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Anton Korobeynikov55bcea12010-01-10 12:58:08 +00001//===---- TargetInfo.cpp - Encapsulate target details -----------*- C++ -*-===//
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
10// These classes wrap the information about a call or function
11// definition used to handle ABI compliancy.
12//
13//===----------------------------------------------------------------------===//
14
Anton Korobeynikov55bcea12010-01-10 12:58:08 +000015#include "TargetInfo.h"
Anton Korobeynikov244360d2009-06-05 22:08:42 +000016#include "ABIInfo.h"
17#include "CodeGenFunction.h"
Anders Carlsson15b73de2009-07-18 19:43:29 +000018#include "clang/AST/RecordLayout.h"
Anton Korobeynikov244360d2009-06-05 22:08:42 +000019#include "llvm/Type.h"
Chris Lattner22a931e2010-06-29 06:01:59 +000020#include "llvm/Target/TargetData.h"
Anton Korobeynikov55bcea12010-01-10 12:58:08 +000021#include "llvm/ADT/StringExtras.h"
Daniel Dunbare3532f82009-08-24 08:52:16 +000022#include "llvm/ADT/Triple.h"
Daniel Dunbar7230fa52009-12-03 09:13:49 +000023#include "llvm/Support/raw_ostream.h"
Anton Korobeynikov244360d2009-06-05 22:08:42 +000024using namespace clang;
25using namespace CodeGen;
26
John McCall943fae92010-05-27 06:19:26 +000027static void AssignToArrayRange(CodeGen::CGBuilderTy &Builder,
28 llvm::Value *Array,
29 llvm::Value *Value,
30 unsigned FirstIndex,
31 unsigned LastIndex) {
32 // Alternatively, we could emit this as a loop in the source.
33 for (unsigned I = FirstIndex; I <= LastIndex; ++I) {
34 llvm::Value *Cell = Builder.CreateConstInBoundsGEP1_32(Array, I);
35 Builder.CreateStore(Value, Cell);
36 }
37}
38
Anton Korobeynikov244360d2009-06-05 22:08:42 +000039ABIInfo::~ABIInfo() {}
40
Chris Lattner2b037972010-07-29 02:01:43 +000041ASTContext &ABIInfo::getContext() const {
42 return CGT.getContext();
43}
44
45llvm::LLVMContext &ABIInfo::getVMContext() const {
46 return CGT.getLLVMContext();
47}
48
49const llvm::TargetData &ABIInfo::getTargetData() const {
50 return CGT.getTargetData();
51}
52
53
Anton Korobeynikov244360d2009-06-05 22:08:42 +000054void ABIArgInfo::dump() const {
Daniel Dunbar7230fa52009-12-03 09:13:49 +000055 llvm::raw_ostream &OS = llvm::errs();
56 OS << "(ABIArgInfo Kind=";
Anton Korobeynikov244360d2009-06-05 22:08:42 +000057 switch (TheKind) {
58 case Direct:
Daniel Dunbar7230fa52009-12-03 09:13:49 +000059 OS << "Direct";
Anton Korobeynikov244360d2009-06-05 22:08:42 +000060 break;
Anton Korobeynikov18adbf52009-06-06 09:36:29 +000061 case Extend:
Daniel Dunbar7230fa52009-12-03 09:13:49 +000062 OS << "Extend";
Anton Korobeynikov18adbf52009-06-06 09:36:29 +000063 break;
Anton Korobeynikov244360d2009-06-05 22:08:42 +000064 case Ignore:
Daniel Dunbar7230fa52009-12-03 09:13:49 +000065 OS << "Ignore";
Anton Korobeynikov244360d2009-06-05 22:08:42 +000066 break;
67 case Coerce:
Daniel Dunbar7230fa52009-12-03 09:13:49 +000068 OS << "Coerce Type=";
69 getCoerceToType()->print(OS);
Anton Korobeynikov244360d2009-06-05 22:08:42 +000070 break;
71 case Indirect:
Daniel Dunbar557893d2010-04-21 19:10:51 +000072 OS << "Indirect Align=" << getIndirectAlign()
73 << " Byal=" << getIndirectByVal();
Anton Korobeynikov244360d2009-06-05 22:08:42 +000074 break;
75 case Expand:
Daniel Dunbar7230fa52009-12-03 09:13:49 +000076 OS << "Expand";
Anton Korobeynikov244360d2009-06-05 22:08:42 +000077 break;
78 }
Daniel Dunbar7230fa52009-12-03 09:13:49 +000079 OS << ")\n";
Anton Korobeynikov244360d2009-06-05 22:08:42 +000080}
81
Anton Korobeynikov55bcea12010-01-10 12:58:08 +000082TargetCodeGenInfo::~TargetCodeGenInfo() { delete Info; }
83
Daniel Dunbar626f1d82009-09-13 08:03:58 +000084static bool isEmptyRecord(ASTContext &Context, QualType T, bool AllowArrays);
Anton Korobeynikov244360d2009-06-05 22:08:42 +000085
86/// isEmptyField - Return true iff a the field is "empty", that is it
87/// is an unnamed bit-field or an (array of) empty record(s).
Daniel Dunbar626f1d82009-09-13 08:03:58 +000088static bool isEmptyField(ASTContext &Context, const FieldDecl *FD,
89 bool AllowArrays) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +000090 if (FD->isUnnamedBitfield())
91 return true;
92
93 QualType FT = FD->getType();
Anton Korobeynikov244360d2009-06-05 22:08:42 +000094
Daniel Dunbar626f1d82009-09-13 08:03:58 +000095 // Constant arrays of empty records count as empty, strip them off.
96 if (AllowArrays)
97 while (const ConstantArrayType *AT = Context.getAsConstantArrayType(FT))
98 FT = AT->getElementType();
99
Daniel Dunbarcd20ce12010-05-17 16:46:00 +0000100 const RecordType *RT = FT->getAs<RecordType>();
101 if (!RT)
102 return false;
103
104 // C++ record fields are never empty, at least in the Itanium ABI.
105 //
106 // FIXME: We should use a predicate for whether this behavior is true in the
107 // current ABI.
108 if (isa<CXXRecordDecl>(RT->getDecl()))
109 return false;
110
Daniel Dunbar626f1d82009-09-13 08:03:58 +0000111 return isEmptyRecord(Context, FT, AllowArrays);
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000112}
113
114/// isEmptyRecord - Return true iff a structure contains only empty
115/// fields. Note that a structure with a flexible array member is not
116/// considered empty.
Daniel Dunbar626f1d82009-09-13 08:03:58 +0000117static bool isEmptyRecord(ASTContext &Context, QualType T, bool AllowArrays) {
Ted Kremenekc23c7e62009-07-29 21:53:49 +0000118 const RecordType *RT = T->getAs<RecordType>();
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000119 if (!RT)
120 return 0;
121 const RecordDecl *RD = RT->getDecl();
122 if (RD->hasFlexibleArrayMember())
123 return false;
Daniel Dunbarcd20ce12010-05-17 16:46:00 +0000124
125 // If this is a C++ record, check the bases first.
126 if (const CXXRecordDecl *CXXRD = dyn_cast<CXXRecordDecl>(RD))
127 for (CXXRecordDecl::base_class_const_iterator i = CXXRD->bases_begin(),
128 e = CXXRD->bases_end(); i != e; ++i)
129 if (!isEmptyRecord(Context, i->getType(), true))
130 return false;
131
Argyrios Kyrtzidiscfbfe782009-06-30 02:36:12 +0000132 for (RecordDecl::field_iterator i = RD->field_begin(), e = RD->field_end();
133 i != e; ++i)
Daniel Dunbar626f1d82009-09-13 08:03:58 +0000134 if (!isEmptyField(Context, *i, AllowArrays))
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000135 return false;
136 return true;
137}
138
Anders Carlsson20759ad2009-09-16 15:53:40 +0000139/// hasNonTrivialDestructorOrCopyConstructor - Determine if a type has either
140/// a non-trivial destructor or a non-trivial copy constructor.
141static bool hasNonTrivialDestructorOrCopyConstructor(const RecordType *RT) {
142 const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(RT->getDecl());
143 if (!RD)
144 return false;
145
146 return !RD->hasTrivialDestructor() || !RD->hasTrivialCopyConstructor();
147}
148
149/// isRecordWithNonTrivialDestructorOrCopyConstructor - Determine if a type is
150/// a record type with either a non-trivial destructor or a non-trivial copy
151/// constructor.
152static bool isRecordWithNonTrivialDestructorOrCopyConstructor(QualType T) {
153 const RecordType *RT = T->getAs<RecordType>();
154 if (!RT)
155 return false;
156
157 return hasNonTrivialDestructorOrCopyConstructor(RT);
158}
159
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000160/// isSingleElementStruct - Determine if a structure is a "single
161/// element struct", i.e. it has exactly one non-empty field or
162/// exactly one field which is itself a single element
163/// struct. Structures with flexible array members are never
164/// considered single element structs.
165///
166/// \return The field declaration for the single non-empty field, if
167/// it exists.
168static const Type *isSingleElementStruct(QualType T, ASTContext &Context) {
169 const RecordType *RT = T->getAsStructureType();
170 if (!RT)
171 return 0;
172
173 const RecordDecl *RD = RT->getDecl();
174 if (RD->hasFlexibleArrayMember())
175 return 0;
176
177 const Type *Found = 0;
Daniel Dunbar12ebb472010-05-11 21:15:36 +0000178
179 // If this is a C++ record, check the bases first.
180 if (const CXXRecordDecl *CXXRD = dyn_cast<CXXRecordDecl>(RD)) {
181 for (CXXRecordDecl::base_class_const_iterator i = CXXRD->bases_begin(),
182 e = CXXRD->bases_end(); i != e; ++i) {
Daniel Dunbar12ebb472010-05-11 21:15:36 +0000183 // Ignore empty records.
Daniel Dunbarcd20ce12010-05-17 16:46:00 +0000184 if (isEmptyRecord(Context, i->getType(), true))
Daniel Dunbar12ebb472010-05-11 21:15:36 +0000185 continue;
186
187 // If we already found an element then this isn't a single-element struct.
188 if (Found)
189 return 0;
190
191 // If this is non-empty and not a single element struct, the composite
192 // cannot be a single element struct.
193 Found = isSingleElementStruct(i->getType(), Context);
194 if (!Found)
195 return 0;
196 }
197 }
198
199 // Check for single element.
Argyrios Kyrtzidiscfbfe782009-06-30 02:36:12 +0000200 for (RecordDecl::field_iterator i = RD->field_begin(), e = RD->field_end();
201 i != e; ++i) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000202 const FieldDecl *FD = *i;
203 QualType FT = FD->getType();
204
205 // Ignore empty fields.
Daniel Dunbar626f1d82009-09-13 08:03:58 +0000206 if (isEmptyField(Context, FD, true))
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000207 continue;
208
209 // If we already found an element then this isn't a single-element
210 // struct.
211 if (Found)
212 return 0;
213
214 // Treat single element arrays as the element.
215 while (const ConstantArrayType *AT = Context.getAsConstantArrayType(FT)) {
216 if (AT->getSize().getZExtValue() != 1)
217 break;
218 FT = AT->getElementType();
219 }
220
221 if (!CodeGenFunction::hasAggregateLLVMType(FT)) {
222 Found = FT.getTypePtr();
223 } else {
224 Found = isSingleElementStruct(FT, Context);
225 if (!Found)
226 return 0;
227 }
228 }
229
230 return Found;
231}
232
233static bool is32Or64BitBasicType(QualType Ty, ASTContext &Context) {
Daniel Dunbar6b45b672010-05-14 03:40:53 +0000234 if (!Ty->getAs<BuiltinType>() && !Ty->hasPointerRepresentation() &&
Daniel Dunbarb3b1e532009-09-24 05:12:36 +0000235 !Ty->isAnyComplexType() && !Ty->isEnumeralType() &&
236 !Ty->isBlockPointerType())
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000237 return false;
238
239 uint64_t Size = Context.getTypeSize(Ty);
240 return Size == 32 || Size == 64;
241}
242
Daniel Dunbar11c08c82009-11-09 01:33:53 +0000243/// canExpandIndirectArgument - Test whether an argument type which is to be
244/// passed indirectly (on the stack) would have the equivalent layout if it was
245/// expanded into separate arguments. If so, we prefer to do the latter to avoid
246/// inhibiting optimizations.
247///
248// FIXME: This predicate is missing many cases, currently it just follows
249// llvm-gcc (checks that all fields are 32-bit or 64-bit primitive types). We
250// should probably make this smarter, or better yet make the LLVM backend
251// capable of handling it.
252static bool canExpandIndirectArgument(QualType Ty, ASTContext &Context) {
253 // We can only expand structure types.
254 const RecordType *RT = Ty->getAs<RecordType>();
255 if (!RT)
256 return false;
257
258 // We can only expand (C) structures.
259 //
260 // FIXME: This needs to be generalized to handle classes as well.
261 const RecordDecl *RD = RT->getDecl();
262 if (!RD->isStruct() || isa<CXXRecordDecl>(RD))
263 return false;
264
Argyrios Kyrtzidiscfbfe782009-06-30 02:36:12 +0000265 for (RecordDecl::field_iterator i = RD->field_begin(), e = RD->field_end();
266 i != e; ++i) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000267 const FieldDecl *FD = *i;
268
269 if (!is32Or64BitBasicType(FD->getType(), Context))
270 return false;
271
272 // FIXME: Reject bit-fields wholesale; there are two problems, we don't know
273 // how to expand them yet, and the predicate for telling if a bitfield still
274 // counts as "basic" is more complicated than what we were doing previously.
275 if (FD->isBitField())
276 return false;
277 }
278
279 return true;
280}
281
282namespace {
283/// DefaultABIInfo - The default implementation for ABI specific
284/// details. This implementation provides information which results in
285/// self-consistent and sensible LLVM IR generation, but does not
286/// conform to any particular ABI.
287class DefaultABIInfo : public ABIInfo {
Chris Lattner2b037972010-07-29 02:01:43 +0000288public:
289 DefaultABIInfo(CodeGen::CodeGenTypes &CGT) : ABIInfo(CGT) {}
290
Chris Lattner458b2aa2010-07-29 02:16:43 +0000291 ABIArgInfo classifyReturnType(QualType RetTy) const;
292 ABIArgInfo classifyArgumentType(QualType RetTy) const;
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000293
Chris Lattner22326a12010-07-29 02:31:05 +0000294 virtual void computeInfo(CGFunctionInfo &FI) const {
Chris Lattner458b2aa2010-07-29 02:16:43 +0000295 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000296 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
297 it != ie; ++it)
Chris Lattner458b2aa2010-07-29 02:16:43 +0000298 it->info = classifyArgumentType(it->type);
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000299 }
300
301 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
302 CodeGenFunction &CGF) const;
303};
304
Anton Korobeynikov55bcea12010-01-10 12:58:08 +0000305class DefaultTargetCodeGenInfo : public TargetCodeGenInfo {
306public:
Chris Lattner2b037972010-07-29 02:01:43 +0000307 DefaultTargetCodeGenInfo(CodeGen::CodeGenTypes &CGT)
308 : TargetCodeGenInfo(new DefaultABIInfo(CGT)) {}
Anton Korobeynikov55bcea12010-01-10 12:58:08 +0000309};
310
311llvm::Value *DefaultABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
312 CodeGenFunction &CGF) const {
313 return 0;
314}
315
Chris Lattner458b2aa2010-07-29 02:16:43 +0000316ABIArgInfo DefaultABIInfo::classifyArgumentType(QualType Ty) const {
Chris Lattner9723d6c2010-03-11 18:19:55 +0000317 if (CodeGenFunction::hasAggregateLLVMType(Ty))
Anton Korobeynikov55bcea12010-01-10 12:58:08 +0000318 return ABIArgInfo::getIndirect(0);
Daniel Dunbar557893d2010-04-21 19:10:51 +0000319
Chris Lattner9723d6c2010-03-11 18:19:55 +0000320 // Treat an enum type as its underlying type.
321 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
322 Ty = EnumTy->getDecl()->getIntegerType();
Douglas Gregora71cc152010-02-02 20:10:50 +0000323
Chris Lattner9723d6c2010-03-11 18:19:55 +0000324 return (Ty->isPromotableIntegerType() ?
325 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Anton Korobeynikov55bcea12010-01-10 12:58:08 +0000326}
327
Chris Lattner0cf24192010-06-28 20:05:43 +0000328//===----------------------------------------------------------------------===//
329// X86-32 ABI Implementation
330//===----------------------------------------------------------------------===//
331
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000332/// X86_32ABIInfo - The X86-32 ABI information.
333class X86_32ABIInfo : public ABIInfo {
David Chisnallde3a0692009-08-17 23:08:21 +0000334 bool IsDarwinVectorABI;
335 bool IsSmallStructInRegABI;
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000336
337 static bool isRegisterSize(unsigned Size) {
338 return (Size == 8 || Size == 16 || Size == 32 || Size == 64);
339 }
340
341 static bool shouldReturnTypeInRegister(QualType Ty, ASTContext &Context);
342
Daniel Dunbar557893d2010-04-21 19:10:51 +0000343 /// getIndirectResult - Give a source type \arg Ty, return a suitable result
344 /// such that the argument will be passed in memory.
Chris Lattner458b2aa2010-07-29 02:16:43 +0000345 ABIArgInfo getIndirectResult(QualType Ty, bool ByVal = true) const;
Daniel Dunbar557893d2010-04-21 19:10:51 +0000346
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000347public:
Chris Lattner2b037972010-07-29 02:01:43 +0000348
Chris Lattner458b2aa2010-07-29 02:16:43 +0000349 ABIArgInfo classifyReturnType(QualType RetTy) const;
350 ABIArgInfo classifyArgumentType(QualType RetTy) const;
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000351
Chris Lattner22326a12010-07-29 02:31:05 +0000352 virtual void computeInfo(CGFunctionInfo &FI) const {
Chris Lattner458b2aa2010-07-29 02:16:43 +0000353 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000354 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
355 it != ie; ++it)
Chris Lattner458b2aa2010-07-29 02:16:43 +0000356 it->info = classifyArgumentType(it->type);
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000357 }
358
359 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
360 CodeGenFunction &CGF) const;
361
Chris Lattner2b037972010-07-29 02:01:43 +0000362 X86_32ABIInfo(CodeGen::CodeGenTypes &CGT, bool d, bool p)
363 : ABIInfo(CGT), IsDarwinVectorABI(d), IsSmallStructInRegABI(p) {}
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000364};
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000365
Anton Korobeynikov55bcea12010-01-10 12:58:08 +0000366class X86_32TargetCodeGenInfo : public TargetCodeGenInfo {
367public:
Chris Lattner2b037972010-07-29 02:01:43 +0000368 X86_32TargetCodeGenInfo(CodeGen::CodeGenTypes &CGT, bool d, bool p)
369 :TargetCodeGenInfo(new X86_32ABIInfo(CGT, d, p)) {}
Charles Davis4ea31ab2010-02-13 15:54:06 +0000370
371 void SetTargetAttributes(const Decl *D, llvm::GlobalValue *GV,
372 CodeGen::CodeGenModule &CGM) const;
John McCallbeec5a02010-03-06 00:35:14 +0000373
374 int getDwarfEHStackPointer(CodeGen::CodeGenModule &CGM) const {
375 // Darwin uses different dwarf register numbers for EH.
376 if (CGM.isTargetDarwin()) return 5;
377
378 return 4;
379 }
380
381 bool initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
382 llvm::Value *Address) const;
Anton Korobeynikov55bcea12010-01-10 12:58:08 +0000383};
384
385}
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000386
387/// shouldReturnTypeInRegister - Determine if the given type should be
388/// passed in a register (for the Darwin ABI).
389bool X86_32ABIInfo::shouldReturnTypeInRegister(QualType Ty,
390 ASTContext &Context) {
391 uint64_t Size = Context.getTypeSize(Ty);
392
393 // Type must be register sized.
394 if (!isRegisterSize(Size))
395 return false;
396
397 if (Ty->isVectorType()) {
398 // 64- and 128- bit vectors inside structures are not returned in
399 // registers.
400 if (Size == 64 || Size == 128)
401 return false;
402
403 return true;
404 }
405
Daniel Dunbar4bd95c62010-05-15 00:00:30 +0000406 // If this is a builtin, pointer, enum, complex type, member pointer, or
407 // member function pointer it is ok.
Daniel Dunbar6b45b672010-05-14 03:40:53 +0000408 if (Ty->getAs<BuiltinType>() || Ty->hasPointerRepresentation() ||
Daniel Dunbarb3b1e532009-09-24 05:12:36 +0000409 Ty->isAnyComplexType() || Ty->isEnumeralType() ||
Daniel Dunbar4bd95c62010-05-15 00:00:30 +0000410 Ty->isBlockPointerType() || Ty->isMemberPointerType())
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000411 return true;
412
413 // Arrays are treated like records.
414 if (const ConstantArrayType *AT = Context.getAsConstantArrayType(Ty))
415 return shouldReturnTypeInRegister(AT->getElementType(), Context);
416
417 // Otherwise, it must be a record type.
Ted Kremenekc23c7e62009-07-29 21:53:49 +0000418 const RecordType *RT = Ty->getAs<RecordType>();
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000419 if (!RT) return false;
420
Anders Carlsson40446e82010-01-27 03:25:19 +0000421 // FIXME: Traverse bases here too.
422
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000423 // Structure types are passed in register if all fields would be
424 // passed in a register.
Argyrios Kyrtzidiscfbfe782009-06-30 02:36:12 +0000425 for (RecordDecl::field_iterator i = RT->getDecl()->field_begin(),
426 e = RT->getDecl()->field_end(); i != e; ++i) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000427 const FieldDecl *FD = *i;
428
429 // Empty fields are ignored.
Daniel Dunbar626f1d82009-09-13 08:03:58 +0000430 if (isEmptyField(Context, FD, true))
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000431 continue;
432
433 // Check fields recursively.
434 if (!shouldReturnTypeInRegister(FD->getType(), Context))
435 return false;
436 }
437
438 return true;
439}
440
Chris Lattner458b2aa2010-07-29 02:16:43 +0000441ABIArgInfo X86_32ABIInfo::classifyReturnType(QualType RetTy) const {
442 if (RetTy->isVoidType())
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000443 return ABIArgInfo::getIgnore();
Chris Lattner458b2aa2010-07-29 02:16:43 +0000444
445 if (const VectorType *VT = RetTy->getAs<VectorType>()) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000446 // On Darwin, some vectors are returned in registers.
David Chisnallde3a0692009-08-17 23:08:21 +0000447 if (IsDarwinVectorABI) {
Chris Lattner458b2aa2010-07-29 02:16:43 +0000448 uint64_t Size = getContext().getTypeSize(RetTy);
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000449
450 // 128-bit vectors are a special case; they are returned in
451 // registers and we need to make sure to pick a type the LLVM
452 // backend will like.
453 if (Size == 128)
Owen Anderson41a75022009-08-13 21:57:51 +0000454 return ABIArgInfo::getCoerce(llvm::VectorType::get(
Chris Lattner458b2aa2010-07-29 02:16:43 +0000455 llvm::Type::getInt64Ty(getVMContext()), 2));
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000456
457 // Always return in register if it fits in a general purpose
458 // register, or if it is 64 bits and has a single element.
459 if ((Size == 8 || Size == 16 || Size == 32) ||
460 (Size == 64 && VT->getNumElements() == 1))
Chris Lattner458b2aa2010-07-29 02:16:43 +0000461 return ABIArgInfo::getCoerce(llvm::IntegerType::get(getVMContext(),
462 Size));
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000463
464 return ABIArgInfo::getIndirect(0);
465 }
466
467 return ABIArgInfo::getDirect();
Chris Lattner458b2aa2010-07-29 02:16:43 +0000468 }
469
470 if (CodeGenFunction::hasAggregateLLVMType(RetTy)) {
Anders Carlsson40446e82010-01-27 03:25:19 +0000471 if (const RecordType *RT = RetTy->getAs<RecordType>()) {
Anders Carlsson5789c492009-10-20 22:07:59 +0000472 // Structures with either a non-trivial destructor or a non-trivial
473 // copy constructor are always indirect.
474 if (hasNonTrivialDestructorOrCopyConstructor(RT))
475 return ABIArgInfo::getIndirect(0, /*ByVal=*/false);
476
477 // Structures with flexible arrays are always indirect.
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000478 if (RT->getDecl()->hasFlexibleArrayMember())
479 return ABIArgInfo::getIndirect(0);
Anders Carlsson5789c492009-10-20 22:07:59 +0000480 }
481
David Chisnallde3a0692009-08-17 23:08:21 +0000482 // If specified, structs and unions are always indirect.
483 if (!IsSmallStructInRegABI && !RetTy->isAnyComplexType())
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000484 return ABIArgInfo::getIndirect(0);
485
486 // Classify "single element" structs as their element type.
Chris Lattner458b2aa2010-07-29 02:16:43 +0000487 if (const Type *SeltTy = isSingleElementStruct(RetTy, getContext())) {
John McCall9dd450b2009-09-21 23:43:11 +0000488 if (const BuiltinType *BT = SeltTy->getAs<BuiltinType>()) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000489 if (BT->isIntegerType()) {
490 // We need to use the size of the structure, padding
491 // bit-fields can adjust that to be larger than the single
492 // element type.
Chris Lattner458b2aa2010-07-29 02:16:43 +0000493 uint64_t Size = getContext().getTypeSize(RetTy);
Owen Anderson170229f2009-07-14 23:10:40 +0000494 return ABIArgInfo::getCoerce(
Chris Lattner458b2aa2010-07-29 02:16:43 +0000495 llvm::IntegerType::get(getVMContext(), (unsigned)Size));
496 }
497
498 if (BT->getKind() == BuiltinType::Float) {
499 assert(getContext().getTypeSize(RetTy) ==
500 getContext().getTypeSize(SeltTy) &&
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000501 "Unexpect single element structure size!");
Chris Lattner458b2aa2010-07-29 02:16:43 +0000502 return ABIArgInfo::getCoerce(llvm::Type::getFloatTy(getVMContext()));
503 }
504
505 if (BT->getKind() == BuiltinType::Double) {
506 assert(getContext().getTypeSize(RetTy) ==
507 getContext().getTypeSize(SeltTy) &&
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000508 "Unexpect single element structure size!");
Chris Lattner458b2aa2010-07-29 02:16:43 +0000509 return ABIArgInfo::getCoerce(llvm::Type::getDoubleTy(getVMContext()));
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000510 }
511 } else if (SeltTy->isPointerType()) {
512 // FIXME: It would be really nice if this could come out as the proper
513 // pointer type.
Chris Lattner458b2aa2010-07-29 02:16:43 +0000514 const llvm::Type *PtrTy = llvm::Type::getInt8PtrTy(getVMContext());
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000515 return ABIArgInfo::getCoerce(PtrTy);
516 } else if (SeltTy->isVectorType()) {
517 // 64- and 128-bit vectors are never returned in a
518 // register when inside a structure.
Chris Lattner458b2aa2010-07-29 02:16:43 +0000519 uint64_t Size = getContext().getTypeSize(RetTy);
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000520 if (Size == 64 || Size == 128)
521 return ABIArgInfo::getIndirect(0);
522
Chris Lattner458b2aa2010-07-29 02:16:43 +0000523 return classifyReturnType(QualType(SeltTy, 0));
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000524 }
525 }
526
527 // Small structures which are register sized are generally returned
528 // in a register.
Chris Lattner458b2aa2010-07-29 02:16:43 +0000529 if (X86_32ABIInfo::shouldReturnTypeInRegister(RetTy, getContext())) {
530 uint64_t Size = getContext().getTypeSize(RetTy);
531 return ABIArgInfo::getCoerce(llvm::IntegerType::get(getVMContext(),Size));
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000532 }
533
534 return ABIArgInfo::getIndirect(0);
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000535 }
Chris Lattner458b2aa2010-07-29 02:16:43 +0000536
537 // Treat an enum type as its underlying type.
538 if (const EnumType *EnumTy = RetTy->getAs<EnumType>())
539 RetTy = EnumTy->getDecl()->getIntegerType();
540
541 return (RetTy->isPromotableIntegerType() ?
542 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000543}
544
Chris Lattner458b2aa2010-07-29 02:16:43 +0000545ABIArgInfo X86_32ABIInfo::getIndirectResult(QualType Ty, bool ByVal) const {
Daniel Dunbar53fac692010-04-21 19:49:55 +0000546 if (!ByVal)
547 return ABIArgInfo::getIndirect(0, false);
548
549 // Compute the byval alignment. We trust the back-end to honor the
550 // minimum ABI alignment for byval, to make cleaner IR.
551 const unsigned MinABIAlign = 4;
Chris Lattner458b2aa2010-07-29 02:16:43 +0000552 unsigned Align = getContext().getTypeAlign(Ty) / 8;
Daniel Dunbar53fac692010-04-21 19:49:55 +0000553 if (Align > MinABIAlign)
554 return ABIArgInfo::getIndirect(Align);
555 return ABIArgInfo::getIndirect(0);
Daniel Dunbar557893d2010-04-21 19:10:51 +0000556}
557
Chris Lattner458b2aa2010-07-29 02:16:43 +0000558ABIArgInfo X86_32ABIInfo::classifyArgumentType(QualType Ty) const {
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000559 // FIXME: Set alignment on indirect arguments.
560 if (CodeGenFunction::hasAggregateLLVMType(Ty)) {
561 // Structures with flexible arrays are always indirect.
Anders Carlsson40446e82010-01-27 03:25:19 +0000562 if (const RecordType *RT = Ty->getAs<RecordType>()) {
563 // Structures with either a non-trivial destructor or a non-trivial
564 // copy constructor are always indirect.
565 if (hasNonTrivialDestructorOrCopyConstructor(RT))
Chris Lattner458b2aa2010-07-29 02:16:43 +0000566 return getIndirectResult(Ty, /*ByVal=*/false);
Daniel Dunbar557893d2010-04-21 19:10:51 +0000567
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000568 if (RT->getDecl()->hasFlexibleArrayMember())
Chris Lattner458b2aa2010-07-29 02:16:43 +0000569 return getIndirectResult(Ty);
Anders Carlsson40446e82010-01-27 03:25:19 +0000570 }
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000571
572 // Ignore empty structs.
Chris Lattner458b2aa2010-07-29 02:16:43 +0000573 if (Ty->isStructureType() && getContext().getTypeSize(Ty) == 0)
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000574 return ABIArgInfo::getIgnore();
575
Daniel Dunbar11c08c82009-11-09 01:33:53 +0000576 // Expand small (<= 128-bit) record types when we know that the stack layout
577 // of those arguments will match the struct. This is important because the
578 // LLVM backend isn't smart enough to remove byval, which inhibits many
579 // optimizations.
Chris Lattner458b2aa2010-07-29 02:16:43 +0000580 if (getContext().getTypeSize(Ty) <= 4*32 &&
581 canExpandIndirectArgument(Ty, getContext()))
Daniel Dunbar11c08c82009-11-09 01:33:53 +0000582 return ABIArgInfo::getExpand();
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000583
Chris Lattner458b2aa2010-07-29 02:16:43 +0000584 return getIndirectResult(Ty);
585 }
586
587 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
588 Ty = EnumTy->getDecl()->getIntegerType();
Douglas Gregora71cc152010-02-02 20:10:50 +0000589
Chris Lattner458b2aa2010-07-29 02:16:43 +0000590 return (Ty->isPromotableIntegerType() ?
591 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000592}
593
594llvm::Value *X86_32ABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
595 CodeGenFunction &CGF) const {
Benjamin Kramerabd5b902009-10-13 10:07:13 +0000596 const llvm::Type *BP = llvm::Type::getInt8PtrTy(CGF.getLLVMContext());
Owen Anderson9793f0e2009-07-29 22:16:19 +0000597 const llvm::Type *BPP = llvm::PointerType::getUnqual(BP);
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000598
599 CGBuilderTy &Builder = CGF.Builder;
600 llvm::Value *VAListAddrAsBPP = Builder.CreateBitCast(VAListAddr, BPP,
601 "ap");
602 llvm::Value *Addr = Builder.CreateLoad(VAListAddrAsBPP, "ap.cur");
603 llvm::Type *PTy =
Owen Anderson9793f0e2009-07-29 22:16:19 +0000604 llvm::PointerType::getUnqual(CGF.ConvertType(Ty));
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000605 llvm::Value *AddrTyped = Builder.CreateBitCast(Addr, PTy);
606
607 uint64_t Offset =
608 llvm::RoundUpToAlignment(CGF.getContext().getTypeSize(Ty) / 8, 4);
609 llvm::Value *NextAddr =
Chris Lattner5e016ae2010-06-27 07:15:29 +0000610 Builder.CreateGEP(Addr, llvm::ConstantInt::get(CGF.Int32Ty, Offset),
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000611 "ap.next");
612 Builder.CreateStore(NextAddr, VAListAddrAsBPP);
613
614 return AddrTyped;
615}
616
Charles Davis4ea31ab2010-02-13 15:54:06 +0000617void X86_32TargetCodeGenInfo::SetTargetAttributes(const Decl *D,
618 llvm::GlobalValue *GV,
619 CodeGen::CodeGenModule &CGM) const {
620 if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(D)) {
621 if (FD->hasAttr<X86ForceAlignArgPointerAttr>()) {
622 // Get the LLVM function.
623 llvm::Function *Fn = cast<llvm::Function>(GV);
624
625 // Now add the 'alignstack' attribute with a value of 16.
626 Fn->addFnAttr(llvm::Attribute::constructStackAlignmentFromInt(16));
627 }
628 }
629}
630
John McCallbeec5a02010-03-06 00:35:14 +0000631bool X86_32TargetCodeGenInfo::initDwarfEHRegSizeTable(
632 CodeGen::CodeGenFunction &CGF,
633 llvm::Value *Address) const {
634 CodeGen::CGBuilderTy &Builder = CGF.Builder;
635 llvm::LLVMContext &Context = CGF.getLLVMContext();
636
637 const llvm::IntegerType *i8 = llvm::Type::getInt8Ty(Context);
638 llvm::Value *Four8 = llvm::ConstantInt::get(i8, 4);
639
640 // 0-7 are the eight integer registers; the order is different
641 // on Darwin (for EH), but the range is the same.
642 // 8 is %eip.
John McCall943fae92010-05-27 06:19:26 +0000643 AssignToArrayRange(Builder, Address, Four8, 0, 8);
John McCallbeec5a02010-03-06 00:35:14 +0000644
645 if (CGF.CGM.isTargetDarwin()) {
646 // 12-16 are st(0..4). Not sure why we stop at 4.
647 // These have size 16, which is sizeof(long double) on
648 // platforms with 8-byte alignment for that type.
649 llvm::Value *Sixteen8 = llvm::ConstantInt::get(i8, 16);
John McCall943fae92010-05-27 06:19:26 +0000650 AssignToArrayRange(Builder, Address, Sixteen8, 12, 16);
John McCallbeec5a02010-03-06 00:35:14 +0000651
652 } else {
653 // 9 is %eflags, which doesn't get a size on Darwin for some
654 // reason.
655 Builder.CreateStore(Four8, Builder.CreateConstInBoundsGEP1_32(Address, 9));
656
657 // 11-16 are st(0..5). Not sure why we stop at 5.
658 // These have size 12, which is sizeof(long double) on
659 // platforms with 4-byte alignment for that type.
660 llvm::Value *Twelve8 = llvm::ConstantInt::get(i8, 12);
John McCall943fae92010-05-27 06:19:26 +0000661 AssignToArrayRange(Builder, Address, Twelve8, 11, 16);
662 }
John McCallbeec5a02010-03-06 00:35:14 +0000663
664 return false;
665}
666
Chris Lattner0cf24192010-06-28 20:05:43 +0000667//===----------------------------------------------------------------------===//
668// X86-64 ABI Implementation
669//===----------------------------------------------------------------------===//
670
671
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000672namespace {
673/// X86_64ABIInfo - The X86_64 ABI information.
674class X86_64ABIInfo : public ABIInfo {
675 enum Class {
676 Integer = 0,
677 SSE,
678 SSEUp,
679 X87,
680 X87Up,
681 ComplexX87,
682 NoClass,
683 Memory
684 };
685
686 /// merge - Implement the X86_64 ABI merging algorithm.
687 ///
688 /// Merge an accumulating classification \arg Accum with a field
689 /// classification \arg Field.
690 ///
691 /// \param Accum - The accumulating classification. This should
692 /// always be either NoClass or the result of a previous merge
693 /// call. In addition, this should never be Memory (the caller
694 /// should just return Memory for the aggregate).
Chris Lattnerd776fb12010-06-28 21:43:59 +0000695 static Class merge(Class Accum, Class Field);
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000696
697 /// classify - Determine the x86_64 register classes in which the
698 /// given type T should be passed.
699 ///
700 /// \param Lo - The classification for the parts of the type
701 /// residing in the low word of the containing object.
702 ///
703 /// \param Hi - The classification for the parts of the type
704 /// residing in the high word of the containing object.
705 ///
706 /// \param OffsetBase - The bit offset of this type in the
707 /// containing object. Some parameters are classified different
708 /// depending on whether they straddle an eightbyte boundary.
709 ///
710 /// If a word is unused its result will be NoClass; if a type should
711 /// be passed in Memory then at least the classification of \arg Lo
712 /// will be Memory.
713 ///
714 /// The \arg Lo class will be NoClass iff the argument is ignored.
715 ///
716 /// If the \arg Lo class is ComplexX87, then the \arg Hi class will
717 /// also be ComplexX87.
Chris Lattner22a931e2010-06-29 06:01:59 +0000718 void classify(QualType T, uint64_t OffsetBase, Class &Lo, Class &Hi) const;
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000719
Chris Lattner4200fe42010-07-29 04:56:46 +0000720 const llvm::Type *Get16ByteVectorType(QualType Ty) const;
721
Chris Lattner029c0f12010-07-29 04:41:05 +0000722 const llvm::Type *Get8ByteTypeAtOffset(const llvm::Type *IRType,
723 unsigned IROffset, QualType SourceTy,
Chris Lattnerc11301c2010-07-29 02:20:19 +0000724 unsigned SourceOffset) const;
725
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000726 /// getCoerceResult - Given a source type \arg Ty and an LLVM type
727 /// to coerce to, chose the best way to pass Ty in the same place
728 /// that \arg CoerceTo would be passed, but while keeping the
729 /// emitted code as simple as possible.
730 ///
731 /// FIXME: Note, this should be cleaned up to just take an enumeration of all
732 /// the ways we might want to pass things, instead of constructing an LLVM
733 /// type. This makes this code more explicit, and it makes it clearer that we
734 /// are also doing this for correctness in the case of passing scalar types.
735 ABIArgInfo getCoerceResult(QualType Ty,
Chris Lattner22a931e2010-06-29 06:01:59 +0000736 const llvm::Type *CoerceTo) const;
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000737
738 /// getIndirectResult - Give a source type \arg Ty, return a suitable result
Daniel Dunbar53fac692010-04-21 19:49:55 +0000739 /// such that the argument will be returned in memory.
Chris Lattner22a931e2010-06-29 06:01:59 +0000740 ABIArgInfo getIndirectReturnResult(QualType Ty) const;
Daniel Dunbar53fac692010-04-21 19:49:55 +0000741
742 /// getIndirectResult - Give a source type \arg Ty, return a suitable result
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000743 /// such that the argument will be passed in memory.
Chris Lattner22a931e2010-06-29 06:01:59 +0000744 ABIArgInfo getIndirectResult(QualType Ty) const;
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000745
Chris Lattner458b2aa2010-07-29 02:16:43 +0000746 ABIArgInfo classifyReturnType(QualType RetTy) const;
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000747
Chris Lattner029c0f12010-07-29 04:41:05 +0000748 ABIArgInfo classifyArgumentType(QualType Ty, unsigned &neededInt,
749 unsigned &neededSSE) const;
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000750
751public:
Chris Lattner2b037972010-07-29 02:01:43 +0000752 X86_64ABIInfo(CodeGen::CodeGenTypes &CGT) : ABIInfo(CGT) {}
Chris Lattner22a931e2010-06-29 06:01:59 +0000753
Chris Lattner22326a12010-07-29 02:31:05 +0000754 virtual void computeInfo(CGFunctionInfo &FI) const;
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000755
756 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
757 CodeGenFunction &CGF) const;
758};
Anton Korobeynikov55bcea12010-01-10 12:58:08 +0000759
760class X86_64TargetCodeGenInfo : public TargetCodeGenInfo {
761public:
Chris Lattner2b037972010-07-29 02:01:43 +0000762 X86_64TargetCodeGenInfo(CodeGen::CodeGenTypes &CGT)
763 : TargetCodeGenInfo(new X86_64ABIInfo(CGT)) {}
John McCallbeec5a02010-03-06 00:35:14 +0000764
765 int getDwarfEHStackPointer(CodeGen::CodeGenModule &CGM) const {
766 return 7;
767 }
768
769 bool initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
770 llvm::Value *Address) const {
771 CodeGen::CGBuilderTy &Builder = CGF.Builder;
772 llvm::LLVMContext &Context = CGF.getLLVMContext();
773
774 const llvm::IntegerType *i8 = llvm::Type::getInt8Ty(Context);
775 llvm::Value *Eight8 = llvm::ConstantInt::get(i8, 8);
776
John McCall943fae92010-05-27 06:19:26 +0000777 // 0-15 are the 16 integer registers.
778 // 16 is %rip.
779 AssignToArrayRange(Builder, Address, Eight8, 0, 16);
John McCallbeec5a02010-03-06 00:35:14 +0000780
781 return false;
782 }
Anton Korobeynikov55bcea12010-01-10 12:58:08 +0000783};
784
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000785}
786
Chris Lattnerd776fb12010-06-28 21:43:59 +0000787X86_64ABIInfo::Class X86_64ABIInfo::merge(Class Accum, Class Field) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000788 // AMD64-ABI 3.2.3p2: Rule 4. Each field of an object is
789 // classified recursively so that always two fields are
790 // considered. The resulting class is calculated according to
791 // the classes of the fields in the eightbyte:
792 //
793 // (a) If both classes are equal, this is the resulting class.
794 //
795 // (b) If one of the classes is NO_CLASS, the resulting class is
796 // the other class.
797 //
798 // (c) If one of the classes is MEMORY, the result is the MEMORY
799 // class.
800 //
801 // (d) If one of the classes is INTEGER, the result is the
802 // INTEGER.
803 //
804 // (e) If one of the classes is X87, X87UP, COMPLEX_X87 class,
805 // MEMORY is used as class.
806 //
807 // (f) Otherwise class SSE is used.
808
809 // Accum should never be memory (we should have returned) or
810 // ComplexX87 (because this cannot be passed in a structure).
811 assert((Accum != Memory && Accum != ComplexX87) &&
812 "Invalid accumulated classification during merge.");
813 if (Accum == Field || Field == NoClass)
814 return Accum;
Chris Lattnerd776fb12010-06-28 21:43:59 +0000815 if (Field == Memory)
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000816 return Memory;
Chris Lattnerd776fb12010-06-28 21:43:59 +0000817 if (Accum == NoClass)
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000818 return Field;
Chris Lattnerd776fb12010-06-28 21:43:59 +0000819 if (Accum == Integer || Field == Integer)
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000820 return Integer;
Chris Lattnerd776fb12010-06-28 21:43:59 +0000821 if (Field == X87 || Field == X87Up || Field == ComplexX87 ||
822 Accum == X87 || Accum == X87Up)
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000823 return Memory;
Chris Lattnerd776fb12010-06-28 21:43:59 +0000824 return SSE;
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000825}
826
Chris Lattner5c740f12010-06-30 19:14:05 +0000827void X86_64ABIInfo::classify(QualType Ty, uint64_t OffsetBase,
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000828 Class &Lo, Class &Hi) const {
829 // FIXME: This code can be simplified by introducing a simple value class for
830 // Class pairs with appropriate constructor methods for the various
831 // situations.
832
833 // FIXME: Some of the split computations are wrong; unaligned vectors
834 // shouldn't be passed in registers for example, so there is no chance they
835 // can straddle an eightbyte. Verify & simplify.
836
837 Lo = Hi = NoClass;
838
839 Class &Current = OffsetBase < 64 ? Lo : Hi;
840 Current = Memory;
841
John McCall9dd450b2009-09-21 23:43:11 +0000842 if (const BuiltinType *BT = Ty->getAs<BuiltinType>()) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000843 BuiltinType::Kind k = BT->getKind();
844
845 if (k == BuiltinType::Void) {
846 Current = NoClass;
847 } else if (k == BuiltinType::Int128 || k == BuiltinType::UInt128) {
848 Lo = Integer;
849 Hi = Integer;
850 } else if (k >= BuiltinType::Bool && k <= BuiltinType::LongLong) {
851 Current = Integer;
852 } else if (k == BuiltinType::Float || k == BuiltinType::Double) {
853 Current = SSE;
854 } else if (k == BuiltinType::LongDouble) {
855 Lo = X87;
856 Hi = X87Up;
857 }
858 // FIXME: _Decimal32 and _Decimal64 are SSE.
859 // FIXME: _float128 and _Decimal128 are (SSE, SSEUp).
Chris Lattnerd776fb12010-06-28 21:43:59 +0000860 return;
861 }
862
863 if (const EnumType *ET = Ty->getAs<EnumType>()) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000864 // Classify the underlying integer type.
Chris Lattner22a931e2010-06-29 06:01:59 +0000865 classify(ET->getDecl()->getIntegerType(), OffsetBase, Lo, Hi);
Chris Lattnerd776fb12010-06-28 21:43:59 +0000866 return;
867 }
868
869 if (Ty->hasPointerRepresentation()) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000870 Current = Integer;
Chris Lattnerd776fb12010-06-28 21:43:59 +0000871 return;
872 }
873
874 if (Ty->isMemberPointerType()) {
Daniel Dunbar36d4d152010-05-15 00:00:37 +0000875 if (Ty->isMemberFunctionPointerType())
876 Lo = Hi = Integer;
877 else
878 Current = Integer;
Chris Lattnerd776fb12010-06-28 21:43:59 +0000879 return;
880 }
881
882 if (const VectorType *VT = Ty->getAs<VectorType>()) {
Chris Lattner2b037972010-07-29 02:01:43 +0000883 uint64_t Size = getContext().getTypeSize(VT);
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000884 if (Size == 32) {
885 // gcc passes all <4 x char>, <2 x short>, <1 x int>, <1 x
886 // float> as integer.
887 Current = Integer;
888
889 // If this type crosses an eightbyte boundary, it should be
890 // split.
891 uint64_t EB_Real = (OffsetBase) / 64;
892 uint64_t EB_Imag = (OffsetBase + Size - 1) / 64;
893 if (EB_Real != EB_Imag)
894 Hi = Lo;
895 } else if (Size == 64) {
896 // gcc passes <1 x double> in memory. :(
897 if (VT->getElementType()->isSpecificBuiltinType(BuiltinType::Double))
898 return;
899
900 // gcc passes <1 x long long> as INTEGER.
901 if (VT->getElementType()->isSpecificBuiltinType(BuiltinType::LongLong))
902 Current = Integer;
903 else
904 Current = SSE;
905
906 // If this type crosses an eightbyte boundary, it should be
907 // split.
908 if (OffsetBase && OffsetBase != 64)
909 Hi = Lo;
910 } else if (Size == 128) {
911 Lo = SSE;
912 Hi = SSEUp;
913 }
Chris Lattnerd776fb12010-06-28 21:43:59 +0000914 return;
915 }
916
917 if (const ComplexType *CT = Ty->getAs<ComplexType>()) {
Chris Lattner2b037972010-07-29 02:01:43 +0000918 QualType ET = getContext().getCanonicalType(CT->getElementType());
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000919
Chris Lattner2b037972010-07-29 02:01:43 +0000920 uint64_t Size = getContext().getTypeSize(Ty);
Douglas Gregorb90df602010-06-16 00:17:44 +0000921 if (ET->isIntegralOrEnumerationType()) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000922 if (Size <= 64)
923 Current = Integer;
924 else if (Size <= 128)
925 Lo = Hi = Integer;
Chris Lattner2b037972010-07-29 02:01:43 +0000926 } else if (ET == getContext().FloatTy)
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000927 Current = SSE;
Chris Lattner2b037972010-07-29 02:01:43 +0000928 else if (ET == getContext().DoubleTy)
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000929 Lo = Hi = SSE;
Chris Lattner2b037972010-07-29 02:01:43 +0000930 else if (ET == getContext().LongDoubleTy)
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000931 Current = ComplexX87;
932
933 // If this complex type crosses an eightbyte boundary then it
934 // should be split.
935 uint64_t EB_Real = (OffsetBase) / 64;
Chris Lattner2b037972010-07-29 02:01:43 +0000936 uint64_t EB_Imag = (OffsetBase + getContext().getTypeSize(ET)) / 64;
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000937 if (Hi == NoClass && EB_Real != EB_Imag)
938 Hi = Lo;
Chris Lattnerd776fb12010-06-28 21:43:59 +0000939
940 return;
941 }
942
Chris Lattner2b037972010-07-29 02:01:43 +0000943 if (const ConstantArrayType *AT = getContext().getAsConstantArrayType(Ty)) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000944 // Arrays are treated like structures.
945
Chris Lattner2b037972010-07-29 02:01:43 +0000946 uint64_t Size = getContext().getTypeSize(Ty);
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000947
948 // AMD64-ABI 3.2.3p2: Rule 1. If the size of an object is larger
949 // than two eightbytes, ..., it has class MEMORY.
950 if (Size > 128)
951 return;
952
953 // AMD64-ABI 3.2.3p2: Rule 1. If ..., or it contains unaligned
954 // fields, it has class MEMORY.
955 //
956 // Only need to check alignment of array base.
Chris Lattner2b037972010-07-29 02:01:43 +0000957 if (OffsetBase % getContext().getTypeAlign(AT->getElementType()))
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000958 return;
959
960 // Otherwise implement simplified merge. We could be smarter about
961 // this, but it isn't worth it and would be harder to verify.
962 Current = NoClass;
Chris Lattner2b037972010-07-29 02:01:43 +0000963 uint64_t EltSize = getContext().getTypeSize(AT->getElementType());
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000964 uint64_t ArraySize = AT->getSize().getZExtValue();
965 for (uint64_t i=0, Offset=OffsetBase; i<ArraySize; ++i, Offset += EltSize) {
966 Class FieldLo, FieldHi;
Chris Lattner22a931e2010-06-29 06:01:59 +0000967 classify(AT->getElementType(), Offset, FieldLo, FieldHi);
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000968 Lo = merge(Lo, FieldLo);
969 Hi = merge(Hi, FieldHi);
970 if (Lo == Memory || Hi == Memory)
971 break;
972 }
973
974 // Do post merger cleanup (see below). Only case we worry about is Memory.
975 if (Hi == Memory)
976 Lo = Memory;
977 assert((Hi != SSEUp || Lo == SSE) && "Invalid SSEUp array classification.");
Chris Lattnerd776fb12010-06-28 21:43:59 +0000978 return;
979 }
980
981 if (const RecordType *RT = Ty->getAs<RecordType>()) {
Chris Lattner2b037972010-07-29 02:01:43 +0000982 uint64_t Size = getContext().getTypeSize(Ty);
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000983
984 // AMD64-ABI 3.2.3p2: Rule 1. If the size of an object is larger
985 // than two eightbytes, ..., it has class MEMORY.
986 if (Size > 128)
987 return;
988
Anders Carlsson20759ad2009-09-16 15:53:40 +0000989 // AMD64-ABI 3.2.3p2: Rule 2. If a C++ object has either a non-trivial
990 // copy constructor or a non-trivial destructor, it is passed by invisible
991 // reference.
992 if (hasNonTrivialDestructorOrCopyConstructor(RT))
993 return;
Daniel Dunbare1cd0152009-11-22 23:01:23 +0000994
Anton Korobeynikov244360d2009-06-05 22:08:42 +0000995 const RecordDecl *RD = RT->getDecl();
996
997 // Assume variable sized types are passed in memory.
998 if (RD->hasFlexibleArrayMember())
999 return;
1000
Chris Lattner2b037972010-07-29 02:01:43 +00001001 const ASTRecordLayout &Layout = getContext().getASTRecordLayout(RD);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001002
1003 // Reset Lo class, this will be recomputed.
1004 Current = NoClass;
Daniel Dunbare1cd0152009-11-22 23:01:23 +00001005
1006 // If this is a C++ record, classify the bases first.
1007 if (const CXXRecordDecl *CXXRD = dyn_cast<CXXRecordDecl>(RD)) {
1008 for (CXXRecordDecl::base_class_const_iterator i = CXXRD->bases_begin(),
1009 e = CXXRD->bases_end(); i != e; ++i) {
1010 assert(!i->isVirtual() && !i->getType()->isDependentType() &&
1011 "Unexpected base class!");
1012 const CXXRecordDecl *Base =
1013 cast<CXXRecordDecl>(i->getType()->getAs<RecordType>()->getDecl());
1014
1015 // Classify this field.
1016 //
1017 // AMD64-ABI 3.2.3p2: Rule 3. If the size of the aggregate exceeds a
1018 // single eightbyte, each is classified separately. Each eightbyte gets
1019 // initialized to class NO_CLASS.
1020 Class FieldLo, FieldHi;
1021 uint64_t Offset = OffsetBase + Layout.getBaseClassOffset(Base);
Chris Lattner22a931e2010-06-29 06:01:59 +00001022 classify(i->getType(), Offset, FieldLo, FieldHi);
Daniel Dunbare1cd0152009-11-22 23:01:23 +00001023 Lo = merge(Lo, FieldLo);
1024 Hi = merge(Hi, FieldHi);
1025 if (Lo == Memory || Hi == Memory)
1026 break;
1027 }
Daniel Dunbar3780f0b2009-12-22 01:19:25 +00001028
1029 // If this record has no fields but isn't empty, classify as INTEGER.
1030 if (RD->field_empty() && Size)
1031 Current = Integer;
Daniel Dunbare1cd0152009-11-22 23:01:23 +00001032 }
1033
1034 // Classify the fields one at a time, merging the results.
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001035 unsigned idx = 0;
Argyrios Kyrtzidiscfbfe782009-06-30 02:36:12 +00001036 for (RecordDecl::field_iterator i = RD->field_begin(), e = RD->field_end();
1037 i != e; ++i, ++idx) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001038 uint64_t Offset = OffsetBase + Layout.getFieldOffset(idx);
1039 bool BitField = i->isBitField();
1040
1041 // AMD64-ABI 3.2.3p2: Rule 1. If ..., or it contains unaligned
1042 // fields, it has class MEMORY.
1043 //
1044 // Note, skip this test for bit-fields, see below.
Chris Lattner2b037972010-07-29 02:01:43 +00001045 if (!BitField && Offset % getContext().getTypeAlign(i->getType())) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001046 Lo = Memory;
1047 return;
1048 }
1049
1050 // Classify this field.
1051 //
1052 // AMD64-ABI 3.2.3p2: Rule 3. If the size of the aggregate
1053 // exceeds a single eightbyte, each is classified
1054 // separately. Each eightbyte gets initialized to class
1055 // NO_CLASS.
1056 Class FieldLo, FieldHi;
1057
1058 // Bit-fields require special handling, they do not force the
1059 // structure to be passed in memory even if unaligned, and
1060 // therefore they can straddle an eightbyte.
1061 if (BitField) {
1062 // Ignore padding bit-fields.
1063 if (i->isUnnamedBitfield())
1064 continue;
1065
1066 uint64_t Offset = OffsetBase + Layout.getFieldOffset(idx);
Chris Lattner2b037972010-07-29 02:01:43 +00001067 uint64_t Size =
1068 i->getBitWidth()->EvaluateAsInt(getContext()).getZExtValue();
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001069
1070 uint64_t EB_Lo = Offset / 64;
1071 uint64_t EB_Hi = (Offset + Size - 1) / 64;
1072 FieldLo = FieldHi = NoClass;
1073 if (EB_Lo) {
1074 assert(EB_Hi == EB_Lo && "Invalid classification, type > 16 bytes.");
1075 FieldLo = NoClass;
1076 FieldHi = Integer;
1077 } else {
1078 FieldLo = Integer;
1079 FieldHi = EB_Hi ? Integer : NoClass;
1080 }
1081 } else
Chris Lattner22a931e2010-06-29 06:01:59 +00001082 classify(i->getType(), Offset, FieldLo, FieldHi);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001083 Lo = merge(Lo, FieldLo);
1084 Hi = merge(Hi, FieldHi);
1085 if (Lo == Memory || Hi == Memory)
1086 break;
1087 }
1088
1089 // AMD64-ABI 3.2.3p2: Rule 5. Then a post merger cleanup is done:
1090 //
1091 // (a) If one of the classes is MEMORY, the whole argument is
1092 // passed in memory.
1093 //
1094 // (b) If SSEUP is not preceeded by SSE, it is converted to SSE.
1095
1096 // The first of these conditions is guaranteed by how we implement
1097 // the merge (just bail).
1098 //
1099 // The second condition occurs in the case of unions; for example
1100 // union { _Complex double; unsigned; }.
1101 if (Hi == Memory)
1102 Lo = Memory;
1103 if (Hi == SSEUp && Lo != SSE)
1104 Hi = SSE;
1105 }
1106}
1107
1108ABIArgInfo X86_64ABIInfo::getCoerceResult(QualType Ty,
Chris Lattner22a931e2010-06-29 06:01:59 +00001109 const llvm::Type *CoerceTo) const {
Chris Lattner4c1e4842010-07-28 22:15:08 +00001110 // If this is a pointer passed as a pointer, just pass it directly.
1111 if ((isa<llvm::PointerType>(CoerceTo) || CoerceTo->isIntegerTy(64)) &&
1112 Ty->hasPointerRepresentation())
1113 return ABIArgInfo::getExtend();
1114
1115 if (isa<llvm::IntegerType>(CoerceTo)) {
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001116 // Integer and pointer types will end up in a general purpose
1117 // register.
Douglas Gregora71cc152010-02-02 20:10:50 +00001118
1119 // Treat an enum type as its underlying type.
1120 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
1121 Ty = EnumTy->getDecl()->getIntegerType();
1122
Chris Lattner4c1e4842010-07-28 22:15:08 +00001123 if (Ty->isIntegralOrEnumerationType())
Anton Korobeynikov18adbf52009-06-06 09:36:29 +00001124 return (Ty->isPromotableIntegerType() ?
1125 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Chris Lattnerfa560fe2010-07-28 23:12:33 +00001126
Chris Lattnerfa20e952010-06-26 21:52:32 +00001127 } else if (CoerceTo->isDoubleTy()) {
John McCall8ee376f2010-02-24 07:14:12 +00001128 assert(Ty.isCanonical() && "should always have a canonical type here");
1129 assert(!Ty.hasQualifiers() && "should never have a qualified type here");
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001130
1131 // Float and double end up in a single SSE reg.
Chris Lattner2b037972010-07-29 02:01:43 +00001132 if (Ty == getContext().FloatTy || Ty == getContext().DoubleTy)
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001133 return ABIArgInfo::getDirect();
1134
Chris Lattnera7d81ab2010-06-28 19:56:59 +00001135 // If this is a 32-bit structure that is passed as a double, then it will be
1136 // passed in the low 32-bits of the XMM register, which is the same as how a
1137 // float is passed. Coerce to a float instead of a double.
Chris Lattner2b037972010-07-29 02:01:43 +00001138 if (getContext().getTypeSizeInChars(Ty).getQuantity() == 4)
Chris Lattnera7d81ab2010-06-28 19:56:59 +00001139 CoerceTo = llvm::Type::getFloatTy(CoerceTo->getContext());
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001140 }
1141
1142 return ABIArgInfo::getCoerce(CoerceTo);
1143}
1144
Chris Lattner22a931e2010-06-29 06:01:59 +00001145ABIArgInfo X86_64ABIInfo::getIndirectReturnResult(QualType Ty) const {
Daniel Dunbar53fac692010-04-21 19:49:55 +00001146 // If this is a scalar LLVM value then assume LLVM will pass it in the right
1147 // place naturally.
1148 if (!CodeGenFunction::hasAggregateLLVMType(Ty)) {
1149 // Treat an enum type as its underlying type.
1150 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
1151 Ty = EnumTy->getDecl()->getIntegerType();
1152
1153 return (Ty->isPromotableIntegerType() ?
1154 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
1155 }
1156
1157 return ABIArgInfo::getIndirect(0);
1158}
1159
Chris Lattner22a931e2010-06-29 06:01:59 +00001160ABIArgInfo X86_64ABIInfo::getIndirectResult(QualType Ty) const {
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001161 // If this is a scalar LLVM value then assume LLVM will pass it in the right
1162 // place naturally.
Douglas Gregora71cc152010-02-02 20:10:50 +00001163 if (!CodeGenFunction::hasAggregateLLVMType(Ty)) {
1164 // Treat an enum type as its underlying type.
1165 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
1166 Ty = EnumTy->getDecl()->getIntegerType();
1167
Anton Korobeynikov18adbf52009-06-06 09:36:29 +00001168 return (Ty->isPromotableIntegerType() ?
1169 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Douglas Gregora71cc152010-02-02 20:10:50 +00001170 }
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001171
Daniel Dunbar53fac692010-04-21 19:49:55 +00001172 if (isRecordWithNonTrivialDestructorOrCopyConstructor(Ty))
1173 return ABIArgInfo::getIndirect(0, /*ByVal=*/false);
Anders Carlsson20759ad2009-09-16 15:53:40 +00001174
Daniel Dunbar53fac692010-04-21 19:49:55 +00001175 // Compute the byval alignment. We trust the back-end to honor the
1176 // minimum ABI alignment for byval, to make cleaner IR.
1177 const unsigned MinABIAlign = 8;
Chris Lattner2b037972010-07-29 02:01:43 +00001178 unsigned Align = getContext().getTypeAlign(Ty) / 8;
Daniel Dunbar53fac692010-04-21 19:49:55 +00001179 if (Align > MinABIAlign)
1180 return ABIArgInfo::getIndirect(Align);
1181 return ABIArgInfo::getIndirect(0);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001182}
1183
Chris Lattner4200fe42010-07-29 04:56:46 +00001184/// Get16ByteVectorType - The ABI specifies that a value should be passed in an
1185/// full vector XMM register. Pick an LLVM IR type that will be passed as a
1186/// vector register.
1187const llvm::Type *X86_64ABIInfo::Get16ByteVectorType(QualType Ty) const {
Chris Lattner9fa15c32010-07-29 05:02:29 +00001188 const llvm::Type *IRType = CGT.ConvertTypeRecursive(Ty);
1189
1190 // Wrapper structs that just contain vectors are passed just like vectors,
1191 // strip them off if present.
1192 const llvm::StructType *STy = dyn_cast<llvm::StructType>(IRType);
1193 while (STy && STy->getNumElements() == 1) {
1194 IRType = STy->getElementType(0);
1195 STy = dyn_cast<llvm::StructType>(IRType);
1196 }
1197
1198
1199
Chris Lattner4200fe42010-07-29 04:56:46 +00001200 // If the preferred type is a 16-byte vector, prefer to pass it.
Chris Lattner9fa15c32010-07-29 05:02:29 +00001201 if (const llvm::VectorType *VT = dyn_cast<llvm::VectorType>(IRType)){
Chris Lattner4200fe42010-07-29 04:56:46 +00001202 const llvm::Type *EltTy = VT->getElementType();
1203 if (VT->getBitWidth() == 128 &&
1204 (EltTy->isFloatTy() || EltTy->isDoubleTy() ||
1205 EltTy->isIntegerTy(8) || EltTy->isIntegerTy(16) ||
1206 EltTy->isIntegerTy(32) || EltTy->isIntegerTy(64) ||
1207 EltTy->isIntegerTy(128)))
1208 return VT;
1209 }
1210
1211 return llvm::VectorType::get(llvm::Type::getDoubleTy(getVMContext()), 2);
1212}
1213
1214
Chris Lattnerb22f1c82010-07-28 22:44:07 +00001215/// Get8ByteTypeAtOffset - The ABI specifies that a value should be passed in an
1216/// 8-byte GPR. This means that we either have a scalar or we are talking about
1217/// the high or low part of an up-to-16-byte struct. This routine picks the
1218/// best LLVM IR type to represent this, which may be i64 or may be anything
1219/// else that the backend will pass in a GPR that works better (e.g. i8, %foo*,
1220/// etc).
1221///
1222/// PrefType is an LLVM IR type that corresponds to (part of) the IR type for
1223/// the source type. IROffset is an offset in bytes into the LLVM IR type that
1224/// the 8-byte value references. PrefType may be null.
1225///
1226/// SourceTy is the source level type for the entire argument. SourceOffset is
1227/// an offset into this that we're processing (which is always either 0 or 8).
1228///
Chris Lattnerc11301c2010-07-29 02:20:19 +00001229const llvm::Type *X86_64ABIInfo::
Chris Lattner029c0f12010-07-29 04:41:05 +00001230Get8ByteTypeAtOffset(const llvm::Type *IRType, unsigned IROffset,
Chris Lattnerc11301c2010-07-29 02:20:19 +00001231 QualType SourceTy, unsigned SourceOffset) const {
Chris Lattner22a931e2010-06-29 06:01:59 +00001232 // Pointers are always 8-bytes at offset 0.
Chris Lattnerce1bd752010-07-29 04:51:12 +00001233 if (IROffset == 0 && isa<llvm::PointerType>(IRType))
Chris Lattner029c0f12010-07-29 04:41:05 +00001234 return IRType;
Chris Lattnerb22f1c82010-07-28 22:44:07 +00001235
Chris Lattner22a931e2010-06-29 06:01:59 +00001236 // TODO: 1/2/4/8 byte integers are also interesting, but we have to know that
1237 // the "hole" is not used in the containing struct (just undef padding).
Chris Lattnerb22f1c82010-07-28 22:44:07 +00001238
Chris Lattnerce1bd752010-07-29 04:51:12 +00001239 if (const llvm::StructType *STy = dyn_cast<llvm::StructType>(IRType)) {
Chris Lattnerb22f1c82010-07-28 22:44:07 +00001240 // If this is a struct, recurse into the field at the specified offset.
Chris Lattnerc11301c2010-07-29 02:20:19 +00001241 const llvm::StructLayout *SL = getTargetData().getStructLayout(STy);
Chris Lattnerb22f1c82010-07-28 22:44:07 +00001242 if (IROffset < SL->getSizeInBytes()) {
1243 unsigned FieldIdx = SL->getElementContainingOffset(IROffset);
1244 IROffset -= SL->getElementOffset(FieldIdx);
1245
1246 return Get8ByteTypeAtOffset(STy->getElementType(FieldIdx), IROffset,
Chris Lattnerc11301c2010-07-29 02:20:19 +00001247 SourceTy, SourceOffset);
Chris Lattnerb22f1c82010-07-28 22:44:07 +00001248 }
1249 }
Chris Lattner22a931e2010-06-29 06:01:59 +00001250
Chris Lattnerb22f1c82010-07-28 22:44:07 +00001251 // Okay, we don't have any better idea of what to pass, so we pass this in an
1252 // integer register that isn't too big to fit the rest of the struct.
Chris Lattnerc11301c2010-07-29 02:20:19 +00001253 uint64_t TySizeInBytes =
1254 getContext().getTypeSizeInChars(SourceTy).getQuantity();
Chris Lattnerb22f1c82010-07-28 22:44:07 +00001255
1256 // It is always safe to classify this as an integer type up to i64 that
1257 // isn't larger than the structure.
1258 switch (unsigned(TySizeInBytes-SourceOffset)) {
Chris Lattnerc11301c2010-07-29 02:20:19 +00001259 case 1: return llvm::Type::getInt8Ty(getVMContext());
1260 case 2: return llvm::Type::getInt16Ty(getVMContext());
Chris Lattnerb22f1c82010-07-28 22:44:07 +00001261 case 3:
Chris Lattnerc11301c2010-07-29 02:20:19 +00001262 case 4: return llvm::Type::getInt32Ty(getVMContext());
1263 default: return llvm::Type::getInt64Ty(getVMContext());
Chris Lattnerb22f1c82010-07-28 22:44:07 +00001264 }
Chris Lattner22a931e2010-06-29 06:01:59 +00001265}
1266
Chris Lattner31faff52010-07-28 23:06:14 +00001267ABIArgInfo X86_64ABIInfo::
Chris Lattner458b2aa2010-07-29 02:16:43 +00001268classifyReturnType(QualType RetTy) const {
Chris Lattner31faff52010-07-28 23:06:14 +00001269 // AMD64-ABI 3.2.3p4: Rule 1. Classify the return type with the
1270 // classification algorithm.
1271 X86_64ABIInfo::Class Lo, Hi;
1272 classify(RetTy, 0, Lo, Hi);
1273
1274 // Check some invariants.
1275 assert((Hi != Memory || Lo == Memory) && "Invalid memory classification.");
1276 assert((Lo != NoClass || Hi == NoClass) && "Invalid null classification.");
1277 assert((Hi != SSEUp || Lo == SSE) && "Invalid SSEUp classification.");
1278
1279 const llvm::Type *ResType = 0;
1280 switch (Lo) {
1281 case NoClass:
1282 return ABIArgInfo::getIgnore();
1283
1284 case SSEUp:
1285 case X87Up:
1286 assert(0 && "Invalid classification for lo word.");
1287
1288 // AMD64-ABI 3.2.3p4: Rule 2. Types of class memory are returned via
1289 // hidden argument.
1290 case Memory:
1291 return getIndirectReturnResult(RetTy);
1292
1293 // AMD64-ABI 3.2.3p4: Rule 3. If the class is INTEGER, the next
1294 // available register of the sequence %rax, %rdx is used.
1295 case Integer:
Chris Lattnerce1bd752010-07-29 04:51:12 +00001296 ResType = Get8ByteTypeAtOffset(CGT.ConvertTypeRecursive(RetTy), 0, RetTy,0);
Chris Lattner31faff52010-07-28 23:06:14 +00001297 break;
1298
1299 // AMD64-ABI 3.2.3p4: Rule 4. If the class is SSE, the next
1300 // available SSE register of the sequence %xmm0, %xmm1 is used.
1301 case SSE:
Chris Lattner2b037972010-07-29 02:01:43 +00001302 ResType = llvm::Type::getDoubleTy(getVMContext());
Chris Lattnerfa560fe2010-07-28 23:12:33 +00001303 break;
Chris Lattner31faff52010-07-28 23:06:14 +00001304
1305 // AMD64-ABI 3.2.3p4: Rule 6. If the class is X87, the value is
1306 // returned on the X87 stack in %st0 as 80-bit x87 number.
1307 case X87:
Chris Lattner2b037972010-07-29 02:01:43 +00001308 ResType = llvm::Type::getX86_FP80Ty(getVMContext());
Chris Lattnerfa560fe2010-07-28 23:12:33 +00001309 break;
Chris Lattner31faff52010-07-28 23:06:14 +00001310
1311 // AMD64-ABI 3.2.3p4: Rule 8. If the class is COMPLEX_X87, the real
1312 // part of the value is returned in %st0 and the imaginary part in
1313 // %st1.
1314 case ComplexX87:
1315 assert(Hi == ComplexX87 && "Unexpected ComplexX87 classification.");
Chris Lattner458b2aa2010-07-29 02:16:43 +00001316 ResType = llvm::StructType::get(getVMContext(),
Chris Lattner2b037972010-07-29 02:01:43 +00001317 llvm::Type::getX86_FP80Ty(getVMContext()),
1318 llvm::Type::getX86_FP80Ty(getVMContext()),
Chris Lattner31faff52010-07-28 23:06:14 +00001319 NULL);
1320 break;
1321 }
1322
1323 switch (Hi) {
1324 // Memory was handled previously and X87 should
1325 // never occur as a hi class.
1326 case Memory:
1327 case X87:
1328 assert(0 && "Invalid classification for hi word.");
1329
1330 case ComplexX87: // Previously handled.
Chris Lattnerfa560fe2010-07-28 23:12:33 +00001331 case NoClass:
1332 break;
Chris Lattner31faff52010-07-28 23:06:14 +00001333
1334 case Integer: {
Chris Lattnerce1bd752010-07-29 04:51:12 +00001335 const llvm::Type *HiType =
1336 Get8ByteTypeAtOffset(CGT.ConvertTypeRecursive(RetTy), 8, RetTy, 8);
Chris Lattner458b2aa2010-07-29 02:16:43 +00001337 ResType = llvm::StructType::get(getVMContext(), ResType, HiType, NULL);
Chris Lattner31faff52010-07-28 23:06:14 +00001338 break;
1339 }
1340 case SSE:
Chris Lattner458b2aa2010-07-29 02:16:43 +00001341 ResType = llvm::StructType::get(getVMContext(), ResType,
1342 llvm::Type::getDoubleTy(getVMContext()),
1343 NULL);
Chris Lattner31faff52010-07-28 23:06:14 +00001344 break;
1345
1346 // AMD64-ABI 3.2.3p4: Rule 5. If the class is SSEUP, the eightbyte
1347 // is passed in the upper half of the last used SSE register.
1348 //
1349 // SSEUP should always be preceeded by SSE, just widen.
1350 case SSEUp:
1351 assert(Lo == SSE && "Unexpected SSEUp classification.");
Chris Lattner4200fe42010-07-29 04:56:46 +00001352 ResType = Get16ByteVectorType(RetTy);
Chris Lattner31faff52010-07-28 23:06:14 +00001353 break;
1354
1355 // AMD64-ABI 3.2.3p4: Rule 7. If the class is X87UP, the value is
1356 // returned together with the previous X87 value in %st0.
1357 case X87Up:
1358 // If X87Up is preceeded by X87, we don't need to do
1359 // anything. However, in some cases with unions it may not be
1360 // preceeded by X87. In such situations we follow gcc and pass the
1361 // extra bits in an SSE reg.
1362 if (Lo != X87)
Chris Lattner458b2aa2010-07-29 02:16:43 +00001363 ResType = llvm::StructType::get(getVMContext(), ResType,
1364 llvm::Type::getDoubleTy(getVMContext()),
1365 NULL);
Chris Lattner31faff52010-07-28 23:06:14 +00001366 break;
1367 }
1368
1369 return getCoerceResult(RetTy, ResType);
1370}
1371
Chris Lattner458b2aa2010-07-29 02:16:43 +00001372ABIArgInfo X86_64ABIInfo::classifyArgumentType(QualType Ty, unsigned &neededInt,
Chris Lattner029c0f12010-07-29 04:41:05 +00001373 unsigned &neededSSE) const {
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001374 X86_64ABIInfo::Class Lo, Hi;
Chris Lattner22a931e2010-06-29 06:01:59 +00001375 classify(Ty, 0, Lo, Hi);
Chris Lattner029c0f12010-07-29 04:41:05 +00001376
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001377 // Check some invariants.
1378 // FIXME: Enforce these by construction.
1379 assert((Hi != Memory || Lo == Memory) && "Invalid memory classification.");
1380 assert((Lo != NoClass || Hi == NoClass) && "Invalid null classification.");
1381 assert((Hi != SSEUp || Lo == SSE) && "Invalid SSEUp classification.");
1382
1383 neededInt = 0;
1384 neededSSE = 0;
1385 const llvm::Type *ResType = 0;
1386 switch (Lo) {
1387 case NoClass:
1388 return ABIArgInfo::getIgnore();
1389
1390 // AMD64-ABI 3.2.3p3: Rule 1. If the class is MEMORY, pass the argument
1391 // on the stack.
1392 case Memory:
1393
1394 // AMD64-ABI 3.2.3p3: Rule 5. If the class is X87, X87UP or
1395 // COMPLEX_X87, it is passed in memory.
1396 case X87:
1397 case ComplexX87:
Chris Lattner22a931e2010-06-29 06:01:59 +00001398 return getIndirectResult(Ty);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001399
1400 case SSEUp:
1401 case X87Up:
1402 assert(0 && "Invalid classification for lo word.");
1403
1404 // AMD64-ABI 3.2.3p3: Rule 2. If the class is INTEGER, the next
1405 // available register of the sequence %rdi, %rsi, %rdx, %rcx, %r8
1406 // and %r9 is used.
1407 case Integer:
Chris Lattner22a931e2010-06-29 06:01:59 +00001408 ++neededInt;
Chris Lattner029c0f12010-07-29 04:41:05 +00001409
Chris Lattnerb22f1c82010-07-28 22:44:07 +00001410 // Pick an 8-byte type based on the preferred type.
Chris Lattnerce1bd752010-07-29 04:51:12 +00001411 ResType = Get8ByteTypeAtOffset(CGT.ConvertTypeRecursive(Ty), 0, Ty, 0);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001412 break;
1413
1414 // AMD64-ABI 3.2.3p3: Rule 3. If the class is SSE, the next
1415 // available SSE register is used, the registers are taken in the
1416 // order from %xmm0 to %xmm7.
1417 case SSE:
1418 ++neededSSE;
Chris Lattner458b2aa2010-07-29 02:16:43 +00001419 ResType = llvm::Type::getDoubleTy(getVMContext());
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001420 break;
1421 }
1422
1423 switch (Hi) {
1424 // Memory was handled previously, ComplexX87 and X87 should
1425 // never occur as hi classes, and X87Up must be preceed by X87,
1426 // which is passed in memory.
1427 case Memory:
1428 case X87:
1429 case ComplexX87:
1430 assert(0 && "Invalid classification for hi word.");
1431 break;
1432
1433 case NoClass: break;
Chris Lattner22a931e2010-06-29 06:01:59 +00001434
1435 case Integer: {
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001436 ++neededInt;
Chris Lattnerb22f1c82010-07-28 22:44:07 +00001437 // Pick an 8-byte type based on the preferred type.
Chris Lattnerce1bd752010-07-29 04:51:12 +00001438 const llvm::Type *HiType =
1439 Get8ByteTypeAtOffset(CGT.ConvertTypeRecursive(Ty), 8, Ty, 8);
Chris Lattner458b2aa2010-07-29 02:16:43 +00001440 ResType = llvm::StructType::get(getVMContext(), ResType, HiType, NULL);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001441 break;
Chris Lattner22a931e2010-06-29 06:01:59 +00001442 }
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001443
1444 // X87Up generally doesn't occur here (long double is passed in
1445 // memory), except in situations involving unions.
1446 case X87Up:
1447 case SSE:
Chris Lattner458b2aa2010-07-29 02:16:43 +00001448 ResType = llvm::StructType::get(getVMContext(), ResType,
1449 llvm::Type::getDoubleTy(getVMContext()),
1450 NULL);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001451 ++neededSSE;
1452 break;
1453
1454 // AMD64-ABI 3.2.3p3: Rule 4. If the class is SSEUP, the
1455 // eightbyte is passed in the upper half of the last used SSE
Chris Lattnerf4ba08a2010-07-28 23:47:21 +00001456 // register. This only happens when 128-bit vectors are passed.
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001457 case SSEUp:
Chris Lattnerf4ba08a2010-07-28 23:47:21 +00001458 assert(Lo == SSE && "Unexpected SSEUp classification");
Chris Lattner4200fe42010-07-29 04:56:46 +00001459 ResType = Get16ByteVectorType(Ty);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001460 break;
1461 }
1462
Chris Lattner22a931e2010-06-29 06:01:59 +00001463 return getCoerceResult(Ty, ResType);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001464}
1465
Chris Lattner22326a12010-07-29 02:31:05 +00001466void X86_64ABIInfo::computeInfo(CGFunctionInfo &FI) const {
Chris Lattner029c0f12010-07-29 04:41:05 +00001467
Chris Lattner458b2aa2010-07-29 02:16:43 +00001468 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001469
1470 // Keep track of the number of assigned registers.
1471 unsigned freeIntRegs = 6, freeSSERegs = 8;
1472
1473 // If the return value is indirect, then the hidden argument is consuming one
1474 // integer register.
1475 if (FI.getReturnInfo().isIndirect())
1476 --freeIntRegs;
1477
1478 // AMD64-ABI 3.2.3p3: Once arguments are classified, the registers
1479 // get assigned (in left-to-right order) for passing as follows...
1480 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
1481 it != ie; ++it) {
1482 unsigned neededInt, neededSSE;
Chris Lattner029c0f12010-07-29 04:41:05 +00001483 it->info = classifyArgumentType(it->type, neededInt, neededSSE);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001484
1485 // AMD64-ABI 3.2.3p3: If there are no registers available for any
1486 // eightbyte of an argument, the whole argument is passed on the
1487 // stack. If registers have already been assigned for some
1488 // eightbytes of such an argument, the assignments get reverted.
1489 if (freeIntRegs >= neededInt && freeSSERegs >= neededSSE) {
1490 freeIntRegs -= neededInt;
1491 freeSSERegs -= neededSSE;
1492 } else {
Chris Lattner22a931e2010-06-29 06:01:59 +00001493 it->info = getIndirectResult(it->type);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001494 }
1495 }
1496}
1497
1498static llvm::Value *EmitVAArgFromMemory(llvm::Value *VAListAddr,
1499 QualType Ty,
1500 CodeGenFunction &CGF) {
1501 llvm::Value *overflow_arg_area_p =
1502 CGF.Builder.CreateStructGEP(VAListAddr, 2, "overflow_arg_area_p");
1503 llvm::Value *overflow_arg_area =
1504 CGF.Builder.CreateLoad(overflow_arg_area_p, "overflow_arg_area");
1505
1506 // AMD64-ABI 3.5.7p5: Step 7. Align l->overflow_arg_area upwards to a 16
1507 // byte boundary if alignment needed by type exceeds 8 byte boundary.
1508 uint64_t Align = CGF.getContext().getTypeAlign(Ty) / 8;
1509 if (Align > 8) {
1510 // Note that we follow the ABI & gcc here, even though the type
1511 // could in theory have an alignment greater than 16. This case
1512 // shouldn't ever matter in practice.
1513
1514 // overflow_arg_area = (overflow_arg_area + 15) & ~15;
Owen Anderson41a75022009-08-13 21:57:51 +00001515 llvm::Value *Offset =
Chris Lattner5e016ae2010-06-27 07:15:29 +00001516 llvm::ConstantInt::get(CGF.Int32Ty, 15);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001517 overflow_arg_area = CGF.Builder.CreateGEP(overflow_arg_area, Offset);
1518 llvm::Value *AsInt = CGF.Builder.CreatePtrToInt(overflow_arg_area,
Chris Lattner5e016ae2010-06-27 07:15:29 +00001519 CGF.Int64Ty);
1520 llvm::Value *Mask = llvm::ConstantInt::get(CGF.Int64Ty, ~15LL);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001521 overflow_arg_area =
1522 CGF.Builder.CreateIntToPtr(CGF.Builder.CreateAnd(AsInt, Mask),
1523 overflow_arg_area->getType(),
1524 "overflow_arg_area.align");
1525 }
1526
1527 // AMD64-ABI 3.5.7p5: Step 8. Fetch type from l->overflow_arg_area.
1528 const llvm::Type *LTy = CGF.ConvertTypeForMem(Ty);
1529 llvm::Value *Res =
1530 CGF.Builder.CreateBitCast(overflow_arg_area,
Owen Anderson9793f0e2009-07-29 22:16:19 +00001531 llvm::PointerType::getUnqual(LTy));
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001532
1533 // AMD64-ABI 3.5.7p5: Step 9. Set l->overflow_arg_area to:
1534 // l->overflow_arg_area + sizeof(type).
1535 // AMD64-ABI 3.5.7p5: Step 10. Align l->overflow_arg_area upwards to
1536 // an 8 byte boundary.
1537
1538 uint64_t SizeInBytes = (CGF.getContext().getTypeSize(Ty) + 7) / 8;
Owen Anderson41a75022009-08-13 21:57:51 +00001539 llvm::Value *Offset =
Chris Lattner5e016ae2010-06-27 07:15:29 +00001540 llvm::ConstantInt::get(CGF.Int32Ty, (SizeInBytes + 7) & ~7);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001541 overflow_arg_area = CGF.Builder.CreateGEP(overflow_arg_area, Offset,
1542 "overflow_arg_area.next");
1543 CGF.Builder.CreateStore(overflow_arg_area, overflow_arg_area_p);
1544
1545 // AMD64-ABI 3.5.7p5: Step 11. Return the fetched type.
1546 return Res;
1547}
1548
1549llvm::Value *X86_64ABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
1550 CodeGenFunction &CGF) const {
Owen Anderson170229f2009-07-14 23:10:40 +00001551 llvm::LLVMContext &VMContext = CGF.getLLVMContext();
Mike Stump11289f42009-09-09 15:08:12 +00001552
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001553 // Assume that va_list type is correct; should be pointer to LLVM type:
1554 // struct {
1555 // i32 gp_offset;
1556 // i32 fp_offset;
1557 // i8* overflow_arg_area;
1558 // i8* reg_save_area;
1559 // };
1560 unsigned neededInt, neededSSE;
Chris Lattner9723d6c2010-03-11 18:19:55 +00001561
1562 Ty = CGF.getContext().getCanonicalType(Ty);
Chris Lattner029c0f12010-07-29 04:41:05 +00001563 ABIArgInfo AI = classifyArgumentType(Ty, neededInt, neededSSE);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001564
1565 // AMD64-ABI 3.5.7p5: Step 1. Determine whether type may be passed
1566 // in the registers. If not go to step 7.
1567 if (!neededInt && !neededSSE)
1568 return EmitVAArgFromMemory(VAListAddr, Ty, CGF);
1569
1570 // AMD64-ABI 3.5.7p5: Step 2. Compute num_gp to hold the number of
1571 // general purpose registers needed to pass type and num_fp to hold
1572 // the number of floating point registers needed.
1573
1574 // AMD64-ABI 3.5.7p5: Step 3. Verify whether arguments fit into
1575 // registers. In the case: l->gp_offset > 48 - num_gp * 8 or
1576 // l->fp_offset > 304 - num_fp * 16 go to step 7.
1577 //
1578 // NOTE: 304 is a typo, there are (6 * 8 + 8 * 16) = 176 bytes of
1579 // register save space).
1580
1581 llvm::Value *InRegs = 0;
1582 llvm::Value *gp_offset_p = 0, *gp_offset = 0;
1583 llvm::Value *fp_offset_p = 0, *fp_offset = 0;
1584 if (neededInt) {
1585 gp_offset_p = CGF.Builder.CreateStructGEP(VAListAddr, 0, "gp_offset_p");
1586 gp_offset = CGF.Builder.CreateLoad(gp_offset_p, "gp_offset");
Chris Lattnerd776fb12010-06-28 21:43:59 +00001587 InRegs = llvm::ConstantInt::get(CGF.Int32Ty, 48 - neededInt * 8);
1588 InRegs = CGF.Builder.CreateICmpULE(gp_offset, InRegs, "fits_in_gp");
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001589 }
1590
1591 if (neededSSE) {
1592 fp_offset_p = CGF.Builder.CreateStructGEP(VAListAddr, 1, "fp_offset_p");
1593 fp_offset = CGF.Builder.CreateLoad(fp_offset_p, "fp_offset");
1594 llvm::Value *FitsInFP =
Chris Lattnerd776fb12010-06-28 21:43:59 +00001595 llvm::ConstantInt::get(CGF.Int32Ty, 176 - neededSSE * 16);
1596 FitsInFP = CGF.Builder.CreateICmpULE(fp_offset, FitsInFP, "fits_in_fp");
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001597 InRegs = InRegs ? CGF.Builder.CreateAnd(InRegs, FitsInFP) : FitsInFP;
1598 }
1599
1600 llvm::BasicBlock *InRegBlock = CGF.createBasicBlock("vaarg.in_reg");
1601 llvm::BasicBlock *InMemBlock = CGF.createBasicBlock("vaarg.in_mem");
1602 llvm::BasicBlock *ContBlock = CGF.createBasicBlock("vaarg.end");
1603 CGF.Builder.CreateCondBr(InRegs, InRegBlock, InMemBlock);
1604
1605 // Emit code to load the value if it was passed in registers.
1606
1607 CGF.EmitBlock(InRegBlock);
1608
1609 // AMD64-ABI 3.5.7p5: Step 4. Fetch type from l->reg_save_area with
1610 // an offset of l->gp_offset and/or l->fp_offset. This may require
1611 // copying to a temporary location in case the parameter is passed
1612 // in different register classes or requires an alignment greater
1613 // than 8 for general purpose registers and 16 for XMM registers.
1614 //
1615 // FIXME: This really results in shameful code when we end up needing to
1616 // collect arguments from different places; often what should result in a
1617 // simple assembling of a structure from scattered addresses has many more
1618 // loads than necessary. Can we clean this up?
1619 const llvm::Type *LTy = CGF.ConvertTypeForMem(Ty);
1620 llvm::Value *RegAddr =
1621 CGF.Builder.CreateLoad(CGF.Builder.CreateStructGEP(VAListAddr, 3),
1622 "reg_save_area");
1623 if (neededInt && neededSSE) {
1624 // FIXME: Cleanup.
1625 assert(AI.isCoerce() && "Unexpected ABI info for mixed regs");
1626 const llvm::StructType *ST = cast<llvm::StructType>(AI.getCoerceToType());
1627 llvm::Value *Tmp = CGF.CreateTempAlloca(ST);
1628 assert(ST->getNumElements() == 2 && "Unexpected ABI info for mixed regs");
1629 const llvm::Type *TyLo = ST->getElementType(0);
1630 const llvm::Type *TyHi = ST->getElementType(1);
Duncan Sands998f9d92010-02-15 16:14:01 +00001631 assert((TyLo->isFloatingPointTy() ^ TyHi->isFloatingPointTy()) &&
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001632 "Unexpected ABI info for mixed regs");
Owen Anderson9793f0e2009-07-29 22:16:19 +00001633 const llvm::Type *PTyLo = llvm::PointerType::getUnqual(TyLo);
1634 const llvm::Type *PTyHi = llvm::PointerType::getUnqual(TyHi);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001635 llvm::Value *GPAddr = CGF.Builder.CreateGEP(RegAddr, gp_offset);
1636 llvm::Value *FPAddr = CGF.Builder.CreateGEP(RegAddr, fp_offset);
Duncan Sands998f9d92010-02-15 16:14:01 +00001637 llvm::Value *RegLoAddr = TyLo->isFloatingPointTy() ? FPAddr : GPAddr;
1638 llvm::Value *RegHiAddr = TyLo->isFloatingPointTy() ? GPAddr : FPAddr;
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001639 llvm::Value *V =
1640 CGF.Builder.CreateLoad(CGF.Builder.CreateBitCast(RegLoAddr, PTyLo));
1641 CGF.Builder.CreateStore(V, CGF.Builder.CreateStructGEP(Tmp, 0));
1642 V = CGF.Builder.CreateLoad(CGF.Builder.CreateBitCast(RegHiAddr, PTyHi));
1643 CGF.Builder.CreateStore(V, CGF.Builder.CreateStructGEP(Tmp, 1));
1644
Owen Anderson170229f2009-07-14 23:10:40 +00001645 RegAddr = CGF.Builder.CreateBitCast(Tmp,
Owen Anderson9793f0e2009-07-29 22:16:19 +00001646 llvm::PointerType::getUnqual(LTy));
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001647 } else if (neededInt) {
1648 RegAddr = CGF.Builder.CreateGEP(RegAddr, gp_offset);
1649 RegAddr = CGF.Builder.CreateBitCast(RegAddr,
Owen Anderson9793f0e2009-07-29 22:16:19 +00001650 llvm::PointerType::getUnqual(LTy));
Chris Lattner0cf24192010-06-28 20:05:43 +00001651 } else if (neededSSE == 1) {
1652 RegAddr = CGF.Builder.CreateGEP(RegAddr, fp_offset);
1653 RegAddr = CGF.Builder.CreateBitCast(RegAddr,
1654 llvm::PointerType::getUnqual(LTy));
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001655 } else {
Chris Lattner0cf24192010-06-28 20:05:43 +00001656 assert(neededSSE == 2 && "Invalid number of needed registers!");
1657 // SSE registers are spaced 16 bytes apart in the register save
1658 // area, we need to collect the two eightbytes together.
1659 llvm::Value *RegAddrLo = CGF.Builder.CreateGEP(RegAddr, fp_offset);
Chris Lattnerd776fb12010-06-28 21:43:59 +00001660 llvm::Value *RegAddrHi = CGF.Builder.CreateConstGEP1_32(RegAddrLo, 16);
Chris Lattner0cf24192010-06-28 20:05:43 +00001661 const llvm::Type *DoubleTy = llvm::Type::getDoubleTy(VMContext);
1662 const llvm::Type *DblPtrTy =
1663 llvm::PointerType::getUnqual(DoubleTy);
1664 const llvm::StructType *ST = llvm::StructType::get(VMContext, DoubleTy,
1665 DoubleTy, NULL);
1666 llvm::Value *V, *Tmp = CGF.CreateTempAlloca(ST);
1667 V = CGF.Builder.CreateLoad(CGF.Builder.CreateBitCast(RegAddrLo,
1668 DblPtrTy));
1669 CGF.Builder.CreateStore(V, CGF.Builder.CreateStructGEP(Tmp, 0));
1670 V = CGF.Builder.CreateLoad(CGF.Builder.CreateBitCast(RegAddrHi,
1671 DblPtrTy));
1672 CGF.Builder.CreateStore(V, CGF.Builder.CreateStructGEP(Tmp, 1));
1673 RegAddr = CGF.Builder.CreateBitCast(Tmp,
1674 llvm::PointerType::getUnqual(LTy));
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001675 }
1676
1677 // AMD64-ABI 3.5.7p5: Step 5. Set:
1678 // l->gp_offset = l->gp_offset + num_gp * 8
1679 // l->fp_offset = l->fp_offset + num_fp * 16.
1680 if (neededInt) {
Chris Lattner5e016ae2010-06-27 07:15:29 +00001681 llvm::Value *Offset = llvm::ConstantInt::get(CGF.Int32Ty, neededInt * 8);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001682 CGF.Builder.CreateStore(CGF.Builder.CreateAdd(gp_offset, Offset),
1683 gp_offset_p);
1684 }
1685 if (neededSSE) {
Chris Lattner5e016ae2010-06-27 07:15:29 +00001686 llvm::Value *Offset = llvm::ConstantInt::get(CGF.Int32Ty, neededSSE * 16);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001687 CGF.Builder.CreateStore(CGF.Builder.CreateAdd(fp_offset, Offset),
1688 fp_offset_p);
1689 }
1690 CGF.EmitBranch(ContBlock);
1691
1692 // Emit code to load the value if it was passed in memory.
1693
1694 CGF.EmitBlock(InMemBlock);
1695 llvm::Value *MemAddr = EmitVAArgFromMemory(VAListAddr, Ty, CGF);
1696
1697 // Return the appropriate result.
1698
1699 CGF.EmitBlock(ContBlock);
1700 llvm::PHINode *ResAddr = CGF.Builder.CreatePHI(RegAddr->getType(),
1701 "vaarg.addr");
1702 ResAddr->reserveOperandSpace(2);
1703 ResAddr->addIncoming(RegAddr, InRegBlock);
1704 ResAddr->addIncoming(MemAddr, InMemBlock);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001705 return ResAddr;
1706}
1707
Chris Lattner0cf24192010-06-28 20:05:43 +00001708
1709
1710//===----------------------------------------------------------------------===//
Daniel Dunbard59655c2009-09-12 00:59:49 +00001711// PIC16 ABI Implementation
Chris Lattner0cf24192010-06-28 20:05:43 +00001712//===----------------------------------------------------------------------===//
Daniel Dunbard59655c2009-09-12 00:59:49 +00001713
1714namespace {
1715
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001716class PIC16ABIInfo : public ABIInfo {
Chris Lattner2b037972010-07-29 02:01:43 +00001717public:
1718 PIC16ABIInfo(CodeGenTypes &CGT) : ABIInfo(CGT) {}
1719
Chris Lattner458b2aa2010-07-29 02:16:43 +00001720 ABIArgInfo classifyReturnType(QualType RetTy) const;
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001721
Chris Lattner458b2aa2010-07-29 02:16:43 +00001722 ABIArgInfo classifyArgumentType(QualType RetTy) const;
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001723
Chris Lattner22326a12010-07-29 02:31:05 +00001724 virtual void computeInfo(CGFunctionInfo &FI) const {
Chris Lattner458b2aa2010-07-29 02:16:43 +00001725 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001726 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
1727 it != ie; ++it)
Chris Lattner458b2aa2010-07-29 02:16:43 +00001728 it->info = classifyArgumentType(it->type);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001729 }
1730
1731 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
1732 CodeGenFunction &CGF) const;
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001733};
1734
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00001735class PIC16TargetCodeGenInfo : public TargetCodeGenInfo {
1736public:
Chris Lattner2b037972010-07-29 02:01:43 +00001737 PIC16TargetCodeGenInfo(CodeGenTypes &CGT)
1738 : TargetCodeGenInfo(new PIC16ABIInfo(CGT)) {}
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00001739};
1740
Daniel Dunbard59655c2009-09-12 00:59:49 +00001741}
1742
Chris Lattner458b2aa2010-07-29 02:16:43 +00001743ABIArgInfo PIC16ABIInfo::classifyReturnType(QualType RetTy) const {
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001744 if (RetTy->isVoidType()) {
1745 return ABIArgInfo::getIgnore();
1746 } else {
1747 return ABIArgInfo::getDirect();
1748 }
1749}
1750
Chris Lattner458b2aa2010-07-29 02:16:43 +00001751ABIArgInfo PIC16ABIInfo::classifyArgumentType(QualType Ty) const {
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001752 return ABIArgInfo::getDirect();
1753}
1754
1755llvm::Value *PIC16ABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
Chris Lattner5e016ae2010-06-27 07:15:29 +00001756 CodeGenFunction &CGF) const {
Chris Lattnerc0e8a592010-04-06 17:29:22 +00001757 const llvm::Type *BP = llvm::Type::getInt8PtrTy(CGF.getLLVMContext());
Sanjiv Guptaba1e2672010-02-17 02:25:52 +00001758 const llvm::Type *BPP = llvm::PointerType::getUnqual(BP);
1759
1760 CGBuilderTy &Builder = CGF.Builder;
1761 llvm::Value *VAListAddrAsBPP = Builder.CreateBitCast(VAListAddr, BPP,
1762 "ap");
1763 llvm::Value *Addr = Builder.CreateLoad(VAListAddrAsBPP, "ap.cur");
1764 llvm::Type *PTy =
1765 llvm::PointerType::getUnqual(CGF.ConvertType(Ty));
1766 llvm::Value *AddrTyped = Builder.CreateBitCast(Addr, PTy);
1767
1768 uint64_t Offset = CGF.getContext().getTypeSize(Ty) / 8;
1769
1770 llvm::Value *NextAddr =
1771 Builder.CreateGEP(Addr, llvm::ConstantInt::get(
1772 llvm::Type::getInt32Ty(CGF.getLLVMContext()), Offset),
1773 "ap.next");
1774 Builder.CreateStore(NextAddr, VAListAddrAsBPP);
1775
1776 return AddrTyped;
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001777}
1778
Sanjiv Guptaba1e2672010-02-17 02:25:52 +00001779
John McCallea8d8bb2010-03-11 00:10:12 +00001780// PowerPC-32
1781
1782namespace {
1783class PPC32TargetCodeGenInfo : public DefaultTargetCodeGenInfo {
1784public:
Chris Lattner2b037972010-07-29 02:01:43 +00001785 PPC32TargetCodeGenInfo(CodeGenTypes &CGT) : DefaultTargetCodeGenInfo(CGT) {}
1786
John McCallea8d8bb2010-03-11 00:10:12 +00001787 int getDwarfEHStackPointer(CodeGen::CodeGenModule &M) const {
1788 // This is recovered from gcc output.
1789 return 1; // r1 is the dedicated stack pointer
1790 }
1791
1792 bool initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
1793 llvm::Value *Address) const;
1794};
1795
1796}
1797
1798bool
1799PPC32TargetCodeGenInfo::initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
1800 llvm::Value *Address) const {
1801 // This is calculated from the LLVM and GCC tables and verified
1802 // against gcc output. AFAIK all ABIs use the same encoding.
1803
1804 CodeGen::CGBuilderTy &Builder = CGF.Builder;
1805 llvm::LLVMContext &Context = CGF.getLLVMContext();
1806
1807 const llvm::IntegerType *i8 = llvm::Type::getInt8Ty(Context);
1808 llvm::Value *Four8 = llvm::ConstantInt::get(i8, 4);
1809 llvm::Value *Eight8 = llvm::ConstantInt::get(i8, 8);
1810 llvm::Value *Sixteen8 = llvm::ConstantInt::get(i8, 16);
1811
1812 // 0-31: r0-31, the 4-byte general-purpose registers
John McCall943fae92010-05-27 06:19:26 +00001813 AssignToArrayRange(Builder, Address, Four8, 0, 31);
John McCallea8d8bb2010-03-11 00:10:12 +00001814
1815 // 32-63: fp0-31, the 8-byte floating-point registers
John McCall943fae92010-05-27 06:19:26 +00001816 AssignToArrayRange(Builder, Address, Eight8, 32, 63);
John McCallea8d8bb2010-03-11 00:10:12 +00001817
1818 // 64-76 are various 4-byte special-purpose registers:
1819 // 64: mq
1820 // 65: lr
1821 // 66: ctr
1822 // 67: ap
1823 // 68-75 cr0-7
1824 // 76: xer
John McCall943fae92010-05-27 06:19:26 +00001825 AssignToArrayRange(Builder, Address, Four8, 64, 76);
John McCallea8d8bb2010-03-11 00:10:12 +00001826
1827 // 77-108: v0-31, the 16-byte vector registers
John McCall943fae92010-05-27 06:19:26 +00001828 AssignToArrayRange(Builder, Address, Sixteen8, 77, 108);
John McCallea8d8bb2010-03-11 00:10:12 +00001829
1830 // 109: vrsave
1831 // 110: vscr
1832 // 111: spe_acc
1833 // 112: spefscr
1834 // 113: sfp
John McCall943fae92010-05-27 06:19:26 +00001835 AssignToArrayRange(Builder, Address, Four8, 109, 113);
John McCallea8d8bb2010-03-11 00:10:12 +00001836
1837 return false;
1838}
1839
1840
Chris Lattner0cf24192010-06-28 20:05:43 +00001841//===----------------------------------------------------------------------===//
Daniel Dunbard59655c2009-09-12 00:59:49 +00001842// ARM ABI Implementation
Chris Lattner0cf24192010-06-28 20:05:43 +00001843//===----------------------------------------------------------------------===//
Daniel Dunbard59655c2009-09-12 00:59:49 +00001844
1845namespace {
1846
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001847class ARMABIInfo : public ABIInfo {
Daniel Dunbar020daa92009-09-12 01:00:39 +00001848public:
1849 enum ABIKind {
1850 APCS = 0,
1851 AAPCS = 1,
1852 AAPCS_VFP
1853 };
1854
1855private:
1856 ABIKind Kind;
1857
1858public:
Chris Lattner2b037972010-07-29 02:01:43 +00001859 ARMABIInfo(CodeGenTypes &CGT, ABIKind _Kind) : ABIInfo(CGT), Kind(_Kind) {}
Daniel Dunbar020daa92009-09-12 01:00:39 +00001860
1861private:
1862 ABIKind getABIKind() const { return Kind; }
1863
Chris Lattner458b2aa2010-07-29 02:16:43 +00001864 ABIArgInfo classifyReturnType(QualType RetTy) const;
1865 ABIArgInfo classifyArgumentType(QualType RetTy) const;
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001866
Chris Lattner22326a12010-07-29 02:31:05 +00001867 virtual void computeInfo(CGFunctionInfo &FI) const;
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001868
1869 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
1870 CodeGenFunction &CGF) const;
1871};
1872
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00001873class ARMTargetCodeGenInfo : public TargetCodeGenInfo {
1874public:
Chris Lattner2b037972010-07-29 02:01:43 +00001875 ARMTargetCodeGenInfo(CodeGenTypes &CGT, ARMABIInfo::ABIKind K)
1876 :TargetCodeGenInfo(new ARMABIInfo(CGT, K)) {}
John McCallbeec5a02010-03-06 00:35:14 +00001877
1878 int getDwarfEHStackPointer(CodeGen::CodeGenModule &M) const {
1879 return 13;
1880 }
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00001881};
1882
Daniel Dunbard59655c2009-09-12 00:59:49 +00001883}
1884
Chris Lattner22326a12010-07-29 02:31:05 +00001885void ARMABIInfo::computeInfo(CGFunctionInfo &FI) const {
Chris Lattner458b2aa2010-07-29 02:16:43 +00001886 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001887 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
Chris Lattner458b2aa2010-07-29 02:16:43 +00001888 it != ie; ++it)
1889 it->info = classifyArgumentType(it->type);
Daniel Dunbar020daa92009-09-12 01:00:39 +00001890
Chris Lattner458b2aa2010-07-29 02:16:43 +00001891 const llvm::Triple &Triple(getContext().Target.getTriple());
Rafael Espindolaa92c4422010-06-16 16:13:39 +00001892 llvm::CallingConv::ID DefaultCC;
Rafael Espindola23a8a062010-06-16 19:01:17 +00001893 if (Triple.getEnvironmentName() == "gnueabi" ||
1894 Triple.getEnvironmentName() == "eabi")
Rafael Espindolaa92c4422010-06-16 16:13:39 +00001895 DefaultCC = llvm::CallingConv::ARM_AAPCS;
Rafael Espindola23a8a062010-06-16 19:01:17 +00001896 else
1897 DefaultCC = llvm::CallingConv::ARM_APCS;
Rafael Espindolaa92c4422010-06-16 16:13:39 +00001898
Daniel Dunbar020daa92009-09-12 01:00:39 +00001899 switch (getABIKind()) {
1900 case APCS:
Rafael Espindolaa92c4422010-06-16 16:13:39 +00001901 if (DefaultCC != llvm::CallingConv::ARM_APCS)
1902 FI.setEffectiveCallingConvention(llvm::CallingConv::ARM_APCS);
Daniel Dunbar020daa92009-09-12 01:00:39 +00001903 break;
1904
1905 case AAPCS:
Rafael Espindolaa92c4422010-06-16 16:13:39 +00001906 if (DefaultCC != llvm::CallingConv::ARM_AAPCS)
1907 FI.setEffectiveCallingConvention(llvm::CallingConv::ARM_AAPCS);
Daniel Dunbar020daa92009-09-12 01:00:39 +00001908 break;
1909
1910 case AAPCS_VFP:
1911 FI.setEffectiveCallingConvention(llvm::CallingConv::ARM_AAPCS_VFP);
1912 break;
1913 }
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001914}
1915
Chris Lattner458b2aa2010-07-29 02:16:43 +00001916ABIArgInfo ARMABIInfo::classifyArgumentType(QualType Ty) const {
Douglas Gregora71cc152010-02-02 20:10:50 +00001917 if (!CodeGenFunction::hasAggregateLLVMType(Ty)) {
1918 // Treat an enum type as its underlying type.
1919 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
1920 Ty = EnumTy->getDecl()->getIntegerType();
1921
Anton Korobeynikov18adbf52009-06-06 09:36:29 +00001922 return (Ty->isPromotableIntegerType() ?
1923 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Douglas Gregora71cc152010-02-02 20:10:50 +00001924 }
Daniel Dunbar626f1d82009-09-13 08:03:58 +00001925
Daniel Dunbar09d33622009-09-14 21:54:03 +00001926 // Ignore empty records.
Chris Lattner458b2aa2010-07-29 02:16:43 +00001927 if (isEmptyRecord(getContext(), Ty, true))
Daniel Dunbar09d33622009-09-14 21:54:03 +00001928 return ABIArgInfo::getIgnore();
1929
Rafael Espindolabbd44ef2010-06-08 02:42:08 +00001930 // Structures with either a non-trivial destructor or a non-trivial
1931 // copy constructor are always indirect.
1932 if (isRecordWithNonTrivialDestructorOrCopyConstructor(Ty))
1933 return ABIArgInfo::getIndirect(0, /*ByVal=*/false);
1934
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001935 // FIXME: This is kind of nasty... but there isn't much choice because the ARM
1936 // backend doesn't support byval.
1937 // FIXME: This doesn't handle alignment > 64 bits.
1938 const llvm::Type* ElemTy;
1939 unsigned SizeRegs;
Chris Lattner458b2aa2010-07-29 02:16:43 +00001940 if (getContext().getTypeAlign(Ty) > 32) {
1941 ElemTy = llvm::Type::getInt64Ty(getVMContext());
1942 SizeRegs = (getContext().getTypeSize(Ty) + 63) / 64;
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001943 } else {
Chris Lattner458b2aa2010-07-29 02:16:43 +00001944 ElemTy = llvm::Type::getInt32Ty(getVMContext());
1945 SizeRegs = (getContext().getTypeSize(Ty) + 31) / 32;
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001946 }
1947 std::vector<const llvm::Type*> LLVMFields;
Owen Anderson9793f0e2009-07-29 22:16:19 +00001948 LLVMFields.push_back(llvm::ArrayType::get(ElemTy, SizeRegs));
Chris Lattner458b2aa2010-07-29 02:16:43 +00001949 const llvm::Type* STy = llvm::StructType::get(getVMContext(), LLVMFields,
1950 true);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00001951 return ABIArgInfo::getCoerce(STy);
1952}
1953
Chris Lattner458b2aa2010-07-29 02:16:43 +00001954static bool isIntegerLikeType(QualType Ty, ASTContext &Context,
Daniel Dunbar626f1d82009-09-13 08:03:58 +00001955 llvm::LLVMContext &VMContext) {
1956 // APCS, C Language Calling Conventions, Non-Simple Return Values: A structure
1957 // is called integer-like if its size is less than or equal to one word, and
1958 // the offset of each of its addressable sub-fields is zero.
1959
1960 uint64_t Size = Context.getTypeSize(Ty);
1961
1962 // Check that the type fits in a word.
1963 if (Size > 32)
1964 return false;
1965
1966 // FIXME: Handle vector types!
1967 if (Ty->isVectorType())
1968 return false;
1969
Daniel Dunbard53bac72009-09-14 02:20:34 +00001970 // Float types are never treated as "integer like".
1971 if (Ty->isRealFloatingType())
1972 return false;
1973
Daniel Dunbar626f1d82009-09-13 08:03:58 +00001974 // If this is a builtin or pointer type then it is ok.
John McCall9dd450b2009-09-21 23:43:11 +00001975 if (Ty->getAs<BuiltinType>() || Ty->isPointerType())
Daniel Dunbar626f1d82009-09-13 08:03:58 +00001976 return true;
1977
Daniel Dunbar96ebba52010-02-01 23:31:26 +00001978 // Small complex integer types are "integer like".
1979 if (const ComplexType *CT = Ty->getAs<ComplexType>())
1980 return isIntegerLikeType(CT->getElementType(), Context, VMContext);
Daniel Dunbar626f1d82009-09-13 08:03:58 +00001981
1982 // Single element and zero sized arrays should be allowed, by the definition
1983 // above, but they are not.
1984
1985 // Otherwise, it must be a record type.
1986 const RecordType *RT = Ty->getAs<RecordType>();
1987 if (!RT) return false;
1988
1989 // Ignore records with flexible arrays.
1990 const RecordDecl *RD = RT->getDecl();
1991 if (RD->hasFlexibleArrayMember())
1992 return false;
1993
1994 // Check that all sub-fields are at offset 0, and are themselves "integer
1995 // like".
1996 const ASTRecordLayout &Layout = Context.getASTRecordLayout(RD);
1997
1998 bool HadField = false;
1999 unsigned idx = 0;
2000 for (RecordDecl::field_iterator i = RD->field_begin(), e = RD->field_end();
2001 i != e; ++i, ++idx) {
2002 const FieldDecl *FD = *i;
2003
Daniel Dunbar45c7ff12010-01-29 03:22:29 +00002004 // Bit-fields are not addressable, we only need to verify they are "integer
2005 // like". We still have to disallow a subsequent non-bitfield, for example:
2006 // struct { int : 0; int x }
2007 // is non-integer like according to gcc.
2008 if (FD->isBitField()) {
2009 if (!RD->isUnion())
2010 HadField = true;
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002011
Daniel Dunbar45c7ff12010-01-29 03:22:29 +00002012 if (!isIntegerLikeType(FD->getType(), Context, VMContext))
2013 return false;
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002014
Daniel Dunbar45c7ff12010-01-29 03:22:29 +00002015 continue;
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002016 }
2017
Daniel Dunbar45c7ff12010-01-29 03:22:29 +00002018 // Check if this field is at offset 0.
2019 if (Layout.getFieldOffset(idx) != 0)
2020 return false;
2021
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002022 if (!isIntegerLikeType(FD->getType(), Context, VMContext))
2023 return false;
2024
Daniel Dunbar45c7ff12010-01-29 03:22:29 +00002025 // Only allow at most one field in a structure. This doesn't match the
2026 // wording above, but follows gcc in situations with a field following an
2027 // empty structure.
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002028 if (!RD->isUnion()) {
2029 if (HadField)
2030 return false;
2031
2032 HadField = true;
2033 }
2034 }
2035
2036 return true;
2037}
2038
Chris Lattner458b2aa2010-07-29 02:16:43 +00002039ABIArgInfo ARMABIInfo::classifyReturnType(QualType RetTy) const {
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002040 if (RetTy->isVoidType())
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002041 return ABIArgInfo::getIgnore();
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002042
Douglas Gregora71cc152010-02-02 20:10:50 +00002043 if (!CodeGenFunction::hasAggregateLLVMType(RetTy)) {
2044 // Treat an enum type as its underlying type.
2045 if (const EnumType *EnumTy = RetTy->getAs<EnumType>())
2046 RetTy = EnumTy->getDecl()->getIntegerType();
2047
Anton Korobeynikov18adbf52009-06-06 09:36:29 +00002048 return (RetTy->isPromotableIntegerType() ?
2049 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Douglas Gregora71cc152010-02-02 20:10:50 +00002050 }
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002051
Rafael Espindolabbd44ef2010-06-08 02:42:08 +00002052 // Structures with either a non-trivial destructor or a non-trivial
2053 // copy constructor are always indirect.
2054 if (isRecordWithNonTrivialDestructorOrCopyConstructor(RetTy))
2055 return ABIArgInfo::getIndirect(0, /*ByVal=*/false);
2056
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002057 // Are we following APCS?
2058 if (getABIKind() == APCS) {
Chris Lattner458b2aa2010-07-29 02:16:43 +00002059 if (isEmptyRecord(getContext(), RetTy, false))
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002060 return ABIArgInfo::getIgnore();
2061
Daniel Dunbareedf1512010-02-01 23:31:19 +00002062 // Complex types are all returned as packed integers.
2063 //
2064 // FIXME: Consider using 2 x vector types if the back end handles them
2065 // correctly.
2066 if (RetTy->isAnyComplexType())
Chris Lattner458b2aa2010-07-29 02:16:43 +00002067 return ABIArgInfo::getCoerce(llvm::IntegerType::get(getVMContext(),
2068 getContext().getTypeSize(RetTy)));
Daniel Dunbareedf1512010-02-01 23:31:19 +00002069
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002070 // Integer like structures are returned in r0.
Chris Lattner458b2aa2010-07-29 02:16:43 +00002071 if (isIntegerLikeType(RetTy, getContext(), getVMContext())) {
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002072 // Return in the smallest viable integer type.
Chris Lattner458b2aa2010-07-29 02:16:43 +00002073 uint64_t Size = getContext().getTypeSize(RetTy);
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002074 if (Size <= 8)
Chris Lattner458b2aa2010-07-29 02:16:43 +00002075 return ABIArgInfo::getCoerce(llvm::Type::getInt8Ty(getVMContext()));
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002076 if (Size <= 16)
Chris Lattner458b2aa2010-07-29 02:16:43 +00002077 return ABIArgInfo::getCoerce(llvm::Type::getInt16Ty(getVMContext()));
2078 return ABIArgInfo::getCoerce(llvm::Type::getInt32Ty(getVMContext()));
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002079 }
2080
2081 // Otherwise return in memory.
2082 return ABIArgInfo::getIndirect(0);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002083 }
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002084
2085 // Otherwise this is an AAPCS variant.
2086
Chris Lattner458b2aa2010-07-29 02:16:43 +00002087 if (isEmptyRecord(getContext(), RetTy, true))
Daniel Dunbar1ce72512009-09-14 00:56:55 +00002088 return ABIArgInfo::getIgnore();
2089
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002090 // Aggregates <= 4 bytes are returned in r0; other aggregates
2091 // are returned indirectly.
Chris Lattner458b2aa2010-07-29 02:16:43 +00002092 uint64_t Size = getContext().getTypeSize(RetTy);
Daniel Dunbar1ce72512009-09-14 00:56:55 +00002093 if (Size <= 32) {
2094 // Return in the smallest viable integer type.
2095 if (Size <= 8)
Chris Lattner458b2aa2010-07-29 02:16:43 +00002096 return ABIArgInfo::getCoerce(llvm::Type::getInt8Ty(getVMContext()));
Daniel Dunbar1ce72512009-09-14 00:56:55 +00002097 if (Size <= 16)
Chris Lattner458b2aa2010-07-29 02:16:43 +00002098 return ABIArgInfo::getCoerce(llvm::Type::getInt16Ty(getVMContext()));
2099 return ABIArgInfo::getCoerce(llvm::Type::getInt32Ty(getVMContext()));
Daniel Dunbar1ce72512009-09-14 00:56:55 +00002100 }
2101
Daniel Dunbar626f1d82009-09-13 08:03:58 +00002102 return ABIArgInfo::getIndirect(0);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002103}
2104
2105llvm::Value *ARMABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
Chris Lattner5e016ae2010-06-27 07:15:29 +00002106 CodeGenFunction &CGF) const {
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002107 // FIXME: Need to handle alignment
Benjamin Kramerabd5b902009-10-13 10:07:13 +00002108 const llvm::Type *BP = llvm::Type::getInt8PtrTy(CGF.getLLVMContext());
Owen Anderson9793f0e2009-07-29 22:16:19 +00002109 const llvm::Type *BPP = llvm::PointerType::getUnqual(BP);
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002110
2111 CGBuilderTy &Builder = CGF.Builder;
2112 llvm::Value *VAListAddrAsBPP = Builder.CreateBitCast(VAListAddr, BPP,
2113 "ap");
2114 llvm::Value *Addr = Builder.CreateLoad(VAListAddrAsBPP, "ap.cur");
2115 llvm::Type *PTy =
Owen Anderson9793f0e2009-07-29 22:16:19 +00002116 llvm::PointerType::getUnqual(CGF.ConvertType(Ty));
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002117 llvm::Value *AddrTyped = Builder.CreateBitCast(Addr, PTy);
2118
2119 uint64_t Offset =
2120 llvm::RoundUpToAlignment(CGF.getContext().getTypeSize(Ty) / 8, 4);
2121 llvm::Value *NextAddr =
Chris Lattner5e016ae2010-06-27 07:15:29 +00002122 Builder.CreateGEP(Addr, llvm::ConstantInt::get(CGF.Int32Ty, Offset),
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002123 "ap.next");
2124 Builder.CreateStore(NextAddr, VAListAddrAsBPP);
2125
2126 return AddrTyped;
2127}
2128
Chris Lattner458b2aa2010-07-29 02:16:43 +00002129ABIArgInfo DefaultABIInfo::classifyReturnType(QualType RetTy) const {
2130 if (RetTy->isVoidType())
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002131 return ABIArgInfo::getIgnore();
Douglas Gregora71cc152010-02-02 20:10:50 +00002132
Chris Lattner458b2aa2010-07-29 02:16:43 +00002133 if (CodeGenFunction::hasAggregateLLVMType(RetTy))
2134 return ABIArgInfo::getIndirect(0);
2135
2136 // Treat an enum type as its underlying type.
2137 if (const EnumType *EnumTy = RetTy->getAs<EnumType>())
2138 RetTy = EnumTy->getDecl()->getIntegerType();
2139
2140 return (RetTy->isPromotableIntegerType() ?
2141 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002142}
2143
Chris Lattner0cf24192010-06-28 20:05:43 +00002144//===----------------------------------------------------------------------===//
Daniel Dunbard59655c2009-09-12 00:59:49 +00002145// SystemZ ABI Implementation
Chris Lattner0cf24192010-06-28 20:05:43 +00002146//===----------------------------------------------------------------------===//
Daniel Dunbard59655c2009-09-12 00:59:49 +00002147
Anton Korobeynikovb5b703b2009-07-16 20:09:57 +00002148namespace {
Daniel Dunbard59655c2009-09-12 00:59:49 +00002149
Anton Korobeynikovb5b703b2009-07-16 20:09:57 +00002150class SystemZABIInfo : public ABIInfo {
Chris Lattner2b037972010-07-29 02:01:43 +00002151public:
2152 SystemZABIInfo(CodeGenTypes &CGT) : ABIInfo(CGT) {}
2153
Anton Korobeynikovb5b703b2009-07-16 20:09:57 +00002154 bool isPromotableIntegerType(QualType Ty) const;
2155
Chris Lattner458b2aa2010-07-29 02:16:43 +00002156 ABIArgInfo classifyReturnType(QualType RetTy) const;
2157 ABIArgInfo classifyArgumentType(QualType RetTy) const;
Anton Korobeynikovb5b703b2009-07-16 20:09:57 +00002158
Chris Lattner22326a12010-07-29 02:31:05 +00002159 virtual void computeInfo(CGFunctionInfo &FI) const {
Chris Lattner458b2aa2010-07-29 02:16:43 +00002160 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
Anton Korobeynikovb5b703b2009-07-16 20:09:57 +00002161 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
2162 it != ie; ++it)
Chris Lattner458b2aa2010-07-29 02:16:43 +00002163 it->info = classifyArgumentType(it->type);
Anton Korobeynikovb5b703b2009-07-16 20:09:57 +00002164 }
2165
2166 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
2167 CodeGenFunction &CGF) const;
2168};
Daniel Dunbard59655c2009-09-12 00:59:49 +00002169
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00002170class SystemZTargetCodeGenInfo : public TargetCodeGenInfo {
2171public:
Chris Lattner2b037972010-07-29 02:01:43 +00002172 SystemZTargetCodeGenInfo(CodeGenTypes &CGT)
2173 : TargetCodeGenInfo(new SystemZABIInfo(CGT)) {}
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00002174};
2175
Anton Korobeynikovb5b703b2009-07-16 20:09:57 +00002176}
2177
2178bool SystemZABIInfo::isPromotableIntegerType(QualType Ty) const {
2179 // SystemZ ABI requires all 8, 16 and 32 bit quantities to be extended.
John McCall9dd450b2009-09-21 23:43:11 +00002180 if (const BuiltinType *BT = Ty->getAs<BuiltinType>())
Anton Korobeynikovb5b703b2009-07-16 20:09:57 +00002181 switch (BT->getKind()) {
2182 case BuiltinType::Bool:
2183 case BuiltinType::Char_S:
2184 case BuiltinType::Char_U:
2185 case BuiltinType::SChar:
2186 case BuiltinType::UChar:
2187 case BuiltinType::Short:
2188 case BuiltinType::UShort:
2189 case BuiltinType::Int:
2190 case BuiltinType::UInt:
2191 return true;
2192 default:
2193 return false;
2194 }
2195 return false;
2196}
2197
2198llvm::Value *SystemZABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
2199 CodeGenFunction &CGF) const {
2200 // FIXME: Implement
2201 return 0;
2202}
2203
2204
Chris Lattner458b2aa2010-07-29 02:16:43 +00002205ABIArgInfo SystemZABIInfo::classifyReturnType(QualType RetTy) const {
2206 if (RetTy->isVoidType())
Anton Korobeynikovb5b703b2009-07-16 20:09:57 +00002207 return ABIArgInfo::getIgnore();
Chris Lattner458b2aa2010-07-29 02:16:43 +00002208 if (CodeGenFunction::hasAggregateLLVMType(RetTy))
Anton Korobeynikovb5b703b2009-07-16 20:09:57 +00002209 return ABIArgInfo::getIndirect(0);
Chris Lattner458b2aa2010-07-29 02:16:43 +00002210
2211 return (isPromotableIntegerType(RetTy) ?
2212 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Anton Korobeynikovb5b703b2009-07-16 20:09:57 +00002213}
2214
Chris Lattner458b2aa2010-07-29 02:16:43 +00002215ABIArgInfo SystemZABIInfo::classifyArgumentType(QualType Ty) const {
2216 if (CodeGenFunction::hasAggregateLLVMType(Ty))
Anton Korobeynikovb5b703b2009-07-16 20:09:57 +00002217 return ABIArgInfo::getIndirect(0);
Chris Lattner458b2aa2010-07-29 02:16:43 +00002218
2219 return (isPromotableIntegerType(Ty) ?
2220 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Anton Korobeynikovb5b703b2009-07-16 20:09:57 +00002221}
2222
Chris Lattner0cf24192010-06-28 20:05:43 +00002223//===----------------------------------------------------------------------===//
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00002224// MSP430 ABI Implementation
Chris Lattner0cf24192010-06-28 20:05:43 +00002225//===----------------------------------------------------------------------===//
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00002226
2227namespace {
2228
2229class MSP430TargetCodeGenInfo : public TargetCodeGenInfo {
2230public:
Chris Lattner2b037972010-07-29 02:01:43 +00002231 MSP430TargetCodeGenInfo(CodeGenTypes &CGT)
2232 : TargetCodeGenInfo(new DefaultABIInfo(CGT)) {}
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00002233 void SetTargetAttributes(const Decl *D, llvm::GlobalValue *GV,
2234 CodeGen::CodeGenModule &M) const;
2235};
2236
2237}
2238
2239void MSP430TargetCodeGenInfo::SetTargetAttributes(const Decl *D,
2240 llvm::GlobalValue *GV,
2241 CodeGen::CodeGenModule &M) const {
2242 if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(D)) {
2243 if (const MSP430InterruptAttr *attr = FD->getAttr<MSP430InterruptAttr>()) {
2244 // Handle 'interrupt' attribute:
2245 llvm::Function *F = cast<llvm::Function>(GV);
2246
2247 // Step 1: Set ISR calling convention.
2248 F->setCallingConv(llvm::CallingConv::MSP430_INTR);
2249
2250 // Step 2: Add attributes goodness.
2251 F->addFnAttr(llvm::Attribute::NoInline);
2252
2253 // Step 3: Emit ISR vector alias.
2254 unsigned Num = attr->getNumber() + 0xffe0;
2255 new llvm::GlobalAlias(GV->getType(), llvm::Function::ExternalLinkage,
2256 "vector_" +
2257 llvm::LowercaseString(llvm::utohexstr(Num)),
2258 GV, &M.getModule());
2259 }
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002260 }
2261}
2262
Chris Lattner0cf24192010-06-28 20:05:43 +00002263//===----------------------------------------------------------------------===//
John McCall943fae92010-05-27 06:19:26 +00002264// MIPS ABI Implementation. This works for both little-endian and
2265// big-endian variants.
Chris Lattner0cf24192010-06-28 20:05:43 +00002266//===----------------------------------------------------------------------===//
2267
John McCall943fae92010-05-27 06:19:26 +00002268namespace {
2269class MIPSTargetCodeGenInfo : public TargetCodeGenInfo {
2270public:
Chris Lattner2b037972010-07-29 02:01:43 +00002271 MIPSTargetCodeGenInfo(CodeGenTypes &CGT)
2272 : TargetCodeGenInfo(new DefaultABIInfo(CGT)) {}
John McCall943fae92010-05-27 06:19:26 +00002273
2274 int getDwarfEHStackPointer(CodeGen::CodeGenModule &CGM) const {
2275 return 29;
2276 }
2277
2278 bool initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
2279 llvm::Value *Address) const;
2280};
2281}
2282
2283bool
2284MIPSTargetCodeGenInfo::initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
2285 llvm::Value *Address) const {
2286 // This information comes from gcc's implementation, which seems to
2287 // as canonical as it gets.
2288
2289 CodeGen::CGBuilderTy &Builder = CGF.Builder;
2290 llvm::LLVMContext &Context = CGF.getLLVMContext();
2291
2292 // Everything on MIPS is 4 bytes. Double-precision FP registers
2293 // are aliased to pairs of single-precision FP registers.
2294 const llvm::IntegerType *i8 = llvm::Type::getInt8Ty(Context);
2295 llvm::Value *Four8 = llvm::ConstantInt::get(i8, 4);
2296
2297 // 0-31 are the general purpose registers, $0 - $31.
2298 // 32-63 are the floating-point registers, $f0 - $f31.
2299 // 64 and 65 are the multiply/divide registers, $hi and $lo.
2300 // 66 is the (notional, I think) register for signal-handler return.
2301 AssignToArrayRange(Builder, Address, Four8, 0, 65);
2302
2303 // 67-74 are the floating-point status registers, $fcc0 - $fcc7.
2304 // They are one bit wide and ignored here.
2305
2306 // 80-111 are the coprocessor 0 registers, $c0r0 - $c0r31.
2307 // (coprocessor 1 is the FP unit)
2308 // 112-143 are the coprocessor 2 registers, $c2r0 - $c2r31.
2309 // 144-175 are the coprocessor 3 registers, $c3r0 - $c3r31.
2310 // 176-181 are the DSP accumulator registers.
2311 AssignToArrayRange(Builder, Address, Four8, 80, 181);
2312
2313 return false;
2314}
2315
2316
Chris Lattner2b037972010-07-29 02:01:43 +00002317const TargetCodeGenInfo &CodeGenModule::getTargetCodeGenInfo() {
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00002318 if (TheTargetCodeGenInfo)
2319 return *TheTargetCodeGenInfo;
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002320
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00002321 // For now we just cache the TargetCodeGenInfo in CodeGenModule and don't
2322 // free it.
Daniel Dunbare3532f82009-08-24 08:52:16 +00002323
Chris Lattner22a931e2010-06-29 06:01:59 +00002324 const llvm::Triple &Triple = getContext().Target.getTriple();
Daniel Dunbar40165182009-08-24 09:10:05 +00002325 switch (Triple.getArch()) {
Daniel Dunbare3532f82009-08-24 08:52:16 +00002326 default:
Chris Lattner2b037972010-07-29 02:01:43 +00002327 return *(TheTargetCodeGenInfo = new DefaultTargetCodeGenInfo(Types));
Daniel Dunbare3532f82009-08-24 08:52:16 +00002328
John McCall943fae92010-05-27 06:19:26 +00002329 case llvm::Triple::mips:
2330 case llvm::Triple::mipsel:
Chris Lattner2b037972010-07-29 02:01:43 +00002331 return *(TheTargetCodeGenInfo = new MIPSTargetCodeGenInfo(Types));
John McCall943fae92010-05-27 06:19:26 +00002332
Daniel Dunbard59655c2009-09-12 00:59:49 +00002333 case llvm::Triple::arm:
2334 case llvm::Triple::thumb:
Daniel Dunbar020daa92009-09-12 01:00:39 +00002335 // FIXME: We want to know the float calling convention as well.
Daniel Dunbarb4091a92009-09-14 00:35:03 +00002336 if (strcmp(getContext().Target.getABI(), "apcs-gnu") == 0)
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00002337 return *(TheTargetCodeGenInfo =
Chris Lattner2b037972010-07-29 02:01:43 +00002338 new ARMTargetCodeGenInfo(Types, ARMABIInfo::APCS));
Daniel Dunbar020daa92009-09-12 01:00:39 +00002339
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00002340 return *(TheTargetCodeGenInfo =
Chris Lattner2b037972010-07-29 02:01:43 +00002341 new ARMTargetCodeGenInfo(Types, ARMABIInfo::AAPCS));
Daniel Dunbard59655c2009-09-12 00:59:49 +00002342
2343 case llvm::Triple::pic16:
Chris Lattner2b037972010-07-29 02:01:43 +00002344 return *(TheTargetCodeGenInfo = new PIC16TargetCodeGenInfo(Types));
Daniel Dunbard59655c2009-09-12 00:59:49 +00002345
John McCallea8d8bb2010-03-11 00:10:12 +00002346 case llvm::Triple::ppc:
Chris Lattner2b037972010-07-29 02:01:43 +00002347 return *(TheTargetCodeGenInfo = new PPC32TargetCodeGenInfo(Types));
John McCallea8d8bb2010-03-11 00:10:12 +00002348
Daniel Dunbard59655c2009-09-12 00:59:49 +00002349 case llvm::Triple::systemz:
Chris Lattner2b037972010-07-29 02:01:43 +00002350 return *(TheTargetCodeGenInfo = new SystemZTargetCodeGenInfo(Types));
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00002351
2352 case llvm::Triple::msp430:
Chris Lattner2b037972010-07-29 02:01:43 +00002353 return *(TheTargetCodeGenInfo = new MSP430TargetCodeGenInfo(Types));
Daniel Dunbard59655c2009-09-12 00:59:49 +00002354
Daniel Dunbar40165182009-08-24 09:10:05 +00002355 case llvm::Triple::x86:
Daniel Dunbar40165182009-08-24 09:10:05 +00002356 switch (Triple.getOS()) {
Edward O'Callaghan462e4ab2009-10-20 17:22:50 +00002357 case llvm::Triple::Darwin:
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00002358 return *(TheTargetCodeGenInfo =
Chris Lattner2b037972010-07-29 02:01:43 +00002359 new X86_32TargetCodeGenInfo(Types, true, true));
Daniel Dunbare3532f82009-08-24 08:52:16 +00002360 case llvm::Triple::Cygwin:
Daniel Dunbare3532f82009-08-24 08:52:16 +00002361 case llvm::Triple::MinGW32:
2362 case llvm::Triple::MinGW64:
Edward O'Callaghan437ec1e2009-10-21 11:58:24 +00002363 case llvm::Triple::AuroraUX:
2364 case llvm::Triple::DragonFly:
David Chisnall2c5bef22009-09-03 01:48:05 +00002365 case llvm::Triple::FreeBSD:
Daniel Dunbare3532f82009-08-24 08:52:16 +00002366 case llvm::Triple::OpenBSD:
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00002367 return *(TheTargetCodeGenInfo =
Chris Lattner2b037972010-07-29 02:01:43 +00002368 new X86_32TargetCodeGenInfo(Types, false, true));
Daniel Dunbare3532f82009-08-24 08:52:16 +00002369
2370 default:
Anton Korobeynikov55bcea12010-01-10 12:58:08 +00002371 return *(TheTargetCodeGenInfo =
Chris Lattner2b037972010-07-29 02:01:43 +00002372 new X86_32TargetCodeGenInfo(Types, false, false));
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002373 }
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002374
Daniel Dunbare3532f82009-08-24 08:52:16 +00002375 case llvm::Triple::x86_64:
Chris Lattner2b037972010-07-29 02:01:43 +00002376 return *(TheTargetCodeGenInfo = new X86_64TargetCodeGenInfo(Types));
Daniel Dunbare3532f82009-08-24 08:52:16 +00002377 }
Anton Korobeynikov244360d2009-06-05 22:08:42 +00002378}