xref: /freebsd/contrib/llvm-project/clang/lib/CodeGen/CodeGenTypes.cpp (revision 700637cbb5e582861067a11aaca4d053546871d2)
1 //===--- CodeGenTypes.cpp - Type translation for LLVM CodeGen -------------===//
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 // This is the code that handles AST -> LLVM type lowering.
10 //
11 //===----------------------------------------------------------------------===//
12 
13 #include "CodeGenTypes.h"
14 #include "CGCXXABI.h"
15 #include "CGCall.h"
16 #include "CGDebugInfo.h"
17 #include "CGHLSLRuntime.h"
18 #include "CGOpenCLRuntime.h"
19 #include "CGRecordLayout.h"
20 #include "TargetInfo.h"
21 #include "clang/AST/ASTContext.h"
22 #include "clang/AST/DeclCXX.h"
23 #include "clang/AST/DeclObjC.h"
24 #include "clang/AST/Expr.h"
25 #include "clang/AST/RecordLayout.h"
26 #include "clang/CodeGen/CGFunctionInfo.h"
27 #include "llvm/IR/DataLayout.h"
28 #include "llvm/IR/DerivedTypes.h"
29 #include "llvm/IR/Module.h"
30 
31 using namespace clang;
32 using namespace CodeGen;
33 
CodeGenTypes(CodeGenModule & cgm)34 CodeGenTypes::CodeGenTypes(CodeGenModule &cgm)
35     : CGM(cgm), Context(cgm.getContext()), TheModule(cgm.getModule()),
36       Target(cgm.getTarget()) {
37   SkippedLayout = false;
38   LongDoubleReferenced = false;
39 }
40 
~CodeGenTypes()41 CodeGenTypes::~CodeGenTypes() {
42   for (llvm::FoldingSet<CGFunctionInfo>::iterator
43        I = FunctionInfos.begin(), E = FunctionInfos.end(); I != E; )
44     delete &*I++;
45 }
46 
getCXXABI() const47 CGCXXABI &CodeGenTypes::getCXXABI() const { return getCGM().getCXXABI(); }
48 
getCodeGenOpts() const49 const CodeGenOptions &CodeGenTypes::getCodeGenOpts() const {
50   return CGM.getCodeGenOpts();
51 }
52 
addRecordTypeName(const RecordDecl * RD,llvm::StructType * Ty,StringRef suffix)53 void CodeGenTypes::addRecordTypeName(const RecordDecl *RD,
54                                      llvm::StructType *Ty,
55                                      StringRef suffix) {
56   SmallString<256> TypeName;
57   llvm::raw_svector_ostream OS(TypeName);
58   OS << RD->getKindName() << '.';
59 
60   // FIXME: We probably want to make more tweaks to the printing policy. For
61   // example, we should probably enable PrintCanonicalTypes and
62   // FullyQualifiedNames.
63   PrintingPolicy Policy = RD->getASTContext().getPrintingPolicy();
64   Policy.SuppressInlineNamespace =
65       PrintingPolicy::SuppressInlineNamespaceMode::None;
66 
67   // Name the codegen type after the typedef name
68   // if there is no tag type name available
69   if (RD->getIdentifier()) {
70     // FIXME: We should not have to check for a null decl context here.
71     // Right now we do it because the implicit Obj-C decls don't have one.
72     if (RD->getDeclContext())
73       RD->printQualifiedName(OS, Policy);
74     else
75       RD->printName(OS, Policy);
76   } else if (const TypedefNameDecl *TDD = RD->getTypedefNameForAnonDecl()) {
77     // FIXME: We should not have to check for a null decl context here.
78     // Right now we do it because the implicit Obj-C decls don't have one.
79     if (TDD->getDeclContext())
80       TDD->printQualifiedName(OS, Policy);
81     else
82       TDD->printName(OS);
83   } else
84     OS << "anon";
85 
86   if (!suffix.empty())
87     OS << suffix;
88 
89   Ty->setName(OS.str());
90 }
91 
92 /// ConvertTypeForMem - Convert type T into a llvm::Type.  This differs from
93 /// ConvertType in that it is used to convert to the memory representation for
94 /// a type.  For example, the scalar representation for _Bool is i1, but the
95 /// memory representation is usually i8 or i32, depending on the target.
96 ///
97 /// We generally assume that the alloc size of this type under the LLVM
98 /// data layout is the same as the size of the AST type.  The alignment
99 /// does not have to match: Clang should always use explicit alignments
100 /// and packed structs as necessary to produce the layout it needs.
101 /// But the size does need to be exactly right or else things like struct
102 /// layout will break.
ConvertTypeForMem(QualType T)103 llvm::Type *CodeGenTypes::ConvertTypeForMem(QualType T) {
104   if (T->isConstantMatrixType()) {
105     const Type *Ty = Context.getCanonicalType(T).getTypePtr();
106     const ConstantMatrixType *MT = cast<ConstantMatrixType>(Ty);
107     return llvm::ArrayType::get(ConvertType(MT->getElementType()),
108                                 MT->getNumRows() * MT->getNumColumns());
109   }
110 
111   llvm::Type *R = ConvertType(T);
112 
113   // Check for the boolean vector case.
114   if (T->isExtVectorBoolType()) {
115     auto *FixedVT = cast<llvm::FixedVectorType>(R);
116 
117     if (Context.getLangOpts().HLSL) {
118       llvm::Type *IRElemTy = ConvertTypeForMem(Context.BoolTy);
119       return llvm::FixedVectorType::get(IRElemTy, FixedVT->getNumElements());
120     }
121 
122     // Pad to at least one byte.
123     uint64_t BytePadded = std::max<uint64_t>(FixedVT->getNumElements(), 8);
124     return llvm::IntegerType::get(FixedVT->getContext(), BytePadded);
125   }
126 
127   // If T is _Bool or a _BitInt type, ConvertType will produce an IR type
128   // with the exact semantic bit-width of the AST type; for example,
129   // _BitInt(17) will turn into i17. In memory, however, we need to store
130   // such values extended to their full storage size as decided by AST
131   // layout; this is an ABI requirement. Ideally, we would always use an
132   // integer type that's just the bit-size of the AST type; for example, if
133   // sizeof(_BitInt(17)) == 4, _BitInt(17) would turn into i32. That is what's
134   // returned by convertTypeForLoadStore. However, that type does not
135   // always satisfy the size requirement on memory representation types
136   // describe above. For example, a 32-bit platform might reasonably set
137   // sizeof(_BitInt(65)) == 12, but i96 is likely to have to have an alloc size
138   // of 16 bytes in the LLVM data layout. In these cases, we simply return
139   // a byte array of the appropriate size.
140   if (T->isBitIntType()) {
141     if (typeRequiresSplitIntoByteArray(T, R))
142       return llvm::ArrayType::get(CGM.Int8Ty,
143                                   Context.getTypeSizeInChars(T).getQuantity());
144     return llvm::IntegerType::get(getLLVMContext(),
145                                   (unsigned)Context.getTypeSize(T));
146   }
147 
148   if (R->isIntegerTy(1))
149     return llvm::IntegerType::get(getLLVMContext(),
150                                   (unsigned)Context.getTypeSize(T));
151 
152   // Else, don't map it.
153   return R;
154 }
155 
typeRequiresSplitIntoByteArray(QualType ASTTy,llvm::Type * LLVMTy)156 bool CodeGenTypes::typeRequiresSplitIntoByteArray(QualType ASTTy,
157                                                   llvm::Type *LLVMTy) {
158   if (!LLVMTy)
159     LLVMTy = ConvertType(ASTTy);
160 
161   CharUnits ASTSize = Context.getTypeSizeInChars(ASTTy);
162   CharUnits LLVMSize =
163       CharUnits::fromQuantity(getDataLayout().getTypeAllocSize(LLVMTy));
164   return ASTSize != LLVMSize;
165 }
166 
convertTypeForLoadStore(QualType T,llvm::Type * LLVMTy)167 llvm::Type *CodeGenTypes::convertTypeForLoadStore(QualType T,
168                                                   llvm::Type *LLVMTy) {
169   if (!LLVMTy)
170     LLVMTy = ConvertType(T);
171 
172   if (T->isBitIntType())
173     return llvm::Type::getIntNTy(
174         getLLVMContext(), Context.getTypeSizeInChars(T).getQuantity() * 8);
175 
176   if (LLVMTy->isIntegerTy(1))
177     return llvm::IntegerType::get(getLLVMContext(),
178                                   (unsigned)Context.getTypeSize(T));
179 
180   if (T->isExtVectorBoolType())
181     return ConvertTypeForMem(T);
182 
183   return LLVMTy;
184 }
185 
186 /// isRecordLayoutComplete - Return true if the specified type is already
187 /// completely laid out.
isRecordLayoutComplete(const Type * Ty) const188 bool CodeGenTypes::isRecordLayoutComplete(const Type *Ty) const {
189   llvm::DenseMap<const Type*, llvm::StructType *>::const_iterator I =
190   RecordDeclTypes.find(Ty);
191   return I != RecordDeclTypes.end() && !I->second->isOpaque();
192 }
193 
194 /// isFuncParamTypeConvertible - Return true if the specified type in a
195 /// function parameter or result position can be converted to an IR type at this
196 /// point. This boils down to being whether it is complete.
isFuncParamTypeConvertible(QualType Ty)197 bool CodeGenTypes::isFuncParamTypeConvertible(QualType Ty) {
198   // Some ABIs cannot have their member pointers represented in IR unless
199   // certain circumstances have been reached.
200   if (const auto *MPT = Ty->getAs<MemberPointerType>())
201     return getCXXABI().isMemberPointerConvertible(MPT);
202 
203   // If this isn't a tagged type, we can convert it!
204   const TagType *TT = Ty->getAs<TagType>();
205   if (!TT) return true;
206 
207   // Incomplete types cannot be converted.
208   return !TT->isIncompleteType();
209 }
210 
211 
212 /// Code to verify a given function type is complete, i.e. the return type
213 /// and all of the parameter types are complete.  Also check to see if we are in
214 /// a RS_StructPointer context, and if so whether any struct types have been
215 /// pended.  If so, we don't want to ask the ABI lowering code to handle a type
216 /// that cannot be converted to an IR type.
isFuncTypeConvertible(const FunctionType * FT)217 bool CodeGenTypes::isFuncTypeConvertible(const FunctionType *FT) {
218   if (!isFuncParamTypeConvertible(FT->getReturnType()))
219     return false;
220 
221   if (const FunctionProtoType *FPT = dyn_cast<FunctionProtoType>(FT))
222     for (unsigned i = 0, e = FPT->getNumParams(); i != e; i++)
223       if (!isFuncParamTypeConvertible(FPT->getParamType(i)))
224         return false;
225 
226   return true;
227 }
228 
229 /// UpdateCompletedType - When we find the full definition for a TagDecl,
230 /// replace the 'opaque' type we previously made for it if applicable.
UpdateCompletedType(const TagDecl * TD)231 void CodeGenTypes::UpdateCompletedType(const TagDecl *TD) {
232   // If this is an enum being completed, then we flush all non-struct types from
233   // the cache.  This allows function types and other things that may be derived
234   // from the enum to be recomputed.
235   if (const EnumDecl *ED = dyn_cast<EnumDecl>(TD)) {
236     // Only flush the cache if we've actually already converted this type.
237     if (TypeCache.count(ED->getTypeForDecl())) {
238       // Okay, we formed some types based on this.  We speculated that the enum
239       // would be lowered to i32, so we only need to flush the cache if this
240       // didn't happen.
241       if (!ConvertType(ED->getIntegerType())->isIntegerTy(32))
242         TypeCache.clear();
243     }
244     // If necessary, provide the full definition of a type only used with a
245     // declaration so far.
246     if (CGDebugInfo *DI = CGM.getModuleDebugInfo())
247       DI->completeType(ED);
248     return;
249   }
250 
251   // If we completed a RecordDecl that we previously used and converted to an
252   // anonymous type, then go ahead and complete it now.
253   const RecordDecl *RD = cast<RecordDecl>(TD);
254   if (RD->isDependentType()) return;
255 
256   // Only complete it if we converted it already.  If we haven't converted it
257   // yet, we'll just do it lazily.
258   if (RecordDeclTypes.count(Context.getTagDeclType(RD).getTypePtr()))
259     ConvertRecordDeclType(RD);
260 
261   // If necessary, provide the full definition of a type only used with a
262   // declaration so far.
263   if (CGDebugInfo *DI = CGM.getModuleDebugInfo())
264     DI->completeType(RD);
265 }
266 
RefreshTypeCacheForClass(const CXXRecordDecl * RD)267 void CodeGenTypes::RefreshTypeCacheForClass(const CXXRecordDecl *RD) {
268   QualType T = Context.getRecordType(RD);
269   T = Context.getCanonicalType(T);
270 
271   const Type *Ty = T.getTypePtr();
272   if (RecordsWithOpaqueMemberPointers.count(Ty)) {
273     TypeCache.clear();
274     RecordsWithOpaqueMemberPointers.clear();
275   }
276 }
277 
getTypeForFormat(llvm::LLVMContext & VMContext,const llvm::fltSemantics & format,bool UseNativeHalf=false)278 static llvm::Type *getTypeForFormat(llvm::LLVMContext &VMContext,
279                                     const llvm::fltSemantics &format,
280                                     bool UseNativeHalf = false) {
281   if (&format == &llvm::APFloat::IEEEhalf()) {
282     if (UseNativeHalf)
283       return llvm::Type::getHalfTy(VMContext);
284     else
285       return llvm::Type::getInt16Ty(VMContext);
286   }
287   if (&format == &llvm::APFloat::BFloat())
288     return llvm::Type::getBFloatTy(VMContext);
289   if (&format == &llvm::APFloat::IEEEsingle())
290     return llvm::Type::getFloatTy(VMContext);
291   if (&format == &llvm::APFloat::IEEEdouble())
292     return llvm::Type::getDoubleTy(VMContext);
293   if (&format == &llvm::APFloat::IEEEquad())
294     return llvm::Type::getFP128Ty(VMContext);
295   if (&format == &llvm::APFloat::PPCDoubleDouble())
296     return llvm::Type::getPPC_FP128Ty(VMContext);
297   if (&format == &llvm::APFloat::x87DoubleExtended())
298     return llvm::Type::getX86_FP80Ty(VMContext);
299   llvm_unreachable("Unknown float format!");
300 }
301 
ConvertFunctionTypeInternal(QualType QFT)302 llvm::Type *CodeGenTypes::ConvertFunctionTypeInternal(QualType QFT) {
303   assert(QFT.isCanonical());
304   const FunctionType *FT = cast<FunctionType>(QFT.getTypePtr());
305   // First, check whether we can build the full function type.  If the
306   // function type depends on an incomplete type (e.g. a struct or enum), we
307   // cannot lower the function type.
308   if (!isFuncTypeConvertible(FT)) {
309     // This function's type depends on an incomplete tag type.
310 
311     // Force conversion of all the relevant record types, to make sure
312     // we re-convert the FunctionType when appropriate.
313     if (const RecordType *RT = FT->getReturnType()->getAs<RecordType>())
314       ConvertRecordDeclType(RT->getDecl());
315     if (const FunctionProtoType *FPT = dyn_cast<FunctionProtoType>(FT))
316       for (unsigned i = 0, e = FPT->getNumParams(); i != e; i++)
317         if (const RecordType *RT = FPT->getParamType(i)->getAs<RecordType>())
318           ConvertRecordDeclType(RT->getDecl());
319 
320     SkippedLayout = true;
321 
322     // Return a placeholder type.
323     return llvm::StructType::get(getLLVMContext());
324   }
325 
326   // The function type can be built; call the appropriate routines to
327   // build it.
328   const CGFunctionInfo *FI;
329   if (const FunctionProtoType *FPT = dyn_cast<FunctionProtoType>(FT)) {
330     FI = &arrangeFreeFunctionType(
331         CanQual<FunctionProtoType>::CreateUnsafe(QualType(FPT, 0)));
332   } else {
333     const FunctionNoProtoType *FNPT = cast<FunctionNoProtoType>(FT);
334     FI = &arrangeFreeFunctionType(
335         CanQual<FunctionNoProtoType>::CreateUnsafe(QualType(FNPT, 0)));
336   }
337 
338   llvm::Type *ResultType = nullptr;
339   // If there is something higher level prodding our CGFunctionInfo, then
340   // don't recurse into it again.
341   if (FunctionsBeingProcessed.count(FI)) {
342 
343     ResultType = llvm::StructType::get(getLLVMContext());
344     SkippedLayout = true;
345   } else {
346 
347     // Otherwise, we're good to go, go ahead and convert it.
348     ResultType = GetFunctionType(*FI);
349   }
350 
351   return ResultType;
352 }
353 
354 /// ConvertType - Convert the specified type to its LLVM form.
ConvertType(QualType T)355 llvm::Type *CodeGenTypes::ConvertType(QualType T) {
356   T = Context.getCanonicalType(T);
357 
358   const Type *Ty = T.getTypePtr();
359 
360   // For the device-side compilation, CUDA device builtin surface/texture types
361   // may be represented in different types.
362   if (Context.getLangOpts().CUDAIsDevice) {
363     if (T->isCUDADeviceBuiltinSurfaceType()) {
364       if (auto *Ty = CGM.getTargetCodeGenInfo()
365                          .getCUDADeviceBuiltinSurfaceDeviceType())
366         return Ty;
367     } else if (T->isCUDADeviceBuiltinTextureType()) {
368       if (auto *Ty = CGM.getTargetCodeGenInfo()
369                          .getCUDADeviceBuiltinTextureDeviceType())
370         return Ty;
371     }
372   }
373 
374   // RecordTypes are cached and processed specially.
375   if (const RecordType *RT = dyn_cast<RecordType>(Ty))
376     return ConvertRecordDeclType(RT->getDecl());
377 
378   llvm::Type *CachedType = nullptr;
379   auto TCI = TypeCache.find(Ty);
380   if (TCI != TypeCache.end())
381     CachedType = TCI->second;
382     // With expensive checks, check that the type we compute matches the
383     // cached type.
384 #ifndef EXPENSIVE_CHECKS
385   if (CachedType)
386     return CachedType;
387 #endif
388 
389   // If we don't have it in the cache, convert it now.
390   llvm::Type *ResultType = nullptr;
391   switch (Ty->getTypeClass()) {
392   case Type::Record: // Handled above.
393 #define TYPE(Class, Base)
394 #define ABSTRACT_TYPE(Class, Base)
395 #define NON_CANONICAL_TYPE(Class, Base) case Type::Class:
396 #define DEPENDENT_TYPE(Class, Base) case Type::Class:
397 #define NON_CANONICAL_UNLESS_DEPENDENT_TYPE(Class, Base) case Type::Class:
398 #include "clang/AST/TypeNodes.inc"
399     llvm_unreachable("Non-canonical or dependent types aren't possible.");
400 
401   case Type::Builtin: {
402     switch (cast<BuiltinType>(Ty)->getKind()) {
403     case BuiltinType::Void:
404     case BuiltinType::ObjCId:
405     case BuiltinType::ObjCClass:
406     case BuiltinType::ObjCSel:
407       // LLVM void type can only be used as the result of a function call.  Just
408       // map to the same as char.
409       ResultType = llvm::Type::getInt8Ty(getLLVMContext());
410       break;
411 
412     case BuiltinType::Bool:
413       // Note that we always return bool as i1 for use as a scalar type.
414       ResultType = llvm::Type::getInt1Ty(getLLVMContext());
415       break;
416 
417     case BuiltinType::Char_S:
418     case BuiltinType::Char_U:
419     case BuiltinType::SChar:
420     case BuiltinType::UChar:
421     case BuiltinType::Short:
422     case BuiltinType::UShort:
423     case BuiltinType::Int:
424     case BuiltinType::UInt:
425     case BuiltinType::Long:
426     case BuiltinType::ULong:
427     case BuiltinType::LongLong:
428     case BuiltinType::ULongLong:
429     case BuiltinType::WChar_S:
430     case BuiltinType::WChar_U:
431     case BuiltinType::Char8:
432     case BuiltinType::Char16:
433     case BuiltinType::Char32:
434     case BuiltinType::ShortAccum:
435     case BuiltinType::Accum:
436     case BuiltinType::LongAccum:
437     case BuiltinType::UShortAccum:
438     case BuiltinType::UAccum:
439     case BuiltinType::ULongAccum:
440     case BuiltinType::ShortFract:
441     case BuiltinType::Fract:
442     case BuiltinType::LongFract:
443     case BuiltinType::UShortFract:
444     case BuiltinType::UFract:
445     case BuiltinType::ULongFract:
446     case BuiltinType::SatShortAccum:
447     case BuiltinType::SatAccum:
448     case BuiltinType::SatLongAccum:
449     case BuiltinType::SatUShortAccum:
450     case BuiltinType::SatUAccum:
451     case BuiltinType::SatULongAccum:
452     case BuiltinType::SatShortFract:
453     case BuiltinType::SatFract:
454     case BuiltinType::SatLongFract:
455     case BuiltinType::SatUShortFract:
456     case BuiltinType::SatUFract:
457     case BuiltinType::SatULongFract:
458       ResultType = llvm::IntegerType::get(getLLVMContext(),
459                                  static_cast<unsigned>(Context.getTypeSize(T)));
460       break;
461 
462     case BuiltinType::Float16:
463       ResultType =
464           getTypeForFormat(getLLVMContext(), Context.getFloatTypeSemantics(T),
465                            /* UseNativeHalf = */ true);
466       break;
467 
468     case BuiltinType::Half:
469       // Half FP can either be storage-only (lowered to i16) or native.
470       ResultType = getTypeForFormat(
471           getLLVMContext(), Context.getFloatTypeSemantics(T),
472           Context.getLangOpts().NativeHalfType ||
473               !Context.getTargetInfo().useFP16ConversionIntrinsics());
474       break;
475     case BuiltinType::LongDouble:
476       LongDoubleReferenced = true;
477       [[fallthrough]];
478     case BuiltinType::BFloat16:
479     case BuiltinType::Float:
480     case BuiltinType::Double:
481     case BuiltinType::Float128:
482     case BuiltinType::Ibm128:
483       ResultType = getTypeForFormat(getLLVMContext(),
484                                     Context.getFloatTypeSemantics(T),
485                                     /* UseNativeHalf = */ false);
486       break;
487 
488     case BuiltinType::NullPtr:
489       // Model std::nullptr_t as i8*
490       ResultType = llvm::PointerType::getUnqual(getLLVMContext());
491       break;
492 
493     case BuiltinType::UInt128:
494     case BuiltinType::Int128:
495       ResultType = llvm::IntegerType::get(getLLVMContext(), 128);
496       break;
497 
498 #define IMAGE_TYPE(ImgType, Id, SingletonId, Access, Suffix) \
499     case BuiltinType::Id:
500 #include "clang/Basic/OpenCLImageTypes.def"
501 #define EXT_OPAQUE_TYPE(ExtType, Id, Ext) \
502     case BuiltinType::Id:
503 #include "clang/Basic/OpenCLExtensionTypes.def"
504     case BuiltinType::OCLSampler:
505     case BuiltinType::OCLEvent:
506     case BuiltinType::OCLClkEvent:
507     case BuiltinType::OCLQueue:
508     case BuiltinType::OCLReserveID:
509       ResultType = CGM.getOpenCLRuntime().convertOpenCLSpecificType(Ty);
510       break;
511 #define SVE_VECTOR_TYPE(Name, MangledName, Id, SingletonId)                    \
512   case BuiltinType::Id:
513 #define SVE_PREDICATE_TYPE(Name, MangledName, Id, SingletonId)                 \
514   case BuiltinType::Id:
515 #include "clang/Basic/AArch64ACLETypes.def"
516       {
517         ASTContext::BuiltinVectorTypeInfo Info =
518             Context.getBuiltinVectorTypeInfo(cast<BuiltinType>(Ty));
519         // The `__mfp8` type maps to `<1 x i8>` which can't be used to build
520         // a <N x i8> vector type, hence bypass the call to `ConvertType` for
521         // the element type and create the vector type directly.
522         auto *EltTy = Info.ElementType->isMFloat8Type()
523                           ? llvm::Type::getInt8Ty(getLLVMContext())
524                           : ConvertType(Info.ElementType);
525         auto *VTy = llvm::VectorType::get(EltTy, Info.EC);
526         switch (Info.NumVectors) {
527         default:
528           llvm_unreachable("Expected 1, 2, 3 or 4 vectors!");
529         case 1:
530           return VTy;
531         case 2:
532           return llvm::StructType::get(VTy, VTy);
533         case 3:
534           return llvm::StructType::get(VTy, VTy, VTy);
535         case 4:
536           return llvm::StructType::get(VTy, VTy, VTy, VTy);
537         }
538       }
539     case BuiltinType::SveCount:
540       return llvm::TargetExtType::get(getLLVMContext(), "aarch64.svcount");
541     case BuiltinType::MFloat8:
542       return llvm::VectorType::get(llvm::Type::getInt8Ty(getLLVMContext()), 1,
543                                    false);
544 #define PPC_VECTOR_TYPE(Name, Id, Size) \
545     case BuiltinType::Id: \
546       ResultType = \
547         llvm::FixedVectorType::get(ConvertType(Context.BoolTy), Size); \
548       break;
549 #include "clang/Basic/PPCTypes.def"
550 #define RVV_TYPE(Name, Id, SingletonId) case BuiltinType::Id:
551 #include "clang/Basic/RISCVVTypes.def"
552       {
553         ASTContext::BuiltinVectorTypeInfo Info =
554             Context.getBuiltinVectorTypeInfo(cast<BuiltinType>(Ty));
555         if (Info.NumVectors != 1) {
556           unsigned I8EltCount =
557               Info.EC.getKnownMinValue() *
558               ConvertType(Info.ElementType)->getScalarSizeInBits() / 8;
559           return llvm::TargetExtType::get(
560               getLLVMContext(), "riscv.vector.tuple",
561               llvm::ScalableVectorType::get(
562                   llvm::Type::getInt8Ty(getLLVMContext()), I8EltCount),
563               Info.NumVectors);
564         }
565         return llvm::ScalableVectorType::get(ConvertType(Info.ElementType),
566                                              Info.EC.getKnownMinValue());
567       }
568 #define WASM_REF_TYPE(Name, MangledName, Id, SingletonId, AS)                  \
569   case BuiltinType::Id: {                                                      \
570     if (BuiltinType::Id == BuiltinType::WasmExternRef)                         \
571       ResultType = CGM.getTargetCodeGenInfo().getWasmExternrefReferenceType(); \
572     else                                                                       \
573       llvm_unreachable("Unexpected wasm reference builtin type!");             \
574   } break;
575 #include "clang/Basic/WebAssemblyReferenceTypes.def"
576 #define AMDGPU_OPAQUE_PTR_TYPE(Name, Id, SingletonId, Width, Align, AS)        \
577   case BuiltinType::Id:                                                        \
578     return llvm::PointerType::get(getLLVMContext(), AS);
579 #define AMDGPU_NAMED_BARRIER_TYPE(Name, Id, SingletonId, Width, Align, Scope)  \
580   case BuiltinType::Id:                                                        \
581     return llvm::TargetExtType::get(getLLVMContext(), "amdgcn.named.barrier",  \
582                                     {}, {Scope});
583 #include "clang/Basic/AMDGPUTypes.def"
584 #define HLSL_INTANGIBLE_TYPE(Name, Id, SingletonId) case BuiltinType::Id:
585 #include "clang/Basic/HLSLIntangibleTypes.def"
586       ResultType = CGM.getHLSLRuntime().convertHLSLSpecificType(Ty);
587       break;
588     case BuiltinType::Dependent:
589 #define BUILTIN_TYPE(Id, SingletonId)
590 #define PLACEHOLDER_TYPE(Id, SingletonId) \
591     case BuiltinType::Id:
592 #include "clang/AST/BuiltinTypes.def"
593       llvm_unreachable("Unexpected placeholder builtin type!");
594     }
595     break;
596   }
597   case Type::Auto:
598   case Type::DeducedTemplateSpecialization:
599     llvm_unreachable("Unexpected undeduced type!");
600   case Type::Complex: {
601     llvm::Type *EltTy = ConvertType(cast<ComplexType>(Ty)->getElementType());
602     ResultType = llvm::StructType::get(EltTy, EltTy);
603     break;
604   }
605   case Type::LValueReference:
606   case Type::RValueReference: {
607     const ReferenceType *RTy = cast<ReferenceType>(Ty);
608     QualType ETy = RTy->getPointeeType();
609     unsigned AS = getTargetAddressSpace(ETy);
610     ResultType = llvm::PointerType::get(getLLVMContext(), AS);
611     break;
612   }
613   case Type::Pointer: {
614     const PointerType *PTy = cast<PointerType>(Ty);
615     QualType ETy = PTy->getPointeeType();
616     unsigned AS = getTargetAddressSpace(ETy);
617     ResultType = llvm::PointerType::get(getLLVMContext(), AS);
618     break;
619   }
620 
621   case Type::VariableArray: {
622     const VariableArrayType *A = cast<VariableArrayType>(Ty);
623     assert(A->getIndexTypeCVRQualifiers() == 0 &&
624            "FIXME: We only handle trivial array types so far!");
625     // VLAs resolve to the innermost element type; this matches
626     // the return of alloca, and there isn't any obviously better choice.
627     ResultType = ConvertTypeForMem(A->getElementType());
628     break;
629   }
630   case Type::IncompleteArray: {
631     const IncompleteArrayType *A = cast<IncompleteArrayType>(Ty);
632     assert(A->getIndexTypeCVRQualifiers() == 0 &&
633            "FIXME: We only handle trivial array types so far!");
634     // int X[] -> [0 x int], unless the element type is not sized.  If it is
635     // unsized (e.g. an incomplete struct) just use [0 x i8].
636     ResultType = ConvertTypeForMem(A->getElementType());
637     if (!ResultType->isSized()) {
638       SkippedLayout = true;
639       ResultType = llvm::Type::getInt8Ty(getLLVMContext());
640     }
641     ResultType = llvm::ArrayType::get(ResultType, 0);
642     break;
643   }
644   case Type::ArrayParameter:
645   case Type::ConstantArray: {
646     const ConstantArrayType *A = cast<ConstantArrayType>(Ty);
647     llvm::Type *EltTy = ConvertTypeForMem(A->getElementType());
648 
649     // Lower arrays of undefined struct type to arrays of i8 just to have a
650     // concrete type.
651     if (!EltTy->isSized()) {
652       SkippedLayout = true;
653       EltTy = llvm::Type::getInt8Ty(getLLVMContext());
654     }
655 
656     ResultType = llvm::ArrayType::get(EltTy, A->getZExtSize());
657     break;
658   }
659   case Type::ExtVector:
660   case Type::Vector: {
661     const auto *VT = cast<VectorType>(Ty);
662     // An ext_vector_type of Bool is really a vector of bits.
663     llvm::Type *IRElemTy = VT->isPackedVectorBoolType(Context)
664                                ? llvm::Type::getInt1Ty(getLLVMContext())
665                            : VT->getElementType()->isMFloat8Type()
666                                ? llvm::Type::getInt8Ty(getLLVMContext())
667                                : ConvertType(VT->getElementType());
668     ResultType = llvm::FixedVectorType::get(IRElemTy, VT->getNumElements());
669     break;
670   }
671   case Type::ConstantMatrix: {
672     const ConstantMatrixType *MT = cast<ConstantMatrixType>(Ty);
673     ResultType =
674         llvm::FixedVectorType::get(ConvertType(MT->getElementType()),
675                                    MT->getNumRows() * MT->getNumColumns());
676     break;
677   }
678   case Type::FunctionNoProto:
679   case Type::FunctionProto:
680     ResultType = ConvertFunctionTypeInternal(T);
681     break;
682   case Type::ObjCObject:
683     ResultType = ConvertType(cast<ObjCObjectType>(Ty)->getBaseType());
684     break;
685 
686   case Type::ObjCInterface: {
687     // Objective-C interfaces are always opaque (outside of the
688     // runtime, which can do whatever it likes); we never refine
689     // these.
690     llvm::Type *&T = InterfaceTypes[cast<ObjCInterfaceType>(Ty)];
691     if (!T)
692       T = llvm::StructType::create(getLLVMContext());
693     ResultType = T;
694     break;
695   }
696 
697   case Type::ObjCObjectPointer:
698     ResultType = llvm::PointerType::getUnqual(getLLVMContext());
699     break;
700 
701   case Type::Enum: {
702     const EnumDecl *ED = cast<EnumType>(Ty)->getDecl();
703     if (ED->isCompleteDefinition() || ED->isFixed())
704       return ConvertType(ED->getIntegerType());
705     // Return a placeholder 'i32' type.  This can be changed later when the
706     // type is defined (see UpdateCompletedType), but is likely to be the
707     // "right" answer.
708     ResultType = llvm::Type::getInt32Ty(getLLVMContext());
709     break;
710   }
711 
712   case Type::BlockPointer: {
713     // Block pointers lower to function type. For function type,
714     // getTargetAddressSpace() returns default address space for
715     // function pointer i.e. program address space. Therefore, for block
716     // pointers, it is important to pass the pointee AST address space when
717     // calling getTargetAddressSpace(), to ensure that we get the LLVM IR
718     // address space for data pointers and not function pointers.
719     const QualType FTy = cast<BlockPointerType>(Ty)->getPointeeType();
720     unsigned AS = Context.getTargetAddressSpace(FTy.getAddressSpace());
721     ResultType = llvm::PointerType::get(getLLVMContext(), AS);
722     break;
723   }
724 
725   case Type::MemberPointer: {
726     auto *MPTy = cast<MemberPointerType>(Ty);
727     if (!getCXXABI().isMemberPointerConvertible(MPTy)) {
728       auto *C = MPTy->getMostRecentCXXRecordDecl()->getTypeForDecl();
729       auto Insertion = RecordsWithOpaqueMemberPointers.try_emplace(C);
730       if (Insertion.second)
731         Insertion.first->second = llvm::StructType::create(getLLVMContext());
732       ResultType = Insertion.first->second;
733     } else {
734       ResultType = getCXXABI().ConvertMemberPointerType(MPTy);
735     }
736     break;
737   }
738 
739   case Type::Atomic: {
740     QualType valueType = cast<AtomicType>(Ty)->getValueType();
741     ResultType = ConvertTypeForMem(valueType);
742 
743     // Pad out to the inflated size if necessary.
744     uint64_t valueSize = Context.getTypeSize(valueType);
745     uint64_t atomicSize = Context.getTypeSize(Ty);
746     if (valueSize != atomicSize) {
747       assert(valueSize < atomicSize);
748       llvm::Type *elts[] = {
749         ResultType,
750         llvm::ArrayType::get(CGM.Int8Ty, (atomicSize - valueSize) / 8)
751       };
752       ResultType =
753           llvm::StructType::get(getLLVMContext(), llvm::ArrayRef(elts));
754     }
755     break;
756   }
757   case Type::Pipe: {
758     ResultType = CGM.getOpenCLRuntime().getPipeType(cast<PipeType>(Ty));
759     break;
760   }
761   case Type::BitInt: {
762     const auto &EIT = cast<BitIntType>(Ty);
763     ResultType = llvm::Type::getIntNTy(getLLVMContext(), EIT->getNumBits());
764     break;
765   }
766   case Type::HLSLAttributedResource:
767   case Type::HLSLInlineSpirv:
768     ResultType = CGM.getHLSLRuntime().convertHLSLSpecificType(Ty);
769     break;
770   }
771 
772   assert(ResultType && "Didn't convert a type?");
773   assert((!CachedType || CachedType == ResultType) &&
774          "Cached type doesn't match computed type");
775 
776   TypeCache[Ty] = ResultType;
777   return ResultType;
778 }
779 
isPaddedAtomicType(QualType type)780 bool CodeGenModule::isPaddedAtomicType(QualType type) {
781   return isPaddedAtomicType(type->castAs<AtomicType>());
782 }
783 
isPaddedAtomicType(const AtomicType * type)784 bool CodeGenModule::isPaddedAtomicType(const AtomicType *type) {
785   return Context.getTypeSize(type) != Context.getTypeSize(type->getValueType());
786 }
787 
788 /// ConvertRecordDeclType - Lay out a tagged decl type like struct or union.
ConvertRecordDeclType(const RecordDecl * RD)789 llvm::StructType *CodeGenTypes::ConvertRecordDeclType(const RecordDecl *RD) {
790   // TagDecl's are not necessarily unique, instead use the (clang)
791   // type connected to the decl.
792   const Type *Key = Context.getTagDeclType(RD).getTypePtr();
793 
794   llvm::StructType *&Entry = RecordDeclTypes[Key];
795 
796   // If we don't have a StructType at all yet, create the forward declaration.
797   if (!Entry) {
798     Entry = llvm::StructType::create(getLLVMContext());
799     addRecordTypeName(RD, Entry, "");
800   }
801   llvm::StructType *Ty = Entry;
802 
803   // If this is still a forward declaration, or the LLVM type is already
804   // complete, there's nothing more to do.
805   RD = RD->getDefinition();
806   if (!RD || !RD->isCompleteDefinition() || !Ty->isOpaque())
807     return Ty;
808 
809   // Force conversion of non-virtual base classes recursively.
810   if (const CXXRecordDecl *CRD = dyn_cast<CXXRecordDecl>(RD)) {
811     for (const auto &I : CRD->bases()) {
812       if (I.isVirtual()) continue;
813       ConvertRecordDeclType(I.getType()->castAs<RecordType>()->getDecl());
814     }
815   }
816 
817   // Layout fields.
818   std::unique_ptr<CGRecordLayout> Layout = ComputeRecordLayout(RD, Ty);
819   CGRecordLayouts[Key] = std::move(Layout);
820 
821   // If this struct blocked a FunctionType conversion, then recompute whatever
822   // was derived from that.
823   // FIXME: This is hugely overconservative.
824   if (SkippedLayout)
825     TypeCache.clear();
826 
827   return Ty;
828 }
829 
830 /// getCGRecordLayout - Return record layout info for the given record decl.
831 const CGRecordLayout &
getCGRecordLayout(const RecordDecl * RD)832 CodeGenTypes::getCGRecordLayout(const RecordDecl *RD) {
833   const Type *Key = Context.getTagDeclType(RD).getTypePtr();
834 
835   auto I = CGRecordLayouts.find(Key);
836   if (I != CGRecordLayouts.end())
837     return *I->second;
838   // Compute the type information.
839   ConvertRecordDeclType(RD);
840 
841   // Now try again.
842   I = CGRecordLayouts.find(Key);
843 
844   assert(I != CGRecordLayouts.end() &&
845          "Unable to find record layout information for type");
846   return *I->second;
847 }
848 
isPointerZeroInitializable(QualType T)849 bool CodeGenTypes::isPointerZeroInitializable(QualType T) {
850   assert((T->isAnyPointerType() || T->isBlockPointerType() ||
851           T->isNullPtrType()) &&
852          "Invalid type");
853   return isZeroInitializable(T);
854 }
855 
isZeroInitializable(QualType T)856 bool CodeGenTypes::isZeroInitializable(QualType T) {
857   if (T->getAs<PointerType>() || T->isNullPtrType())
858     return Context.getTargetNullPointerValue(T) == 0;
859 
860   if (const auto *AT = Context.getAsArrayType(T)) {
861     if (isa<IncompleteArrayType>(AT))
862       return true;
863     if (const auto *CAT = dyn_cast<ConstantArrayType>(AT))
864       if (Context.getConstantArrayElementCount(CAT) == 0)
865         return true;
866     T = Context.getBaseElementType(T);
867   }
868 
869   // Records are non-zero-initializable if they contain any
870   // non-zero-initializable subobjects.
871   if (const RecordType *RT = T->getAs<RecordType>()) {
872     const RecordDecl *RD = RT->getDecl();
873     return isZeroInitializable(RD);
874   }
875 
876   // We have to ask the ABI about member pointers.
877   if (const MemberPointerType *MPT = T->getAs<MemberPointerType>())
878     return getCXXABI().isZeroInitializable(MPT);
879 
880   // HLSL Inline SPIR-V types are non-zero-initializable.
881   if (T->getAs<HLSLInlineSpirvType>())
882     return false;
883 
884   // Everything else is okay.
885   return true;
886 }
887 
isZeroInitializable(const RecordDecl * RD)888 bool CodeGenTypes::isZeroInitializable(const RecordDecl *RD) {
889   return getCGRecordLayout(RD).isZeroInitializable();
890 }
891 
getTargetAddressSpace(QualType T) const892 unsigned CodeGenTypes::getTargetAddressSpace(QualType T) const {
893   // Return the address space for the type. If the type is a
894   // function type without an address space qualifier, the
895   // program address space is used. Otherwise, the target picks
896   // the best address space based on the type information
897   return T->isFunctionType() && !T.hasAddressSpace()
898              ? getDataLayout().getProgramAddressSpace()
899              : getContext().getTargetAddressSpace(T.getAddressSpace());
900 }
901