (enum_type) {
5640 const clang::EnumDecl *enum_decl =
5641 enum_type->getDecl()->getDefinitionOrSelf();
5642 if (enum_decl) {
5643 CompilerType integer_type = GetType(enum_decl->getIntegerType());
5644
5645 clang::EnumDecl::enumerator_iterator enum_pos, enum_end_pos;
5646 for (enum_pos = enum_decl->enumerator_begin(),
5647 enum_end_pos = enum_decl->enumerator_end();
5648 enum_pos != enum_end_pos; ++enum_pos) {
5649 ConstString name(enum_pos->getNameAsString());
5650 if (!callback(integer_type, name, enum_pos->getInitVal()))
5651 break;
5652 }
5653 }
5654 }
5655}
5656
5657#pragma mark Aggregate Types
5658
5660 if (!type)
5661 return 0;
5662
5663 uint32_t count = 0;
5664 clang::QualType qual_type(RemoveWrappingTypes(GetCanonicalQualType(type)));
5665 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
5666 switch (type_class) {
5667 case clang::Type::Record:
5668 if (GetCompleteType(type)) {
5669 const clang::RecordType *record_type =
5670 llvm::dyn_cast<clang::RecordType>(qual_type.getTypePtr());
5671 if (record_type) {
5672 clang::RecordDecl *record_decl =
5673 record_type->getDecl()->getDefinition();
5674 if (record_decl) {
5675 count = std::distance(record_decl->field_begin(),
5676 record_decl->field_end());
5677 }
5678 }
5679 }
5680 break;
5681
5682 case clang::Type::ObjCObjectPointer: {
5683 const clang::ObjCObjectPointerType *objc_class_type =
5684 qual_type->castAs<clang::ObjCObjectPointerType>();
5685 const clang::ObjCInterfaceType *objc_interface_type =
5686 objc_class_type->getInterfaceType();
5687 if (objc_interface_type &&
5689 const_cast<clang::ObjCInterfaceType *>(objc_interface_type)))) {
5690 clang::ObjCInterfaceDecl *class_interface_decl =
5691 objc_interface_type->getDecl();
5692 if (class_interface_decl) {
5693 count = class_interface_decl->ivar_size();
5694 }
5695 }
5696 break;
5697 }
5698
5699 case clang::Type::ObjCObject:
5700 case clang::Type::ObjCInterface:
5701 if (GetCompleteType(type)) {
5702 const clang::ObjCObjectType *objc_class_type =
5703 llvm::dyn_cast<clang::ObjCObjectType>(qual_type.getTypePtr());
5704 if (objc_class_type) {
5705 clang::ObjCInterfaceDecl *class_interface_decl =
5706 objc_class_type->getInterface();
5707
5708 if (class_interface_decl)
5709 count = class_interface_decl->ivar_size();
5710 }
5711 }
5712 break;
5713
5714 default:
5715 break;
5716 }
5717 return count;
5718}
5719
5721GetObjCFieldAtIndex(clang::ASTContext *ast,
5722 clang::ObjCInterfaceDecl *class_interface_decl, size_t idx,
5723 std::string &name, uint64_t *bit_offset_ptr,
5724 uint32_t *bitfield_bit_size_ptr, bool *is_bitfield_ptr) {
5725 if (class_interface_decl) {
5726 if (idx < (class_interface_decl->ivar_size())) {
5727 clang::ObjCInterfaceDecl::ivar_iterator ivar_pos,
5728 ivar_end = class_interface_decl->ivar_end();
5729 uint32_t ivar_idx = 0;
5730
5731 for (ivar_pos = class_interface_decl->ivar_begin(); ivar_pos != ivar_end;
5732 ++ivar_pos, ++ivar_idx) {
5733 if (ivar_idx == idx) {
5734 const clang::ObjCIvarDecl *ivar_decl = *ivar_pos;
5735
5736 clang::QualType ivar_qual_type(ivar_decl->getType());
5737
5738 name.assign(ivar_decl->getNameAsString());
5739
5740 if (bit_offset_ptr) {
5741 const clang::ASTRecordLayout &interface_layout =
5742 ast->getASTObjCInterfaceLayout(class_interface_decl);
5743 *bit_offset_ptr = interface_layout.getFieldOffset(ivar_idx);
5744 }
5745
5746 const bool is_bitfield = ivar_pos->isBitField();
5747
5748 if (bitfield_bit_size_ptr) {
5749 *bitfield_bit_size_ptr = 0;
5750
5751 if (is_bitfield && ast) {
5752 clang::Expr *bitfield_bit_size_expr = ivar_pos->getBitWidth();
5753 clang::Expr::EvalResult result;
5754 if (bitfield_bit_size_expr &&
5755 bitfield_bit_size_expr->EvaluateAsInt(result, *ast)) {
5756 llvm::APSInt bitfield_apsint = result.Val.getInt();
5757 *bitfield_bit_size_ptr = bitfield_apsint.getLimitedValue();
5758 }
5759 }
5760 }
5761 if (is_bitfield_ptr)
5762 *is_bitfield_ptr = is_bitfield;
5763
5764 return ivar_qual_type.getAsOpaquePtr();
5765 }
5766 }
5767 }
5768 }
5769 return nullptr;
5770}
5771
5773 size_t idx, std::string &name,
5774 uint64_t *bit_offset_ptr,
5775 uint32_t *bitfield_bit_size_ptr,
5776 bool *is_bitfield_ptr) {
5777 if (!type)
5778 return CompilerType();
5779
5780 clang::QualType qual_type(RemoveWrappingTypes(GetCanonicalQualType(type)));
5781 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
5782 switch (type_class) {
5783 case clang::Type::Record:
5784 if (GetCompleteType(type)) {
5785 const clang::RecordType *record_type =
5786 llvm::cast<clang::RecordType>(qual_type.getTypePtr());
5787 const clang::RecordDecl *record_decl =
5788 record_type->getDecl()->getDefinitionOrSelf();
5789 uint32_t field_idx = 0;
5790 clang::RecordDecl::field_iterator field, field_end;
5791 for (field = record_decl->field_begin(),
5792 field_end = record_decl->field_end();
5793 field != field_end; ++field, ++field_idx) {
5794 if (idx == field_idx) {
5795 // Print the member type if requested
5796 // Print the member name and equal sign
5797 name.assign(field->getNameAsString());
5798
5799 // Figure out the type byte size (field_type_info.first) and
5800 // alignment (field_type_info.second) from the AST context.
5801 if (bit_offset_ptr) {
5802 const clang::ASTRecordLayout &record_layout =
5803 getASTContext().getASTRecordLayout(record_decl);
5804 *bit_offset_ptr = record_layout.getFieldOffset(field_idx);
5805 }
5806
5807 const bool is_bitfield = field->isBitField();
5808
5809 if (bitfield_bit_size_ptr) {
5810 *bitfield_bit_size_ptr = 0;
5811
5812 if (is_bitfield) {
5813 clang::Expr *bitfield_bit_size_expr = field->getBitWidth();
5814 clang::Expr::EvalResult result;
5815 if (bitfield_bit_size_expr &&
5816 bitfield_bit_size_expr->EvaluateAsInt(result,
5817 getASTContext())) {
5818 llvm::APSInt bitfield_apsint = result.Val.getInt();
5819 *bitfield_bit_size_ptr = bitfield_apsint.getLimitedValue();
5820 }
5821 }
5822 }
5823 if (is_bitfield_ptr)
5824 *is_bitfield_ptr = is_bitfield;
5825
5826 return GetType(field->getType());
5827 }
5828 }
5829 }
5830 break;
5831
5832 case clang::Type::ObjCObjectPointer: {
5833 const clang::ObjCObjectPointerType *objc_class_type =
5834 qual_type->castAs<clang::ObjCObjectPointerType>();
5835 const clang::ObjCInterfaceType *objc_interface_type =
5836 objc_class_type->getInterfaceType();
5837 if (objc_interface_type &&
5839 const_cast<clang::ObjCInterfaceType *>(objc_interface_type)))) {
5840 clang::ObjCInterfaceDecl *class_interface_decl =
5841 objc_interface_type->getDecl();
5842 if (class_interface_decl) {
5843 return CompilerType(
5844 weak_from_this(),
5845 GetObjCFieldAtIndex(&getASTContext(), class_interface_decl, idx,
5846 name, bit_offset_ptr, bitfield_bit_size_ptr,
5847 is_bitfield_ptr));
5848 }
5849 }
5850 break;
5851 }
5852
5853 case clang::Type::ObjCObject:
5854 case clang::Type::ObjCInterface:
5855 if (GetCompleteType(type)) {
5856 const clang::ObjCObjectType *objc_class_type =
5857 llvm::dyn_cast<clang::ObjCObjectType>(qual_type.getTypePtr());
5858 assert(objc_class_type);
5859 if (objc_class_type) {
5860 clang::ObjCInterfaceDecl *class_interface_decl =
5861 objc_class_type->getInterface();
5862 return CompilerType(
5863 weak_from_this(),
5864 GetObjCFieldAtIndex(&getASTContext(), class_interface_decl, idx,
5865 name, bit_offset_ptr, bitfield_bit_size_ptr,
5866 is_bitfield_ptr));
5867 }
5868 }
5869 break;
5870
5871 default:
5872 break;
5873 }
5874 return CompilerType();
5875}
5876
5877uint32_t
5879 uint32_t count = 0;
5880 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
5881 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
5882 switch (type_class) {
5883 case clang::Type::Record:
5884 if (GetCompleteType(type)) {
5885 const clang::CXXRecordDecl *cxx_record_decl =
5886 qual_type->getAsCXXRecordDecl();
5887 if (cxx_record_decl)
5888 count = cxx_record_decl->getNumBases();
5889 }
5890 break;
5891
5892 case clang::Type::ObjCObjectPointer:
5894 break;
5895
5896 case clang::Type::ObjCObject:
5897 if (GetCompleteType(type)) {
5898 const clang::ObjCObjectType *objc_class_type =
5899 qual_type->getAsObjCQualifiedInterfaceType();
5900 if (objc_class_type) {
5901 clang::ObjCInterfaceDecl *class_interface_decl =
5902 objc_class_type->getInterface();
5903
5904 if (class_interface_decl && class_interface_decl->getSuperClass())
5905 count = 1;
5906 }
5907 }
5908 break;
5909 case clang::Type::ObjCInterface:
5910 if (GetCompleteType(type)) {
5911 const clang::ObjCInterfaceType *objc_interface_type =
5912 qual_type->getAs<clang::ObjCInterfaceType>();
5913 if (objc_interface_type) {
5914 clang::ObjCInterfaceDecl *class_interface_decl =
5915 objc_interface_type->getInterface();
5916
5917 if (class_interface_decl && class_interface_decl->getSuperClass())
5918 count = 1;
5919 }
5920 }
5921 break;
5922
5923 default:
5924 break;
5925 }
5926 return count;
5927}
5928
5929uint32_t
5931 uint32_t count = 0;
5932 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
5933 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
5934 switch (type_class) {
5935 case clang::Type::Record:
5936 if (GetCompleteType(type)) {
5937 const clang::CXXRecordDecl *cxx_record_decl =
5938 qual_type->getAsCXXRecordDecl();
5939 if (cxx_record_decl)
5940 count = cxx_record_decl->getNumVBases();
5941 }
5942 break;
5943
5944 default:
5945 break;
5946 }
5947 return count;
5948}
5949
5951 lldb::opaque_compiler_type_t type, size_t idx, uint32_t *bit_offset_ptr) {
5952 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
5953 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
5954 switch (type_class) {
5955 case clang::Type::Record:
5956 if (GetCompleteType(type)) {
5957 const clang::CXXRecordDecl *cxx_record_decl =
5958 qual_type->getAsCXXRecordDecl();
5959 if (cxx_record_decl) {
5960 uint32_t curr_idx = 0;
5961 clang::CXXRecordDecl::base_class_const_iterator base_class,
5962 base_class_end;
5963 for (base_class = cxx_record_decl->bases_begin(),
5964 base_class_end = cxx_record_decl->bases_end();
5965 base_class != base_class_end; ++base_class, ++curr_idx) {
5966 if (curr_idx == idx) {
5967 if (bit_offset_ptr) {
5968 const clang::ASTRecordLayout &record_layout =
5969 getASTContext().getASTRecordLayout(cxx_record_decl);
5970 const clang::CXXRecordDecl *base_class_decl =
5971 llvm::cast<clang::CXXRecordDecl>(
5972 base_class->getType()
5973 ->castAs<clang::RecordType>()
5974 ->getDecl());
5975 if (base_class->isVirtual())
5976 *bit_offset_ptr =
5977 record_layout.getVBaseClassOffset(base_class_decl)
5978 .getQuantity() *
5979 8;
5980 else
5981 *bit_offset_ptr =
5982 record_layout.getBaseClassOffset(base_class_decl)
5983 .getQuantity() *
5984 8;
5985 }
5986 return GetType(base_class->getType());
5987 }
5988 }
5989 }
5990 }
5991 break;
5992
5993 case clang::Type::ObjCObjectPointer:
5994 return GetPointeeType(type).GetDirectBaseClassAtIndex(idx, bit_offset_ptr);
5995
5996 case clang::Type::ObjCObject:
5997 if (idx == 0 && GetCompleteType(type)) {
5998 const clang::ObjCObjectType *objc_class_type =
5999 qual_type->getAsObjCQualifiedInterfaceType();
6000 if (objc_class_type) {
6001 clang::ObjCInterfaceDecl *class_interface_decl =
6002 objc_class_type->getInterface();
6003
6004 if (class_interface_decl) {
6005 clang::ObjCInterfaceDecl *superclass_interface_decl =
6006 class_interface_decl->getSuperClass();
6007 if (superclass_interface_decl) {
6008 if (bit_offset_ptr)
6009 *bit_offset_ptr = 0;
6010 return GetType(getASTContext().getObjCInterfaceType(
6011 superclass_interface_decl));
6012 }
6013 }
6014 }
6015 }
6016 break;
6017 case clang::Type::ObjCInterface:
6018 if (idx == 0 && GetCompleteType(type)) {
6019 const clang::ObjCObjectType *objc_interface_type =
6020 qual_type->getAs<clang::ObjCInterfaceType>();
6021 if (objc_interface_type) {
6022 clang::ObjCInterfaceDecl *class_interface_decl =
6023 objc_interface_type->getInterface();
6024
6025 if (class_interface_decl) {
6026 clang::ObjCInterfaceDecl *superclass_interface_decl =
6027 class_interface_decl->getSuperClass();
6028 if (superclass_interface_decl) {
6029 if (bit_offset_ptr)
6030 *bit_offset_ptr = 0;
6031 return GetType(getASTContext().getObjCInterfaceType(
6032 superclass_interface_decl));
6033 }
6034 }
6035 }
6036 }
6037 break;
6038
6039 default:
6040 break;
6041 }
6042 return CompilerType();
6043}
6044
6046 lldb::opaque_compiler_type_t type, size_t idx, uint32_t *bit_offset_ptr) {
6047 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
6048 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
6049 switch (type_class) {
6050 case clang::Type::Record:
6051 if (GetCompleteType(type)) {
6052 const clang::CXXRecordDecl *cxx_record_decl =
6053 qual_type->getAsCXXRecordDecl();
6054 if (cxx_record_decl) {
6055 uint32_t curr_idx = 0;
6056 clang::CXXRecordDecl::base_class_const_iterator base_class,
6057 base_class_end;
6058 for (base_class = cxx_record_decl->vbases_begin(),
6059 base_class_end = cxx_record_decl->vbases_end();
6060 base_class != base_class_end; ++base_class, ++curr_idx) {
6061 if (curr_idx == idx) {
6062 if (bit_offset_ptr) {
6063 const clang::ASTRecordLayout &record_layout =
6064 getASTContext().getASTRecordLayout(cxx_record_decl);
6065 const clang::CXXRecordDecl *base_class_decl =
6066 llvm::cast<clang::CXXRecordDecl>(
6067 base_class->getType()
6068 ->castAs<clang::RecordType>()
6069 ->getDecl());
6070 *bit_offset_ptr =
6071 record_layout.getVBaseClassOffset(base_class_decl)
6072 .getQuantity() *
6073 8;
6074 }
6075 return GetType(base_class->getType());
6076 }
6077 }
6078 }
6079 }
6080 break;
6081
6082 default:
6083 break;
6084 }
6085 return CompilerType();
6086}
6087
6090 llvm::StringRef name) {
6091 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
6092 switch (qual_type->getTypeClass()) {
6093 case clang::Type::Record: {
6094 if (!GetCompleteType(type))
6095 return CompilerDecl();
6096
6097 const clang::RecordType *record_type =
6098 llvm::cast<clang::RecordType>(qual_type.getTypePtr());
6099 const clang::RecordDecl *record_decl =
6100 record_type->getDecl()->getDefinitionOrSelf();
6101
6102 clang::DeclarationName decl_name(&getASTContext().Idents.get(name));
6103 for (NamedDecl *decl : record_decl->lookup(decl_name)) {
6104 auto *var_decl = dyn_cast<clang::VarDecl>(decl);
6105 if (!var_decl || var_decl->getStorageClass() != clang::SC_Static)
6106 continue;
6107
6108 return CompilerDecl(this, var_decl);
6109 }
6110 break;
6111 }
6112
6113 default:
6114 break;
6115 }
6116 return CompilerDecl();
6117}
6118
6119// If a pointer to a pointee type (the clang_type arg) says that it has no
6120// children, then we either need to trust it, or override it and return a
6121// different result. For example, an "int *" has one child that is an integer,
6122// but a function pointer doesn't have any children. Likewise if a Record type
6123// claims it has no children, then there really is nothing to show.
6124uint32_t TypeSystemClang::GetNumPointeeChildren(clang::QualType type) {
6125 if (type.isNull())
6126 return 0;
6127
6128 clang::QualType qual_type = RemoveWrappingTypes(type.getCanonicalType());
6129 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
6130 switch (type_class) {
6131 case clang::Type::Builtin:
6132 switch (llvm::cast<clang::BuiltinType>(qual_type)->getKind()) {
6133 case clang::BuiltinType::UnknownAny:
6134 case clang::BuiltinType::Void:
6135 case clang::BuiltinType::NullPtr:
6136 case clang::BuiltinType::OCLEvent:
6137 case clang::BuiltinType::OCLImage1dRO:
6138 case clang::BuiltinType::OCLImage1dWO:
6139 case clang::BuiltinType::OCLImage1dRW:
6140 case clang::BuiltinType::OCLImage1dArrayRO:
6141 case clang::BuiltinType::OCLImage1dArrayWO:
6142 case clang::BuiltinType::OCLImage1dArrayRW:
6143 case clang::BuiltinType::OCLImage1dBufferRO:
6144 case clang::BuiltinType::OCLImage1dBufferWO:
6145 case clang::BuiltinType::OCLImage1dBufferRW:
6146 case clang::BuiltinType::OCLImage2dRO:
6147 case clang::BuiltinType::OCLImage2dWO:
6148 case clang::BuiltinType::OCLImage2dRW:
6149 case clang::BuiltinType::OCLImage2dArrayRO:
6150 case clang::BuiltinType::OCLImage2dArrayWO:
6151 case clang::BuiltinType::OCLImage2dArrayRW:
6152 case clang::BuiltinType::OCLImage3dRO:
6153 case clang::BuiltinType::OCLImage3dWO:
6154 case clang::BuiltinType::OCLImage3dRW:
6155 case clang::BuiltinType::OCLSampler:
6156 case clang::BuiltinType::HLSLResource:
6157 return 0;
6158 case clang::BuiltinType::Bool:
6159 case clang::BuiltinType::Char_U:
6160 case clang::BuiltinType::UChar:
6161 case clang::BuiltinType::WChar_U:
6162 case clang::BuiltinType::Char16:
6163 case clang::BuiltinType::Char32:
6164 case clang::BuiltinType::UShort:
6165 case clang::BuiltinType::UInt:
6166 case clang::BuiltinType::ULong:
6167 case clang::BuiltinType::ULongLong:
6168 case clang::BuiltinType::UInt128:
6169 case clang::BuiltinType::Char_S:
6170 case clang::BuiltinType::SChar:
6171 case clang::BuiltinType::WChar_S:
6172 case clang::BuiltinType::Short:
6173 case clang::BuiltinType::Int:
6174 case clang::BuiltinType::Long:
6175 case clang::BuiltinType::LongLong:
6176 case clang::BuiltinType::Int128:
6177 case clang::BuiltinType::Float:
6178 case clang::BuiltinType::Double:
6179 case clang::BuiltinType::LongDouble:
6180 case clang::BuiltinType::Float128:
6181 case clang::BuiltinType::Dependent:
6182 case clang::BuiltinType::Overload:
6183 case clang::BuiltinType::ObjCId:
6184 case clang::BuiltinType::ObjCClass:
6185 case clang::BuiltinType::ObjCSel:
6186 case clang::BuiltinType::BoundMember:
6187 case clang::BuiltinType::Half:
6188 case clang::BuiltinType::ARCUnbridgedCast:
6189 case clang::BuiltinType::PseudoObject:
6190 case clang::BuiltinType::BuiltinFn:
6191 case clang::BuiltinType::ArraySection:
6192 return 1;
6193 default:
6194 return 0;
6195 }
6196 break;
6197
6198 case clang::Type::Complex:
6199 return 1;
6200 case clang::Type::Pointer:
6201 return 1;
6202 case clang::Type::BlockPointer:
6203 return 0; // If block pointers don't have debug info, then no children for
6204 // them
6205 case clang::Type::LValueReference:
6206 return 1;
6207 case clang::Type::RValueReference:
6208 return 1;
6209 case clang::Type::MemberPointer:
6210 return 0;
6211 case clang::Type::ConstantArray:
6212 return 0;
6213 case clang::Type::IncompleteArray:
6214 return 0;
6215 case clang::Type::VariableArray:
6216 return 0;
6217 case clang::Type::DependentSizedArray:
6218 return 0;
6219 case clang::Type::DependentSizedExtVector:
6220 return 0;
6221 case clang::Type::Vector:
6222 return 0;
6223 case clang::Type::ExtVector:
6224 return 0;
6225 case clang::Type::FunctionProto:
6226 return 0; // When we function pointers, they have no children...
6227 case clang::Type::FunctionNoProto:
6228 return 0; // When we function pointers, they have no children...
6229 case clang::Type::UnresolvedUsing:
6230 return 0;
6231 case clang::Type::Record:
6232 return 0;
6233 case clang::Type::Enum:
6234 return 1;
6235 case clang::Type::TemplateTypeParm:
6236 return 1;
6237 case clang::Type::SubstTemplateTypeParm:
6238 return 1;
6239 case clang::Type::TemplateSpecialization:
6240 return 1;
6241 case clang::Type::InjectedClassName:
6242 return 0;
6243 case clang::Type::DependentName:
6244 return 1;
6245 case clang::Type::ObjCObject:
6246 return 0;
6247 case clang::Type::ObjCInterface:
6248 return 0;
6249 case clang::Type::ObjCObjectPointer:
6250 return 1;
6251 default:
6252 break;
6253 }
6254 return 0;
6255}
6256
6257llvm::Expected<CompilerType> TypeSystemClang::GetDereferencedType(
6259 std::string &deref_name, uint32_t &deref_byte_size,
6260 int32_t &deref_byte_offset, ValueObject *valobj, uint64_t &language_flags) {
6261 bool type_valid = IsPointerOrReferenceType(type, nullptr) ||
6262 IsArrayType(type, nullptr, nullptr, nullptr);
6263 if (!type_valid)
6264 return llvm::createStringError("not a pointer, reference or array type");
6265 uint32_t child_bitfield_bit_size = 0;
6266 uint32_t child_bitfield_bit_offset = 0;
6267 bool child_is_base_class;
6268 bool child_is_deref_of_parent;
6270 type, exe_ctx, 0, false, true, false, deref_name, deref_byte_size,
6271 deref_byte_offset, child_bitfield_bit_size, child_bitfield_bit_offset,
6272 child_is_base_class, child_is_deref_of_parent, valobj, language_flags);
6273}
6274
6276 lldb::opaque_compiler_type_t type, ExecutionContext *exe_ctx, size_t idx,
6277 bool transparent_pointers, bool omit_empty_base_classes,
6278 bool ignore_array_bounds, std::string &child_name,
6279 uint32_t &child_byte_size, int32_t &child_byte_offset,
6280 uint32_t &child_bitfield_bit_size, uint32_t &child_bitfield_bit_offset,
6281 bool &child_is_base_class, bool &child_is_deref_of_parent,
6282 ValueObject *valobj, uint64_t &language_flags) {
6283 if (!type)
6284 return llvm::createStringError("invalid type");
6285
6286 auto get_exe_scope = [&exe_ctx]() {
6287 return exe_ctx ? exe_ctx->GetBestExecutionContextScope() : nullptr;
6288 };
6289
6290 clang::QualType parent_qual_type(
6292 const clang::Type::TypeClass parent_type_class =
6293 parent_qual_type->getTypeClass();
6294 child_bitfield_bit_size = 0;
6295 child_bitfield_bit_offset = 0;
6296 child_is_base_class = false;
6297 language_flags = 0;
6298
6299 auto num_children_or_err =
6300 GetNumChildren(type, omit_empty_base_classes, exe_ctx);
6301 if (!num_children_or_err)
6302 return num_children_or_err.takeError();
6303
6304 const bool idx_is_valid = idx < *num_children_or_err;
6305 int32_t bit_offset;
6306 switch (parent_type_class) {
6307 case clang::Type::Builtin:
6308 if (!idx_is_valid)
6309 return llvm::createStringError("invalid index");
6310
6311 switch (llvm::cast<clang::BuiltinType>(parent_qual_type)->getKind()) {
6312 case clang::BuiltinType::ObjCId:
6313 case clang::BuiltinType::ObjCClass:
6314 child_name = "isa";
6315 child_byte_size =
6316 getASTContext().getTypeSize(getASTContext().ObjCBuiltinClassTy) /
6317 CHAR_BIT;
6318 return GetType(getASTContext().ObjCBuiltinClassTy);
6319
6320 default:
6321 break;
6322 }
6323 break;
6324 case clang::Type::Record: {
6325 if (!idx_is_valid)
6326 return llvm::createStringError("invalid index");
6327 if (!GetCompleteType(type))
6328 return llvm::createStringError("cannot complete type");
6329
6330 const clang::RecordType *record_type =
6331 llvm::cast<clang::RecordType>(parent_qual_type.getTypePtr());
6332 const clang::RecordDecl *record_decl =
6333 record_type->getDecl()->getDefinitionOrSelf();
6334 const clang::ASTRecordLayout &record_layout =
6335 getASTContext().getASTRecordLayout(record_decl);
6336 uint32_t child_idx = 0;
6337
6338 const clang::CXXRecordDecl *cxx_record_decl =
6339 llvm::dyn_cast<clang::CXXRecordDecl>(record_decl);
6340 if (cxx_record_decl) {
6341 // We might have base classes to print out first
6342 clang::CXXRecordDecl::base_class_const_iterator base_class,
6343 base_class_end;
6344 for (base_class = cxx_record_decl->bases_begin(),
6345 base_class_end = cxx_record_decl->bases_end();
6346 base_class != base_class_end; ++base_class) {
6347 const clang::CXXRecordDecl *base_class_decl = nullptr;
6348
6349 // Skip empty base classes
6350 if (omit_empty_base_classes) {
6351 base_class_decl =
6352 llvm::cast<clang::CXXRecordDecl>(
6353 base_class->getType()->getAs<clang::RecordType>()->getDecl())
6354 ->getDefinitionOrSelf();
6355 if (!TypeSystemClang::RecordHasFields(base_class_decl))
6356 continue;
6357 }
6358
6359 if (idx == child_idx) {
6360 if (base_class_decl == nullptr)
6361 base_class_decl = llvm::cast<clang::CXXRecordDecl>(
6362 base_class->getType()
6363 ->getAs<clang::RecordType>()
6364 ->getDecl())
6365 ->getDefinitionOrSelf();
6366
6367 if (base_class->isVirtual()) {
6368 bool handled = false;
6369 if (valobj) {
6370 clang::VTableContextBase *vtable_ctx =
6371 getASTContext().getVTableContext();
6372 if (vtable_ctx)
6373 handled = GetVBaseBitOffset(*vtable_ctx, *valobj, record_layout,
6374 cxx_record_decl, base_class_decl,
6375 bit_offset);
6376 }
6377 if (!handled)
6378 bit_offset = record_layout.getVBaseClassOffset(base_class_decl)
6379 .getQuantity() *
6380 8;
6381 } else
6382 bit_offset = record_layout.getBaseClassOffset(base_class_decl)
6383 .getQuantity() *
6384 8;
6385
6386 // Base classes should be a multiple of 8 bits in size
6387 child_byte_offset = bit_offset / 8;
6388 CompilerType base_class_clang_type = GetType(base_class->getType());
6389 child_name = base_class_clang_type.GetTypeName().AsCString("");
6390 auto size_or_err = base_class_clang_type.GetBitSize(get_exe_scope());
6391 if (!size_or_err)
6392 return llvm::joinErrors(
6393 llvm::createStringError("no size info for base class"),
6394 size_or_err.takeError());
6395
6396 uint64_t base_class_clang_type_bit_size = *size_or_err;
6397
6398 // Base classes bit sizes should be a multiple of 8 bits in size
6399 assert(base_class_clang_type_bit_size % 8 == 0);
6400 child_byte_size = base_class_clang_type_bit_size / 8;
6401 child_is_base_class = true;
6402 return base_class_clang_type;
6403 }
6404 // We don't increment the child index in the for loop since we might
6405 // be skipping empty base classes
6406 ++child_idx;
6407 }
6408 }
6409 // Make sure index is in range...
6410 uint32_t field_idx = 0;
6411 clang::RecordDecl::field_iterator field, field_end;
6412 for (field = record_decl->field_begin(),
6413 field_end = record_decl->field_end();
6414 field != field_end; ++field, ++field_idx, ++child_idx) {
6415 if (idx == child_idx) {
6416 // Print the member type if requested
6417 // Print the member name and equal sign
6418 child_name.assign(field->getNameAsString());
6419
6420 // Figure out the type byte size (field_type_info.first) and
6421 // alignment (field_type_info.second) from the AST context.
6422 CompilerType field_clang_type = GetType(field->getType());
6423 assert(field_idx < record_layout.getFieldCount());
6424 auto size_or_err = field_clang_type.GetByteSize(get_exe_scope());
6425 if (!size_or_err)
6426 return llvm::joinErrors(
6427 llvm::createStringError("no size info for field"),
6428 size_or_err.takeError());
6429
6430 child_byte_size = *size_or_err;
6431 const uint32_t child_bit_size = child_byte_size * 8;
6432
6433 // Figure out the field offset within the current struct/union/class
6434 // type
6435 bit_offset = record_layout.getFieldOffset(field_idx);
6436 if (FieldIsBitfield(*field, child_bitfield_bit_size)) {
6437 child_bitfield_bit_offset = bit_offset % child_bit_size;
6438 const uint32_t child_bit_offset =
6439 bit_offset - child_bitfield_bit_offset;
6440 child_byte_offset = child_bit_offset / 8;
6441 } else {
6442 child_byte_offset = bit_offset / 8;
6443 }
6444
6445 return field_clang_type;
6446 }
6447 }
6448 } break;
6449 case clang::Type::ObjCObject:
6450 case clang::Type::ObjCInterface: {
6451 if (!idx_is_valid)
6452 return llvm::createStringError("invalid index");
6453 if (!GetCompleteType(type))
6454 return llvm::createStringError("cannot complete type");
6455
6456 const clang::ObjCObjectType *objc_class_type =
6457 llvm::dyn_cast<clang::ObjCObjectType>(parent_qual_type.getTypePtr());
6458 assert(objc_class_type);
6459 if (!objc_class_type)
6460 return llvm::createStringError("unexpected object type");
6461
6462 uint32_t child_idx = 0;
6463 clang::ObjCInterfaceDecl *class_interface_decl =
6464 objc_class_type->getInterface();
6465
6466 if (!class_interface_decl)
6467 return llvm::createStringError("cannot get interface decl");
6468
6469 const clang::ASTRecordLayout &interface_layout =
6470 getASTContext().getASTObjCInterfaceLayout(class_interface_decl);
6471 clang::ObjCInterfaceDecl *superclass_interface_decl =
6472 class_interface_decl->getSuperClass();
6473 if (superclass_interface_decl) {
6474 if (omit_empty_base_classes) {
6475 CompilerType base_class_clang_type = GetType(
6476 getASTContext().getObjCInterfaceType(superclass_interface_decl));
6477 if (llvm::expectedToOptional(base_class_clang_type.GetNumChildren(
6478 omit_empty_base_classes, exe_ctx))
6479 .value_or(0) > 0) {
6480 if (idx == 0) {
6481 clang::QualType ivar_qual_type(getASTContext().getObjCInterfaceType(
6482 superclass_interface_decl));
6483
6484 child_name.assign(superclass_interface_decl->getNameAsString());
6485
6486 clang::TypeInfo ivar_type_info =
6487 getASTContext().getTypeInfo(ivar_qual_type.getTypePtr());
6488
6489 child_byte_size = ivar_type_info.Width / 8;
6490 child_byte_offset = 0;
6491 child_is_base_class = true;
6492
6493 return GetType(ivar_qual_type);
6494 }
6495
6496 ++child_idx;
6497 }
6498 } else
6499 ++child_idx;
6500 }
6501
6502 const uint32_t superclass_idx = child_idx;
6503
6504 if (idx < (child_idx + class_interface_decl->ivar_size())) {
6505 clang::ObjCInterfaceDecl::ivar_iterator ivar_pos,
6506 ivar_end = class_interface_decl->ivar_end();
6507
6508 for (ivar_pos = class_interface_decl->ivar_begin(); ivar_pos != ivar_end;
6509 ++ivar_pos) {
6510 if (child_idx == idx) {
6511 clang::ObjCIvarDecl *ivar_decl = *ivar_pos;
6512
6513 clang::QualType ivar_qual_type(ivar_decl->getType());
6514
6515 child_name.assign(ivar_decl->getNameAsString());
6516
6517 clang::TypeInfo ivar_type_info =
6518 getASTContext().getTypeInfo(ivar_qual_type.getTypePtr());
6519
6520 child_byte_size = ivar_type_info.Width / 8;
6521
6522 // Figure out the field offset within the current
6523 // struct/union/class type For ObjC objects, we can't trust the
6524 // bit offset we get from the Clang AST, since that doesn't
6525 // account for the space taken up by unbacked properties, or
6526 // from the changing size of base classes that are newer than
6527 // this class. So if we have a process around that we can ask
6528 // about this object, do so.
6529 child_byte_offset = LLDB_INVALID_IVAR_OFFSET;
6530 Process *process = nullptr;
6531 if (exe_ctx)
6532 process = exe_ctx->GetProcessPtr();
6533 if (process) {
6534 ObjCLanguageRuntime *objc_runtime =
6535 ObjCLanguageRuntime::Get(*process);
6536 if (objc_runtime != nullptr) {
6537 CompilerType parent_ast_type = GetType(parent_qual_type);
6538 child_byte_offset = objc_runtime->GetByteOffsetForIvar(
6539 parent_ast_type, ivar_decl->getNameAsString().c_str());
6540 }
6541 }
6542
6543 // Setting this to INT32_MAX to make sure we don't compute it
6544 // twice...
6545 bit_offset = INT32_MAX;
6546
6547 if (child_byte_offset ==
6548 static_cast<int32_t>(LLDB_INVALID_IVAR_OFFSET)) {
6549 bit_offset =
6550 interface_layout.getFieldOffset(child_idx - superclass_idx);
6551 child_byte_offset = bit_offset / 8;
6552 }
6553
6554 // Note, the ObjC Ivar Byte offset is just that, it doesn't
6555 // account for the bit offset of a bitfield within its
6556 // containing object. So regardless of where we get the byte
6557 // offset from, we still need to get the bit offset for
6558 // bitfields from the layout.
6559
6560 if (FieldIsBitfield(ivar_decl, child_bitfield_bit_size)) {
6561 if (bit_offset == INT32_MAX)
6562 bit_offset =
6563 interface_layout.getFieldOffset(child_idx - superclass_idx);
6564
6565 child_bitfield_bit_offset = bit_offset % 8;
6566 }
6567 return GetType(ivar_qual_type);
6568 }
6569 ++child_idx;
6570 }
6571 }
6572 } break;
6573
6574 case clang::Type::ObjCObjectPointer: {
6575 if (!idx_is_valid)
6576 return llvm::createStringError("invalid index");
6577 CompilerType pointee_clang_type(GetPointeeType(type));
6578
6579 if (transparent_pointers && pointee_clang_type.IsAggregateType()) {
6580 child_is_deref_of_parent = false;
6581 bool tmp_child_is_deref_of_parent = false;
6582 return pointee_clang_type.GetChildCompilerTypeAtIndex(
6583 exe_ctx, idx, transparent_pointers, omit_empty_base_classes,
6584 ignore_array_bounds, child_name, child_byte_size, child_byte_offset,
6585 child_bitfield_bit_size, child_bitfield_bit_offset,
6586 child_is_base_class, tmp_child_is_deref_of_parent, valobj,
6587 language_flags);
6588 } else {
6589 child_is_deref_of_parent = true;
6590 const char *parent_name =
6591 valobj ? valobj->GetName().GetCString() : nullptr;
6592 if (parent_name) {
6593 child_name.assign(1, '*');
6594 child_name += parent_name;
6595 }
6596
6597 // We have a pointer to an simple type
6598 if (idx == 0 && pointee_clang_type.GetCompleteType()) {
6599 auto size_or_err = pointee_clang_type.GetByteSize(get_exe_scope());
6600 if (!size_or_err)
6601 return size_or_err.takeError();
6602 child_byte_size = *size_or_err;
6603 child_byte_offset = 0;
6604 return pointee_clang_type;
6605 }
6606 }
6607 } break;
6608
6609 case clang::Type::Vector:
6610 case clang::Type::ExtVector: {
6611 if (!idx_is_valid)
6612 return llvm::createStringError("invalid index");
6613 const clang::VectorType *array =
6614 llvm::cast<clang::VectorType>(parent_qual_type.getTypePtr());
6615 if (!array)
6616 return llvm::createStringError("unexpected vector type");
6617
6618 CompilerType element_type = GetType(array->getElementType());
6619 if (!element_type.GetCompleteType())
6620 return llvm::createStringError("cannot complete type");
6621
6622 char element_name[64];
6623 ::snprintf(element_name, sizeof(element_name), "[%" PRIu64 "]",
6624 static_cast<uint64_t>(idx));
6625 child_name.assign(element_name);
6626 auto size_or_err = element_type.GetByteSize(get_exe_scope());
6627 if (!size_or_err)
6628 return size_or_err.takeError();
6629 child_byte_size = *size_or_err;
6630 child_byte_offset = (int32_t)idx * (int32_t)child_byte_size;
6631 return element_type;
6632 }
6633 case clang::Type::ConstantArray:
6634 case clang::Type::IncompleteArray: {
6635 if (!ignore_array_bounds && !idx_is_valid)
6636 return llvm::createStringError("invalid index");
6637 const clang::ArrayType *array = GetQualType(type)->getAsArrayTypeUnsafe();
6638 if (!array)
6639 return llvm::createStringError("unexpected array type");
6640 CompilerType element_type = GetType(array->getElementType());
6641 if (!element_type.GetCompleteType())
6642 return llvm::createStringError("cannot complete type");
6643
6644 child_name = std::string(llvm::formatv("[{0}]", idx));
6645 auto size_or_err = element_type.GetByteSize(get_exe_scope());
6646 if (!size_or_err)
6647 return size_or_err.takeError();
6648 child_byte_size = *size_or_err;
6649 child_byte_offset = (int32_t)idx * (int32_t)child_byte_size;
6650 return element_type;
6651 }
6652 case clang::Type::Pointer: {
6653 CompilerType pointee_clang_type(GetPointeeType(type));
6654
6655 // Don't dereference "void *" pointers
6656 if (pointee_clang_type.IsVoidType())
6657 return llvm::createStringError("cannot dereference void *");
6658
6659 if (transparent_pointers && pointee_clang_type.IsAggregateType()) {
6660 child_is_deref_of_parent = false;
6661 bool tmp_child_is_deref_of_parent = false;
6662 return pointee_clang_type.GetChildCompilerTypeAtIndex(
6663 exe_ctx, idx, transparent_pointers, omit_empty_base_classes,
6664 ignore_array_bounds, child_name, child_byte_size, child_byte_offset,
6665 child_bitfield_bit_size, child_bitfield_bit_offset,
6666 child_is_base_class, tmp_child_is_deref_of_parent, valobj,
6667 language_flags);
6668 }
6669 child_is_deref_of_parent = true;
6670
6671 const char *parent_name = valobj ? valobj->GetName().GetCString() : nullptr;
6672 if (parent_name) {
6673 child_name.assign(1, '*');
6674 child_name += parent_name;
6675 }
6676
6677 // We have a pointer to an simple type
6678 if (idx == 0) {
6679 auto size_or_err = pointee_clang_type.GetByteSize(get_exe_scope());
6680 if (!size_or_err)
6681 return size_or_err.takeError();
6682 child_byte_size = *size_or_err;
6683 child_byte_offset = 0;
6684 return pointee_clang_type;
6685 }
6686 break;
6687 }
6688
6689 case clang::Type::LValueReference:
6690 case clang::Type::RValueReference: {
6691 if (!idx_is_valid)
6692 return llvm::createStringError("invalid index");
6693 const clang::ReferenceType *reference_type =
6694 llvm::cast<clang::ReferenceType>(
6695 RemoveWrappingTypes(GetQualType(type)).getTypePtr());
6696 CompilerType pointee_clang_type = GetType(reference_type->getPointeeType());
6697 if (transparent_pointers && pointee_clang_type.IsAggregateType()) {
6698 child_is_deref_of_parent = false;
6699 bool tmp_child_is_deref_of_parent = false;
6700 return pointee_clang_type.GetChildCompilerTypeAtIndex(
6701 exe_ctx, idx, transparent_pointers, omit_empty_base_classes,
6702 ignore_array_bounds, child_name, child_byte_size, child_byte_offset,
6703 child_bitfield_bit_size, child_bitfield_bit_offset,
6704 child_is_base_class, tmp_child_is_deref_of_parent, valobj,
6705 language_flags);
6706 }
6707 const char *parent_name = valobj ? valobj->GetName().GetCString() : nullptr;
6708 if (parent_name) {
6709 child_name.assign(1, '&');
6710 child_name += parent_name;
6711 }
6712
6713 // We have a pointer to an simple type
6714 if (idx == 0) {
6715 auto size_or_err = pointee_clang_type.GetByteSize(get_exe_scope());
6716 if (!size_or_err)
6717 return size_or_err.takeError();
6718 child_byte_size = *size_or_err;
6719 child_byte_offset = 0;
6720 return pointee_clang_type;
6721 }
6722 } break;
6723
6724 default:
6725 break;
6726 }
6727 return llvm::createStringError("cannot enumerate children");
6728}
6729
6731 const clang::RecordDecl *record_decl,
6732 const clang::CXXBaseSpecifier *base_spec,
6733 bool omit_empty_base_classes) {
6734 uint32_t child_idx = 0;
6735
6736 const clang::CXXRecordDecl *cxx_record_decl =
6737 llvm::dyn_cast<clang::CXXRecordDecl>(record_decl);
6738
6739 if (cxx_record_decl) {
6740 clang::CXXRecordDecl::base_class_const_iterator base_class, base_class_end;
6741 for (base_class = cxx_record_decl->bases_begin(),
6742 base_class_end = cxx_record_decl->bases_end();
6743 base_class != base_class_end; ++base_class) {
6744 if (omit_empty_base_classes) {
6745 if (BaseSpecifierIsEmpty(base_class))
6746 continue;
6747 }
6748
6749 if (base_class == base_spec)
6750 return child_idx;
6751 ++child_idx;
6752 }
6753 }
6754
6755 return UINT32_MAX;
6756}
6757
6759 const clang::RecordDecl *record_decl, clang::NamedDecl *canonical_decl,
6760 bool omit_empty_base_classes) {
6761 uint32_t child_idx = TypeSystemClang::GetNumBaseClasses(
6762 llvm::dyn_cast<clang::CXXRecordDecl>(record_decl),
6763 omit_empty_base_classes);
6764
6765 clang::RecordDecl::field_iterator field, field_end;
6766 for (field = record_decl->field_begin(), field_end = record_decl->field_end();
6767 field != field_end; ++field, ++child_idx) {
6768 if (field->getCanonicalDecl() == canonical_decl)
6769 return child_idx;
6770 }
6771
6772 return UINT32_MAX;
6773}
6774
6775// Look for a child member (doesn't include base classes, but it does include
6776// their members) in the type hierarchy. Returns an index path into
6777// "clang_type" on how to reach the appropriate member.
6778//
6779// class A
6780// {
6781// public:
6782// int m_a;
6783// int m_b;
6784// };
6785//
6786// class B
6787// {
6788// };
6789//
6790// class C :
6791// public B,
6792// public A
6793// {
6794// };
6795//
6796// If we have a clang type that describes "class C", and we wanted to looked
6797// "m_b" in it:
6798//
6799// With omit_empty_base_classes == false we would get an integer array back
6800// with: { 1, 1 } The first index 1 is the child index for "class A" within
6801// class C The second index 1 is the child index for "m_b" within class A
6802//
6803// With omit_empty_base_classes == true we would get an integer array back
6804// with: { 0, 1 } The first index 0 is the child index for "class A" within
6805// class C (since class B doesn't have any members it doesn't count) The second
6806// index 1 is the child index for "m_b" within class A
6807
6809 lldb::opaque_compiler_type_t type, llvm::StringRef name,
6810 bool omit_empty_base_classes, std::vector<uint32_t> &child_indexes) {
6811 if (type && !name.empty()) {
6812 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
6813 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
6814 switch (type_class) {
6815 case clang::Type::Record:
6816 if (GetCompleteType(type)) {
6817 const clang::RecordType *record_type =
6818 llvm::cast<clang::RecordType>(qual_type.getTypePtr());
6819 const clang::RecordDecl *record_decl =
6820 record_type->getDecl()->getDefinitionOrSelf();
6821
6822 assert(record_decl);
6823 uint32_t child_idx = 0;
6824
6825 const clang::CXXRecordDecl *cxx_record_decl =
6826 llvm::dyn_cast<clang::CXXRecordDecl>(record_decl);
6827
6828 // Try and find a field that matches NAME
6829 clang::RecordDecl::field_iterator field, field_end;
6830 for (field = record_decl->field_begin(),
6831 field_end = record_decl->field_end();
6832 field != field_end; ++field, ++child_idx) {
6833 llvm::StringRef field_name = field->getName();
6834 if (field_name.empty()) {
6835 CompilerType field_type = GetType(field->getType());
6836 std::vector<uint32_t> save_indices = child_indexes;
6837 child_indexes.push_back(
6839 cxx_record_decl, omit_empty_base_classes));
6840 if (field_type.GetIndexOfChildMemberWithName(
6841 name, omit_empty_base_classes, child_indexes))
6842 return child_indexes.size();
6843 child_indexes = std::move(save_indices);
6844 } else if (field_name == name) {
6845 // We have to add on the number of base classes to this index!
6846 child_indexes.push_back(
6848 cxx_record_decl, omit_empty_base_classes));
6849 return child_indexes.size();
6850 }
6851 }
6852
6853 if (cxx_record_decl) {
6854 const clang::RecordDecl *parent_record_decl = cxx_record_decl;
6855
6856 // Didn't find things easily, lets let clang do its thang...
6857 clang::IdentifierInfo &ident_ref = getASTContext().Idents.get(name);
6858 clang::DeclarationName decl_name(&ident_ref);
6859
6860 clang::CXXBasePaths paths;
6861 if (cxx_record_decl->lookupInBases(
6862 [decl_name](const clang::CXXBaseSpecifier *specifier,
6863 clang::CXXBasePath &path) {
6864 CXXRecordDecl *record =
6865 specifier->getType()->getAsCXXRecordDecl();
6866 auto r = record->lookup(decl_name);
6867 path.Decls = r.begin();
6868 return !r.empty();
6869 },
6870 paths)) {
6871 clang::CXXBasePaths::const_paths_iterator path,
6872 path_end = paths.end();
6873 for (path = paths.begin(); path != path_end; ++path) {
6874 const size_t num_path_elements = path->size();
6875 for (size_t e = 0; e < num_path_elements; ++e) {
6876 clang::CXXBasePathElement elem = (*path)[e];
6877
6878 child_idx = GetIndexForRecordBase(parent_record_decl, elem.Base,
6879 omit_empty_base_classes);
6880 if (child_idx == UINT32_MAX) {
6881 child_indexes.clear();
6882 return 0;
6883 } else {
6884 child_indexes.push_back(child_idx);
6885 parent_record_decl = elem.Base->getType()
6886 ->castAs<clang::RecordType>()
6887 ->getDecl()
6888 ->getDefinitionOrSelf();
6889 }
6890 }
6891 for (clang::DeclContext::lookup_iterator I = path->Decls, E;
6892 I != E; ++I) {
6893 child_idx = GetIndexForRecordChild(
6894 parent_record_decl, *I, omit_empty_base_classes);
6895 if (child_idx == UINT32_MAX) {
6896 child_indexes.clear();
6897 return 0;
6898 } else {
6899 child_indexes.push_back(child_idx);
6900 }
6901 }
6902 }
6903 return child_indexes.size();
6904 }
6905 }
6906 }
6907 break;
6908
6909 case clang::Type::ObjCObject:
6910 case clang::Type::ObjCInterface:
6911 if (GetCompleteType(type)) {
6912 llvm::StringRef name_sref(name);
6913 const clang::ObjCObjectType *objc_class_type =
6914 llvm::dyn_cast<clang::ObjCObjectType>(qual_type.getTypePtr());
6915 assert(objc_class_type);
6916 if (objc_class_type) {
6917 uint32_t child_idx = 0;
6918 clang::ObjCInterfaceDecl *class_interface_decl =
6919 objc_class_type->getInterface();
6920
6921 if (class_interface_decl) {
6922 clang::ObjCInterfaceDecl::ivar_iterator ivar_pos,
6923 ivar_end = class_interface_decl->ivar_end();
6924 clang::ObjCInterfaceDecl *superclass_interface_decl =
6925 class_interface_decl->getSuperClass();
6926
6927 for (ivar_pos = class_interface_decl->ivar_begin();
6928 ivar_pos != ivar_end; ++ivar_pos, ++child_idx) {
6929 const clang::ObjCIvarDecl *ivar_decl = *ivar_pos;
6930
6931 if (ivar_decl->getName() == name_sref) {
6932 if ((!omit_empty_base_classes && superclass_interface_decl) ||
6933 (omit_empty_base_classes &&
6934 ObjCDeclHasIVars(superclass_interface_decl)))
6935 ++child_idx;
6936
6937 child_indexes.push_back(child_idx);
6938 return child_indexes.size();
6939 }
6940 }
6941
6942 if (superclass_interface_decl) {
6943 // The super class index is always zero for ObjC classes, so we
6944 // push it onto the child indexes in case we find an ivar in our
6945 // superclass...
6946 child_indexes.push_back(0);
6947
6948 CompilerType superclass_clang_type =
6949 GetType(getASTContext().getObjCInterfaceType(
6950 superclass_interface_decl));
6951 if (superclass_clang_type.GetIndexOfChildMemberWithName(
6952 name, omit_empty_base_classes, child_indexes)) {
6953 // We did find an ivar in a superclass so just return the
6954 // results!
6955 return child_indexes.size();
6956 }
6957
6958 // We didn't find an ivar matching "name" in our superclass, pop
6959 // the superclass zero index that we pushed on above.
6960 child_indexes.pop_back();
6961 }
6962 }
6963 }
6964 }
6965 break;
6966
6967 case clang::Type::ObjCObjectPointer: {
6968 CompilerType objc_object_clang_type = GetType(
6969 llvm::cast<clang::ObjCObjectPointerType>(qual_type.getTypePtr())
6970 ->getPointeeType());
6971 return objc_object_clang_type.GetIndexOfChildMemberWithName(
6972 name, omit_empty_base_classes, child_indexes);
6973 } break;
6974
6975 case clang::Type::LValueReference:
6976 case clang::Type::RValueReference: {
6977 const clang::ReferenceType *reference_type =
6978 llvm::cast<clang::ReferenceType>(qual_type.getTypePtr());
6979 clang::QualType pointee_type(reference_type->getPointeeType());
6980 CompilerType pointee_clang_type = GetType(pointee_type);
6981
6982 if (pointee_clang_type.IsAggregateType()) {
6983 return pointee_clang_type.GetIndexOfChildMemberWithName(
6984 name, omit_empty_base_classes, child_indexes);
6985 }
6986 } break;
6987
6988 case clang::Type::Pointer: {
6989 CompilerType pointee_clang_type(GetPointeeType(type));
6990
6991 if (pointee_clang_type.IsAggregateType()) {
6992 return pointee_clang_type.GetIndexOfChildMemberWithName(
6993 name, omit_empty_base_classes, child_indexes);
6994 }
6995 } break;
6996
6997 default:
6998 break;
6999 }
7000 }
7001 return 0;
7002}
7003
7004// Get the index of the child of "clang_type" whose name matches. This function
7005// doesn't descend into the children, but only looks one level deep and name
7006// matches can include base class names.
7007
7008llvm::Expected<uint32_t>
7010 llvm::StringRef name,
7011 bool omit_empty_base_classes) {
7012 if (type && !name.empty()) {
7013 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
7014
7015 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
7016
7017 switch (type_class) {
7018 case clang::Type::Record:
7019 if (GetCompleteType(type)) {
7020 const clang::RecordType *record_type =
7021 llvm::cast<clang::RecordType>(qual_type.getTypePtr());
7022 const clang::RecordDecl *record_decl =
7023 record_type->getDecl()->getDefinitionOrSelf();
7024
7025 assert(record_decl);
7026 uint32_t child_idx = 0;
7027
7028 const clang::CXXRecordDecl *cxx_record_decl =
7029 llvm::dyn_cast<clang::CXXRecordDecl>(record_decl);
7030
7031 if (cxx_record_decl) {
7032 clang::CXXRecordDecl::base_class_const_iterator base_class,
7033 base_class_end;
7034 for (base_class = cxx_record_decl->bases_begin(),
7035 base_class_end = cxx_record_decl->bases_end();
7036 base_class != base_class_end; ++base_class) {
7037 // Skip empty base classes
7038 clang::CXXRecordDecl *base_class_decl =
7039 llvm::cast<clang::CXXRecordDecl>(
7040 base_class->getType()
7041 ->castAs<clang::RecordType>()
7042 ->getDecl())
7043 ->getDefinitionOrSelf();
7044 if (omit_empty_base_classes &&
7045 !TypeSystemClang::RecordHasFields(base_class_decl))
7046 continue;
7047
7048 CompilerType base_class_clang_type = GetType(base_class->getType());
7049 std::string base_class_type_name(
7050 base_class_clang_type.GetTypeName().AsCString(""));
7051 if (base_class_type_name == name)
7052 return child_idx;
7053 ++child_idx;
7054 }
7055 }
7056
7057 // Try and find a field that matches NAME
7058 clang::RecordDecl::field_iterator field, field_end;
7059 for (field = record_decl->field_begin(),
7060 field_end = record_decl->field_end();
7061 field != field_end; ++field, ++child_idx) {
7062 if (field->getName() == name)
7063 return child_idx;
7064 }
7065 }
7066 break;
7067
7068 case clang::Type::ObjCObject:
7069 case clang::Type::ObjCInterface:
7070 if (GetCompleteType(type)) {
7071 const clang::ObjCObjectType *objc_class_type =
7072 llvm::dyn_cast<clang::ObjCObjectType>(qual_type.getTypePtr());
7073 assert(objc_class_type);
7074 if (objc_class_type) {
7075 uint32_t child_idx = 0;
7076 clang::ObjCInterfaceDecl *class_interface_decl =
7077 objc_class_type->getInterface();
7078
7079 if (class_interface_decl) {
7080 clang::ObjCInterfaceDecl::ivar_iterator ivar_pos,
7081 ivar_end = class_interface_decl->ivar_end();
7082 clang::ObjCInterfaceDecl *superclass_interface_decl =
7083 class_interface_decl->getSuperClass();
7084
7085 for (ivar_pos = class_interface_decl->ivar_begin();
7086 ivar_pos != ivar_end; ++ivar_pos, ++child_idx) {
7087 const clang::ObjCIvarDecl *ivar_decl = *ivar_pos;
7088
7089 if (ivar_decl->getName() == name) {
7090 if ((!omit_empty_base_classes && superclass_interface_decl) ||
7091 (omit_empty_base_classes &&
7092 ObjCDeclHasIVars(superclass_interface_decl)))
7093 ++child_idx;
7094
7095 return child_idx;
7096 }
7097 }
7098
7099 if (superclass_interface_decl) {
7100 if (superclass_interface_decl->getName() == name)
7101 return 0;
7102 }
7103 }
7104 }
7105 }
7106 break;
7107
7108 case clang::Type::ObjCObjectPointer: {
7109 CompilerType pointee_clang_type = GetType(
7110 llvm::cast<clang::ObjCObjectPointerType>(qual_type.getTypePtr())
7111 ->getPointeeType());
7112 return pointee_clang_type.GetIndexOfChildWithName(
7113 name, omit_empty_base_classes);
7114 } break;
7115
7116 case clang::Type::LValueReference:
7117 case clang::Type::RValueReference: {
7118 const clang::ReferenceType *reference_type =
7119 llvm::cast<clang::ReferenceType>(qual_type.getTypePtr());
7120 CompilerType pointee_type = GetType(reference_type->getPointeeType());
7121
7122 if (pointee_type.IsAggregateType()) {
7123 return pointee_type.GetIndexOfChildWithName(name,
7124 omit_empty_base_classes);
7125 }
7126 } break;
7127
7128 case clang::Type::Pointer: {
7129 const clang::PointerType *pointer_type =
7130 llvm::cast<clang::PointerType>(qual_type.getTypePtr());
7131 CompilerType pointee_type = GetType(pointer_type->getPointeeType());
7132
7133 if (pointee_type.IsAggregateType()) {
7134 return pointee_type.GetIndexOfChildWithName(name,
7135 omit_empty_base_classes);
7136 }
7137 } break;
7138
7139 default:
7140 break;
7141 }
7142 }
7143 return llvm::createStringErrorV("type has no child named '{0}'", name);
7144}
7145
7148 llvm::StringRef name) {
7149 if (!type || name.empty())
7150 return CompilerType();
7151
7152 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
7153 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
7154
7155 switch (type_class) {
7156 case clang::Type::Record: {
7157 if (!GetCompleteType(type))
7158 return CompilerType();
7159 const clang::RecordType *record_type =
7160 llvm::cast<clang::RecordType>(qual_type.getTypePtr());
7161 const clang::RecordDecl *record_decl =
7162 record_type->getDecl()->getDefinitionOrSelf();
7163
7164 clang::DeclarationName decl_name(&getASTContext().Idents.get(name));
7165 for (NamedDecl *decl : record_decl->lookup(decl_name)) {
7166 if (auto *tag_decl = dyn_cast<clang::TagDecl>(decl))
7167 return GetType(getASTContext().getCanonicalTagType(tag_decl));
7168 if (auto *typedef_decl = dyn_cast<clang::TypedefNameDecl>(decl))
7169 return GetType(getASTContext().getTypedefType(
7170 ElaboratedTypeKeyword::None, /*Qualifier=*/std::nullopt,
7171 typedef_decl));
7172 }
7173 break;
7174 }
7175 default:
7176 break;
7177 }
7178 return CompilerType();
7179}
7180
7182 if (!type)
7183 return false;
7184 CompilerType ct(weak_from_this(), type);
7185 const clang::Type *clang_type = ClangUtil::GetQualType(ct).getTypePtr();
7186 if (auto *cxx_record_decl = dyn_cast<clang::TagType>(clang_type))
7187 return isa<clang::ClassTemplateSpecializationDecl>(
7188 cxx_record_decl->getDecl());
7189 return false;
7190}
7191
7192size_t
7194 bool expand_pack) {
7195 if (!type)
7196 return 0;
7197
7198 clang::QualType qual_type = RemoveWrappingTypes(GetCanonicalQualType(type));
7199 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
7200 switch (type_class) {
7201 case clang::Type::Record:
7202 if (GetCompleteType(type)) {
7203 const clang::CXXRecordDecl *cxx_record_decl =
7204 qual_type->getAsCXXRecordDecl();
7205 if (cxx_record_decl) {
7206 const clang::ClassTemplateSpecializationDecl *template_decl =
7207 llvm::dyn_cast<clang::ClassTemplateSpecializationDecl>(
7208 cxx_record_decl);
7209 if (template_decl) {
7210 const auto &template_arg_list = template_decl->getTemplateArgs();
7211 size_t num_args = template_arg_list.size();
7212 assert(num_args && "template specialization without any args");
7213 if (expand_pack && num_args) {
7214 const auto &pack = template_arg_list[num_args - 1];
7215 if (pack.getKind() == clang::TemplateArgument::Pack)
7216 num_args += pack.pack_size() - 1;
7217 }
7218 return num_args;
7219 }
7220 }
7221 }
7222 break;
7223
7224 default:
7225 break;
7226 }
7227
7228 return 0;
7229}
7230
7231const clang::ClassTemplateSpecializationDecl *
7234 if (!type)
7235 return nullptr;
7236
7237 clang::QualType qual_type(RemoveWrappingTypes(GetCanonicalQualType(type)));
7238 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
7239 switch (type_class) {
7240 case clang::Type::Record: {
7241 if (! GetCompleteType(type))
7242 return nullptr;
7243 const clang::CXXRecordDecl *cxx_record_decl =
7244 qual_type->getAsCXXRecordDecl();
7245 if (!cxx_record_decl)
7246 return nullptr;
7247 return llvm::dyn_cast<clang::ClassTemplateSpecializationDecl>(
7248 cxx_record_decl);
7249 }
7250
7251 default:
7252 return nullptr;
7253 }
7254}
7255
7256const TemplateArgument *
7257GetNthTemplateArgument(const clang::ClassTemplateSpecializationDecl *decl,
7258 size_t idx, bool expand_pack) {
7259 const auto &args = decl->getTemplateArgs();
7260 const size_t args_size = args.size();
7261
7262 assert(args_size && "template specialization without any args");
7263 if (!args_size)
7264 return nullptr;
7265
7266 const size_t last_idx = args_size - 1;
7267
7268 // We're asked for a template argument that can't be a parameter pack, so
7269 // return it without worrying about 'expand_pack'.
7270 if (idx < last_idx)
7271 return &args[idx];
7272
7273 // We're asked for the last template argument but we don't want/need to
7274 // expand it.
7275 if (!expand_pack || args[last_idx].getKind() != clang::TemplateArgument::Pack)
7276 return idx >= args.size() ? nullptr : &args[idx];
7277
7278 // Index into the expanded pack.
7279 // Note that 'idx' counts from the beginning of all template arguments
7280 // (including the ones preceding the parameter pack).
7281 const auto &pack = args[last_idx];
7282 const size_t pack_idx = idx - last_idx;
7283 if (pack_idx >= pack.pack_size())
7284 return nullptr;
7285 return &pack.pack_elements()[pack_idx];
7286}
7287
7290 size_t arg_idx, bool expand_pack) {
7291 const clang::ClassTemplateSpecializationDecl *template_decl =
7293 if (!template_decl)
7295
7296 const auto *arg = GetNthTemplateArgument(template_decl, arg_idx, expand_pack);
7297 if (!arg)
7299
7300 switch (arg->getKind()) {
7301 case clang::TemplateArgument::Null:
7303
7304 case clang::TemplateArgument::NullPtr:
7306
7307 case clang::TemplateArgument::Type:
7309
7310 case clang::TemplateArgument::Declaration:
7312
7313 case clang::TemplateArgument::Integral:
7315
7316 case clang::TemplateArgument::Template:
7318
7319 case clang::TemplateArgument::TemplateExpansion:
7321
7322 case clang::TemplateArgument::Expression:
7324
7325 case clang::TemplateArgument::Pack:
7327
7328 case clang::TemplateArgument::StructuralValue:
7330 }
7331 llvm_unreachable("Unhandled clang::TemplateArgument::ArgKind");
7332}
7333
7336 size_t idx, bool expand_pack) {
7337 const clang::ClassTemplateSpecializationDecl *template_decl =
7339 if (!template_decl)
7340 return CompilerType();
7341
7342 const auto *arg = GetNthTemplateArgument(template_decl, idx, expand_pack);
7343 if (!arg || arg->getKind() != clang::TemplateArgument::Type)
7344 return CompilerType();
7345
7346 return GetType(arg->getAsType());
7347}
7348
7349std::optional<CompilerType::IntegralTemplateArgument>
7351 size_t idx, bool expand_pack) {
7352 const clang::ClassTemplateSpecializationDecl *template_decl =
7354 if (!template_decl)
7355 return std::nullopt;
7356
7357 const auto *arg = GetNthTemplateArgument(template_decl, idx, expand_pack);
7358 if (!arg)
7359 return std::nullopt;
7360
7361 switch (arg->getKind()) {
7362 case clang::TemplateArgument::Integral:
7363 return {{arg->getAsIntegral(), GetType(arg->getIntegralType())}};
7364 case clang::TemplateArgument::StructuralValue: {
7365 clang::APValue value = arg->getAsStructuralValue();
7366 CompilerType type = GetType(arg->getStructuralValueType());
7367
7368 if (value.isFloat())
7369 return {{value.getFloat(), type}};
7370
7371 if (value.isInt())
7372 return {{value.getInt(), type}};
7373
7374 return std::nullopt;
7375 }
7376 default:
7377 return std::nullopt;
7378 }
7379}
7380
7382 if (type)
7383 return ClangUtil::RemoveFastQualifiers(CompilerType(weak_from_this(), type));
7384 return CompilerType();
7385}
7386
7389 clang::QualType qual_type(GetCanonicalQualType(type));
7390 return getASTContext().isPromotableIntegerType(qual_type);
7391}
7392
7395 if (!IsPromotableIntegerType(type))
7396 return CompilerType();
7397 clang::QualType qual_type(GetCanonicalQualType(type));
7398 return GetType(getASTContext().getPromotedIntegerType(qual_type));
7399}
7400
7401clang::EnumDecl *TypeSystemClang::GetAsEnumDecl(const CompilerType &type) {
7402 const clang::EnumType *enutype =
7403 llvm::dyn_cast<clang::EnumType>(ClangUtil::GetCanonicalQualType(type));
7404 if (enutype)
7405 return enutype->getDecl()->getDefinitionOrSelf();
7406 return nullptr;
7407}
7408
7409clang::RecordDecl *TypeSystemClang::GetAsRecordDecl(const CompilerType &type) {
7410 const clang::RecordType *record_type =
7411 llvm::dyn_cast<clang::RecordType>(ClangUtil::GetCanonicalQualType(type));
7412 if (record_type)
7413 return record_type->getDecl()->getDefinitionOrSelf();
7414 return nullptr;
7415}
7416
7417clang::TagDecl *TypeSystemClang::GetAsTagDecl(const CompilerType &type) {
7418 return ClangUtil::GetAsTagDecl(type);
7419}
7420
7421clang::TypedefNameDecl *
7423 const clang::TypedefType *typedef_type =
7424 llvm::dyn_cast<clang::TypedefType>(ClangUtil::GetQualType(type));
7425 if (typedef_type)
7426 return typedef_type->getDecl();
7427 return nullptr;
7428}
7429
7430clang::CXXRecordDecl *
7434
7435clang::ObjCInterfaceDecl *
7437 const clang::ObjCObjectType *objc_class_type =
7438 llvm::dyn_cast<clang::ObjCObjectType>(
7440 if (objc_class_type)
7441 return objc_class_type->getInterface();
7442 return nullptr;
7443}
7444
7446 const CompilerType &type, llvm::StringRef name,
7447 const CompilerType &field_clang_type, uint32_t bitfield_bit_size) {
7448 if (!type.IsValid() || !field_clang_type.IsValid())
7449 return nullptr;
7450 auto ast = type.GetTypeSystem<TypeSystemClang>();
7451 if (!ast)
7452 return nullptr;
7453 clang::ASTContext &clang_ast = ast->getASTContext();
7454 clang::IdentifierInfo *ident = nullptr;
7455 if (!name.empty())
7456 ident = &clang_ast.Idents.get(name);
7457
7458 clang::FieldDecl *field = nullptr;
7459
7460 clang::Expr *bit_width = nullptr;
7461 if (bitfield_bit_size != 0) {
7462 if (clang_ast.IntTy.isNull()) {
7464 "builtin ASTContext types have not been initialized");
7465 return nullptr;
7466 }
7467
7468 llvm::APInt bitfield_bit_size_apint(clang_ast.getTypeSize(clang_ast.IntTy),
7469 bitfield_bit_size);
7470 bit_width = new (clang_ast)
7471 clang::IntegerLiteral(clang_ast, bitfield_bit_size_apint,
7472 clang_ast.IntTy, clang::SourceLocation());
7473 bit_width = clang::ConstantExpr::Create(
7474 clang_ast, bit_width, APValue(llvm::APSInt(bitfield_bit_size_apint)));
7475 }
7476
7477 clang::RecordDecl *record_decl = ast->GetAsRecordDecl(type);
7478 if (record_decl) {
7479 field = clang::FieldDecl::CreateDeserialized(clang_ast, GlobalDeclID());
7480 field->setDeclContext(record_decl);
7481 field->setDeclName(ident);
7482 field->setType(ClangUtil::GetQualType(field_clang_type));
7483 if (bit_width)
7484 field->setBitWidth(bit_width);
7485 SetMemberOwningModule(field, record_decl);
7486
7487 if (name.empty()) {
7488 // Determine whether this field corresponds to an anonymous struct or
7489 // union.
7490 if (const clang::TagType *TagT =
7491 field->getType()->getAs<clang::TagType>()) {
7492 if (clang::RecordDecl *Rec =
7493 llvm::dyn_cast<clang::RecordDecl>(TagT->getDecl()))
7494 if (!Rec->getDeclName()) {
7495 Rec->setAnonymousStructOrUnion(true);
7496 field->setImplicit();
7497 }
7498 }
7499 }
7500
7501 if (field) {
7502 field->setAccess(AS_public);
7503
7504 record_decl->addDecl(field);
7505
7506 VerifyDecl(field);
7507 }
7508 } else {
7509 clang::ObjCInterfaceDecl *class_interface_decl =
7510 ast->GetAsObjCInterfaceDecl(type);
7511
7512 if (class_interface_decl) {
7513 const bool is_synthesized = false;
7514
7515 field_clang_type.GetCompleteType();
7516
7517 auto *ivar =
7518 clang::ObjCIvarDecl::CreateDeserialized(clang_ast, GlobalDeclID());
7519 ivar->setDeclContext(class_interface_decl);
7520 ivar->setDeclName(ident);
7521 ivar->setType(ClangUtil::GetQualType(field_clang_type));
7522 ivar->setAccessControl(ObjCIvarDecl::AccessControl::Public);
7523 if (bit_width)
7524 ivar->setBitWidth(bit_width);
7525 ivar->setSynthesize(is_synthesized);
7526 field = ivar;
7527 SetMemberOwningModule(field, class_interface_decl);
7528
7529 if (field) {
7530 class_interface_decl->addDecl(field);
7531
7532 VerifyDecl(field);
7533 }
7534 }
7535 }
7536 return field;
7537}
7538
7540 if (!type)
7541 return;
7542
7543 auto ast = type.GetTypeSystem<TypeSystemClang>();
7544 if (!ast)
7545 return;
7546
7547 clang::RecordDecl *record_decl = ast->GetAsRecordDecl(type);
7548
7549 if (!record_decl)
7550 return;
7551
7552 typedef llvm::SmallVector<clang::IndirectFieldDecl *, 1> IndirectFieldVector;
7553
7554 IndirectFieldVector indirect_fields;
7555 clang::RecordDecl::field_iterator field_pos;
7556 clang::RecordDecl::field_iterator field_end_pos = record_decl->field_end();
7557 clang::RecordDecl::field_iterator last_field_pos = field_end_pos;
7558 for (field_pos = record_decl->field_begin(); field_pos != field_end_pos;
7559 last_field_pos = field_pos++) {
7560 if (field_pos->isAnonymousStructOrUnion()) {
7561 clang::QualType field_qual_type = field_pos->getType();
7562
7563 const clang::RecordType *field_record_type =
7564 field_qual_type->getAs<clang::RecordType>();
7565
7566 if (!field_record_type)
7567 continue;
7568
7569 clang::RecordDecl *field_record_decl =
7570 field_record_type->getDecl()->getDefinition();
7571
7572 if (!field_record_decl)
7573 continue;
7574
7575 for (clang::RecordDecl::decl_iterator
7576 di = field_record_decl->decls_begin(),
7577 de = field_record_decl->decls_end();
7578 di != de; ++di) {
7579 if (clang::FieldDecl *nested_field_decl =
7580 llvm::dyn_cast<clang::FieldDecl>(*di)) {
7581 clang::NamedDecl **chain =
7582 new (ast->getASTContext()) clang::NamedDecl *[2];
7583 chain[0] = *field_pos;
7584 chain[1] = nested_field_decl;
7585 clang::IndirectFieldDecl *indirect_field =
7586 clang::IndirectFieldDecl::Create(
7587 ast->getASTContext(), record_decl, clang::SourceLocation(),
7588 nested_field_decl->getIdentifier(),
7589 nested_field_decl->getType(), {chain, 2});
7590 SetMemberOwningModule(indirect_field, record_decl);
7591
7592 indirect_field->setImplicit();
7593
7594 indirect_field->setAccess(AS_public);
7595
7596 indirect_fields.push_back(indirect_field);
7597 } else if (clang::IndirectFieldDecl *nested_indirect_field_decl =
7598 llvm::dyn_cast<clang::IndirectFieldDecl>(*di)) {
7599 size_t nested_chain_size =
7600 nested_indirect_field_decl->getChainingSize();
7601 clang::NamedDecl **chain = new (ast->getASTContext())
7602 clang::NamedDecl *[nested_chain_size + 1];
7603 chain[0] = *field_pos;
7604
7605 int chain_index = 1;
7606 for (clang::IndirectFieldDecl::chain_iterator
7607 nci = nested_indirect_field_decl->chain_begin(),
7608 nce = nested_indirect_field_decl->chain_end();
7609 nci < nce; ++nci) {
7610 chain[chain_index] = *nci;
7611 chain_index++;
7612 }
7613
7614 clang::IndirectFieldDecl *indirect_field =
7615 clang::IndirectFieldDecl::Create(
7616 ast->getASTContext(), record_decl, clang::SourceLocation(),
7617 nested_indirect_field_decl->getIdentifier(),
7618 nested_indirect_field_decl->getType(),
7619 {chain, nested_chain_size + 1});
7620 SetMemberOwningModule(indirect_field, record_decl);
7621
7622 indirect_field->setImplicit();
7623
7624 indirect_field->setAccess(AS_public);
7625
7626 indirect_fields.push_back(indirect_field);
7627 }
7628 }
7629 }
7630 }
7631
7632 // Check the last field to see if it has an incomplete array type as its last
7633 // member and if it does, the tell the record decl about it
7634 if (last_field_pos != field_end_pos) {
7635 if (last_field_pos->getType()->isIncompleteArrayType())
7636 record_decl->hasFlexibleArrayMember();
7637 }
7638
7639 for (IndirectFieldVector::iterator ifi = indirect_fields.begin(),
7640 ife = indirect_fields.end();
7641 ifi < ife; ++ifi) {
7642 record_decl->addDecl(*ifi);
7643 }
7644}
7645
7647 if (type) {
7648 auto ast = type.GetTypeSystem<TypeSystemClang>();
7649 if (ast) {
7650 clang::RecordDecl *record_decl = GetAsRecordDecl(type);
7651
7652 if (!record_decl)
7653 return;
7654
7655 record_decl->addAttr(
7656 clang::PackedAttr::CreateImplicit(ast->getASTContext()));
7657 }
7658 }
7659}
7660
7661clang::VarDecl *
7663 llvm::StringRef name,
7664 const CompilerType &var_type) {
7665 if (!type.IsValid() || !var_type.IsValid())
7666 return nullptr;
7667
7668 auto ast = type.GetTypeSystem<TypeSystemClang>();
7669 if (!ast)
7670 return nullptr;
7671
7672 clang::RecordDecl *record_decl = ast->GetAsRecordDecl(type);
7673 if (!record_decl)
7674 return nullptr;
7675
7676 clang::VarDecl *var_decl = nullptr;
7677 clang::IdentifierInfo *ident = nullptr;
7678 if (!name.empty())
7679 ident = &ast->getASTContext().Idents.get(name);
7680
7681 var_decl =
7682 clang::VarDecl::CreateDeserialized(ast->getASTContext(), GlobalDeclID());
7683 var_decl->setDeclContext(record_decl);
7684 var_decl->setDeclName(ident);
7685 var_decl->setType(ClangUtil::GetQualType(var_type));
7686 var_decl->setStorageClass(clang::SC_Static);
7687 SetMemberOwningModule(var_decl, record_decl);
7688 if (!var_decl)
7689 return nullptr;
7690
7691 var_decl->setAccess(AS_public);
7692 record_decl->addDecl(var_decl);
7693
7694 VerifyDecl(var_decl);
7695
7696 return var_decl;
7697}
7698
7700 VarDecl *var, const llvm::APInt &init_value) {
7701 assert(!var->hasInit() && "variable already initialized");
7702
7703 clang::ASTContext &ast = var->getASTContext();
7704 QualType qt = var->getType();
7705 assert(qt->isIntegralOrEnumerationType() &&
7706 "only integer or enum types supported");
7707 // If the variable is an enum type, take the underlying integer type as
7708 // the type of the integer literal.
7709 if (const EnumType *enum_type = qt->getAs<EnumType>()) {
7710 const EnumDecl *enum_decl = enum_type->getDecl()->getDefinitionOrSelf();
7711 qt = enum_decl->getIntegerType();
7712 }
7713 // Bools are handled separately because the clang AST printer handles bools
7714 // separately from other integral types.
7715 if (qt->isSpecificBuiltinType(BuiltinType::Bool)) {
7716 var->setInit(CXXBoolLiteralExpr::Create(
7717 ast, !init_value.isZero(), qt.getUnqualifiedType(), SourceLocation()));
7718 } else {
7719 var->setInit(IntegerLiteral::Create(
7720 ast, init_value, qt.getUnqualifiedType(), SourceLocation()));
7721 }
7722}
7723
7725 clang::VarDecl *var, const llvm::APFloat &init_value) {
7726 assert(!var->hasInit() && "variable already initialized");
7727
7728 clang::ASTContext &ast = var->getASTContext();
7729 QualType qt = var->getType();
7730 assert(qt->isFloatingType() && "only floating point types supported");
7731 var->setInit(FloatingLiteral::Create(
7732 ast, init_value, true, qt.getUnqualifiedType(), SourceLocation()));
7733}
7734
7735llvm::SmallVector<clang::ParmVarDecl *>
7737 clang::FunctionDecl *func, const clang::FunctionProtoType &prototype,
7738 const llvm::SmallVector<llvm::StringRef> &parameter_names) {
7739 assert(func);
7740 assert(parameter_names.empty() ||
7741 parameter_names.size() == prototype.getNumParams());
7742
7743 llvm::SmallVector<clang::ParmVarDecl *> params;
7744 for (unsigned param_index = 0; param_index < prototype.getNumParams();
7745 ++param_index) {
7746 llvm::StringRef name =
7747 !parameter_names.empty() ? parameter_names[param_index] : "";
7748
7749 auto *param =
7750 CreateParameterDeclaration(func, /*owning_module=*/{}, name.data(),
7751 GetType(prototype.getParamType(param_index)),
7752 clang::SC_None, /*add_decl=*/false);
7753 assert(param);
7754
7755 params.push_back(param);
7756 }
7757
7758 return params;
7759}
7760
7762 lldb::opaque_compiler_type_t type, llvm::StringRef name,
7763 llvm::StringRef asm_label, const CompilerType &method_clang_type,
7764 bool is_virtual, bool is_static, bool is_inline, bool is_explicit,
7765 bool is_attr_used, bool is_artificial) {
7766 if (!type || !method_clang_type.IsValid() || name.empty())
7767 return nullptr;
7768
7769 clang::QualType record_qual_type(GetCanonicalQualType(type));
7770
7771 clang::CXXRecordDecl *cxx_record_decl =
7772 record_qual_type->getAsCXXRecordDecl();
7773
7774 if (cxx_record_decl == nullptr)
7775 return nullptr;
7776
7777 clang::QualType method_qual_type(ClangUtil::GetQualType(method_clang_type));
7778
7779 clang::CXXMethodDecl *cxx_method_decl = nullptr;
7780
7781 clang::DeclarationName decl_name(&getASTContext().Idents.get(name));
7782
7783 const clang::FunctionType *function_type =
7784 llvm::dyn_cast<clang::FunctionType>(method_qual_type.getTypePtr());
7785
7786 if (function_type == nullptr)
7787 return nullptr;
7788
7789 const clang::FunctionProtoType *method_function_prototype(
7790 llvm::dyn_cast<clang::FunctionProtoType>(function_type));
7791
7792 if (!method_function_prototype)
7793 return nullptr;
7794
7795 unsigned int num_params = method_function_prototype->getNumParams();
7796
7797 clang::CXXDestructorDecl *cxx_dtor_decl(nullptr);
7798 clang::CXXConstructorDecl *cxx_ctor_decl(nullptr);
7799
7800 if (is_artificial)
7801 return nullptr; // skip everything artificial
7802
7803 const clang::ExplicitSpecifier explicit_spec(
7804 nullptr /*expr*/, is_explicit ? clang::ExplicitSpecKind::ResolvedTrue
7805 : clang::ExplicitSpecKind::ResolvedFalse);
7806
7807 if (name.starts_with("~")) {
7808 cxx_dtor_decl = clang::CXXDestructorDecl::CreateDeserialized(
7809 getASTContext(), GlobalDeclID());
7810 cxx_dtor_decl->setDeclContext(cxx_record_decl);
7811 cxx_dtor_decl->setDeclName(
7812 getASTContext().DeclarationNames.getCXXDestructorName(
7813 getASTContext().getCanonicalType(record_qual_type)));
7814 cxx_dtor_decl->setType(method_qual_type);
7815 cxx_dtor_decl->setImplicit(is_artificial);
7816 cxx_dtor_decl->setInlineSpecified(is_inline);
7817 cxx_dtor_decl->setConstexprKind(ConstexprSpecKind::Unspecified);
7818 cxx_method_decl = cxx_dtor_decl;
7819 } else if (decl_name == cxx_record_decl->getDeclName()) {
7820 cxx_ctor_decl = clang::CXXConstructorDecl::CreateDeserialized(
7821 getASTContext(), GlobalDeclID(), 0);
7822 cxx_ctor_decl->setDeclContext(cxx_record_decl);
7823 cxx_ctor_decl->setDeclName(
7824 getASTContext().DeclarationNames.getCXXConstructorName(
7825 getASTContext().getCanonicalType(record_qual_type)));
7826 cxx_ctor_decl->setType(method_qual_type);
7827 cxx_ctor_decl->setImplicit(is_artificial);
7828 cxx_ctor_decl->setInlineSpecified(is_inline);
7829 cxx_ctor_decl->setConstexprKind(ConstexprSpecKind::Unspecified);
7830 cxx_ctor_decl->setNumCtorInitializers(0);
7831 cxx_ctor_decl->setExplicitSpecifier(explicit_spec);
7832 cxx_method_decl = cxx_ctor_decl;
7833 } else {
7834 clang::StorageClass SC = is_static ? clang::SC_Static : clang::SC_None;
7835 clang::OverloadedOperatorKind op_kind = clang::NUM_OVERLOADED_OPERATORS;
7836
7837 if (IsOperator(name, op_kind)) {
7838 if (op_kind != clang::NUM_OVERLOADED_OPERATORS) {
7839 // Check the number of operator parameters. Sometimes we have seen bad
7840 // DWARF that doesn't correctly describe operators and if we try to
7841 // create a method and add it to the class, clang will assert and
7842 // crash, so we need to make sure things are acceptable.
7843 const bool is_method = true;
7845 is_method, op_kind, num_params))
7846 return nullptr;
7847 cxx_method_decl = clang::CXXMethodDecl::CreateDeserialized(
7848 getASTContext(), GlobalDeclID());
7849 cxx_method_decl->setDeclContext(cxx_record_decl);
7850 cxx_method_decl->setDeclName(
7851 getASTContext().DeclarationNames.getCXXOperatorName(op_kind));
7852 cxx_method_decl->setType(method_qual_type);
7853 cxx_method_decl->setStorageClass(SC);
7854 cxx_method_decl->setInlineSpecified(is_inline);
7855 cxx_method_decl->setConstexprKind(ConstexprSpecKind::Unspecified);
7856 } else if (num_params == 0) {
7857 // Conversion operators don't take params...
7858 auto *cxx_conversion_decl =
7859 clang::CXXConversionDecl::CreateDeserialized(getASTContext(),
7860 GlobalDeclID());
7861 cxx_conversion_decl->setDeclContext(cxx_record_decl);
7862 cxx_conversion_decl->setDeclName(
7863 getASTContext().DeclarationNames.getCXXConversionFunctionName(
7864 getASTContext().getCanonicalType(
7865 function_type->getReturnType())));
7866 cxx_conversion_decl->setType(method_qual_type);
7867 cxx_conversion_decl->setInlineSpecified(is_inline);
7868 cxx_conversion_decl->setExplicitSpecifier(explicit_spec);
7869 cxx_conversion_decl->setConstexprKind(ConstexprSpecKind::Unspecified);
7870 cxx_method_decl = cxx_conversion_decl;
7871 }
7872 }
7873
7874 if (cxx_method_decl == nullptr) {
7875 cxx_method_decl = clang::CXXMethodDecl::CreateDeserialized(
7876 getASTContext(), GlobalDeclID());
7877 cxx_method_decl->setDeclContext(cxx_record_decl);
7878 cxx_method_decl->setDeclName(decl_name);
7879 cxx_method_decl->setType(method_qual_type);
7880 cxx_method_decl->setInlineSpecified(is_inline);
7881 cxx_method_decl->setStorageClass(SC);
7882 cxx_method_decl->setConstexprKind(ConstexprSpecKind::Unspecified);
7883 }
7884 }
7885 SetMemberOwningModule(cxx_method_decl, cxx_record_decl);
7886
7887 cxx_method_decl->setAccess(AS_public);
7888 cxx_method_decl->setVirtualAsWritten(is_virtual);
7889
7890 if (is_attr_used)
7891 cxx_method_decl->addAttr(clang::UsedAttr::CreateImplicit(getASTContext()));
7892
7893 if (!asm_label.empty())
7894 cxx_method_decl->addAttr(
7895 clang::AsmLabelAttr::CreateImplicit(getASTContext(), asm_label));
7896
7897 // Parameters on member function declarations in DWARF generally don't
7898 // have names, so we omit them when creating the ParmVarDecls.
7899 cxx_method_decl->setParams(CreateParameterDeclarations(
7900 cxx_method_decl, *method_function_prototype, /*parameter_names=*/{}));
7901
7902 cxx_record_decl->addDecl(cxx_method_decl);
7903
7904 // Sometimes the debug info will mention a constructor (default/copy/move),
7905 // destructor, or assignment operator (copy/move) but there won't be any
7906 // version of this in the code. So we check if the function was artificially
7907 // generated and if it is trivial and this lets the compiler/backend know
7908 // that it can inline the IR for these when it needs to and we can avoid a
7909 // "missing function" error when running expressions.
7910
7911 if (is_artificial) {
7912 if (cxx_ctor_decl && ((cxx_ctor_decl->isDefaultConstructor() &&
7913 cxx_record_decl->hasTrivialDefaultConstructor()) ||
7914 (cxx_ctor_decl->isCopyConstructor() &&
7915 cxx_record_decl->hasTrivialCopyConstructor()) ||
7916 (cxx_ctor_decl->isMoveConstructor() &&
7917 cxx_record_decl->hasTrivialMoveConstructor()))) {
7918 cxx_ctor_decl->setDefaulted();
7919 cxx_ctor_decl->setTrivial(true);
7920 } else if (cxx_dtor_decl) {
7921 if (cxx_record_decl->hasTrivialDestructor()) {
7922 cxx_dtor_decl->setDefaulted();
7923 cxx_dtor_decl->setTrivial(true);
7924 }
7925 } else if ((cxx_method_decl->isCopyAssignmentOperator() &&
7926 cxx_record_decl->hasTrivialCopyAssignment()) ||
7927 (cxx_method_decl->isMoveAssignmentOperator() &&
7928 cxx_record_decl->hasTrivialMoveAssignment())) {
7929 cxx_method_decl->setDefaulted();
7930 cxx_method_decl->setTrivial(true);
7931 }
7932 }
7933
7934 VerifyDecl(cxx_method_decl);
7935
7936 return cxx_method_decl;
7937}
7938
7941 if (auto *record = GetAsCXXRecordDecl(type))
7942 for (auto *method : record->methods())
7943 addOverridesForMethod(method);
7944}
7945
7946#pragma mark C++ Base Classes
7947
7948std::unique_ptr<clang::CXXBaseSpecifier>
7950 AccessType access, bool is_virtual,
7951 bool base_of_class) {
7952 if (!type)
7953 return nullptr;
7954
7955 return std::make_unique<clang::CXXBaseSpecifier>(
7956 clang::SourceRange(), is_virtual, base_of_class,
7958 getASTContext().getTrivialTypeSourceInfo(GetQualType(type)),
7959 clang::SourceLocation());
7960}
7961
7964 std::vector<std::unique_ptr<clang::CXXBaseSpecifier>> bases) {
7965 if (!type)
7966 return false;
7967 clang::CXXRecordDecl *cxx_record_decl = GetAsCXXRecordDecl(type);
7968 if (!cxx_record_decl)
7969 return false;
7970 std::vector<clang::CXXBaseSpecifier *> raw_bases;
7971 raw_bases.reserve(bases.size());
7972
7973 // Clang will make a copy of them, so it's ok that we pass pointers that we're
7974 // about to destroy.
7975 for (auto &b : bases)
7976 raw_bases.push_back(b.get());
7977 cxx_record_decl->setBases(raw_bases.data(), raw_bases.size());
7978 return true;
7979}
7980
7982 const CompilerType &type, const CompilerType &superclass_clang_type) {
7983 auto ast = type.GetTypeSystem<TypeSystemClang>();
7984 if (!ast)
7985 return false;
7986 clang::ASTContext &clang_ast = ast->getASTContext();
7987
7988 if (type && superclass_clang_type.IsValid() &&
7989 superclass_clang_type.GetTypeSystem() == type.GetTypeSystem()) {
7990 clang::ObjCInterfaceDecl *class_interface_decl =
7992 clang::ObjCInterfaceDecl *super_interface_decl =
7993 GetAsObjCInterfaceDecl(superclass_clang_type);
7994 if (class_interface_decl && super_interface_decl) {
7995 class_interface_decl->setSuperClass(clang_ast.getTrivialTypeSourceInfo(
7996 clang_ast.getObjCInterfaceType(super_interface_decl)));
7997 return true;
7998 }
7999 }
8000 return false;
8001}
8002
8004 const CompilerType &type, const char *property_name,
8005 const CompilerType &property_clang_type, clang::ObjCIvarDecl *ivar_decl,
8006 const char *property_setter_name, const char *property_getter_name,
8007 uint32_t property_attributes, ClangASTMetadata metadata) {
8008 if (!type || !property_clang_type.IsValid() || property_name == nullptr ||
8009 property_name[0] == '\0')
8010 return false;
8011 auto ast = type.GetTypeSystem<TypeSystemClang>();
8012 if (!ast)
8013 return false;
8014 clang::ASTContext &clang_ast = ast->getASTContext();
8015
8016 clang::ObjCInterfaceDecl *class_interface_decl = GetAsObjCInterfaceDecl(type);
8017 if (!class_interface_decl)
8018 return false;
8019
8020 CompilerType property_clang_type_to_access;
8021
8022 if (property_clang_type.IsValid())
8023 property_clang_type_to_access = property_clang_type;
8024 else if (ivar_decl)
8025 property_clang_type_to_access = ast->GetType(ivar_decl->getType());
8026
8027 if (!class_interface_decl || !property_clang_type_to_access.IsValid())
8028 return false;
8029
8030 clang::TypeSourceInfo *prop_type_source;
8031 if (ivar_decl)
8032 prop_type_source = clang_ast.getTrivialTypeSourceInfo(ivar_decl->getType());
8033 else
8034 prop_type_source = clang_ast.getTrivialTypeSourceInfo(
8035 ClangUtil::GetQualType(property_clang_type));
8036
8037 clang::ObjCPropertyDecl *property_decl =
8038 clang::ObjCPropertyDecl::CreateDeserialized(clang_ast, GlobalDeclID());
8039 property_decl->setDeclContext(class_interface_decl);
8040 property_decl->setDeclName(&clang_ast.Idents.get(property_name));
8041 property_decl->setType(ivar_decl
8042 ? ivar_decl->getType()
8043 : ClangUtil::GetQualType(property_clang_type),
8044 prop_type_source);
8045 SetMemberOwningModule(property_decl, class_interface_decl);
8046
8047 if (!property_decl)
8048 return false;
8049
8050 ast->SetMetadata(property_decl, metadata);
8051
8052 class_interface_decl->addDecl(property_decl);
8053
8054 clang::Selector setter_sel, getter_sel;
8055
8056 if (property_setter_name) {
8057 std::string property_setter_no_colon(property_setter_name,
8058 strlen(property_setter_name) - 1);
8059 const clang::IdentifierInfo *setter_ident =
8060 &clang_ast.Idents.get(property_setter_no_colon);
8061 setter_sel = clang_ast.Selectors.getSelector(1, &setter_ident);
8062 } else if (!(property_attributes & DW_APPLE_PROPERTY_readonly)) {
8063 std::string setter_sel_string("set");
8064 setter_sel_string.push_back(::toupper(property_name[0]));
8065 setter_sel_string.append(&property_name[1]);
8066 const clang::IdentifierInfo *setter_ident =
8067 &clang_ast.Idents.get(setter_sel_string);
8068 setter_sel = clang_ast.Selectors.getSelector(1, &setter_ident);
8069 }
8070 property_decl->setSetterName(setter_sel);
8071 property_decl->setPropertyAttributes(ObjCPropertyAttribute::kind_setter);
8072
8073 if (property_getter_name != nullptr) {
8074 const clang::IdentifierInfo *getter_ident =
8075 &clang_ast.Idents.get(property_getter_name);
8076 getter_sel = clang_ast.Selectors.getSelector(0, &getter_ident);
8077 } else {
8078 const clang::IdentifierInfo *getter_ident =
8079 &clang_ast.Idents.get(property_name);
8080 getter_sel = clang_ast.Selectors.getSelector(0, &getter_ident);
8081 }
8082 property_decl->setGetterName(getter_sel);
8083 property_decl->setPropertyAttributes(ObjCPropertyAttribute::kind_getter);
8084
8085 if (ivar_decl)
8086 property_decl->setPropertyIvarDecl(ivar_decl);
8087
8088 if (property_attributes & DW_APPLE_PROPERTY_readonly)
8089 property_decl->setPropertyAttributes(ObjCPropertyAttribute::kind_readonly);
8090 if (property_attributes & DW_APPLE_PROPERTY_readwrite)
8091 property_decl->setPropertyAttributes(ObjCPropertyAttribute::kind_readwrite);
8092 if (property_attributes & DW_APPLE_PROPERTY_assign)
8093 property_decl->setPropertyAttributes(ObjCPropertyAttribute::kind_assign);
8094 if (property_attributes & DW_APPLE_PROPERTY_retain)
8095 property_decl->setPropertyAttributes(ObjCPropertyAttribute::kind_retain);
8096 if (property_attributes & DW_APPLE_PROPERTY_copy)
8097 property_decl->setPropertyAttributes(ObjCPropertyAttribute::kind_copy);
8098 if (property_attributes & DW_APPLE_PROPERTY_nonatomic)
8099 property_decl->setPropertyAttributes(ObjCPropertyAttribute::kind_nonatomic);
8100 if (property_attributes & ObjCPropertyAttribute::kind_nullability)
8101 property_decl->setPropertyAttributes(
8102 ObjCPropertyAttribute::kind_nullability);
8103 if (property_attributes & ObjCPropertyAttribute::kind_null_resettable)
8104 property_decl->setPropertyAttributes(
8105 ObjCPropertyAttribute::kind_null_resettable);
8106 if (property_attributes & ObjCPropertyAttribute::kind_class)
8107 property_decl->setPropertyAttributes(ObjCPropertyAttribute::kind_class);
8108
8109 const bool isInstance =
8110 (property_attributes & ObjCPropertyAttribute::kind_class) == 0;
8111
8112 clang::ObjCMethodDecl *getter = nullptr;
8113 if (!getter_sel.isNull())
8114 getter = isInstance ? class_interface_decl->lookupInstanceMethod(getter_sel)
8115 : class_interface_decl->lookupClassMethod(getter_sel);
8116 if (!getter_sel.isNull() && !getter) {
8117 const bool isVariadic = false;
8118 const bool isPropertyAccessor = true;
8119 const bool isSynthesizedAccessorStub = false;
8120 const bool isImplicitlyDeclared = true;
8121 const bool isDefined = false;
8122 const clang::ObjCImplementationControl impControl =
8123 clang::ObjCImplementationControl::None;
8124 const bool HasRelatedResultType = false;
8125
8126 getter =
8127 clang::ObjCMethodDecl::CreateDeserialized(clang_ast, GlobalDeclID());
8128 getter->setDeclName(getter_sel);
8129 getter->setReturnType(ClangUtil::GetQualType(property_clang_type_to_access));
8130 getter->setDeclContext(class_interface_decl);
8131 getter->setInstanceMethod(isInstance);
8132 getter->setVariadic(isVariadic);
8133 getter->setPropertyAccessor(isPropertyAccessor);
8134 getter->setSynthesizedAccessorStub(isSynthesizedAccessorStub);
8135 getter->setImplicit(isImplicitlyDeclared);
8136 getter->setDefined(isDefined);
8137 getter->setDeclImplementation(impControl);
8138 getter->setRelatedResultType(HasRelatedResultType);
8139 SetMemberOwningModule(getter, class_interface_decl);
8140
8141 if (getter) {
8142 ast->SetMetadata(getter, metadata);
8143
8144 getter->setMethodParams(clang_ast, llvm::ArrayRef<clang::ParmVarDecl *>(),
8145 llvm::ArrayRef<clang::SourceLocation>());
8146 class_interface_decl->addDecl(getter);
8147 }
8148 }
8149 if (getter) {
8150 getter->setPropertyAccessor(true);
8151 property_decl->setGetterMethodDecl(getter);
8152 }
8153
8154 clang::ObjCMethodDecl *setter = nullptr;
8155 setter = isInstance ? class_interface_decl->lookupInstanceMethod(setter_sel)
8156 : class_interface_decl->lookupClassMethod(setter_sel);
8157 if (!setter_sel.isNull() && !setter) {
8158 clang::QualType result_type = clang_ast.VoidTy;
8159 const bool isVariadic = false;
8160 const bool isPropertyAccessor = true;
8161 const bool isSynthesizedAccessorStub = false;
8162 const bool isImplicitlyDeclared = true;
8163 const bool isDefined = false;
8164 const clang::ObjCImplementationControl impControl =
8165 clang::ObjCImplementationControl::None;
8166 const bool HasRelatedResultType = false;
8167
8168 setter =
8169 clang::ObjCMethodDecl::CreateDeserialized(clang_ast, GlobalDeclID());
8170 setter->setDeclName(setter_sel);
8171 setter->setReturnType(result_type);
8172 setter->setDeclContext(class_interface_decl);
8173 setter->setInstanceMethod(isInstance);
8174 setter->setVariadic(isVariadic);
8175 setter->setPropertyAccessor(isPropertyAccessor);
8176 setter->setSynthesizedAccessorStub(isSynthesizedAccessorStub);
8177 setter->setImplicit(isImplicitlyDeclared);
8178 setter->setDefined(isDefined);
8179 setter->setDeclImplementation(impControl);
8180 setter->setRelatedResultType(HasRelatedResultType);
8181 SetMemberOwningModule(setter, class_interface_decl);
8182
8183 if (setter) {
8184 ast->SetMetadata(setter, metadata);
8185
8186 llvm::SmallVector<clang::ParmVarDecl *, 1> params;
8187 params.push_back(clang::ParmVarDecl::Create(
8188 clang_ast, setter, clang::SourceLocation(), clang::SourceLocation(),
8189 nullptr, // anonymous
8190 ClangUtil::GetQualType(property_clang_type_to_access), nullptr,
8191 clang::SC_Auto, nullptr));
8192
8193 setter->setMethodParams(clang_ast,
8194 llvm::ArrayRef<clang::ParmVarDecl *>(params),
8195 llvm::ArrayRef<clang::SourceLocation>());
8196
8197 class_interface_decl->addDecl(setter);
8198 }
8199 }
8200 if (setter) {
8201 setter->setPropertyAccessor(true);
8202 property_decl->setSetterMethodDecl(setter);
8203 }
8204
8205 return true;
8206}
8207
8209 const CompilerType &type,
8210 const char *name, // the full symbol name as seen in the symbol table
8211 // (lldb::opaque_compiler_type_t type, "-[NString
8212 // stringWithCString:]")
8213 const CompilerType &method_clang_type, bool is_artificial, bool is_variadic,
8214 bool is_objc_direct_call) {
8215 if (!type || !method_clang_type.IsValid())
8216 return nullptr;
8217
8218 clang::ObjCInterfaceDecl *class_interface_decl = GetAsObjCInterfaceDecl(type);
8219
8220 if (class_interface_decl == nullptr)
8221 return nullptr;
8222 auto lldb_ast = type.GetTypeSystem<TypeSystemClang>();
8223 if (lldb_ast == nullptr)
8224 return nullptr;
8225 clang::ASTContext &ast = lldb_ast->getASTContext();
8226
8227 const char *selector_start = ::strchr(name, ' ');
8228 if (selector_start == nullptr)
8229 return nullptr;
8230
8231 selector_start++;
8232 llvm::SmallVector<const clang::IdentifierInfo *, 12> selector_idents;
8233
8234 size_t len = 0;
8235 const char *start;
8236
8237 unsigned num_selectors_with_args = 0;
8238 for (start = selector_start; start && *start != '\0' && *start != ']';
8239 start += len) {
8240 len = ::strcspn(start, ":]");
8241 bool has_arg = (start[len] == ':');
8242 if (has_arg)
8243 ++num_selectors_with_args;
8244 selector_idents.push_back(&ast.Idents.get(llvm::StringRef(start, len)));
8245 if (has_arg)
8246 len += 1;
8247 }
8248
8249 if (selector_idents.size() == 0)
8250 return nullptr;
8251
8252 clang::Selector method_selector = ast.Selectors.getSelector(
8253 num_selectors_with_args ? selector_idents.size() : 0,
8254 selector_idents.data());
8255
8256 clang::QualType method_qual_type(ClangUtil::GetQualType(method_clang_type));
8257
8258 // Populate the method decl with parameter decls
8259 const clang::Type *method_type(method_qual_type.getTypePtr());
8260
8261 if (method_type == nullptr)
8262 return nullptr;
8263
8264 const clang::FunctionProtoType *method_function_prototype(
8265 llvm::dyn_cast<clang::FunctionProtoType>(method_type));
8266
8267 if (!method_function_prototype)
8268 return nullptr;
8269
8270 const bool isInstance = (name[0] == '-');
8271 const bool isVariadic = is_variadic;
8272 const bool isPropertyAccessor = false;
8273 const bool isSynthesizedAccessorStub = false;
8274 /// Force this to true because we don't have source locations.
8275 const bool isImplicitlyDeclared = true;
8276 const bool isDefined = false;
8277 const clang::ObjCImplementationControl impControl =
8278 clang::ObjCImplementationControl::None;
8279 const bool HasRelatedResultType = false;
8280
8281 const unsigned num_args = method_function_prototype->getNumParams();
8282
8283 if (num_args != num_selectors_with_args)
8284 return nullptr; // some debug information is corrupt. We are not going to
8285 // deal with it.
8286
8287 auto *objc_method_decl =
8288 clang::ObjCMethodDecl::CreateDeserialized(ast, GlobalDeclID());
8289 objc_method_decl->setDeclName(method_selector);
8290 objc_method_decl->setReturnType(method_function_prototype->getReturnType());
8291 objc_method_decl->setDeclContext(
8292 lldb_ast->GetDeclContextForType(ClangUtil::GetQualType(type)));
8293 objc_method_decl->setInstanceMethod(isInstance);
8294 objc_method_decl->setVariadic(isVariadic);
8295 objc_method_decl->setPropertyAccessor(isPropertyAccessor);
8296 objc_method_decl->setSynthesizedAccessorStub(isSynthesizedAccessorStub);
8297 objc_method_decl->setImplicit(isImplicitlyDeclared);
8298 objc_method_decl->setDefined(isDefined);
8299 objc_method_decl->setDeclImplementation(impControl);
8300 objc_method_decl->setRelatedResultType(HasRelatedResultType);
8301 SetMemberOwningModule(objc_method_decl, class_interface_decl);
8302
8303 if (objc_method_decl == nullptr)
8304 return nullptr;
8305
8306 if (num_args > 0) {
8307 llvm::SmallVector<clang::ParmVarDecl *, 12> params;
8308
8309 for (unsigned param_index = 0; param_index < num_args; ++param_index) {
8310 params.push_back(clang::ParmVarDecl::Create(
8311 ast, objc_method_decl, clang::SourceLocation(),
8312 clang::SourceLocation(),
8313 nullptr, // anonymous
8314 method_function_prototype->getParamType(param_index), nullptr,
8315 clang::SC_Auto, nullptr));
8316 }
8317
8318 objc_method_decl->setMethodParams(
8319 ast, llvm::ArrayRef<clang::ParmVarDecl *>(params),
8320 llvm::ArrayRef<clang::SourceLocation>());
8321 }
8322
8323 if (is_objc_direct_call) {
8324 // Add a the objc_direct attribute to the declaration we generate that
8325 // we generate a direct method call for this ObjCMethodDecl.
8326 objc_method_decl->addAttr(
8327 clang::ObjCDirectAttr::CreateImplicit(ast, SourceLocation()));
8328 // Usually Sema is creating implicit parameters (e.g., self) when it
8329 // parses the method. We don't have a parsing Sema when we build our own
8330 // AST here so we manually need to create these implicit parameters to
8331 // make the direct call code generation happy.
8332 objc_method_decl->createImplicitParams(ast, class_interface_decl);
8333 }
8334
8335 class_interface_decl->addDecl(objc_method_decl);
8336
8337 VerifyDecl(objc_method_decl);
8338
8339 return objc_method_decl;
8340}
8341
8343 bool has_extern) {
8344 if (!type)
8345 return false;
8346
8347 clang::QualType qual_type(RemoveWrappingTypes(GetCanonicalQualType(type)));
8348
8349 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
8350 switch (type_class) {
8351 case clang::Type::Record: {
8352 clang::CXXRecordDecl *cxx_record_decl = qual_type->getAsCXXRecordDecl();
8353 if (cxx_record_decl) {
8354 cxx_record_decl->setHasExternalLexicalStorage(has_extern);
8355 cxx_record_decl->setHasExternalVisibleStorage(has_extern);
8356 return true;
8357 }
8358 } break;
8359
8360 case clang::Type::Enum: {
8361 clang::EnumDecl *enum_decl =
8362 llvm::cast<clang::EnumType>(qual_type)->getDecl();
8363 if (enum_decl) {
8364 enum_decl->setHasExternalLexicalStorage(has_extern);
8365 enum_decl->setHasExternalVisibleStorage(has_extern);
8366 return true;
8367 }
8368 } break;
8369
8370 case clang::Type::ObjCObject:
8371 case clang::Type::ObjCInterface: {
8372 const clang::ObjCObjectType *objc_class_type =
8373 llvm::dyn_cast<clang::ObjCObjectType>(qual_type.getTypePtr());
8374 assert(objc_class_type);
8375 if (objc_class_type) {
8376 clang::ObjCInterfaceDecl *class_interface_decl =
8377 objc_class_type->getInterface();
8378
8379 if (class_interface_decl) {
8380 class_interface_decl->setHasExternalLexicalStorage(has_extern);
8381 class_interface_decl->setHasExternalVisibleStorage(has_extern);
8382 return true;
8383 }
8384 }
8385 } break;
8386
8387 default:
8388 break;
8389 }
8390 return false;
8391}
8392
8393#pragma mark TagDecl
8394
8396 clang::QualType qual_type(ClangUtil::GetQualType(type));
8397 if (!qual_type.isNull()) {
8398 const clang::TagType *tag_type = qual_type->getAs<clang::TagType>();
8399 if (tag_type) {
8400 clang::TagDecl *tag_decl = tag_type->getDecl();
8401 if (tag_decl) {
8402 tag_decl->startDefinition();
8403 return true;
8404 }
8405 }
8406
8407 const clang::ObjCObjectType *object_type =
8408 qual_type->getAs<clang::ObjCObjectType>();
8409 if (object_type) {
8410 clang::ObjCInterfaceDecl *interface_decl = object_type->getInterface();
8411 if (interface_decl) {
8412 interface_decl->startDefinition();
8413 return true;
8414 }
8415 }
8416 }
8417 return false;
8418}
8419
8421 const CompilerType &type) {
8422 clang::QualType qual_type(ClangUtil::GetQualType(type));
8423 if (qual_type.isNull())
8424 return false;
8425
8426 auto lldb_ast = type.GetTypeSystem<TypeSystemClang>();
8427 if (lldb_ast == nullptr)
8428 return false;
8429
8430 // Make sure we use the same methodology as
8431 // TypeSystemClang::StartTagDeclarationDefinition() as to how we start/end
8432 // the definition.
8433 const clang::TagType *tag_type = qual_type->getAs<clang::TagType>();
8434 if (tag_type) {
8435 clang::TagDecl *tag_decl = tag_type->getDecl()->getDefinitionOrSelf();
8436
8437 if (auto *cxx_record_decl = llvm::dyn_cast<CXXRecordDecl>(tag_decl)) {
8438 // If we have a move constructor declared but no copy constructor we
8439 // need to explicitly mark it as deleted. Usually Sema would do this for
8440 // us in Sema::DeclareImplicitCopyConstructor but we don't have a Sema
8441 // when building an AST from debug information.
8442 // See also:
8443 // C++11 [class.copy]p7, p18:
8444 // If the class definition declares a move constructor or move assignment
8445 // operator, an implicitly declared copy constructor or copy assignment
8446 // operator is defined as deleted.
8447 if (cxx_record_decl->hasUserDeclaredMoveConstructor() ||
8448 cxx_record_decl->hasUserDeclaredMoveAssignment()) {
8449 if (cxx_record_decl->needsImplicitCopyConstructor())
8450 cxx_record_decl->setImplicitCopyConstructorIsDeleted();
8451 if (cxx_record_decl->needsImplicitCopyAssignment())
8452 cxx_record_decl->setImplicitCopyAssignmentIsDeleted();
8453 }
8454
8455 if (!cxx_record_decl->isCompleteDefinition())
8456 cxx_record_decl->completeDefinition();
8457 cxx_record_decl->setHasLoadedFieldsFromExternalStorage(true);
8458 cxx_record_decl->setHasExternalLexicalStorage(false);
8459 cxx_record_decl->setHasExternalVisibleStorage(false);
8460 return true;
8461 }
8462 }
8463
8464 const clang::EnumType *enutype = qual_type->getAs<clang::EnumType>();
8465
8466 if (!enutype)
8467 return false;
8468 clang::EnumDecl *enum_decl = enutype->getDecl()->getDefinitionOrSelf();
8469
8470 if (enum_decl->isCompleteDefinition())
8471 return true;
8472
8473 QualType integer_type(enum_decl->getIntegerType());
8474 if (!integer_type.isNull()) {
8475 clang::ASTContext &ast = lldb_ast->getASTContext();
8476
8477 unsigned NumNegativeBits = 0;
8478 unsigned NumPositiveBits = 0;
8479 ast.computeEnumBits(enum_decl->enumerators(), NumNegativeBits,
8480 NumPositiveBits);
8481
8482 clang::QualType BestPromotionType;
8483 clang::QualType BestType;
8484 ast.computeBestEnumTypes(/*IsPacked=*/false, NumNegativeBits,
8485 NumPositiveBits, BestType, BestPromotionType);
8486
8487 enum_decl->completeDefinition(enum_decl->getIntegerType(),
8488 BestPromotionType, NumPositiveBits,
8489 NumNegativeBits);
8490 }
8491 return true;
8492}
8493
8495 const CompilerType &enum_type, const Declaration &decl, const char *name,
8496 const llvm::APSInt &value) {
8497
8498 if (!enum_type || ConstString(name).IsEmpty())
8499 return nullptr;
8500
8501 lldbassert(enum_type.GetTypeSystem().GetSharedPointer().get() ==
8502 static_cast<TypeSystem *>(this));
8503
8504 lldb::opaque_compiler_type_t enum_opaque_compiler_type =
8505 enum_type.GetOpaqueQualType();
8506
8507 if (!enum_opaque_compiler_type)
8508 return nullptr;
8509
8510 clang::QualType enum_qual_type(
8511 GetCanonicalQualType(enum_opaque_compiler_type));
8512
8513 const clang::Type *clang_type = enum_qual_type.getTypePtr();
8514
8515 if (!clang_type)
8516 return nullptr;
8517
8518 const clang::EnumType *enutype = llvm::dyn_cast<clang::EnumType>(clang_type);
8519
8520 if (!enutype)
8521 return nullptr;
8522
8523 clang::EnumConstantDecl *enumerator_decl =
8524 clang::EnumConstantDecl::CreateDeserialized(getASTContext(),
8525 GlobalDeclID());
8526 clang::EnumDecl *enum_decl = enutype->getDecl()->getDefinitionOrSelf();
8527 enumerator_decl->setDeclContext(enum_decl);
8528 if (name && name[0])
8529 enumerator_decl->setDeclName(&getASTContext().Idents.get(name));
8530 enumerator_decl->setType(clang::QualType(enutype, 0));
8531 enumerator_decl->setInitVal(getASTContext(), value);
8532 enumerator_decl->setAccess(AS_public);
8533 SetMemberOwningModule(enumerator_decl, enum_decl);
8534
8535 if (!enum_decl)
8536 return nullptr;
8537
8538 enum_decl->addDecl(enumerator_decl);
8539
8540 VerifyDecl(enumerator_decl);
8541 return enumerator_decl;
8542}
8543
8545 const CompilerType &enum_type, const Declaration &decl, const char *name,
8546 uint64_t enum_value, uint32_t enum_value_bit_size) {
8547 assert(enum_type.IsEnumerationType());
8548 llvm::APSInt value(enum_value_bit_size,
8549 !enum_type.IsEnumerationIntegerTypeSigned());
8550 value = enum_value;
8551
8552 return AddEnumerationValueToEnumerationType(enum_type, decl, name, value);
8553}
8554
8556 clang::QualType qt(ClangUtil::GetQualType(type));
8557 const clang::Type *clang_type = qt.getTypePtrOrNull();
8558 const auto *enum_type = llvm::dyn_cast_or_null<clang::EnumType>(clang_type);
8559 if (!enum_type)
8560 return CompilerType();
8561
8562 return GetType(enum_type->getDecl()->getDefinitionOrSelf()->getIntegerType());
8563}
8564
8567 const CompilerType &pointee_type) {
8568 if (type && pointee_type.IsValid() &&
8569 type.GetTypeSystem() == pointee_type.GetTypeSystem()) {
8570 auto ast = type.GetTypeSystem<TypeSystemClang>();
8571 if (!ast)
8572 return CompilerType();
8573 return ast->GetType(ast->getASTContext().getMemberPointerType(
8574 ClangUtil::GetQualType(pointee_type),
8575 /*Qualifier=*/std::nullopt,
8576 ClangUtil::GetQualType(type)->getAsCXXRecordDecl()));
8577 }
8578 return CompilerType();
8579}
8580
8581// Dumping types
8582#define DEPTH_INCREMENT 2
8583
8584#ifndef NDEBUG
8585LLVM_DUMP_METHOD void
8587 if (!type)
8588 return;
8589 clang::QualType qual_type(GetQualType(type));
8590 qual_type.dump();
8591}
8592#endif
8593
8594namespace {
8595struct ScopedASTColor {
8596 ScopedASTColor(clang::ASTContext &ast, bool show_colors)
8597 : ast(ast),
8598 old_show_colors(
8599 ast.getDiagnostics().getDiagnosticOptions().getShowColors()) {
8600 ast.getDiagnostics().getDiagnosticOptions().setShowColors(
8601 show_colors ? clang::ShowColorsKind::On : clang::ShowColorsKind::Off);
8602 }
8603
8604 ~ScopedASTColor() {
8605 ast.getDiagnostics().getDiagnosticOptions().setShowColors(old_show_colors);
8606 }
8607
8608 clang::ASTContext &ast;
8609 const clang::ShowColorsKind old_show_colors;
8610};
8611} // namespace
8612
8613void TypeSystemClang::Dump(llvm::raw_ostream &output, llvm::StringRef filter,
8614 bool show_color) {
8615 ScopedASTColor colored(getASTContext(), show_color);
8616
8617 auto consumer =
8618 clang::CreateASTDumper(output, filter,
8619 /*FilterPath=*/"",
8620 /*DumpDecls=*/true,
8621 /*Deserialize=*/false,
8622 /*DumpLookups=*/false,
8623 /*DumpDeclTypes=*/false, clang::ADOF_Default);
8624 assert(consumer);
8625 assert(m_ast_up);
8626 consumer->HandleTranslationUnit(*m_ast_up);
8627}
8628
8630 llvm::StringRef symbol_name) {
8631 SymbolFile *symfile = GetSymbolFile();
8632
8633 if (!symfile)
8634 return;
8635
8636 lldb_private::TypeList type_list;
8637 symfile->GetTypes(nullptr, eTypeClassAny, type_list);
8638 size_t ntypes = type_list.GetSize();
8639
8640 for (size_t i = 0; i < ntypes; ++i) {
8641 TypeSP type = type_list.GetTypeAtIndex(i);
8642
8643 if (!symbol_name.empty())
8644 if (symbol_name != type->GetName().GetStringRef())
8645 continue;
8646
8647 s << type->GetName() << "\n";
8648
8649 CompilerType full_type = type->GetFullCompilerType();
8650 if (clang::TagDecl *tag_decl = GetAsTagDecl(full_type)) {
8651 tag_decl->dump(s.AsRawOstream());
8652 continue;
8653 }
8654 if (clang::TypedefNameDecl *typedef_decl = GetAsTypedefDecl(full_type)) {
8655 typedef_decl->dump(s.AsRawOstream());
8656 continue;
8657 }
8658 if (auto *objc_obj = llvm::dyn_cast<clang::ObjCObjectType>(
8659 ClangUtil::GetQualType(full_type).getTypePtr())) {
8660 if (clang::ObjCInterfaceDecl *interface_decl = objc_obj->getInterface()) {
8661 interface_decl->dump(s.AsRawOstream());
8662 continue;
8663 }
8664 }
8666 .dump(s.AsRawOstream(), getASTContext());
8667 }
8668}
8669
8670static bool DumpEnumValue(const clang::QualType &qual_type, Stream &s,
8671 const DataExtractor &data, lldb::offset_t byte_offset,
8672 size_t byte_size, uint32_t bitfield_bit_offset,
8673 uint32_t bitfield_bit_size) {
8674 const clang::EnumType *enutype =
8675 llvm::cast<clang::EnumType>(qual_type.getTypePtr());
8676 const clang::EnumDecl *enum_decl = enutype->getDecl()->getDefinitionOrSelf();
8677 lldb::offset_t offset = byte_offset;
8678 bool qual_type_is_signed = qual_type->isSignedIntegerOrEnumerationType();
8679 const uint64_t enum_svalue =
8680 qual_type_is_signed
8681 ? data.GetMaxS64Bitfield(&offset, byte_size, bitfield_bit_size,
8682 bitfield_bit_offset)
8683 : data.GetMaxU64Bitfield(&offset, byte_size, bitfield_bit_size,
8684 bitfield_bit_offset);
8685 bool can_be_bitfield = true;
8686 uint64_t covered_bits = 0;
8687 int num_enumerators = 0;
8688
8689 // Try to find an exact match for the value.
8690 // At the same time, we're applying a heuristic to determine whether we want
8691 // to print this enum as a bitfield. We're likely dealing with a bitfield if
8692 // every enumerator is either a one bit value or a superset of the previous
8693 // enumerators. Also 0 doesn't make sense when the enumerators are used as
8694 // flags.
8695 clang::EnumDecl::enumerator_range enumerators = enum_decl->enumerators();
8696 if (enumerators.empty())
8697 can_be_bitfield = false;
8698 else {
8699 for (auto *enumerator : enumerators) {
8700 llvm::APSInt init_val = enumerator->getInitVal();
8701 uint64_t val = qual_type_is_signed ? init_val.getSExtValue()
8702 : init_val.getZExtValue();
8703 if (qual_type_is_signed)
8704 val = llvm::SignExtend64(val, 8 * byte_size);
8705 if (llvm::popcount(val) != 1 && (val & ~covered_bits) != 0)
8706 can_be_bitfield = false;
8707 covered_bits |= val;
8708 ++num_enumerators;
8709 if (val == enum_svalue) {
8710 // Found an exact match, that's all we need to do.
8711 s.PutCString(enumerator->getNameAsString());
8712 return true;
8713 }
8714 }
8715 }
8716
8717 // Unsigned values make more sense for flags.
8718 offset = byte_offset;
8719 const uint64_t enum_uvalue = data.GetMaxU64Bitfield(
8720 &offset, byte_size, bitfield_bit_size, bitfield_bit_offset);
8721
8722 // No exact match, but we don't think this is a bitfield. Print the value as
8723 // decimal.
8724 if (!can_be_bitfield) {
8725 if (qual_type_is_signed)
8726 s.Printf("%" PRIi64, enum_svalue);
8727 else
8728 s.Printf("%" PRIu64, enum_uvalue);
8729 return true;
8730 }
8731
8732 if (!enum_uvalue) {
8733 // This is a bitfield enum, but the value is 0 so we know it won't match
8734 // with any of the enumerators.
8735 s.Printf("0x%" PRIx64, enum_uvalue);
8736 return true;
8737 }
8738
8739 uint64_t remaining_value = enum_uvalue;
8740 std::vector<std::pair<uint64_t, llvm::StringRef>> values;
8741 values.reserve(num_enumerators);
8742 for (auto *enumerator : enum_decl->enumerators())
8743 if (auto val = enumerator->getInitVal().getZExtValue())
8744 values.emplace_back(val, enumerator->getName());
8745
8746 // Sort in reverse order of the number of the population count, so that in
8747 // `enum {A, B, ALL = A|B }` we visit ALL first. Use a stable sort so that
8748 // A | C where A is declared before C is displayed in this order.
8749 llvm::stable_sort(values, [](const auto &a, const auto &b) {
8750 return llvm::popcount(a.first) > llvm::popcount(b.first);
8751 });
8752
8753 for (const auto &val : values) {
8754 if ((remaining_value & val.first) != val.first)
8755 continue;
8756 remaining_value &= ~val.first;
8757 s.PutCString(val.second);
8758 if (remaining_value)
8759 s.PutCString(" | ");
8760 }
8761
8762 // If there is a remainder that is not covered by the value, print it as
8763 // hex.
8764 if (remaining_value)
8765 s.Printf("0x%" PRIx64, remaining_value);
8766
8767 return true;
8768}
8769
8772 const lldb_private::DataExtractor &data, lldb::offset_t byte_offset,
8773 size_t byte_size, uint32_t bitfield_bit_size, uint32_t bitfield_bit_offset,
8774 ExecutionContextScope *exe_scope) {
8775 if (!type)
8776 return false;
8777 if (IsAggregateType(type)) {
8778 return false;
8779 } else {
8780 clang::QualType qual_type(GetQualType(type));
8781
8782 switch (qual_type->getTypeClass()) {
8783 case clang::Type::Typedef: {
8784 clang::QualType typedef_qual_type =
8785 llvm::cast<clang::TypedefType>(qual_type)
8786 ->getDecl()
8787 ->getUnderlyingType();
8788 CompilerType typedef_clang_type = GetType(typedef_qual_type);
8789 if (format == eFormatDefault)
8790 format = typedef_clang_type.GetFormat();
8791 clang::TypeInfo typedef_type_info =
8792 getASTContext().getTypeInfo(typedef_qual_type);
8793 uint64_t typedef_byte_size = typedef_type_info.Width / 8;
8794
8795 return typedef_clang_type.DumpTypeValue(
8796 &s,
8797 format, // The format with which to display the element
8798 data, // Data buffer containing all bytes for this type
8799 byte_offset, // Offset into "data" where to grab value from
8800 typedef_byte_size, // Size of this type in bytes
8801 bitfield_bit_size, // Size in bits of a bitfield value, if zero don't
8802 // treat as a bitfield
8803 bitfield_bit_offset, // Offset in bits of a bitfield value if
8804 // bitfield_bit_size != 0
8805 exe_scope);
8806 } break;
8807
8808 case clang::Type::Enum:
8809 // If our format is enum or default, show the enumeration value as its
8810 // enumeration string value, else just display it as requested.
8811 if ((format == eFormatEnum || format == eFormatDefault) &&
8812 GetCompleteType(type))
8813 return DumpEnumValue(qual_type, s, data, byte_offset, byte_size,
8814 bitfield_bit_offset, bitfield_bit_size);
8815 // format was not enum, just fall through and dump the value as
8816 // requested....
8817 [[fallthrough]];
8818
8819 default:
8820 // We are down to a scalar type that we just need to display.
8821 {
8822 uint32_t item_count = 1;
8823 // A few formats, we might need to modify our size and count for
8824 // depending
8825 // on how we are trying to display the value...
8826 switch (format) {
8827 default:
8828 case eFormatBoolean:
8829 case eFormatBinary:
8830 case eFormatComplex:
8831 case eFormatCString: // null-terminated C strings
8832 case eFormatDecimal:
8833 case eFormatEnum:
8834 case eFormatHex:
8836 case eFormatFloat:
8837 case eFormatFloat128:
8838 case eFormatOctal:
8839 case eFormatOSType:
8840 case eFormatUnsigned:
8841 case eFormatPointer:
8854 break;
8855
8856 case eFormatChar:
8858 case eFormatCharArray:
8859 case eFormatBytes:
8860 case eFormatUnicode8:
8862 item_count = byte_size;
8863 byte_size = 1;
8864 break;
8865
8866 case eFormatUnicode16:
8867 item_count = byte_size / 2;
8868 byte_size = 2;
8869 break;
8870
8871 case eFormatUnicode32:
8872 item_count = byte_size / 4;
8873 byte_size = 4;
8874 break;
8875 }
8876 return DumpDataExtractor(data, &s, byte_offset, format, byte_size,
8877 item_count, UINT32_MAX, LLDB_INVALID_ADDRESS,
8878 bitfield_bit_size, bitfield_bit_offset,
8879 exe_scope);
8880 }
8881 break;
8882 }
8883 }
8884 return false;
8885}
8886
8888 lldb::DescriptionLevel level) {
8889 StreamFile s(stdout, false);
8890 DumpTypeDescription(type, s, level);
8891
8892 CompilerType ct(weak_from_this(), type);
8893 const clang::Type *clang_type = ClangUtil::GetQualType(ct).getTypePtr();
8894 if (std::optional<ClangASTMetadata> metadata = GetMetadata(clang_type)) {
8895 metadata->Dump(&s);
8896 }
8897}
8898
8900 Stream &s,
8901 lldb::DescriptionLevel level) {
8902 if (type) {
8903 clang::QualType qual_type =
8904 RemoveWrappingTypes(GetQualType(type), {clang::Type::Typedef});
8905
8906 llvm::SmallVector<char, 1024> buf;
8907 llvm::raw_svector_ostream llvm_ostrm(buf);
8908
8909 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
8910 switch (type_class) {
8911 case clang::Type::ObjCObject:
8912 case clang::Type::ObjCInterface: {
8913 GetCompleteType(type);
8914
8915 auto *objc_class_type =
8916 llvm::dyn_cast<clang::ObjCObjectType>(qual_type.getTypePtr());
8917 assert(objc_class_type);
8918 if (!objc_class_type)
8919 break;
8920 clang::ObjCInterfaceDecl *class_interface_decl =
8921 objc_class_type->getInterface();
8922 if (!class_interface_decl)
8923 break;
8924 if (level == eDescriptionLevelVerbose)
8925 class_interface_decl->dump(llvm_ostrm);
8926 else
8927 class_interface_decl->print(llvm_ostrm,
8928 getASTContext().getPrintingPolicy(),
8929 s.GetIndentLevel());
8930 } break;
8931
8932 case clang::Type::Typedef: {
8933 auto *typedef_type = qual_type->getAs<clang::TypedefType>();
8934 if (!typedef_type)
8935 break;
8936 const clang::TypedefNameDecl *typedef_decl = typedef_type->getDecl();
8937 if (level == eDescriptionLevelVerbose)
8938 typedef_decl->dump(llvm_ostrm);
8939 else {
8940 std::string clang_typedef_name(GetTypeNameForDecl(typedef_decl));
8941 if (!clang_typedef_name.empty()) {
8942 s.PutCString("typedef ");
8943 s.PutCString(clang_typedef_name);
8944 }
8945 }
8946 } break;
8947
8948 case clang::Type::Record: {
8949 GetCompleteType(type);
8950
8951 auto *record_type = llvm::cast<clang::RecordType>(qual_type.getTypePtr());
8952 const clang::RecordDecl *record_decl = record_type->getDecl();
8953 if (level == eDescriptionLevelVerbose)
8954 record_decl->dump(llvm_ostrm);
8955 else {
8956 record_decl->print(llvm_ostrm, getASTContext().getPrintingPolicy(),
8957 s.GetIndentLevel());
8958 }
8959 } break;
8960
8961 default: {
8962 if (auto *tag_type =
8963 llvm::dyn_cast<clang::TagType>(qual_type.getTypePtr())) {
8964 if (clang::TagDecl *tag_decl = tag_type->getDecl()) {
8965 if (level == eDescriptionLevelVerbose)
8966 tag_decl->dump(llvm_ostrm);
8967 else
8968 tag_decl->print(llvm_ostrm, 0);
8969 }
8970 } else {
8971 if (level == eDescriptionLevelVerbose)
8972 qual_type->dump(llvm_ostrm, getASTContext());
8973 else {
8974 std::string clang_type_name(qual_type.getAsString());
8975 if (!clang_type_name.empty())
8976 s.PutCString(clang_type_name);
8977 }
8978 }
8979 }
8980 }
8981
8982 if (buf.size() > 0) {
8983 s.Write(buf.data(), buf.size());
8984 }
8985}
8986}
8987
8989 if (ClangUtil::IsClangType(type)) {
8990 clang::QualType qual_type(
8992
8993 const clang::Type::TypeClass type_class = qual_type->getTypeClass();
8994 switch (type_class) {
8995 case clang::Type::Record: {
8996 const clang::CXXRecordDecl *cxx_record_decl =
8997 qual_type->getAsCXXRecordDecl();
8998 if (cxx_record_decl)
8999 printf("class %s", cxx_record_decl->getName().str().c_str());
9000 } break;
9001
9002 case clang::Type::Enum: {
9003 clang::EnumDecl *enum_decl =
9004 llvm::cast<clang::EnumType>(qual_type)->getDecl();
9005 if (enum_decl) {
9006 printf("enum %s", enum_decl->getName().str().c_str());
9007 }
9008 } break;
9009
9010 case clang::Type::ObjCObject:
9011 case clang::Type::ObjCInterface: {
9012 const clang::ObjCObjectType *objc_class_type =
9013 llvm::dyn_cast<clang::ObjCObjectType>(qual_type);
9014 if (objc_class_type) {
9015 clang::ObjCInterfaceDecl *class_interface_decl =
9016 objc_class_type->getInterface();
9017 // We currently can't complete objective C types through the newly
9018 // added ASTContext because it only supports TagDecl objects right
9019 // now...
9020 if (class_interface_decl)
9021 printf("@class %s", class_interface_decl->getName().str().c_str());
9022 }
9023 } break;
9024
9025 case clang::Type::Typedef:
9026 printf("typedef %s", llvm::cast<clang::TypedefType>(qual_type)
9027 ->getDecl()
9028 ->getName()
9029 .str()
9030 .c_str());
9031 break;
9032
9033 case clang::Type::Auto:
9034 printf("auto ");
9036 llvm::cast<clang::AutoType>(qual_type)
9037 ->getDeducedType()
9038 .getAsOpaquePtr()));
9039
9040 case clang::Type::Paren:
9041 printf("paren ");
9043 type.GetTypeSystem(),
9044 llvm::cast<clang::ParenType>(qual_type)->desugar().getAsOpaquePtr()));
9045
9046 default:
9047 printf("TypeSystemClang::DumpTypeName() type_class = %u", type_class);
9048 break;
9049 }
9050 }
9051}
9052
9054 clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module,
9055 const char *parent_name, int tag_decl_kind,
9056 const TypeSystemClang::TemplateParameterInfos &template_param_infos) {
9057 if (template_param_infos.IsValid()) {
9058 std::string template_basename(parent_name);
9059 // With -gsimple-template-names we may omit template parameters in the name.
9060 if (auto i = template_basename.find('<'); i != std::string::npos)
9061 template_basename.erase(i);
9062
9063 return CreateClassTemplateDecl(decl_ctx, owning_module,
9064 template_basename.c_str(), tag_decl_kind,
9065 template_param_infos);
9066 }
9067 return nullptr;
9068}
9069
9070void TypeSystemClang::CompleteTagDecl(clang::TagDecl *decl) {
9071 SymbolFile *sym_file = GetSymbolFile();
9072 if (sym_file) {
9073 CompilerType clang_type = GetTypeForDecl(decl);
9074 if (clang_type)
9075 sym_file->CompleteType(clang_type);
9076 }
9077}
9078
9080 clang::ObjCInterfaceDecl *decl) {
9081 SymbolFile *sym_file = GetSymbolFile();
9082 if (sym_file) {
9083 CompilerType clang_type = GetTypeForDecl(decl);
9084 if (clang_type)
9085 sym_file->CompleteType(clang_type);
9086 }
9087}
9088
9091 m_dwarf_ast_parser_up = std::make_unique<DWARFASTParserClang>(*this);
9092 return m_dwarf_ast_parser_up.get();
9093}
9094
9097 m_pdb_ast_parser_up = std::make_unique<PDBASTParser>(*this);
9098 return m_pdb_ast_parser_up.get();
9099}
9100
9104 std::make_unique<npdb::PdbAstBuilderClang>(*this);
9105 return m_native_pdb_ast_parser_up.get();
9106}
9107
9109 const clang::RecordDecl *record_decl, uint64_t &bit_size,
9110 uint64_t &alignment,
9111 llvm::DenseMap<const clang::FieldDecl *, uint64_t> &field_offsets,
9112 llvm::DenseMap<const clang::CXXRecordDecl *, clang::CharUnits>
9113 &base_offsets,
9114 llvm::DenseMap<const clang::CXXRecordDecl *, clang::CharUnits>
9115 &vbase_offsets) {
9116 lldb_private::ClangASTImporter *importer = nullptr;
9118 importer = &m_dwarf_ast_parser_up->GetClangASTImporter();
9119 if (!importer && m_pdb_ast_parser_up)
9120 importer = &m_pdb_ast_parser_up->GetClangASTImporter();
9121 if (!importer && m_native_pdb_ast_parser_up)
9122 importer = &m_native_pdb_ast_parser_up->GetClangASTImporter();
9123 if (!importer)
9124 return false;
9125
9126 return importer->LayoutRecordType(record_decl, bit_size, alignment,
9127 field_offsets, base_offsets, vbase_offsets);
9128}
9129
9130// CompilerDecl override functions
9131
9133 if (opaque_decl) {
9134 clang::NamedDecl *nd =
9135 llvm::dyn_cast<NamedDecl>((clang::Decl *)opaque_decl);
9136 if (nd != nullptr)
9137 return ConstString(GetTypeNameForDecl(nd, /*qualified=*/false));
9138 }
9139 return ConstString();
9140}
9141
9142static ConstString
9144 auto label_or_err = FunctionCallLabel::fromString(label);
9145 if (!label_or_err) {
9146 llvm::consumeError(label_or_err.takeError());
9147 return {};
9148 }
9149
9150 llvm::StringRef mangled = label_or_err->lookup_name;
9151 if (Mangled::IsMangledName(mangled))
9152 return ConstString(mangled);
9153
9154 return {};
9155}
9156
9158 clang::NamedDecl *nd = llvm::dyn_cast_or_null<clang::NamedDecl>(
9159 static_cast<clang::Decl *>(opaque_decl));
9160
9161 if (!nd || llvm::isa<clang::ObjCMethodDecl>(nd))
9162 return {};
9163
9164 clang::MangleContext *mc = getMangleContext();
9165 if (!mc || !mc->shouldMangleCXXName(nd))
9166 return {};
9167
9168 // We have an LLDB FunctionCallLabel instead of an ordinary mangled name.
9169 // Extract the mangled name out of this label.
9170 if (const auto *label = nd->getAttr<AsmLabelAttr>())
9171 if (ConstString mangled =
9172 ExtractMangledNameFromFunctionCallLabel(label->getLabel()))
9173 return mangled;
9174
9175 llvm::SmallVector<char, 1024> buf;
9176 llvm::raw_svector_ostream llvm_ostrm(buf);
9177 if (llvm::isa<clang::CXXConstructorDecl>(nd)) {
9178 mc->mangleName(
9179 clang::GlobalDecl(llvm::dyn_cast<clang::CXXConstructorDecl>(nd),
9180 Ctor_Complete),
9181 llvm_ostrm);
9182 } else if (llvm::isa<clang::CXXDestructorDecl>(nd)) {
9183 mc->mangleName(
9184 clang::GlobalDecl(llvm::dyn_cast<clang::CXXDestructorDecl>(nd),
9185 Dtor_Complete),
9186 llvm_ostrm);
9187 } else {
9188 mc->mangleName(nd, llvm_ostrm);
9189 }
9190
9191 if (buf.size() > 0)
9192 return ConstString(buf.data(), buf.size());
9193
9194 return {};
9195}
9196
9198 if (opaque_decl)
9199 return CreateDeclContext(((clang::Decl *)opaque_decl)->getDeclContext());
9200 return CompilerDeclContext();
9201}
9202
9204 if (clang::FunctionDecl *func_decl =
9205 llvm::dyn_cast<clang::FunctionDecl>((clang::Decl *)opaque_decl))
9206 return GetType(func_decl->getReturnType());
9207 if (clang::ObjCMethodDecl *objc_method =
9208 llvm::dyn_cast<clang::ObjCMethodDecl>((clang::Decl *)opaque_decl))
9209 return GetType(objc_method->getReturnType());
9210 else
9211 return CompilerType();
9212}
9213
9215 if (clang::FunctionDecl *func_decl =
9216 llvm::dyn_cast<clang::FunctionDecl>((clang::Decl *)opaque_decl))
9217 return func_decl->param_size();
9218 if (clang::ObjCMethodDecl *objc_method =
9219 llvm::dyn_cast<clang::ObjCMethodDecl>((clang::Decl *)opaque_decl))
9220 return objc_method->param_size();
9221 else
9222 return 0;
9223}
9224
9225static CompilerContextKind GetCompilerKind(clang::Decl::Kind clang_kind,
9226 clang::DeclContext const *decl_ctx) {
9227 switch (clang_kind) {
9228 case Decl::TranslationUnit:
9230 case Decl::Namespace:
9232 case Decl::Var:
9234 case Decl::Enum:
9236 case Decl::Typedef:
9238 default:
9239 // Many other kinds have multiple values
9240 if (decl_ctx) {
9241 if (decl_ctx->isFunctionOrMethod())
9243 if (decl_ctx->isRecord())
9245 }
9246 break;
9247 }
9249}
9250
9251static void
9252InsertCompilerContext(TypeSystemClang *ts, clang::DeclContext *decl_ctx,
9253 std::vector<lldb_private::CompilerContext> &context) {
9254 if (decl_ctx == nullptr)
9255 return;
9256 InsertCompilerContext(ts, decl_ctx->getParent(), context);
9257 clang::Decl::Kind clang_kind = decl_ctx->getDeclKind();
9258 if (clang_kind == Decl::TranslationUnit)
9259 return; // Stop at the translation unit.
9260 const CompilerContextKind compiler_kind =
9261 GetCompilerKind(clang_kind, decl_ctx);
9262 ConstString decl_ctx_name = ts->DeclContextGetName(decl_ctx);
9263 context.push_back({compiler_kind, decl_ctx_name});
9264}
9265
9266std::vector<lldb_private::CompilerContext>
9268 std::vector<lldb_private::CompilerContext> context;
9269 ConstString decl_name = DeclGetName(opaque_decl);
9270 if (decl_name) {
9271 clang::Decl *decl = (clang::Decl *)opaque_decl;
9272 // Add the entire decl context first
9273 clang::DeclContext *decl_ctx = decl->getDeclContext();
9274 InsertCompilerContext(this, decl_ctx, context);
9275 // Now add the decl information
9276 auto compiler_kind =
9277 GetCompilerKind(decl->getKind(), dyn_cast<DeclContext>(decl));
9278 context.push_back({compiler_kind, decl_name});
9279 }
9280 return context;
9281}
9282
9284 size_t idx) {
9285 if (clang::FunctionDecl *func_decl =
9286 llvm::dyn_cast<clang::FunctionDecl>((clang::Decl *)opaque_decl)) {
9287 if (idx < func_decl->param_size()) {
9288 ParmVarDecl *var_decl = func_decl->getParamDecl(idx);
9289 if (var_decl)
9290 return GetType(var_decl->getOriginalType());
9291 }
9292 } else if (clang::ObjCMethodDecl *objc_method =
9293 llvm::dyn_cast<clang::ObjCMethodDecl>(
9294 (clang::Decl *)opaque_decl)) {
9295 if (idx < objc_method->param_size())
9296 return GetType(objc_method->parameters()[idx]->getOriginalType());
9297 }
9298 return CompilerType();
9299}
9300
9302 clang::Decl *decl = static_cast<clang::Decl *>(opaque_decl);
9303 clang::VarDecl *var_decl = llvm::dyn_cast<clang::VarDecl>(decl);
9304 if (!var_decl)
9305 return Scalar();
9306 clang::Expr *init_expr = var_decl->getInit();
9307 if (!init_expr)
9308 return Scalar();
9309 std::optional<llvm::APSInt> value =
9310 init_expr->getIntegerConstantExpr(getASTContext());
9311 if (!value)
9312 return Scalar();
9313 return Scalar(*value);
9314}
9315
9316// CompilerDeclContext functions
9317
9319 void *opaque_decl_ctx, ConstString name, const bool ignore_using_decls) {
9320 std::vector<CompilerDecl> found_decls;
9321 SymbolFile *symbol_file = GetSymbolFile();
9322 if (opaque_decl_ctx && symbol_file) {
9323 DeclContext *root_decl_ctx = (DeclContext *)opaque_decl_ctx;
9324 std::set<DeclContext *> searched;
9325 std::multimap<DeclContext *, DeclContext *> search_queue;
9326
9327 for (clang::DeclContext *decl_context = root_decl_ctx;
9328 decl_context != nullptr && found_decls.empty();
9329 decl_context = decl_context->getParent()) {
9330 search_queue.insert(std::make_pair(decl_context, decl_context));
9331
9332 for (auto it = search_queue.find(decl_context); it != search_queue.end();
9333 it++) {
9334 if (!searched.insert(it->second).second)
9335 continue;
9336 symbol_file->ParseDeclsForContext(
9337 CreateDeclContext(it->second));
9338
9339 for (clang::Decl *child : it->second->decls()) {
9340 if (clang::UsingDirectiveDecl *ud =
9341 llvm::dyn_cast<clang::UsingDirectiveDecl>(child)) {
9342 if (ignore_using_decls)
9343 continue;
9344 clang::DeclContext *from = ud->getCommonAncestor();
9345 if (searched.find(ud->getNominatedNamespace()) == searched.end())
9346 search_queue.insert(
9347 std::make_pair(from, ud->getNominatedNamespace()));
9348 } else if (clang::UsingDecl *ud =
9349 llvm::dyn_cast<clang::UsingDecl>(child)) {
9350 if (ignore_using_decls)
9351 continue;
9352 for (clang::UsingShadowDecl *usd : ud->shadows()) {
9353 clang::Decl *target = usd->getTargetDecl();
9354 if (clang::NamedDecl *nd =
9355 llvm::dyn_cast<clang::NamedDecl>(target)) {
9356 IdentifierInfo *ii = nd->getIdentifier();
9357 if (ii != nullptr && ii->getName() == name.AsCString(nullptr))
9358 found_decls.push_back(GetCompilerDecl(nd));
9359 }
9360 }
9361 } else if (clang::NamedDecl *nd =
9362 llvm::dyn_cast<clang::NamedDecl>(child)) {
9363 IdentifierInfo *ii = nd->getIdentifier();
9364 if (ii != nullptr && ii->getName() == name.AsCString(nullptr))
9365 found_decls.push_back(GetCompilerDecl(nd));
9366 }
9367 }
9368 }
9369 }
9370 }
9371 return found_decls;
9372}
9373
9374// Look for child_decl_ctx's lookup scope in frame_decl_ctx and its parents,
9375// and return the number of levels it took to find it, or
9376// LLDB_INVALID_DECL_LEVEL if not found. If the decl was imported via a using
9377// declaration, its name and/or type, if set, will be used to check that the
9378// decl found in the scope is a match.
9379//
9380// The optional name is required by languages (like C++) to handle using
9381// declarations like:
9382//
9383// void poo();
9384// namespace ns {
9385// void foo();
9386// void goo();
9387// }
9388// void bar() {
9389// using ns::foo;
9390// // CountDeclLevels returns 0 for 'foo', 1 for 'poo', and
9391// // LLDB_INVALID_DECL_LEVEL for 'goo'.
9392// }
9393//
9394// The optional type is useful in the case that there's a specific overload
9395// that we're looking for that might otherwise be shadowed, like:
9396//
9397// void foo(int);
9398// namespace ns {
9399// void foo();
9400// }
9401// void bar() {
9402// using ns::foo;
9403// // CountDeclLevels returns 0 for { 'foo', void() },
9404// // 1 for { 'foo', void(int) }, and
9405// // LLDB_INVALID_DECL_LEVEL for { 'foo', void(int, int) }.
9406// }
9407//
9408// NOTE: Because file statics are at the TranslationUnit along with globals, a
9409// function at file scope will return the same level as a function at global
9410// scope. Ideally we'd like to treat the file scope as an additional scope just
9411// below the global scope. More work needs to be done to recognise that, if
9412// the decl we're trying to look up is static, we should compare its source
9413// file with that of the current scope and return a lower number for it.
9414uint32_t TypeSystemClang::CountDeclLevels(clang::DeclContext *frame_decl_ctx,
9415 clang::DeclContext *child_decl_ctx,
9416 ConstString *child_name,
9417 CompilerType *child_type) {
9418 SymbolFile *symbol_file = GetSymbolFile();
9419 if (frame_decl_ctx && symbol_file) {
9420 std::set<DeclContext *> searched;
9421 std::multimap<DeclContext *, DeclContext *> search_queue;
9422
9423 // Get the lookup scope for the decl we're trying to find.
9424 clang::DeclContext *parent_decl_ctx = child_decl_ctx->getParent();
9425
9426 // Look for it in our scope's decl context and its parents.
9427 uint32_t level = 0;
9428 for (clang::DeclContext *decl_ctx = frame_decl_ctx; decl_ctx != nullptr;
9429 decl_ctx = decl_ctx->getParent()) {
9430 if (!decl_ctx->isLookupContext())
9431 continue;
9432 if (decl_ctx == parent_decl_ctx)
9433 // Found it!
9434 return level;
9435 search_queue.insert(std::make_pair(decl_ctx, decl_ctx));
9436 for (auto it = search_queue.find(decl_ctx); it != search_queue.end();
9437 it++) {
9438 if (searched.find(it->second) != searched.end())
9439 continue;
9440
9441 // Currently DWARF has one shared translation unit for all Decls at top
9442 // level, so this would erroneously find using statements anywhere. So
9443 // don't look at the top-level translation unit.
9444 // TODO fix this and add a testcase that depends on it.
9445
9446 if (llvm::isa<clang::TranslationUnitDecl>(it->second))
9447 continue;
9448
9449 searched.insert(it->second);
9450 symbol_file->ParseDeclsForContext(
9451 CreateDeclContext(it->second));
9452
9453 for (clang::Decl *child : it->second->decls()) {
9454 if (clang::UsingDirectiveDecl *ud =
9455 llvm::dyn_cast<clang::UsingDirectiveDecl>(child)) {
9456 clang::DeclContext *ns = ud->getNominatedNamespace();
9457 if (ns == parent_decl_ctx)
9458 // Found it!
9459 return level;
9460 clang::DeclContext *from = ud->getCommonAncestor();
9461 if (searched.find(ns) == searched.end())
9462 search_queue.insert(std::make_pair(from, ns));
9463 } else if (child_name) {
9464 if (clang::UsingDecl *ud =
9465 llvm::dyn_cast<clang::UsingDecl>(child)) {
9466 for (clang::UsingShadowDecl *usd : ud->shadows()) {
9467 clang::Decl *target = usd->getTargetDecl();
9468 clang::NamedDecl *nd = llvm::dyn_cast<clang::NamedDecl>(target);
9469 if (!nd)
9470 continue;
9471 // Check names.
9472 IdentifierInfo *ii = nd->getIdentifier();
9473 if (ii == nullptr ||
9474 ii->getName() != child_name->AsCString(nullptr))
9475 continue;
9476 // Check types, if one was provided.
9477 if (child_type) {
9478 CompilerType clang_type = GetTypeForDecl(nd);
9479 if (!AreTypesSame(clang_type, *child_type,
9480 /*ignore_qualifiers=*/true))
9481 continue;
9482 }
9483 // Found it!
9484 return level;
9485 }
9486 }
9487 }
9488 }
9489 }
9490 ++level;
9491 }
9492 }
9494}
9495
9497 if (opaque_decl_ctx) {
9498 clang::NamedDecl *named_decl =
9499 llvm::dyn_cast<clang::NamedDecl>((clang::DeclContext *)opaque_decl_ctx);
9500 if (named_decl) {
9501 std::string name;
9502 llvm::raw_string_ostream stream{name};
9503 auto policy = GetTypePrintingPolicy();
9504 policy.AlwaysIncludeTypeForTemplateArgument = true;
9505 named_decl->getNameForDiagnostic(stream, policy, /*qualified=*/false);
9506 return ConstString(name);
9507 }
9508 }
9509 return ConstString();
9510}
9511
9514 if (opaque_decl_ctx) {
9515 clang::NamedDecl *named_decl =
9516 llvm::dyn_cast<clang::NamedDecl>((clang::DeclContext *)opaque_decl_ctx);
9517 if (named_decl)
9518 return ConstString(GetTypeNameForDecl(named_decl));
9519 }
9520 return ConstString();
9521}
9522
9524 if (!opaque_decl_ctx)
9525 return false;
9526
9527 clang::DeclContext *decl_ctx = (clang::DeclContext *)opaque_decl_ctx;
9528 if (llvm::isa<clang::ObjCMethodDecl>(decl_ctx)) {
9529 return true;
9530 } else if (llvm::isa<clang::CXXMethodDecl>(decl_ctx)) {
9531 return true;
9532 } else if (clang::FunctionDecl *fun_decl =
9533 llvm::dyn_cast<clang::FunctionDecl>(decl_ctx)) {
9534 if (std::optional<ClangASTMetadata> metadata = GetMetadata(fun_decl))
9535 return metadata->HasObjectPtr();
9536 }
9537
9538 return false;
9539}
9540
9541std::vector<lldb_private::CompilerContext>
9543 auto *decl_ctx = (clang::DeclContext *)opaque_decl_ctx;
9544 std::vector<lldb_private::CompilerContext> context;
9545 InsertCompilerContext(this, decl_ctx, context);
9546 return context;
9547}
9548
9550 void *opaque_decl_ctx, void *other_opaque_decl_ctx) {
9551 auto *decl_ctx = (clang::DeclContext *)opaque_decl_ctx;
9552 auto *other = (clang::DeclContext *)other_opaque_decl_ctx;
9553
9554 // If we have an inline or anonymous namespace, then the lookup of the
9555 // parent context also includes those namespace contents.
9556 auto is_transparent_lookup_allowed = [](clang::DeclContext *DC) {
9557 if (DC->isInlineNamespace())
9558 return true;
9559
9560 if (auto const *NS = dyn_cast<NamespaceDecl>(DC))
9561 return NS->isAnonymousNamespace();
9562
9563 return false;
9564 };
9565
9566 do {
9567 // A decl context always includes its own contents in its lookup.
9568 if (decl_ctx == other)
9569 return true;
9570 } while (is_transparent_lookup_allowed(other) &&
9571 (other = other->getParent()));
9572
9573 return false;
9574}
9575
9578 if (!opaque_decl_ctx)
9579 return eLanguageTypeUnknown;
9580
9581 auto *decl_ctx = (clang::DeclContext *)opaque_decl_ctx;
9582 if (llvm::isa<clang::ObjCMethodDecl>(decl_ctx)) {
9583 return eLanguageTypeObjC;
9584 } else if (llvm::isa<clang::CXXMethodDecl>(decl_ctx)) {
9586 } else if (auto *fun_decl = llvm::dyn_cast<clang::FunctionDecl>(decl_ctx)) {
9587 if (std::optional<ClangASTMetadata> metadata = GetMetadata(fun_decl))
9588 return metadata->GetObjectPtrLanguage();
9589 }
9590
9591 return eLanguageTypeUnknown;
9592}
9593
9595 return dc.IsValid() && isa<TypeSystemClang>(dc.GetTypeSystem());
9596}
9597
9598clang::DeclContext *
9600 if (IsClangDeclContext(dc))
9601 return (clang::DeclContext *)dc.GetOpaqueDeclContext();
9602 return nullptr;
9603}
9604
9605ObjCMethodDecl *
9607 if (IsClangDeclContext(dc))
9608 return llvm::dyn_cast<clang::ObjCMethodDecl>(
9609 (clang::DeclContext *)dc.GetOpaqueDeclContext());
9610 return nullptr;
9611}
9612
9613CXXMethodDecl *
9615 if (IsClangDeclContext(dc))
9616 return llvm::dyn_cast<clang::CXXMethodDecl>(
9617 (clang::DeclContext *)dc.GetOpaqueDeclContext());
9618 return nullptr;
9619}
9620
9621clang::FunctionDecl *
9623 if (IsClangDeclContext(dc))
9624 return llvm::dyn_cast<clang::FunctionDecl>(
9625 (clang::DeclContext *)dc.GetOpaqueDeclContext());
9626 return nullptr;
9627}
9628
9629clang::NamespaceDecl *
9631 if (IsClangDeclContext(dc))
9632 return llvm::dyn_cast<clang::NamespaceDecl>(
9633 (clang::DeclContext *)dc.GetOpaqueDeclContext());
9634 return nullptr;
9635}
9636
9637std::optional<ClangASTMetadata>
9639 const Decl *object) {
9640 TypeSystemClang *ast = llvm::cast<TypeSystemClang>(dc.GetTypeSystem());
9641 return ast->GetMetadata(object);
9642}
9643
9644clang::ASTContext *
9646 TypeSystemClang *ast =
9647 llvm::dyn_cast_or_null<TypeSystemClang>(dc.GetTypeSystem());
9648 if (ast)
9649 return &ast->getASTContext();
9650 return nullptr;
9651}
9652
9654 // Technically, enums can be incomplete too, but we don't handle those as they
9655 // are emitted even under -flimit-debug-info.
9658 return;
9659
9660 if (type.GetCompleteType())
9661 return;
9662
9663 // No complete definition in this module. Mark the class as complete to
9664 // satisfy local ast invariants, but make a note of the fact that
9665 // it is not _really_ complete so we can later search for a definition in a
9666 // different module.
9667 // Since we provide layout assistance, layouts of types containing this class
9668 // will be correct even if we are not able to find the definition elsewhere.
9670 lldbassert(started && "Unable to start a class type definition.");
9672 const clang::TagDecl *td = ClangUtil::GetAsTagDecl(type);
9673 auto ts = type.GetTypeSystem<TypeSystemClang>();
9674 if (ts)
9675 ts->SetDeclIsForcefullyCompleted(td);
9676}
9677
9678namespace {
9679/// A specialized scratch AST used within ScratchTypeSystemClang.
9680/// These are the ASTs backing the different IsolatedASTKinds. They behave
9681/// like a normal ScratchTypeSystemClang but they don't own their own
9682/// persistent storage or target reference.
9683class SpecializedScratchAST : public TypeSystemClang {
9684public:
9685 /// \param name The display name of the TypeSystemClang instance.
9686 /// \param triple The triple used for the TypeSystemClang instance.
9687 /// \param ast_source The ClangASTSource that should be used to complete
9688 /// type information.
9689 SpecializedScratchAST(llvm::StringRef name, llvm::Triple triple,
9690 std::unique_ptr<ClangASTSource> ast_source)
9691 : TypeSystemClang(name, triple),
9692 m_scratch_ast_source_up(std::move(ast_source)) {
9693 // Setup the ClangASTSource to complete this AST.
9694 m_scratch_ast_source_up->InstallASTContext(*this);
9695 llvm::IntrusiveRefCntPtr<clang::ExternalASTSource> proxy_ast_source =
9696 m_scratch_ast_source_up->CreateProxy();
9697 SetExternalSource(proxy_ast_source);
9698 }
9699
9700 /// The ExternalASTSource that performs lookups and completes types.
9701 std::unique_ptr<ClangASTSource> m_scratch_ast_source_up;
9702};
9703} // namespace
9704
9706const std::nullopt_t ScratchTypeSystemClang::DefaultAST = std::nullopt;
9707
9709 llvm::Triple triple)
9710 : TypeSystemClang("scratch ASTContext", triple), m_triple(triple),
9711 m_target_wp(target.shared_from_this()),
9713 new ClangPersistentVariables(target.shared_from_this())) {
9715 m_scratch_ast_source_up->InstallASTContext(*this);
9716 llvm::IntrusiveRefCntPtr<clang::ExternalASTSource> proxy_ast_source =
9717 m_scratch_ast_source_up->CreateProxy();
9718 SetExternalSource(proxy_ast_source);
9719}
9720
9725
9728 std::optional<IsolatedASTKind> ast_kind,
9729 bool create_on_demand) {
9730 auto type_system_or_err = target.GetScratchTypeSystemForLanguage(
9731 lldb::eLanguageTypeC, create_on_demand);
9732 if (auto err = type_system_or_err.takeError()) {
9733 LLDB_LOG_ERROR(GetLog(LLDBLog::Target), std::move(err),
9734 "Couldn't get scratch TypeSystemClang: {0}");
9735 return nullptr;
9736 }
9737 auto ts_sp = *type_system_or_err;
9738 ScratchTypeSystemClang *scratch_ast =
9739 llvm::dyn_cast_or_null<ScratchTypeSystemClang>(ts_sp.get());
9740 if (!scratch_ast)
9741 return nullptr;
9742 // If no dedicated sub-AST was requested, just return the main AST.
9743 if (ast_kind == DefaultAST)
9744 return std::static_pointer_cast<TypeSystemClang>(ts_sp);
9745 // Search the sub-ASTs.
9746 return std::static_pointer_cast<TypeSystemClang>(
9747 scratch_ast->GetIsolatedAST(*ast_kind).shared_from_this());
9748}
9749
9750/// Returns a human-readable name that uniquely identifiers the sub-AST kind.
9751static llvm::StringRef
9753 switch (kind) {
9755 return "C++ modules";
9756 }
9757 llvm_unreachable("Unimplemented IsolatedASTKind?");
9758}
9759
9760void ScratchTypeSystemClang::Dump(llvm::raw_ostream &output,
9761 llvm::StringRef filter, bool show_color) {
9762 // First dump the main scratch AST.
9763 output << "State of scratch Clang type system:\n";
9764 TypeSystemClang::Dump(output, filter, show_color);
9765
9766 // Now sort the isolated sub-ASTs.
9767 typedef std::pair<IsolatedASTKey, TypeSystem *> KeyAndTS;
9768 std::vector<KeyAndTS> sorted_typesystems;
9769 for (const auto &a : m_isolated_asts)
9770 sorted_typesystems.emplace_back(a.first, a.second.get());
9771 llvm::stable_sort(sorted_typesystems, llvm::less_first());
9772
9773 // Dump each sub-AST too.
9774 for (const auto &a : sorted_typesystems) {
9775 IsolatedASTKind kind =
9776 static_cast<ScratchTypeSystemClang::IsolatedASTKind>(a.first);
9777 output << "State of scratch Clang type subsystem "
9778 << GetNameForIsolatedASTKind(kind) << ":\n";
9779 a.second->Dump(output, filter, show_color);
9780 }
9781}
9782
9784 llvm::StringRef expr, llvm::StringRef prefix, SourceLanguage language,
9785 Expression::ResultType desired_type,
9786 const EvaluateExpressionOptions &options, ValueObject *ctx_obj) {
9787 TargetSP target_sp = m_target_wp.lock();
9788 if (!target_sp)
9789 return nullptr;
9790
9791 return new ClangUserExpression(*target_sp.get(), expr, prefix, language,
9792 desired_type, options, ctx_obj);
9793}
9794
9796 const CompilerType &return_type, const Address &function_address,
9797 const ValueList &arg_value_list, const char *name) {
9798 TargetSP target_sp = m_target_wp.lock();
9799 if (!target_sp)
9800 return nullptr;
9801
9802 Process *process = target_sp->GetProcessSP().get();
9803 if (!process)
9804 return nullptr;
9805
9806 return new ClangFunctionCaller(*process, return_type, function_address,
9807 arg_value_list, name);
9808}
9809
9810std::unique_ptr<UtilityFunction>
9812 std::string name) {
9813 TargetSP target_sp = m_target_wp.lock();
9814 if (!target_sp)
9815 return {};
9816
9817 return std::make_unique<ClangUtilityFunction>(
9818 *target_sp.get(), std::move(text), std::move(name),
9819 target_sp->GetDebugUtilityExpression());
9820}
9821
9826
9828 ClangASTImporter &importer) {
9829 // Remove it as a source from the main AST.
9830 importer.ForgetSource(&getASTContext(), src_ctx);
9831 // Remove it as a source from all created sub-ASTs.
9832 for (const auto &a : m_isolated_asts)
9833 importer.ForgetSource(&a.second->getASTContext(), src_ctx);
9834}
9835
9836std::unique_ptr<ClangASTSource> ScratchTypeSystemClang::CreateASTSource() {
9837 return std::make_unique<ClangASTSource>(
9838 m_target_wp.lock()->shared_from_this(),
9839 m_persistent_variables->GetClangASTImporter());
9840}
9841
9842static llvm::StringRef
9844 switch (feature) {
9846 return "scratch ASTContext for C++ module types";
9847 }
9848 llvm_unreachable("Unimplemented ASTFeature kind?");
9849}
9850
9853 auto found_ast = m_isolated_asts.find(feature);
9854 if (found_ast != m_isolated_asts.end())
9855 return *found_ast->second;
9856
9857 // Couldn't find the requested sub-AST, so create it now.
9858 std::shared_ptr<TypeSystemClang> new_ast_sp =
9859 std::make_shared<SpecializedScratchAST>(GetSpecializedASTName(feature),
9861 m_isolated_asts.insert({feature, new_ast_sp});
9862 return *new_ast_sp;
9863}
9864
9866 if (type) {
9867 clang::QualType qual_type(GetQualType(type));
9868 const clang::RecordType *record_type =
9869 llvm::dyn_cast<clang::RecordType>(qual_type.getTypePtr());
9870 if (record_type) {
9871 const clang::RecordDecl *record_decl =
9872 record_type->getDecl()->getDefinitionOrSelf();
9873 if (std::optional<ClangASTMetadata> metadata = GetMetadata(record_decl))
9874 return metadata->IsForcefullyCompleted();
9875 }
9876 }
9877 return false;
9878}
9879
9881 if (td == nullptr)
9882 return false;
9883 std::optional<ClangASTMetadata> metadata = GetMetadata(td);
9884 if (!metadata)
9885 return false;
9887 metadata->SetIsForcefullyCompleted();
9888 SetMetadata(td, *metadata);
9889
9890 return true;
9891}
9892
9894 if (auto *log = GetLog(LLDBLog::Expressions))
9895 LLDB_LOG(log, "Created new TypeSystem for (ASTContext*){0:x} '{1}'",
9897}
#define lldbassert(x)
Definition LLDBAssert.h:16
#define LLDB_LOG(log,...)
The LLDB_LOG* macros defined below are the way to emit log messages.
Definition Log.h:375
#define LLDB_LOGF(log,...)
Definition Log.h:389
#define LLDB_LOG_ERROR(log, error,...)
Definition Log.h:405
#define LLDB_PLUGIN_DEFINE(PluginName)
static bool DumpEnumValue(const clang::QualType &qual_type, Stream &s, const DataExtractor &data, lldb::offset_t byte_offset, size_t byte_size, uint32_t bitfield_bit_offset, uint32_t bitfield_bit_size)
static lldb::opaque_compiler_type_t GetObjCFieldAtIndex(clang::ASTContext *ast, clang::ObjCInterfaceDecl *class_interface_decl, size_t idx, std::string &name, uint64_t *bit_offset_ptr, uint32_t *bitfield_bit_size_ptr, bool *is_bitfield_ptr)
static void ParseLangArgs(LangOptions &Opts, ArchSpec arch)
static const clang::EnumType * GetCompleteEnumType(const clang::ASTContext *ast, clang::QualType qual_type)
Returns the clang::EnumType of the specified qual_type.
static clang::QualType GetFullyUnqualifiedType_Impl(clang::ASTContext *ast, clang::QualType qual_type)
const TemplateArgument * GetNthTemplateArgument(const clang::ClassTemplateSpecializationDecl *decl, size_t idx, bool expand_pack)
static int64_t ReadVBaseOffsetFromVTable(Process &process, VTableContextBase &vtable_ctx, lldb::addr_t vtable_ptr, const CXXRecordDecl *cxx_record_decl, const CXXRecordDecl *base_class_decl)
lldb_private::ThreadSafeDenseMap< clang::ASTContext *, TypeSystemClang * > ClangASTMap
static bool IsClangDeclContext(const CompilerDeclContext &dc)
static bool TemplateParameterAllowsValue(NamedDecl *param, const TemplateArgument &value)
Returns true if the given template parameter can represent the given value.
static CompilerContextKind GetCompilerKind(clang::Decl::Kind clang_kind, clang::DeclContext const *decl_ctx)
static QualType RemoveWrappingTypes(QualType type, ArrayRef< clang::Type::TypeClass > mask={})
Aggressively desugar the provided type, skipping past various kinds of syntactic sugar and other cons...
static TemplateParameterList * CreateTemplateParameterList(ASTContext &ast, const TypeSystemClang::TemplateParameterInfos &template_param_infos, llvm::SmallVector< NamedDecl *, 8 > &template_param_decls)
clang::DeclContext * FindLCABetweenDecls(clang::DeclContext *left, clang::DeclContext *right, clang::DeclContext *root)
static const clang::RecordType * GetCompleteRecordType(const clang::ASTContext *ast, clang::QualType qual_type)
Returns the clang::RecordType of the specified qual_type.
static bool check_op_param(bool is_method, clang::OverloadedOperatorKind op_kind, bool unary, bool binary, uint32_t num_params)
static llvm::StringRef GetSpecializedASTName(ScratchTypeSystemClang::IsolatedASTKind feature)
static bool ObjCDeclHasIVars(clang::ObjCInterfaceDecl *class_interface_decl)
static lldb::addr_t GetVTableAddress(Process &process, VTableContextBase &vtable_ctx, ValueObject &valobj, const ASTRecordLayout &record_layout)
static std::optional< SymbolFile::ArrayInfo > GetDynamicArrayInfo(TypeSystemClang &ast, SymbolFile *sym_file, clang::QualType qual_type, const ExecutionContext *exe_ctx)
static ConstString ExtractMangledNameFromFunctionCallLabel(llvm::StringRef label)
static bool GetCompleteQualType(const clang::ASTContext *ast, clang::QualType qual_type)
static llvm::StringRef GetNameForIsolatedASTKind(ScratchTypeSystemClang::IsolatedASTKind kind)
Returns a human-readable name that uniquely identifiers the sub-AST kind.
static void InsertCompilerContext(TypeSystemClang *ts, clang::DeclContext *decl_ctx, std::vector< lldb_private::CompilerContext > &context)
static bool GetVBaseBitOffset(VTableContextBase &vtable_ctx, ValueObject &valobj, const ASTRecordLayout &record_layout, const CXXRecordDecl *cxx_record_decl, const CXXRecordDecl *base_class_decl, int32_t &bit_offset)
static bool QualTypeMatchesBitSize(const uint64_t bit_size, ASTContext &ast, QualType qual_type)
static ClangASTMap & GetASTMap()
static void SetMemberOwningModule(clang::Decl *member, const clang::Decl *parent)
static bool ClassTemplateAllowsToInstantiationArgs(ClassTemplateDecl *class_template_decl, const TypeSystemClang::TemplateParameterInfos &instantiation_values)
Returns true if the given class template declaration could produce an instantiation with the specifie...
static const clang::ObjCObjectType * GetCompleteObjCObjectType(const clang::ASTContext *ast, QualType qual_type)
Returns the clang::ObjCObjectType of the specified qual_type.
#define LLDB_INVALID_DECL_LEVEL
void HandleDiagnostic(DiagnosticsEngine::Level DiagLevel, const clang::Diagnostic &info) override
DiagnosticConsumer * clone(DiagnosticsEngine &Diags) const
A section + offset based address class.
Definition Address.h:62
An architecture specification class.
Definition ArchSpec.h:32
bool IsValid() const
Tests if this ArchSpec is valid.
Definition ArchSpec.h:455
llvm::Triple & GetTriple()
Architecture triple accessor.
Definition ArchSpec.h:547
bool CharIsSignedByDefault() const
Returns true if 'char' is a signed type by default in the architecture false otherwise.
Definition ArchSpec.cpp:915
A command line argument class.
Definition Args.h:33
size_t GetArgumentCount() const
Gets the number of arguments left in this command object.
Definition Args.h:120
const char * GetArgumentAtIndex(size_t idx) const
Gets the null-terminated C string argument pointer for the argument at index idx.
Definition Args.cpp:273
Manages and observes all Clang AST node importing in LLDB.
bool LayoutRecordType(const clang::RecordDecl *record_decl, uint64_t &bit_size, uint64_t &alignment, llvm::DenseMap< const clang::FieldDecl *, uint64_t > &field_offsets, llvm::DenseMap< const clang::CXXRecordDecl *, clang::CharUnits > &base_offsets, llvm::DenseMap< const clang::CXXRecordDecl *, clang::CharUnits > &vbase_offsets)
void ForgetSource(clang::ASTContext *dst_ctx, clang::ASTContext *src_ctx)
void SetUserID(lldb::user_id_t user_id)
"lldb/Expression/ClangFunctionCaller.h" Encapsulates a function that can be called.
"lldb/Expression/ClangPersistentVariables.h" Manages persistent values that need to be preserved betw...
"lldb/Expression/ClangUserExpression.h" Encapsulates a single expression for use with Clang
CommandObject * GetCommandObjectForCommand(llvm::StringRef &command_line)
void AppendError(llvm::StringRef in_string)
void SetStatus(lldb::ReturnStatus status)
void AppendErrorWithFormat(const char *format,...) __attribute__((format(printf
Represents a generic declaration context in a program.
Represents a generic declaration such as a function declaration.
Generic representation of a type in a programming language.
lldb::LanguageType GetMinimumLanguage()
bool IsEnumerationType(bool &is_signed) const
TypeSystemSPWrapper GetTypeSystem() const
Accessors.
void SetCompilerType(lldb::TypeSystemWP type_system, lldb::opaque_compiler_type_t type)
size_t GetIndexOfChildMemberWithName(llvm::StringRef name, bool omit_empty_base_classes, std::vector< uint32_t > &child_indexes) const
Lookup a child member given a name.
CompilerType GetPointerType() const
Return a new CompilerType that is a pointer to this type.
llvm::Expected< uint64_t > GetByteSize(ExecutionContextScope *exe_scope) const
Return the size of the type in bytes.
lldb::opaque_compiler_type_t GetOpaqueQualType() const
lldb::Encoding GetEncoding() const
uint32_t GetNumDirectBaseClasses() const
ConstString GetTypeName(bool BaseOnly=false) const
bool IsEnumerationIntegerTypeSigned() const
bool DumpTypeValue(Stream *s, lldb::Format format, const DataExtractor &data, lldb::offset_t data_offset, size_t data_byte_size, uint32_t bitfield_bit_size, uint32_t bitfield_bit_offset, ExecutionContextScope *exe_scope)
lldb::Format GetFormat() const
llvm::Expected< CompilerType > GetChildCompilerTypeAtIndex(ExecutionContext *exe_ctx, size_t idx, bool transparent_pointers, bool omit_empty_base_classes, bool ignore_array_bounds, std::string &child_name, uint32_t &child_byte_size, int32_t &child_byte_offset, uint32_t &child_bitfield_bit_size, uint32_t &child_bitfield_bit_offset, bool &child_is_base_class, bool &child_is_deref_of_parent, ValueObject *valobj, uint64_t &language_flags) const
CompilerType GetDirectBaseClassAtIndex(size_t idx, uint32_t *bit_offset_ptr) const
bool GetCompleteType() const
Type Completion.
uint32_t GetTypeInfo(CompilerType *pointee_or_element_compiler_type=nullptr) const
llvm::Expected< uint32_t > GetIndexOfChildWithName(llvm::StringRef name, bool omit_empty_base_classes) const
Lookup a child given a name.
llvm::Expected< uint32_t > GetNumChildren(bool omit_empty_base_classes, const ExecutionContext *exe_ctx) const
llvm::Expected< uint64_t > GetBitSize(ExecutionContextScope *exe_scope) const
Return the size of the type in bits.
A uniqued constant string class.
Definition ConstString.h:40
llvm::StringRef GetStringRef() const
Get the string value as a llvm::StringRef.
const char * GetCString() const
Get the string value as a C string.
const char * AsCString(const char *value_if_empty) const
Get the string value as a C string.
An data extractor class.
uint64_t GetAddress(lldb::offset_t *offset_ptr) const
Extract an address from *offset_ptr.
uint64_t GetMaxU64Bitfield(lldb::offset_t *offset_ptr, size_t size, uint32_t bitfield_bit_size, uint32_t bitfield_bit_offset) const
Extract an unsigned integer of size byte_size from *offset_ptr, then extract the bitfield from this v...
uint32_t GetAddressByteSize() const
Get the current address size.
int64_t GetMaxS64Bitfield(lldb::offset_t *offset_ptr, size_t size, uint32_t bitfield_bit_size, uint32_t bitfield_bit_offset) const
Extract an signed integer of size size from *offset_ptr, then extract and sign-extend the bitfield fr...
A class to manage flag bits.
Definition Debugger.h:101
CommandInterpreter & GetCommandInterpreter()
Definition Debugger.h:183
static void ReportWarning(std::string message, std::optional< lldb::user_id_t > debugger_id=std::nullopt, std::once_flag *once=nullptr)
Report warning events.
A class that describes the declaration location of a lldb object.
Definition Declaration.h:24
"lldb/Target/ExecutionContextScope.h" Inherit from this if your object can reconstruct its execution ...
"lldb/Target/ExecutionContext.h" A class that contains an execution context.
ExecutionContextScope * GetBestExecutionContextScope() const
Process * GetProcessPtr() const
Returns a pointer to the process object.
A file utility class.
Definition FileSpec.h:56
llvm::StringRef GetFileNameExtension() const
Extract the extension of the file.
Definition FileSpec.cpp:410
static FileSystem & Instance()
A class to manage flags.
Definition Flags.h:22
bool Test(ValueType bit) const
Test a single flag bit.
Definition Flags.h:96
bool AnySet(ValueType mask) const
Test one or more flags.
Definition Flags.h:90
Encapsulates a function that can be called.
static bool LanguageIsC(lldb::LanguageType language)
Definition Language.cpp:367
static bool LanguageIsCPlusPlus(lldb::LanguageType language)
Definition Language.cpp:342
static bool LanguageIsPascal(lldb::LanguageType language)
Definition Language.cpp:413
static bool LanguageIsObjC(lldb::LanguageType language)
Definition Language.cpp:357
static bool IsMangledName(llvm::StringRef name)
Definition Mangled.cpp:40
bool SetClangModulesCachePath(const FileSpec &path)
static ModuleListProperties & GetGlobalModuleListProperties()
A class that describes an executable image and its associated object and symbol files.
Definition Module.h:91
virtual size_t GetByteOffsetForIvar(CompilerType &parent_qual_type, const char *ivar_name)
static ObjCLanguageRuntime * Get(Process &process)
static bool RegisterPlugin(llvm::StringRef name, llvm::StringRef description, ABICreateInstance create_callback)
static bool UnregisterPlugin(ABICreateInstance create_callback)
A plug-in interface definition class for debugging a process.
Definition Process.h:369
int64_t ReadSignedIntegerFromMemory(lldb::addr_t load_addr, size_t byte_size, int64_t fail_value, Status &error)
Definition Process.cpp:2539
llvm::Expected< lldb::addr_t > ReadPointerFromMemory(lldb::addr_t vm_addr)
Definition Process.cpp:2550
uint32_t GetAddressByteSize() const
Definition Process.cpp:3953
void Finalize() override
Free up any resources associated with this TypeSystem.
static lldb::TypeSystemClangSP GetForTarget(Target &target, std::optional< IsolatedASTKind > ast_kind=DefaultAST, bool create_on_demand=true)
Returns the scratch TypeSystemClang for the given target.
llvm::Triple m_triple
The target triple.
std::unique_ptr< ClangASTSource > CreateASTSource()
TypeSystemClang & GetIsolatedAST(IsolatedASTKind feature)
Returns the requested sub-AST.
UserExpression * GetUserExpression(llvm::StringRef expr, llvm::StringRef prefix, SourceLanguage language, Expression::ResultType desired_type, const EvaluateExpressionOptions &options, ValueObject *ctx_obj) override
std::unique_ptr< ClangASTSource > m_scratch_ast_source_up
The ExternalASTSource that performs lookups and completes minimally imported types.
IsolatedASTKind
The different kinds of isolated ASTs within the scratch TypeSystem.
@ CppModules
The isolated AST for declarations/types from expressions that imported type information from a C++ mo...
void Dump(llvm::raw_ostream &output, llvm::StringRef filter, bool show_color) override
std::unique_ptr< ClangPersistentVariables > m_persistent_variables
The persistent variables associated with this process for the expression parser.
static char ID
LLVM RTTI support.
PersistentExpressionState * GetPersistentExpressionState() override
FunctionCaller * GetFunctionCaller(const CompilerType &return_type, const Address &function_address, const ValueList &arg_value_list, const char *name) override
std::unique_ptr< UtilityFunction > CreateUtilityFunction(std::string text, std::string name) override
void ForgetSource(clang::ASTContext *src_ctx, ClangASTImporter &importer)
Unregisters the given ASTContext as a source from the scratch AST (and all sub-ASTs).
static const std::nullopt_t DefaultAST
Alias for requesting the default scratch TypeSystemClang in GetForTarget.
ScratchTypeSystemClang(Target &target, llvm::Triple triple)
llvm::DenseMap< IsolatedASTKey, std::shared_ptr< TypeSystemClang > > m_isolated_asts
Map from IsolatedASTKind to their actual TypeSystemClang instance.
An error handling class.
Definition Status.h:118
bool Fail() const
Test for error condition.
Definition Status.cpp:293
llvm::StringRef GetString() const
A stream class that can stream formatted output to a file.
Definition Stream.h:28
size_t Write(const void *src, size_t src_len)
Output character bytes to the stream.
Definition Stream.h:111
llvm::raw_ostream & AsRawOstream()
Returns a raw_ostream that forwards the data to this Stream object.
Definition Stream.h:405
size_t Printf(const char *format,...) __attribute__((format(printf
Output printf formatted output to the stream.
Definition Stream.cpp:134
size_t PutCString(llvm::StringRef cstr)
Output a C string to the stream.
Definition Stream.cpp:63
unsigned GetIndentLevel() const
Get the current indentation level.
Definition Stream.cpp:193
Provides public interface for all SymbolFiles.
Definition SymbolFile.h:51
virtual void ParseDeclsForContext(CompilerDeclContext decl_ctx)
Definition SymbolFile.h:238
virtual bool CompleteType(CompilerType &compiler_type)=0
virtual void GetTypes(lldb_private::SymbolContextScope *sc_scope, lldb::TypeClass type_mask, lldb_private::TypeList &type_list)=0
virtual std::optional< ArrayInfo > GetDynamicArrayInfoForUID(lldb::user_id_t type_uid, const lldb_private::ExecutionContext *exe_ctx)=0
If type_uid points to an array type, return its characteristics.
llvm::Expected< lldb::TypeSystemSP > GetScratchTypeSystemForLanguage(lldb::LanguageType language, bool create_on_demand=true)
Definition Target.cpp:2737
const ArchSpec & GetArchitecture() const
Definition Target.h:1321
void Insert(_KeyType k, _ValueType v)
uint32_t GetSize() const
Definition TypeList.cpp:36
lldb::TypeSP GetTypeAtIndex(uint32_t idx) const
Definition TypeList.cpp:42
The implementation of lldb::Type's m_payload field for TypeSystemClang.
void SetIsCompleteObjCClass(bool is_complete_objc_class)
Type::Payload m_payload
The payload is used for typedefs and ptrauth types.
void SetOwningModule(OptionalClangModuleID id)
static constexpr unsigned ObjCClassBit
llvm::ArrayRef< clang::TemplateArgument > GetParameterPackArgs() const
void SetParameterPack(std::unique_ptr< TemplateParameterInfos > args)
clang::TemplateArgument const & Front() const
TemplateParameterInfos const & GetParameterPack() const
llvm::ArrayRef< const char * > GetNames() const
llvm::ArrayRef< clang::TemplateArgument > GetArgs() const
A TypeSystem implementation based on Clang.
bool IsMemberFunctionPointerType(lldb::opaque_compiler_type_t type) override
clang::ClassTemplateDecl * CreateClassTemplateDecl(clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module, llvm::StringRef class_name, int kind, const TemplateParameterInfos &infos)
clang::ClassTemplateDecl * ParseClassTemplateDecl(clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module, const char *parent_name, int tag_decl_kind, const TypeSystemClang::TemplateParameterInfos &template_param_infos)
CompilerType GetTypeForIdentifier(const clang::ASTContext &Ctx, llvm::StringRef type_name, clang::DeclContext *decl_context=nullptr)
llvm::Expected< uint64_t > GetBitSize(lldb::opaque_compiler_type_t type, ExecutionContextScope *exe_scope) override
CompilerType CreateFunctionType(const CompilerType &result_type, llvm::ArrayRef< CompilerType > args, bool is_variadic, unsigned type_quals, clang::CallingConv cc=clang::CC_C, clang::RefQualifierKind ref_qual=clang::RQ_None)
size_t GetIndexOfChildMemberWithName(lldb::opaque_compiler_type_t type, llvm::StringRef name, bool omit_empty_base_classes, std::vector< uint32_t > &child_indexes) override
static clang::TypedefNameDecl * GetAsTypedefDecl(const CompilerType &type)
std::string GetTypeNameForDecl(const clang::NamedDecl *named_decl, bool qualified=true)
Returns the internal type name for the given NamedDecl using the type printing policy.
static clang::ObjCInterfaceDecl * GetAsObjCInterfaceDecl(const CompilerType &type)
bool DumpTypeValue(lldb::opaque_compiler_type_t type, Stream &s, lldb::Format format, const DataExtractor &data, lldb::offset_t data_offset, size_t data_byte_size, uint32_t bitfield_bit_size, uint32_t bitfield_bit_offset, ExecutionContextScope *exe_scope) override
std::string m_display_name
A string describing what this TypeSystemClang represents (e.g., AST for debug information,...
ConstString GetTypeName(lldb::opaque_compiler_type_t type, bool base_only) override
static void SetOwningModule(clang::Decl *decl, OptionalClangModuleID owning_module)
Set the owning module for decl.
llvm::Expected< uint64_t > GetObjCBitSize(clang::QualType qual_type, ExecutionContextScope *exe_scope)
std::unique_ptr< clang::TargetInfo > m_target_info_up
std::unique_ptr< clang::LangOptions > m_language_options_up
Scalar DeclGetConstantValue(void *opaque_decl) override
llvm::Expected< CompilerType > GetDereferencedType(lldb::opaque_compiler_type_t type, ExecutionContext *exe_ctx, std::string &deref_name, uint32_t &deref_byte_size, int32_t &deref_byte_offset, ValueObject *valobj, uint64_t &language_flags) override
bool BaseSpecifierIsEmpty(const clang::CXXBaseSpecifier *b)
static uint32_t GetNumPointeeChildren(clang::QualType type)
ConstString DeclGetMangledName(void *opaque_decl) override
CompilerType GetBasicType(lldb::BasicType type)
std::unique_ptr< clang::HeaderSearchOptions > m_header_search_opts_up
clang::UsingDecl * CreateUsingDeclaration(clang::DeclContext *current_decl_ctx, OptionalClangModuleID owning_module, clang::NamedDecl *target)
static clang::AccessSpecifier ConvertAccessTypeToAccessSpecifier(lldb::AccessType access)
CompilerType GetNonReferenceType(lldb::opaque_compiler_type_t type) override
bool IsForcefullyCompleted(lldb::opaque_compiler_type_t type) override
bool SupportsLanguage(lldb::LanguageType language) override
uint32_t GetNumDirectBaseClasses(lldb::opaque_compiler_type_t type) override
OptionalClangModuleID GetOrCreateClangModule(llvm::StringRef name, OptionalClangModuleID parent, bool is_framework=false, bool is_explicit=false)
Synthesize a clang::Module and return its ID or a default-constructed ID.
void CompleteTagDecl(clang::TagDecl *)
std::shared_ptr< clang::TargetOptions > & getTargetOptions()
static TypeSystemClang * GetASTContext(clang::ASTContext *ast_ctx)
bool IsReferenceType(lldb::opaque_compiler_type_t type, CompilerType *pointee_type, bool *is_rvalue) override
CompilerType GetBuiltinTypeForEncodingAndBitSize(lldb::Encoding encoding, size_t bit_size) override
TypeSystemClang(llvm::StringRef name, llvm::Triple triple)
Constructs a TypeSystemClang with an ASTContext using the given triple.
static lldb::TypeSystemSP CreateInstance(lldb::LanguageType language, Module *module, Target *target)
clang::TargetInfo * getTargetInfo()
clang::FunctionTemplateDecl * CreateFunctionTemplateDecl(clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module, clang::FunctionDecl *func_decl, const TemplateParameterInfos &infos)
CompilerType CreateArrayType(const CompilerType &element_type, std::optional< size_t > element_count, bool is_vector)
static bool AreTypesSame(CompilerType type1, CompilerType type2, bool ignore_qualifiers=false)
CompilerType GetArrayType(lldb::opaque_compiler_type_t type, uint64_t size) override
bool IsFunctionType(lldb::opaque_compiler_type_t type) override
CompilerType GetFunctionReturnType(lldb::opaque_compiler_type_t type) override
std::optional< ClangASTMetadata > GetMetadata(const clang::Decl *object)
CompilerType GetLValueReferenceType(lldb::opaque_compiler_type_t type) override
bool SetDeclIsForcefullyCompleted(const clang::TagDecl *td)
lldb::Format GetFormat(lldb::opaque_compiler_type_t type) override
bool CanPassInRegisters(const CompilerType &type) override
CompilerDecl GetStaticFieldWithName(lldb::opaque_compiler_type_t type, llvm::StringRef name) override
static clang::DeclContext * GetDeclContextForType(clang::QualType type)
bool IsEnumerationType(lldb::opaque_compiler_type_t type, bool &is_signed) override
bool IsTemplateType(lldb::opaque_compiler_type_t type) override
CompilerType GetTypeTemplateArgument(lldb::opaque_compiler_type_t type, size_t idx, bool expand_pack) override
static bool IsCXXClassType(const CompilerType &type)
bool IsIntegerType(lldb::opaque_compiler_type_t type, bool &is_signed) override
std::unique_ptr< npdb::PdbAstBuilderClang > m_native_pdb_ast_parser_up
uint32_t GetNumFields(lldb::opaque_compiler_type_t type) override
static bool IsOperator(llvm::StringRef name, clang::OverloadedOperatorKind &op_kind)
bool IsCharType(lldb::opaque_compiler_type_t type) override
CompilerType CreateStructForIdentifier(llvm::StringRef type_name, const std::initializer_list< std::pair< const char *, CompilerType > > &type_fields, bool packed=false)
static void SetFloatingInitializerForVariable(clang::VarDecl *var, const llvm::APFloat &init_value)
Initializes a variable with a floating point value.
uint32_t GetTypeInfo(lldb::opaque_compiler_type_t type, CompilerType *pointee_or_element_compiler_type) override
llvm::Expected< CompilerType > GetChildCompilerTypeAtIndex(lldb::opaque_compiler_type_t type, ExecutionContext *exe_ctx, size_t idx, bool transparent_pointers, bool omit_empty_base_classes, bool ignore_array_bounds, std::string &child_name, uint32_t &child_byte_size, int32_t &child_byte_offset, uint32_t &child_bitfield_bit_size, uint32_t &child_bitfield_bit_offset, bool &child_is_base_class, bool &child_is_deref_of_parent, ValueObject *valobj, uint64_t &language_flags) override
CompilerType GetType(clang::QualType qt)
Creates a CompilerType from the given QualType with the current TypeSystemClang instance as the Compi...
static clang::TagDecl * GetAsTagDecl(const CompilerType &type)
ConstString GetDisplayTypeName(lldb::opaque_compiler_type_t type) override
bool TransferBaseClasses(lldb::opaque_compiler_type_t type, std::vector< std::unique_ptr< clang::CXXBaseSpecifier > > bases)
bool IsBeingDefined(lldb::opaque_compiler_type_t type) override
CompilerType GetPromotedIntegerType(lldb::opaque_compiler_type_t type) override
ConstString DeclContextGetScopeQualifiedName(void *opaque_decl_ctx) override
std::unique_ptr< clang::IdentifierTable > m_identifier_table_up
static lldb::BasicType GetBasicTypeEnumeration(llvm::StringRef name)
static void SetIntegerInitializerForVariable(clang::VarDecl *var, const llvm::APInt &init_value)
Initializes a variable with an integer value.
bool IsPolymorphicClass(lldb::opaque_compiler_type_t type) override
CompilerType GetFieldAtIndex(lldb::opaque_compiler_type_t type, size_t idx, std::string &name, uint64_t *bit_offset_ptr, uint32_t *bitfield_bit_size_ptr, bool *is_bitfield_ptr) override
bool LayoutRecordType(const clang::RecordDecl *record_decl, uint64_t &size, uint64_t &alignment, llvm::DenseMap< const clang::FieldDecl *, uint64_t > &field_offsets, llvm::DenseMap< const clang::CXXRecordDecl *, clang::CharUnits > &base_offsets, llvm::DenseMap< const clang::CXXRecordDecl *, clang::CharUnits > &vbase_offsets)
bool IsScopedEnumerationType(lldb::opaque_compiler_type_t type) override
std::unique_ptr< clang::SourceManager > m_source_manager_up
bool IsVoidType(lldb::opaque_compiler_type_t type) override
static void SetIsPacked(const CompilerType &type)
void ForEachEnumerator(lldb::opaque_compiler_type_t type, std::function< bool(const CompilerType &integer_type, ConstString name, const llvm::APSInt &value)> const &callback) override
CompilerType CreateClassTemplateSpecializationType(clang::ClassTemplateSpecializationDecl *class_template_specialization_decl)
bool IsPointerType(lldb::opaque_compiler_type_t type, CompilerType *pointee_type) override
std::unique_ptr< clang::DiagnosticOptions > m_diagnostic_options_up
void CreateFunctionTemplateSpecializationInfo(clang::FunctionDecl *func_decl, clang::FunctionTemplateDecl *Template, const TemplateParameterInfos &infos)
clang::EnumConstantDecl * AddEnumerationValueToEnumerationType(const CompilerType &enum_type, const Declaration &decl, const char *name, uint64_t enum_value, uint32_t enum_value_bit_size)
llvm::StringRef getDisplayName() const
Returns the display name of this TypeSystemClang that indicates what purpose it serves in LLDB.
static clang::VarDecl * AddVariableToRecordType(const CompilerType &type, llvm::StringRef name, const CompilerType &var_type)
bool IsCStringType(lldb::opaque_compiler_type_t type, uint32_t &length)
CompilerType GetRValueReferenceType(lldb::opaque_compiler_type_t type) override
CompilerDecl GetCompilerDecl(clang::Decl *decl)
Creates a CompilerDecl from the given Decl with the current TypeSystemClang instance as its typesyste...
unsigned GetPtrAuthDiscriminator(lldb::opaque_compiler_type_t type) override
CompilerType GetPointeeType(lldb::opaque_compiler_type_t type) override
bool GetCompleteType(lldb::opaque_compiler_type_t type) override
bool IsBlockPointerType(lldb::opaque_compiler_type_t type, CompilerType *function_pointer_type_ptr) override
bool IsConst(lldb::opaque_compiler_type_t type) override
std::unique_ptr< clang::CXXBaseSpecifier > CreateBaseClassSpecifier(lldb::opaque_compiler_type_t type, lldb::AccessType access, bool is_virtual, bool base_of_class)
CompilerType GetEnumerationIntegerType(lldb::opaque_compiler_type_t type) override
std::vector< CompilerDecl > DeclContextFindDeclByName(void *opaque_decl_ctx, ConstString name, const bool ignore_using_decls) override
const llvm::fltSemantics & GetFloatTypeSemantics(size_t byte_size, lldb::Format format) override
bool IsFloatingPointType(lldb::opaque_compiler_type_t type) override
llvm::Expected< uint32_t > GetIndexOfChildWithName(lldb::opaque_compiler_type_t type, llvm::StringRef name, bool omit_empty_base_classes) override
uint32_t GetPointerByteSize() override
bool IsCompleteType(lldb::opaque_compiler_type_t type) override
CompilerType GetIntTypeFromBitSize(size_t bit_size, bool is_signed)
clang::MangleContext * getMangleContext()
void CompleteObjCInterfaceDecl(clang::ObjCInterfaceDecl *)
unsigned GetPtrAuthKey(lldb::opaque_compiler_type_t type) override
static void DumpDeclContextHiearchy(clang::DeclContext *decl_ctx)
CompilerDeclContext CreateDeclContext(clang::DeclContext *ctx)
Creates a CompilerDeclContext from the given DeclContext with the current TypeSystemClang instance as...
CompilerType GetTypeForFormatters(void *type) override
void SetMetadataAsUserID(const clang::Decl *decl, lldb::user_id_t user_id)
bool IsRuntimeGeneratedType(lldb::opaque_compiler_type_t type) override
This is used by swift.
static LanguageSet GetSupportedLanguagesForExpressions()
clang::FunctionDecl * CreateFunctionDeclaration(clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module, llvm::StringRef name, const CompilerType &function_Type, clang::StorageClass storage, bool is_inline, llvm::StringRef asm_label)
CompilerType GetTypedefedType(lldb::opaque_compiler_type_t type) override
CompilerDeclContext GetCompilerDeclContextForType(const CompilerType &type) override
Returns the direct parent context of specified type.
std::unique_ptr< clang::SelectorTable > m_selector_table_up
PDBASTParser * GetPDBParser() override
std::optional< CompilerType::IntegralTemplateArgument > GetIntegralTemplateArgument(lldb::opaque_compiler_type_t type, size_t idx, bool expand_pack) override
bool DeclContextIsClassMethod(void *opaque_decl_ctx) override
bool IsMemberDataPointerType(lldb::opaque_compiler_type_t type) override
void SetTargetTriple(llvm::StringRef target_triple)
CompilerType GetVirtualBaseClassAtIndex(lldb::opaque_compiler_type_t type, size_t idx, uint32_t *bit_offset_ptr) override
static bool CheckOverloadedOperatorKindParameterCount(bool is_method, clang::OverloadedOperatorKind op_kind, uint32_t num_params)
clang::DeclarationName GetDeclarationName(llvm::StringRef name, const CompilerType &function_clang_type)
DeclMetadataMap m_decl_metadata
Maps Decls to their associated ClangASTMetadata.
static clang::CXXMethodDecl * DeclContextGetAsCXXMethodDecl(const CompilerDeclContext &dc)
CompilerType GetFullyUnqualifiedType(lldb::opaque_compiler_type_t type) override
uint32_t CountDeclLevels(clang::DeclContext *frame_decl_ctx, clang::DeclContext *child_decl_ctx, ConstString *child_name=nullptr, CompilerType *child_type=nullptr)
bool HasPointerAuthQualifier(lldb::opaque_compiler_type_t type) override
static clang::QualType GetQualType(lldb::opaque_compiler_type_t type)
clang::PrintingPolicy GetTypePrintingPolicy()
Returns the PrintingPolicy used when generating the internal type names.
uint32_t GetNumVirtualBaseClasses(lldb::opaque_compiler_type_t type) override
static clang::RecordDecl * GetAsRecordDecl(const CompilerType &type)
CompilerType GetPointerSizedIntType(bool is_signed)
uint32_t GetNumBaseClasses(const clang::CXXRecordDecl *cxx_record_decl, bool omit_empty_base_classes)
lldb::LanguageType DeclContextGetLanguage(void *opaque_decl_ctx) override
std::unique_ptr< DWARFASTParserClang > m_dwarf_ast_parser_up
CompilerType GetBuiltinTypeForDWARFEncodingAndBitSize(llvm::StringRef type_name, uint32_t dw_ate, uint32_t bit_size)
lldb::Encoding GetEncoding(lldb::opaque_compiler_type_t type) override
bool IsFunctionPointerType(lldb::opaque_compiler_type_t type) override
int GetFunctionArgumentCount(lldb::opaque_compiler_type_t type) override
static void BuildIndirectFields(const CompilerType &type)
std::unique_ptr< clang::FileManager > m_file_manager_up
uint32_t GetIndexForRecordBase(const clang::RecordDecl *record_decl, const clang::CXXBaseSpecifier *base_spec, bool omit_empty_base_classes)
bool IsAnonymousType(lldb::opaque_compiler_type_t type) override
bool Verify(lldb::opaque_compiler_type_t type) override
Verify the integrity of the type to catch CompilerTypes that mix and match invalid TypeSystem/Opaque ...
size_t GetNumberOfFunctionArguments(lldb::opaque_compiler_type_t type) override
void AddMethodOverridesForCXXRecordType(lldb::opaque_compiler_type_t type)
CompilerType CreateBlockPointerType(const CompilerType &function_type)
lldb::LanguageType GetMinimumLanguage(lldb::opaque_compiler_type_t type) override
bool FieldIsBitfield(clang::FieldDecl *field, uint32_t &bitfield_bit_size)
clang::ClassTemplateSpecializationDecl * CreateClassTemplateSpecializationDecl(clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module, clang::ClassTemplateDecl *class_template_decl, int kind, const TemplateParameterInfos &infos)
llvm::SmallVector< clang::ParmVarDecl * > CreateParameterDeclarations(clang::FunctionDecl *context, const clang::FunctionProtoType &prototype, const llvm::SmallVector< llvm::StringRef > &param_names)
For each parameter type of prototype, creates a clang::ParmVarDecl whose clang::DeclContext is contex...
CompilerType CreateRecordType(clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module, llvm::StringRef name, int kind, lldb::LanguageType language, std::optional< ClangASTMetadata > metadata=std::nullopt, bool exports_symbols=false)
std::unique_ptr< clang::HeaderSearch > m_header_search_up
void Finalize() override
Free up any resources associated with this TypeSystem.
clang::CXXMethodDecl * AddMethodToCXXRecordType(lldb::opaque_compiler_type_t type, llvm::StringRef name, llvm::StringRef asm_label, const CompilerType &method_type, bool is_virtual, bool is_static, bool is_inline, bool is_explicit, bool is_attr_used, bool is_artificial)
static clang::ASTContext * DeclContextGetTypeSystemClang(const CompilerDeclContext &dc)
uint32_t IsHomogeneousAggregate(lldb::opaque_compiler_type_t type, CompilerType *base_type_ptr) override
LLVM_DUMP_METHOD void dump(lldb::opaque_compiler_type_t type) const override
Convenience LLVM-style dump method for use in the debugger only.
clang::NamespaceDecl * GetUniqueNamespaceDeclaration(const char *name, clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module, bool is_inline=false)
std::unique_ptr< clang::ASTContext > m_ast_up
CompilerType CreateGenericFunctionPrototype() override
static clang::QualType GetCanonicalQualType(lldb::opaque_compiler_type_t type)
CompilerType DeclGetFunctionReturnType(void *opaque_decl) override
CompilerType GetSizeType() override
static bool IsEnumType(lldb::opaque_compiler_type_t type)
static clang::CXXRecordDecl * GetAsCXXRecordDecl(lldb::opaque_compiler_type_t type)
CompilerType GetDirectNestedTypeWithName(lldb::opaque_compiler_type_t type, llvm::StringRef name) override
static bool SetObjCSuperClass(const CompilerType &type, const CompilerType &superclass_compiler_type)
clang::UsingDirectiveDecl * CreateUsingDirectiveDeclaration(clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module, clang::NamespaceDecl *ns_decl)
static lldb::opaque_compiler_type_t GetOpaqueCompilerType(clang::ASTContext *ast, lldb::BasicType basic_type)
bool IsArrayType(lldb::opaque_compiler_type_t type, CompilerType *element_type, uint64_t *size, bool *is_incomplete) override
static void DebuggerInitialize(Debugger &debugger)
void DumpFromSymbolFile(Stream &s, llvm::StringRef symbol_name)
Dump clang AST types from the symbol file.
CompilerType AddConstModifier(lldb::opaque_compiler_type_t type) override
static void DumpDeclHiearchy(clang::Decl *decl)
static clang::ObjCMethodDecl * DeclContextGetAsObjCMethodDecl(const CompilerDeclContext &dc)
static clang::FunctionDecl * DeclContextGetAsFunctionDecl(const CompilerDeclContext &dc)
bool IsScalarType(lldb::opaque_compiler_type_t type) override
bool GetPtrAuthAddressDiversity(lldb::opaque_compiler_type_t type) override
std::shared_ptr< clang::TargetOptions > m_target_options_rp
lldb::TypeClass GetTypeClass(lldb::opaque_compiler_type_t type) override
static bool IsClassType(lldb::opaque_compiler_type_t type)
bool IsDefined(lldb::opaque_compiler_type_t type) override
static bool IsObjCClassType(const CompilerType &type)
TypeMetadataMap m_type_metadata
Maps Types to their associated ClangASTMetadata.
CompilerType GetCanonicalType(lldb::opaque_compiler_type_t type) override
bool RecordHasFields(const clang::RecordDecl *record_decl)
CompilerType GetFunctionArgumentAtIndex(lldb::opaque_compiler_type_t type, const size_t index) override
static std::optional< ClangASTMetadata > DeclContextGetMetaData(const CompilerDeclContext &dc, const clang::Decl *object)
static bool CompleteTagDeclarationDefinition(const CompilerType &type)
unsigned GetTypeQualifiers(lldb::opaque_compiler_type_t type) override
CompilerType GetPointerDiffType(bool is_signed) override
static clang::ObjCMethodDecl * AddMethodToObjCObjectType(const CompilerType &type, const char *name, const CompilerType &method_compiler_type, bool is_artificial, bool is_variadic, bool is_objc_direct_call)
CompilerDeclContext DeclGetDeclContext(void *opaque_decl) override
bool DeclContextIsContainedInLookup(void *opaque_decl_ctx, void *other_opaque_decl_ctx) override
CompilerType AddPtrAuthModifier(lldb::opaque_compiler_type_t type, uint32_t payload) override
static bool AddObjCClassProperty(const CompilerType &type, const char *property_name, const CompilerType &property_compiler_type, clang::ObjCIvarDecl *ivar_decl, const char *property_setter_name, const char *property_getter_name, uint32_t property_attributes, ClangASTMetadata metadata)
static bool SetHasExternalStorage(lldb::opaque_compiler_type_t type, bool has_extern)
void SetMetadata(const clang::Decl *object, ClangASTMetadata meta_data)
clang::ParmVarDecl * CreateParameterDeclaration(clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module, const char *name, const CompilerType &param_type, int storage, bool add_decl=false)
void DumpTypeDescription(lldb::opaque_compiler_type_t type, lldb::DescriptionLevel level=lldb::eDescriptionLevelFull) override
Dump the type to stdout.
CompilerType GetFunctionArgumentTypeAtIndex(lldb::opaque_compiler_type_t type, size_t idx) override
static clang::NamespaceDecl * DeclContextGetAsNamespaceDecl(const CompilerDeclContext &dc)
CompilerType CreateEnumerationType(llvm::StringRef name, clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module, const Declaration &decl, const CompilerType &integer_qual_type, bool is_scoped, std::optional< clang::EnumExtensibilityAttr::Kind > enum_kind=std::nullopt)
npdb::PdbAstBuilder * GetNativePDBParser() override
std::unique_ptr< clang::DiagnosticConsumer > m_diagnostic_consumer_up
CompilerType CreateObjCClass(llvm::StringRef name, clang::DeclContext *decl_ctx, OptionalClangModuleID owning_module, bool isInternal, std::optional< ClangASTMetadata > metadata=std::nullopt)
CompilerType GetTypeForDecl(clang::NamedDecl *decl)
CompilerType GetDirectBaseClassAtIndex(lldb::opaque_compiler_type_t type, size_t idx, uint32_t *bit_offset_ptr) override
CompilerType GetArrayElementType(lldb::opaque_compiler_type_t type, ExecutionContextScope *exe_scope) override
static clang::DeclContext * DeclContextGetAsDeclContext(const CompilerDeclContext &dc)
bool IsTypedefType(lldb::opaque_compiler_type_t type) override
CompilerType GetPointerType(lldb::opaque_compiler_type_t type) override
std::optional< size_t > GetTypeBitAlign(lldb::opaque_compiler_type_t type, ExecutionContextScope *exe_scope) override
void Dump(llvm::raw_ostream &output, llvm::StringRef filter, bool show_color) override
std::unique_ptr< clang::Builtin::Context > m_builtins_up
CompilerType GetBuiltinTypeByName(ConstString name) override
bool GetCompleteDecl(clang::Decl *decl)
static bool StartTagDeclarationDefinition(const CompilerType &type)
uint32_t GetIndexForRecordChild(const clang::RecordDecl *record_decl, clang::NamedDecl *canonical_decl, bool omit_empty_base_classes)
bool IsPossibleDynamicType(lldb::opaque_compiler_type_t type, CompilerType *target_type, bool check_cplusplus, bool check_objc) override
static clang::FieldDecl * AddFieldToRecordType(const CompilerType &type, llvm::StringRef name, const CompilerType &field_type, uint32_t bitfield_bit_size)
CompilerType GetOrCreateStructForIdentifier(llvm::StringRef type_name, const std::initializer_list< std::pair< const char *, CompilerType > > &type_fields, bool packed=false)
void LogCreation() const
Emits information about this TypeSystem into the expression log.
static llvm::StringRef GetPluginNameStatic()
clang::Sema * m_sema
The sema associated that is currently used to build this ASTContext.
size_t GetNumMemberFunctions(lldb::opaque_compiler_type_t type) override
CompilerType GetBasicTypeFromAST(lldb::BasicType basic_type) override
const clang::ClassTemplateSpecializationDecl * GetAsTemplateSpecialization(lldb::opaque_compiler_type_t type)
std::unique_ptr< clang::MangleContext > m_mangle_ctx_up
TypeMemberFunctionImpl GetMemberFunctionAtIndex(lldb::opaque_compiler_type_t type, size_t idx) override
bool IsTypeImpl(lldb::opaque_compiler_type_t type, llvm::function_ref< bool(clang::QualType)> predicate) const
size_t DeclGetFunctionNumArguments(void *opaque_decl) override
CompilerType GetAtomicType(lldb::opaque_compiler_type_t type) override
std::unique_ptr< PDBASTParser > m_pdb_ast_parser_up
std::unique_ptr< clang::DiagnosticsEngine > m_diagnostics_engine_up
static std::optional< std::string > GetCXXClassName(const CompilerType &type)
static void DumpTypeName(const CompilerType &type)
plugin::dwarf::DWARFASTParser * GetDWARFParser() override
CompilerType DeclGetFunctionArgumentType(void *opaque_decl, size_t arg_idx) override
bool IsPointerOrReferenceType(lldb::opaque_compiler_type_t type, CompilerType *pointee_type) override
static clang::EnumDecl * GetAsEnumDecl(const CompilerType &type)
CompilerType AddVolatileModifier(lldb::opaque_compiler_type_t type) override
std::unique_ptr< clang::ModuleMap > m_module_map_up
static bool IsObjCObjectOrInterfaceType(const CompilerType &type)
static void RequireCompleteType(CompilerType type)
Complete a type from debug info, or mark it as forcefully completed if there is no definition of the ...
CompilerType CreateTypedef(lldb::opaque_compiler_type_t type, const char *name, const CompilerDeclContext &decl_ctx, uint32_t opaque_payload) override
Using the current type, create a new typedef to that type using "typedef_name" as the name and "decl_...
llvm::Expected< uint32_t > GetNumChildren(lldb::opaque_compiler_type_t type, bool omit_empty_base_classes, const ExecutionContext *exe_ctx) override
CompilerType AddRestrictModifier(lldb::opaque_compiler_type_t type) override
clang::TemplateTemplateParmDecl * CreateTemplateTemplateParmDecl(const char *template_name)
lldb::TemplateArgumentKind GetTemplateArgumentKind(lldb::opaque_compiler_type_t type, size_t idx, bool expand_pack) override
clang::ASTContext & getASTContext() const
Returns the clang::ASTContext instance managed by this TypeSystemClang.
std::vector< lldb_private::CompilerContext > DeclGetCompilerContext(void *opaque_decl) override
static CompilerType CreateMemberPointerType(const CompilerType &type, const CompilerType &pointee_type)
std::vector< lldb_private::CompilerContext > DeclContextGetCompilerContext(void *opaque_decl_ctx) override
void CreateASTContext()
Creates the internal ASTContext.
void SetExternalSource(llvm::IntrusiveRefCntPtr< clang::ExternalASTSource > ast_source_sp)
CompilerType GetCStringType(bool is_const)
bool IsAggregateType(lldb::opaque_compiler_type_t type) override
bool IsPromotableIntegerType(lldb::opaque_compiler_type_t type) override
static bool IsObjCObjectPointerType(const CompilerType &type, CompilerType *target_type=nullptr)
bool IsVectorType(lldb::opaque_compiler_type_t type, CompilerType *element_type, uint64_t *size) override
static LanguageSet GetSupportedLanguagesForTypes()
clang::VarDecl * CreateVariableDeclaration(clang::DeclContext *decl_context, OptionalClangModuleID owning_module, const char *name, clang::QualType type)
clang::BlockDecl * CreateBlockDeclaration(clang::DeclContext *ctx, OptionalClangModuleID owning_module)
ConstString DeclContextGetName(void *opaque_decl_ctx) override
size_t GetNumTemplateArguments(lldb::opaque_compiler_type_t type, bool expand_pack) override
ConstString DeclGetName(void *opaque_decl) override
SymbolFile * GetSymbolFile() const
Definition TypeSystem.h:562
bool m_has_forcefully_completed_types
Used for reporting statistics.
Definition TypeSystem.h:589
Encapsulates a one-time expression for use in lldb.
virtual uint64_t GetData(DataExtractor &data, Status &error)
virtual uint64_t GetValueAsUnsigned(uint64_t fail_value, bool *success=nullptr)
AddressType GetAddressTypeOfChildren()
CompilerType GetCompilerType()
ConstString GetName() const
const ExecutionContextRef & GetExecutionContextRef() const
#define INT32_MAX
#define LLDB_INVALID_ADDRESS
#define UINT32_MAX
#define LLDB_INVALID_IVAR_OFFSET
A class that represents a running process on the host machine.
Log * GetLog(Cat mask)
Retrieve the Log object for the channel associated with the given log enum.
Definition Log.h:338
lldb::offset_t DumpDataExtractor(const DataExtractor &DE, Stream *s, lldb::offset_t offset, lldb::Format item_format, size_t item_byte_size, size_t item_count, size_t num_per_line, uint64_t base_addr, uint32_t item_bit_size, uint32_t item_bit_offset, ExecutionContextScope *exe_scope=nullptr, bool show_memory_tags=false)
Dumps item_count objects into the stream s.
@ eAddressTypeLoad
Address is an address as in the current target inferior process.
std::shared_ptr< lldb_private::TypeSystem > TypeSystemSP
void * opaque_compiler_type_t
Definition lldb-types.h:91
DescriptionLevel
Description levels for "void GetDescription(Stream *, DescriptionLevel)" calls.
@ eDescriptionLevelVerbose
BasicType
Basic types enumeration for the public API SBType::GetBasicType().
@ eBasicTypeUnsignedShort
@ eBasicTypeSignedChar
@ eBasicTypeUnsignedInt128
@ eBasicTypeFloatComplex
@ eBasicTypeUnsignedWChar
@ eBasicTypeUnsignedLong
@ eBasicTypeLongDoubleComplex
@ eBasicTypeSignedWChar
@ eBasicTypeUnsignedChar
@ eBasicTypeUnsignedLongLong
@ eBasicTypeDoubleComplex
@ eBasicTypeLongDouble
@ eBasicTypeUnsignedInt
Format
Display format definitions.
@ eFormatCString
Null-terminated C strings.
@ eFormatCharArray
Print characters with no single quotes, used for character arrays that can contain non printable char...
@ eFormatVectorOfChar
@ eFormatVectorOfUInt64
@ eFormatVoid
Do not print this.
@ eFormatVectorOfSInt64
@ eFormatComplex
Floating point complex type.
@ eFormatBytesWithASCII
@ eFormatOSType
OS character codes encoded into an integer 'PICT' 'text' etc...
@ eFormatVectorOfUInt128
@ eFormatVectorOfUInt8
@ eFormatVectorOfFloat32
@ eFormatVectorOfSInt32
@ eFormatVectorOfSInt8
@ eFormatVectorOfUInt16
@ eFormatHexUppercase
@ eFormatVectorOfFloat64
@ eFormatCharPrintable
Only printable characters, '.' if not printable.
@ eFormatComplexInteger
Integer complex type.
@ eFormatVectorOfSInt16
@ eFormatFloat128
Disambiguate between 128-bit long double (which uses eFormatFloat) and __float128 (which uses eFormat...
@ eFormatVectorOfUInt32
uint64_t offset_t
Definition lldb-types.h:86
LanguageType
Programming language type.
@ eLanguageTypeC_plus_plus_20
ISO C++:2020.
@ eLanguageTypeC_plus_plus_14
ISO C++:2014.
@ eLanguageTypeC11
ISO C:2011.
@ eLanguageTypeC99
ISO C:1999.
@ eLanguageTypeC_plus_plus_03
ISO C++:2003.
@ eLanguageTypeUnknown
Unknown or invalid language value.
@ eLanguageTypeRust
Rust.
@ eLanguageTypeC_plus_plus_17
ISO C++:2017.
@ eLanguageTypeObjC_plus_plus
Objective-C++.
@ eLanguageTypeC_plus_plus_11
ISO C++:2011.
@ eLanguageTypeC89
ISO C:1989.
@ eLanguageTypeC
Non-standardized C, such as K&R.
@ eLanguageTypeD
D.
@ eLanguageTypeObjC
Objective-C.
@ eLanguageTypeC_plus_plus
ISO C++:1998.
@ eLanguageTypeDylan
Dylan.
std::shared_ptr< lldb_private::Type > TypeSP
@ eTemplateArgumentKindTemplate
@ eTemplateArgumentKindTemplateExpansion
@ eTemplateArgumentKindNull
@ eTemplateArgumentKindNullPtr
@ eTemplateArgumentKindDeclaration
@ eTemplateArgumentKindIntegral
@ eTemplateArgumentKindPack
@ eTemplateArgumentKindType
@ eTemplateArgumentKindStructuralValue
@ eTemplateArgumentKindExpression
Encoding
Register encoding definitions.
@ eEncodingIEEE754
float
@ eEncodingVector
vector registers
@ eEncodingUint
unsigned integer
@ eEncodingSint
signed integer
@ eReturnStatusSuccessFinishResult
MemberFunctionKind
Kind of member function.
@ eMemberFunctionKindInstanceMethod
A function that applies to a specific instance.
@ eMemberFunctionKindConstructor
A function used to create instances.
@ eMemberFunctionKindUnknown
Not sure what the type of this is.
@ eMemberFunctionKindDestructor
A function used to tear down existing instances.
@ eMemberFunctionKindStaticMethod
A function that applies to a type rather than any instance.
std::shared_ptr< lldb_private::TypeSystemClang > TypeSystemClangSP
uint64_t user_id_t
Definition lldb-types.h:83
uint64_t addr_t
Definition lldb-types.h:80
std::shared_ptr< lldb_private::Target > TargetSP
static clang::QualType GetQualType(const CompilerType &ct)
Definition ClangUtil.cpp:36
static clang::QualType GetCanonicalQualType(const CompilerType &ct)
Definition ClangUtil.cpp:44
static bool IsClangType(const CompilerType &ct)
Definition ClangUtil.cpp:17
static CompilerType RemoveFastQualifiers(const CompilerType &ct)
Definition ClangUtil.cpp:51
static clang::TagDecl * GetAsTagDecl(const CompilerType &type)
Definition ClangUtil.cpp:60
static llvm::Expected< FunctionCallLabel > fromString(llvm::StringRef label)
Decodes the specified function label into a FunctionCallLabel.
A SmallBitVector that represents a set of source languages (lldb::LanguageType).
Definition Type.h:38
void Insert(lldb::LanguageType language)
A type-erased pair of llvm::dwarf::SourceLanguageName and version.