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Anton Korobeynikov82d0a412010-01-10 12:58:08 +00001//===---- TargetInfo.cpp - Encapsulate target details -----------*- C++ -*-===//
Anton Korobeynikovc4a59eb2009-06-05 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 Korobeynikov82d0a412010-01-10 12:58:08 +000015#include "TargetInfo.h"
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +000016#include "ABIInfo.h"
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +000017#include "CGCXXABI.h"
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +000018#include "CodeGenFunction.h"
Anders Carlsson19cc4ab2009-07-18 19:43:29 +000019#include "clang/AST/RecordLayout.h"
Sandeep Patel34c1af82011-04-05 00:23:47 +000020#include "clang/Frontend/CodeGenOptions.h"
Daniel Dunbar2c0843f2009-08-24 08:52:16 +000021#include "llvm/ADT/Triple.h"
Chandler Carruth3b844ba2013-01-02 11:45:17 +000022#include "llvm/IR/DataLayout.h"
23#include "llvm/IR/Type.h"
Daniel Dunbar28df7a52009-12-03 09:13:49 +000024#include "llvm/Support/raw_ostream.h"
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +000025using namespace clang;
26using namespace CodeGen;
27
John McCallaeeb7012010-05-27 06:19:26 +000028static void AssignToArrayRange(CodeGen::CGBuilderTy &Builder,
29 llvm::Value *Array,
30 llvm::Value *Value,
31 unsigned FirstIndex,
32 unsigned LastIndex) {
33 // Alternatively, we could emit this as a loop in the source.
34 for (unsigned I = FirstIndex; I <= LastIndex; ++I) {
35 llvm::Value *Cell = Builder.CreateConstInBoundsGEP1_32(Array, I);
36 Builder.CreateStore(Value, Cell);
37 }
38}
39
John McCalld608cdb2010-08-22 10:59:02 +000040static bool isAggregateTypeForABI(QualType T) {
John McCall9d232c82013-03-07 21:37:08 +000041 return !CodeGenFunction::hasScalarEvaluationKind(T) ||
John McCalld608cdb2010-08-22 10:59:02 +000042 T->isMemberFunctionPointerType();
43}
44
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +000045ABIInfo::~ABIInfo() {}
46
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +000047static bool isRecordReturnIndirect(const RecordType *RT, CodeGen::CodeGenTypes &CGT) {
48 const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(RT->getDecl());
49 if (!RD)
50 return false;
51 return CGT.CGM.getCXXABI().isReturnTypeIndirect(RD);
52}
53
54
55static bool isRecordReturnIndirect(QualType T, CodeGen::CodeGenTypes &CGT) {
56 const RecordType *RT = T->getAs<RecordType>();
57 if (!RT)
58 return false;
59 return isRecordReturnIndirect(RT, CGT);
60}
61
62static CGCXXABI::RecordArgABI getRecordArgABI(const RecordType *RT,
63 CodeGen::CodeGenTypes &CGT) {
64 const CXXRecordDecl *RD = dyn_cast<CXXRecordDecl>(RT->getDecl());
65 if (!RD)
66 return CGCXXABI::RAA_Default;
67 return CGT.CGM.getCXXABI().getRecordArgABI(RD);
68}
69
70static CGCXXABI::RecordArgABI getRecordArgABI(QualType T,
71 CodeGen::CodeGenTypes &CGT) {
72 const RecordType *RT = T->getAs<RecordType>();
73 if (!RT)
74 return CGCXXABI::RAA_Default;
75 return getRecordArgABI(RT, CGT);
76}
77
Chris Lattnerea044322010-07-29 02:01:43 +000078ASTContext &ABIInfo::getContext() const {
79 return CGT.getContext();
80}
81
82llvm::LLVMContext &ABIInfo::getVMContext() const {
83 return CGT.getLLVMContext();
84}
85
Micah Villmow25a6a842012-10-08 16:25:52 +000086const llvm::DataLayout &ABIInfo::getDataLayout() const {
87 return CGT.getDataLayout();
Chris Lattnerea044322010-07-29 02:01:43 +000088}
89
John McCall64aa4b32013-04-16 22:48:15 +000090const TargetInfo &ABIInfo::getTarget() const {
91 return CGT.getTarget();
92}
Chris Lattnerea044322010-07-29 02:01:43 +000093
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +000094void ABIArgInfo::dump() const {
Chris Lattner5f9e2722011-07-23 10:55:15 +000095 raw_ostream &OS = llvm::errs();
Daniel Dunbar28df7a52009-12-03 09:13:49 +000096 OS << "(ABIArgInfo Kind=";
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +000097 switch (TheKind) {
98 case Direct:
Chris Lattner800588f2010-07-29 06:26:06 +000099 OS << "Direct Type=";
Chris Lattner2acc6e32011-07-18 04:24:23 +0000100 if (llvm::Type *Ty = getCoerceToType())
Chris Lattner800588f2010-07-29 06:26:06 +0000101 Ty->print(OS);
102 else
103 OS << "null";
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000104 break;
Anton Korobeynikovcc6fa882009-06-06 09:36:29 +0000105 case Extend:
Daniel Dunbar28df7a52009-12-03 09:13:49 +0000106 OS << "Extend";
Anton Korobeynikovcc6fa882009-06-06 09:36:29 +0000107 break;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000108 case Ignore:
Daniel Dunbar28df7a52009-12-03 09:13:49 +0000109 OS << "Ignore";
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000110 break;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000111 case Indirect:
Daniel Dunbardc6d5742010-04-21 19:10:51 +0000112 OS << "Indirect Align=" << getIndirectAlign()
Joerg Sonnenbergere9b5d772011-07-15 18:23:44 +0000113 << " ByVal=" << getIndirectByVal()
Daniel Dunbarcf3b6f22010-09-16 20:42:02 +0000114 << " Realign=" << getIndirectRealign();
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000115 break;
116 case Expand:
Daniel Dunbar28df7a52009-12-03 09:13:49 +0000117 OS << "Expand";
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000118 break;
119 }
Daniel Dunbar28df7a52009-12-03 09:13:49 +0000120 OS << ")\n";
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000121}
122
Anton Korobeynikov82d0a412010-01-10 12:58:08 +0000123TargetCodeGenInfo::~TargetCodeGenInfo() { delete Info; }
124
John McCall49e34be2011-08-30 01:42:09 +0000125// If someone can figure out a general rule for this, that would be great.
126// It's probably just doomed to be platform-dependent, though.
127unsigned TargetCodeGenInfo::getSizeOfUnwindException() const {
128 // Verified for:
129 // x86-64 FreeBSD, Linux, Darwin
130 // x86-32 FreeBSD, Linux, Darwin
131 // PowerPC Linux, Darwin
132 // ARM Darwin (*not* EABI)
Tim Northoverc264e162013-01-31 12:13:10 +0000133 // AArch64 Linux
John McCall49e34be2011-08-30 01:42:09 +0000134 return 32;
135}
136
John McCallde5d3c72012-02-17 03:33:10 +0000137bool TargetCodeGenInfo::isNoProtoCallVariadic(const CallArgList &args,
138 const FunctionNoProtoType *fnType) const {
John McCall01f151e2011-09-21 08:08:30 +0000139 // The following conventions are known to require this to be false:
140 // x86_stdcall
141 // MIPS
142 // For everything else, we just prefer false unless we opt out.
143 return false;
144}
145
Reid Kleckner3190ca92013-05-08 13:44:39 +0000146void
147TargetCodeGenInfo::getDependentLibraryOption(llvm::StringRef Lib,
148 llvm::SmallString<24> &Opt) const {
149 // This assumes the user is passing a library name like "rt" instead of a
150 // filename like "librt.a/so", and that they don't care whether it's static or
151 // dynamic.
152 Opt = "-l";
153 Opt += Lib;
154}
155
Daniel Dunbar98303b92009-09-13 08:03:58 +0000156static bool isEmptyRecord(ASTContext &Context, QualType T, bool AllowArrays);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000157
Sylvestre Ledruf3477c12012-09-27 10:16:10 +0000158/// isEmptyField - Return true iff a the field is "empty", that is it
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000159/// is an unnamed bit-field or an (array of) empty record(s).
Daniel Dunbar98303b92009-09-13 08:03:58 +0000160static bool isEmptyField(ASTContext &Context, const FieldDecl *FD,
161 bool AllowArrays) {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000162 if (FD->isUnnamedBitfield())
163 return true;
164
165 QualType FT = FD->getType();
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000166
Eli Friedman7e7ad3f2011-11-18 03:47:20 +0000167 // Constant arrays of empty records count as empty, strip them off.
168 // Constant arrays of zero length always count as empty.
Daniel Dunbar98303b92009-09-13 08:03:58 +0000169 if (AllowArrays)
Eli Friedman7e7ad3f2011-11-18 03:47:20 +0000170 while (const ConstantArrayType *AT = Context.getAsConstantArrayType(FT)) {
171 if (AT->getSize() == 0)
172 return true;
Daniel Dunbar98303b92009-09-13 08:03:58 +0000173 FT = AT->getElementType();
Eli Friedman7e7ad3f2011-11-18 03:47:20 +0000174 }
Daniel Dunbar98303b92009-09-13 08:03:58 +0000175
Daniel Dunbar5ea68612010-05-17 16:46:00 +0000176 const RecordType *RT = FT->getAs<RecordType>();
177 if (!RT)
178 return false;
179
180 // C++ record fields are never empty, at least in the Itanium ABI.
181 //
182 // FIXME: We should use a predicate for whether this behavior is true in the
183 // current ABI.
184 if (isa<CXXRecordDecl>(RT->getDecl()))
185 return false;
186
Daniel Dunbar98303b92009-09-13 08:03:58 +0000187 return isEmptyRecord(Context, FT, AllowArrays);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000188}
189
Sylvestre Ledruf3477c12012-09-27 10:16:10 +0000190/// isEmptyRecord - Return true iff a structure contains only empty
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000191/// fields. Note that a structure with a flexible array member is not
192/// considered empty.
Daniel Dunbar98303b92009-09-13 08:03:58 +0000193static bool isEmptyRecord(ASTContext &Context, QualType T, bool AllowArrays) {
Ted Kremenek6217b802009-07-29 21:53:49 +0000194 const RecordType *RT = T->getAs<RecordType>();
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000195 if (!RT)
196 return 0;
197 const RecordDecl *RD = RT->getDecl();
198 if (RD->hasFlexibleArrayMember())
199 return false;
Daniel Dunbar5ea68612010-05-17 16:46:00 +0000200
Argyrios Kyrtzidisc5f18f32011-05-17 02:17:52 +0000201 // If this is a C++ record, check the bases first.
Daniel Dunbar5ea68612010-05-17 16:46:00 +0000202 if (const CXXRecordDecl *CXXRD = dyn_cast<CXXRecordDecl>(RD))
Argyrios Kyrtzidisc5f18f32011-05-17 02:17:52 +0000203 for (CXXRecordDecl::base_class_const_iterator i = CXXRD->bases_begin(),
204 e = CXXRD->bases_end(); i != e; ++i)
205 if (!isEmptyRecord(Context, i->getType(), true))
206 return false;
Daniel Dunbar5ea68612010-05-17 16:46:00 +0000207
Argyrios Kyrtzidis17945a02009-06-30 02:36:12 +0000208 for (RecordDecl::field_iterator i = RD->field_begin(), e = RD->field_end();
209 i != e; ++i)
David Blaikie581deb32012-06-06 20:45:41 +0000210 if (!isEmptyField(Context, *i, AllowArrays))
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000211 return false;
212 return true;
213}
214
215/// isSingleElementStruct - Determine if a structure is a "single
216/// element struct", i.e. it has exactly one non-empty field or
217/// exactly one field which is itself a single element
218/// struct. Structures with flexible array members are never
219/// considered single element structs.
220///
221/// \return The field declaration for the single non-empty field, if
222/// it exists.
223static const Type *isSingleElementStruct(QualType T, ASTContext &Context) {
224 const RecordType *RT = T->getAsStructureType();
225 if (!RT)
226 return 0;
227
228 const RecordDecl *RD = RT->getDecl();
229 if (RD->hasFlexibleArrayMember())
230 return 0;
231
232 const Type *Found = 0;
Michael J. Spencer8bea82f2010-08-25 18:17:27 +0000233
Daniel Dunbar9430d5a2010-05-11 21:15:36 +0000234 // If this is a C++ record, check the bases first.
235 if (const CXXRecordDecl *CXXRD = dyn_cast<CXXRecordDecl>(RD)) {
236 for (CXXRecordDecl::base_class_const_iterator i = CXXRD->bases_begin(),
237 e = CXXRD->bases_end(); i != e; ++i) {
Daniel Dunbar9430d5a2010-05-11 21:15:36 +0000238 // Ignore empty records.
Daniel Dunbar5ea68612010-05-17 16:46:00 +0000239 if (isEmptyRecord(Context, i->getType(), true))
Daniel Dunbar9430d5a2010-05-11 21:15:36 +0000240 continue;
241
242 // If we already found an element then this isn't a single-element struct.
243 if (Found)
244 return 0;
245
246 // If this is non-empty and not a single element struct, the composite
247 // cannot be a single element struct.
248 Found = isSingleElementStruct(i->getType(), Context);
249 if (!Found)
250 return 0;
251 }
252 }
253
254 // Check for single element.
Argyrios Kyrtzidis17945a02009-06-30 02:36:12 +0000255 for (RecordDecl::field_iterator i = RD->field_begin(), e = RD->field_end();
256 i != e; ++i) {
David Blaikie581deb32012-06-06 20:45:41 +0000257 const FieldDecl *FD = *i;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000258 QualType FT = FD->getType();
259
260 // Ignore empty fields.
Daniel Dunbar98303b92009-09-13 08:03:58 +0000261 if (isEmptyField(Context, FD, true))
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000262 continue;
263
264 // If we already found an element then this isn't a single-element
265 // struct.
266 if (Found)
267 return 0;
268
269 // Treat single element arrays as the element.
270 while (const ConstantArrayType *AT = Context.getAsConstantArrayType(FT)) {
271 if (AT->getSize().getZExtValue() != 1)
272 break;
273 FT = AT->getElementType();
274 }
275
John McCalld608cdb2010-08-22 10:59:02 +0000276 if (!isAggregateTypeForABI(FT)) {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000277 Found = FT.getTypePtr();
278 } else {
279 Found = isSingleElementStruct(FT, Context);
280 if (!Found)
281 return 0;
282 }
283 }
284
Eli Friedmanbd4d3bc2011-11-18 01:25:50 +0000285 // We don't consider a struct a single-element struct if it has
286 // padding beyond the element type.
287 if (Found && Context.getTypeSize(Found) != Context.getTypeSize(T))
288 return 0;
289
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000290 return Found;
291}
292
293static bool is32Or64BitBasicType(QualType Ty, ASTContext &Context) {
Eli Friedmandb748a32012-11-29 23:21:04 +0000294 // Treat complex types as the element type.
295 if (const ComplexType *CTy = Ty->getAs<ComplexType>())
296 Ty = CTy->getElementType();
297
298 // Check for a type which we know has a simple scalar argument-passing
299 // convention without any padding. (We're specifically looking for 32
300 // and 64-bit integer and integer-equivalents, float, and double.)
Daniel Dunbara1842d32010-05-14 03:40:53 +0000301 if (!Ty->getAs<BuiltinType>() && !Ty->hasPointerRepresentation() &&
Eli Friedmandb748a32012-11-29 23:21:04 +0000302 !Ty->isEnumeralType() && !Ty->isBlockPointerType())
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000303 return false;
304
305 uint64_t Size = Context.getTypeSize(Ty);
306 return Size == 32 || Size == 64;
307}
308
Daniel Dunbar53012f42009-11-09 01:33:53 +0000309/// canExpandIndirectArgument - Test whether an argument type which is to be
310/// passed indirectly (on the stack) would have the equivalent layout if it was
311/// expanded into separate arguments. If so, we prefer to do the latter to avoid
312/// inhibiting optimizations.
313///
314// FIXME: This predicate is missing many cases, currently it just follows
315// llvm-gcc (checks that all fields are 32-bit or 64-bit primitive types). We
316// should probably make this smarter, or better yet make the LLVM backend
317// capable of handling it.
318static bool canExpandIndirectArgument(QualType Ty, ASTContext &Context) {
319 // We can only expand structure types.
320 const RecordType *RT = Ty->getAs<RecordType>();
321 if (!RT)
322 return false;
323
324 // We can only expand (C) structures.
325 //
326 // FIXME: This needs to be generalized to handle classes as well.
327 const RecordDecl *RD = RT->getDecl();
328 if (!RD->isStruct() || isa<CXXRecordDecl>(RD))
329 return false;
330
Eli Friedman506d4e32011-11-18 01:32:26 +0000331 uint64_t Size = 0;
332
Argyrios Kyrtzidis17945a02009-06-30 02:36:12 +0000333 for (RecordDecl::field_iterator i = RD->field_begin(), e = RD->field_end();
334 i != e; ++i) {
David Blaikie581deb32012-06-06 20:45:41 +0000335 const FieldDecl *FD = *i;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000336
337 if (!is32Or64BitBasicType(FD->getType(), Context))
338 return false;
339
340 // FIXME: Reject bit-fields wholesale; there are two problems, we don't know
341 // how to expand them yet, and the predicate for telling if a bitfield still
342 // counts as "basic" is more complicated than what we were doing previously.
343 if (FD->isBitField())
344 return false;
Eli Friedman506d4e32011-11-18 01:32:26 +0000345
346 Size += Context.getTypeSize(FD->getType());
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000347 }
348
Eli Friedman506d4e32011-11-18 01:32:26 +0000349 // Make sure there are not any holes in the struct.
350 if (Size != Context.getTypeSize(Ty))
351 return false;
352
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000353 return true;
354}
355
356namespace {
357/// DefaultABIInfo - The default implementation for ABI specific
358/// details. This implementation provides information which results in
359/// self-consistent and sensible LLVM IR generation, but does not
360/// conform to any particular ABI.
361class DefaultABIInfo : public ABIInfo {
Chris Lattnerea044322010-07-29 02:01:43 +0000362public:
363 DefaultABIInfo(CodeGen::CodeGenTypes &CGT) : ABIInfo(CGT) {}
Michael J. Spencer8bea82f2010-08-25 18:17:27 +0000364
Chris Lattnera3c109b2010-07-29 02:16:43 +0000365 ABIArgInfo classifyReturnType(QualType RetTy) const;
366 ABIArgInfo classifyArgumentType(QualType RetTy) const;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000367
Chris Lattneree5dcd02010-07-29 02:31:05 +0000368 virtual void computeInfo(CGFunctionInfo &FI) const {
Chris Lattnera3c109b2010-07-29 02:16:43 +0000369 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000370 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
371 it != ie; ++it)
Chris Lattnera3c109b2010-07-29 02:16:43 +0000372 it->info = classifyArgumentType(it->type);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000373 }
374
375 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
376 CodeGenFunction &CGF) const;
377};
378
Anton Korobeynikov82d0a412010-01-10 12:58:08 +0000379class DefaultTargetCodeGenInfo : public TargetCodeGenInfo {
380public:
Chris Lattnerea044322010-07-29 02:01:43 +0000381 DefaultTargetCodeGenInfo(CodeGen::CodeGenTypes &CGT)
382 : TargetCodeGenInfo(new DefaultABIInfo(CGT)) {}
Anton Korobeynikov82d0a412010-01-10 12:58:08 +0000383};
384
385llvm::Value *DefaultABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
386 CodeGenFunction &CGF) const {
387 return 0;
388}
389
Chris Lattnera3c109b2010-07-29 02:16:43 +0000390ABIArgInfo DefaultABIInfo::classifyArgumentType(QualType Ty) const {
Jan Wen Voung90306932011-11-03 00:59:44 +0000391 if (isAggregateTypeForABI(Ty)) {
392 // Records with non trivial destructors/constructors should not be passed
393 // by value.
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +0000394 if (isRecordReturnIndirect(Ty, CGT))
Jan Wen Voung90306932011-11-03 00:59:44 +0000395 return ABIArgInfo::getIndirect(0, /*ByVal=*/false);
396
Anton Korobeynikov82d0a412010-01-10 12:58:08 +0000397 return ABIArgInfo::getIndirect(0);
Jan Wen Voung90306932011-11-03 00:59:44 +0000398 }
Daniel Dunbardc6d5742010-04-21 19:10:51 +0000399
Chris Lattnera14db752010-03-11 18:19:55 +0000400 // Treat an enum type as its underlying type.
401 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
402 Ty = EnumTy->getDecl()->getIntegerType();
Douglas Gregoraa74a1e2010-02-02 20:10:50 +0000403
Chris Lattnera14db752010-03-11 18:19:55 +0000404 return (Ty->isPromotableIntegerType() ?
405 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Anton Korobeynikov82d0a412010-01-10 12:58:08 +0000406}
407
Bob Wilson0024f942011-01-10 23:54:17 +0000408ABIArgInfo DefaultABIInfo::classifyReturnType(QualType RetTy) const {
409 if (RetTy->isVoidType())
410 return ABIArgInfo::getIgnore();
411
412 if (isAggregateTypeForABI(RetTy))
413 return ABIArgInfo::getIndirect(0);
414
415 // Treat an enum type as its underlying type.
416 if (const EnumType *EnumTy = RetTy->getAs<EnumType>())
417 RetTy = EnumTy->getDecl()->getIntegerType();
418
419 return (RetTy->isPromotableIntegerType() ?
420 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
421}
422
Derek Schuff9ed63f82012-09-06 17:37:28 +0000423//===----------------------------------------------------------------------===//
424// le32/PNaCl bitcode ABI Implementation
Eli Benderskyc0783dc2013-04-08 21:31:01 +0000425//
426// This is a simplified version of the x86_32 ABI. Arguments and return values
427// are always passed on the stack.
Derek Schuff9ed63f82012-09-06 17:37:28 +0000428//===----------------------------------------------------------------------===//
429
430class PNaClABIInfo : public ABIInfo {
431 public:
432 PNaClABIInfo(CodeGen::CodeGenTypes &CGT) : ABIInfo(CGT) {}
433
434 ABIArgInfo classifyReturnType(QualType RetTy) const;
Eli Benderskyc0783dc2013-04-08 21:31:01 +0000435 ABIArgInfo classifyArgumentType(QualType RetTy) const;
Derek Schuff9ed63f82012-09-06 17:37:28 +0000436
437 virtual void computeInfo(CGFunctionInfo &FI) const;
438 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
439 CodeGenFunction &CGF) const;
440};
441
442class PNaClTargetCodeGenInfo : public TargetCodeGenInfo {
443 public:
444 PNaClTargetCodeGenInfo(CodeGen::CodeGenTypes &CGT)
445 : TargetCodeGenInfo(new PNaClABIInfo(CGT)) {}
446};
447
448void PNaClABIInfo::computeInfo(CGFunctionInfo &FI) const {
449 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
450
Derek Schuff9ed63f82012-09-06 17:37:28 +0000451 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
452 it != ie; ++it)
Eli Benderskyc0783dc2013-04-08 21:31:01 +0000453 it->info = classifyArgumentType(it->type);
Derek Schuff9ed63f82012-09-06 17:37:28 +0000454 }
455
456llvm::Value *PNaClABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
457 CodeGenFunction &CGF) const {
458 return 0;
459}
460
Eli Benderskyc0783dc2013-04-08 21:31:01 +0000461/// \brief Classify argument of given type \p Ty.
462ABIArgInfo PNaClABIInfo::classifyArgumentType(QualType Ty) const {
Derek Schuff9ed63f82012-09-06 17:37:28 +0000463 if (isAggregateTypeForABI(Ty)) {
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +0000464 if (CGCXXABI::RecordArgABI RAA = getRecordArgABI(Ty, CGT))
465 return ABIArgInfo::getIndirect(0, RAA == CGCXXABI::RAA_DirectInMemory);
Derek Schuff9ed63f82012-09-06 17:37:28 +0000466 return ABIArgInfo::getIndirect(0);
Eli Benderskyc0783dc2013-04-08 21:31:01 +0000467 } else if (const EnumType *EnumTy = Ty->getAs<EnumType>()) {
468 // Treat an enum type as its underlying type.
Derek Schuff9ed63f82012-09-06 17:37:28 +0000469 Ty = EnumTy->getDecl()->getIntegerType();
Eli Benderskyc0783dc2013-04-08 21:31:01 +0000470 } else if (Ty->isFloatingType()) {
471 // Floating-point types don't go inreg.
472 return ABIArgInfo::getDirect();
Derek Schuff9ed63f82012-09-06 17:37:28 +0000473 }
Eli Benderskyc0783dc2013-04-08 21:31:01 +0000474
475 return (Ty->isPromotableIntegerType() ?
476 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Derek Schuff9ed63f82012-09-06 17:37:28 +0000477}
478
479ABIArgInfo PNaClABIInfo::classifyReturnType(QualType RetTy) const {
480 if (RetTy->isVoidType())
481 return ABIArgInfo::getIgnore();
482
Eli Benderskye45dfd12013-04-04 22:49:35 +0000483 // In the PNaCl ABI we always return records/structures on the stack.
Derek Schuff9ed63f82012-09-06 17:37:28 +0000484 if (isAggregateTypeForABI(RetTy))
485 return ABIArgInfo::getIndirect(0);
486
487 // Treat an enum type as its underlying type.
488 if (const EnumType *EnumTy = RetTy->getAs<EnumType>())
489 RetTy = EnumTy->getDecl()->getIntegerType();
490
491 return (RetTy->isPromotableIntegerType() ?
492 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
493}
494
Chad Rosier1f1df1f2013-03-25 21:00:27 +0000495/// IsX86_MMXType - Return true if this is an MMX type.
496bool IsX86_MMXType(llvm::Type *IRType) {
497 // Return true if the type is an MMX type <2 x i32>, <4 x i16>, or <8 x i8>.
Bill Wendlingbb465d72010-10-18 03:41:31 +0000498 return IRType->isVectorTy() && IRType->getPrimitiveSizeInBits() == 64 &&
499 cast<llvm::VectorType>(IRType)->getElementType()->isIntegerTy() &&
500 IRType->getScalarSizeInBits() != 64;
501}
502
Jay Foadef6de3d2011-07-11 09:56:20 +0000503static llvm::Type* X86AdjustInlineAsmType(CodeGen::CodeGenFunction &CGF,
Chris Lattner5f9e2722011-07-23 10:55:15 +0000504 StringRef Constraint,
Jay Foadef6de3d2011-07-11 09:56:20 +0000505 llvm::Type* Ty) {
Tim Northover1bea6532013-06-07 00:04:50 +0000506 if ((Constraint == "y" || Constraint == "&y") && Ty->isVectorTy()) {
507 if (cast<llvm::VectorType>(Ty)->getBitWidth() != 64) {
508 // Invalid MMX constraint
509 return 0;
510 }
511
Peter Collingbourne4b93d662011-02-19 23:03:58 +0000512 return llvm::Type::getX86_MMXTy(CGF.getLLVMContext());
Tim Northover1bea6532013-06-07 00:04:50 +0000513 }
514
515 // No operation needed
Peter Collingbourne4b93d662011-02-19 23:03:58 +0000516 return Ty;
517}
518
Chris Lattnerdce5ad02010-06-28 20:05:43 +0000519//===----------------------------------------------------------------------===//
520// X86-32 ABI Implementation
521//===----------------------------------------------------------------------===//
Michael J. Spencer8bea82f2010-08-25 18:17:27 +0000522
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000523/// X86_32ABIInfo - The X86-32 ABI information.
524class X86_32ABIInfo : public ABIInfo {
Rafael Espindolab48280b2012-07-31 02:44:24 +0000525 enum Class {
526 Integer,
527 Float
528 };
529
Daniel Dunbarfb67d6c2010-09-16 20:41:56 +0000530 static const unsigned MinABIStackAlignInBytes = 4;
531
David Chisnall1e4249c2009-08-17 23:08:21 +0000532 bool IsDarwinVectorABI;
533 bool IsSmallStructInRegABI;
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +0000534 bool IsWin32StructABI;
Rafael Espindolab48280b2012-07-31 02:44:24 +0000535 unsigned DefaultNumRegisterParameters;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000536
537 static bool isRegisterSize(unsigned Size) {
538 return (Size == 8 || Size == 16 || Size == 32 || Size == 64);
539 }
540
Aaron Ballman6c60c8d2012-02-22 03:04:13 +0000541 static bool shouldReturnTypeInRegister(QualType Ty, ASTContext &Context,
542 unsigned callingConvention);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000543
Daniel Dunbardc6d5742010-04-21 19:10:51 +0000544 /// getIndirectResult - Give a source type \arg Ty, return a suitable result
545 /// such that the argument will be passed in memory.
Rafael Espindola0b4cc952012-10-19 05:04:37 +0000546 ABIArgInfo getIndirectResult(QualType Ty, bool ByVal,
547 unsigned &FreeRegs) const;
Daniel Dunbardc6d5742010-04-21 19:10:51 +0000548
Daniel Dunbarfb67d6c2010-09-16 20:41:56 +0000549 /// \brief Return the alignment to use for the given type on the stack.
Daniel Dunbare59d8582010-09-16 20:42:06 +0000550 unsigned getTypeStackAlignInBytes(QualType Ty, unsigned Align) const;
Daniel Dunbarfb67d6c2010-09-16 20:41:56 +0000551
Rafael Espindolab48280b2012-07-31 02:44:24 +0000552 Class classify(QualType Ty) const;
Rafael Espindolab33a3c42012-07-23 23:30:29 +0000553 ABIArgInfo classifyReturnType(QualType RetTy,
Aaron Ballman6c60c8d2012-02-22 03:04:13 +0000554 unsigned callingConvention) const;
Rafael Espindolab6932692012-10-24 01:58:58 +0000555 ABIArgInfo classifyArgumentType(QualType RetTy, unsigned &FreeRegs,
556 bool IsFastCall) const;
557 bool shouldUseInReg(QualType Ty, unsigned &FreeRegs,
Rafael Espindolae4aeeaa2012-10-24 01:59:00 +0000558 bool IsFastCall, bool &NeedsPadding) const;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000559
Rafael Espindolab33a3c42012-07-23 23:30:29 +0000560public:
561
Rafael Espindolaaa9cf8d2012-07-24 00:01:07 +0000562 virtual void computeInfo(CGFunctionInfo &FI) const;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000563 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
564 CodeGenFunction &CGF) const;
565
Chad Rosier1f1df1f2013-03-25 21:00:27 +0000566 X86_32ABIInfo(CodeGen::CodeGenTypes &CGT, bool d, bool p, bool w,
Rafael Espindolab48280b2012-07-31 02:44:24 +0000567 unsigned r)
Eli Friedmanc3e0fb42011-07-08 23:31:17 +0000568 : ABIInfo(CGT), IsDarwinVectorABI(d), IsSmallStructInRegABI(p),
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +0000569 IsWin32StructABI(w), DefaultNumRegisterParameters(r) {}
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000570};
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000571
Anton Korobeynikov82d0a412010-01-10 12:58:08 +0000572class X86_32TargetCodeGenInfo : public TargetCodeGenInfo {
573public:
Eli Friedman55fc7e22012-01-25 22:46:34 +0000574 X86_32TargetCodeGenInfo(CodeGen::CodeGenTypes &CGT,
Chad Rosier1f1df1f2013-03-25 21:00:27 +0000575 bool d, bool p, bool w, unsigned r)
576 :TargetCodeGenInfo(new X86_32ABIInfo(CGT, d, p, w, r)) {}
Charles Davis74f72932010-02-13 15:54:06 +0000577
578 void SetTargetAttributes(const Decl *D, llvm::GlobalValue *GV,
579 CodeGen::CodeGenModule &CGM) const;
John McCall6374c332010-03-06 00:35:14 +0000580
581 int getDwarfEHStackPointer(CodeGen::CodeGenModule &CGM) const {
582 // Darwin uses different dwarf register numbers for EH.
John McCall64aa4b32013-04-16 22:48:15 +0000583 if (CGM.getTarget().getTriple().isOSDarwin()) return 5;
John McCall6374c332010-03-06 00:35:14 +0000584 return 4;
585 }
586
587 bool initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
588 llvm::Value *Address) const;
Peter Collingbourne4b93d662011-02-19 23:03:58 +0000589
Jay Foadef6de3d2011-07-11 09:56:20 +0000590 llvm::Type* adjustInlineAsmType(CodeGen::CodeGenFunction &CGF,
Chris Lattner5f9e2722011-07-23 10:55:15 +0000591 StringRef Constraint,
Jay Foadef6de3d2011-07-11 09:56:20 +0000592 llvm::Type* Ty) const {
Peter Collingbourne4b93d662011-02-19 23:03:58 +0000593 return X86AdjustInlineAsmType(CGF, Constraint, Ty);
594 }
595
Anton Korobeynikov82d0a412010-01-10 12:58:08 +0000596};
597
598}
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000599
600/// shouldReturnTypeInRegister - Determine if the given type should be
601/// passed in a register (for the Darwin ABI).
602bool X86_32ABIInfo::shouldReturnTypeInRegister(QualType Ty,
Aaron Ballman6c60c8d2012-02-22 03:04:13 +0000603 ASTContext &Context,
604 unsigned callingConvention) {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000605 uint64_t Size = Context.getTypeSize(Ty);
606
607 // Type must be register sized.
608 if (!isRegisterSize(Size))
609 return false;
610
611 if (Ty->isVectorType()) {
612 // 64- and 128- bit vectors inside structures are not returned in
613 // registers.
614 if (Size == 64 || Size == 128)
615 return false;
616
617 return true;
618 }
619
Daniel Dunbar77115232010-05-15 00:00:30 +0000620 // If this is a builtin, pointer, enum, complex type, member pointer, or
621 // member function pointer it is ok.
Daniel Dunbara1842d32010-05-14 03:40:53 +0000622 if (Ty->getAs<BuiltinType>() || Ty->hasPointerRepresentation() ||
Daniel Dunbar55e59e12009-09-24 05:12:36 +0000623 Ty->isAnyComplexType() || Ty->isEnumeralType() ||
Daniel Dunbar77115232010-05-15 00:00:30 +0000624 Ty->isBlockPointerType() || Ty->isMemberPointerType())
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000625 return true;
626
627 // Arrays are treated like records.
628 if (const ConstantArrayType *AT = Context.getAsConstantArrayType(Ty))
Aaron Ballman6c60c8d2012-02-22 03:04:13 +0000629 return shouldReturnTypeInRegister(AT->getElementType(), Context,
630 callingConvention);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000631
632 // Otherwise, it must be a record type.
Ted Kremenek6217b802009-07-29 21:53:49 +0000633 const RecordType *RT = Ty->getAs<RecordType>();
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000634 if (!RT) return false;
635
Anders Carlssona8874232010-01-27 03:25:19 +0000636 // FIXME: Traverse bases here too.
637
Aaron Ballman6c60c8d2012-02-22 03:04:13 +0000638 // For thiscall conventions, structures will never be returned in
639 // a register. This is for compatibility with the MSVC ABI
640 if (callingConvention == llvm::CallingConv::X86_ThisCall &&
641 RT->isStructureType()) {
642 return false;
643 }
644
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000645 // Structure types are passed in register if all fields would be
646 // passed in a register.
Argyrios Kyrtzidis17945a02009-06-30 02:36:12 +0000647 for (RecordDecl::field_iterator i = RT->getDecl()->field_begin(),
648 e = RT->getDecl()->field_end(); i != e; ++i) {
David Blaikie581deb32012-06-06 20:45:41 +0000649 const FieldDecl *FD = *i;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000650
651 // Empty fields are ignored.
Daniel Dunbar98303b92009-09-13 08:03:58 +0000652 if (isEmptyField(Context, FD, true))
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000653 continue;
654
655 // Check fields recursively.
Aaron Ballman6c60c8d2012-02-22 03:04:13 +0000656 if (!shouldReturnTypeInRegister(FD->getType(), Context,
657 callingConvention))
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000658 return false;
659 }
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000660 return true;
661}
662
Aaron Ballman6c60c8d2012-02-22 03:04:13 +0000663ABIArgInfo X86_32ABIInfo::classifyReturnType(QualType RetTy,
664 unsigned callingConvention) const {
Chris Lattnera3c109b2010-07-29 02:16:43 +0000665 if (RetTy->isVoidType())
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000666 return ABIArgInfo::getIgnore();
Michael J. Spencer8bea82f2010-08-25 18:17:27 +0000667
Chris Lattnera3c109b2010-07-29 02:16:43 +0000668 if (const VectorType *VT = RetTy->getAs<VectorType>()) {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000669 // On Darwin, some vectors are returned in registers.
David Chisnall1e4249c2009-08-17 23:08:21 +0000670 if (IsDarwinVectorABI) {
Chris Lattnera3c109b2010-07-29 02:16:43 +0000671 uint64_t Size = getContext().getTypeSize(RetTy);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000672
673 // 128-bit vectors are a special case; they are returned in
674 // registers and we need to make sure to pick a type the LLVM
675 // backend will like.
676 if (Size == 128)
Chris Lattner800588f2010-07-29 06:26:06 +0000677 return ABIArgInfo::getDirect(llvm::VectorType::get(
Chris Lattnera3c109b2010-07-29 02:16:43 +0000678 llvm::Type::getInt64Ty(getVMContext()), 2));
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000679
680 // Always return in register if it fits in a general purpose
681 // register, or if it is 64 bits and has a single element.
682 if ((Size == 8 || Size == 16 || Size == 32) ||
683 (Size == 64 && VT->getNumElements() == 1))
Chris Lattner800588f2010-07-29 06:26:06 +0000684 return ABIArgInfo::getDirect(llvm::IntegerType::get(getVMContext(),
Chris Lattnera3c109b2010-07-29 02:16:43 +0000685 Size));
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000686
687 return ABIArgInfo::getIndirect(0);
688 }
689
690 return ABIArgInfo::getDirect();
Chris Lattnera3c109b2010-07-29 02:16:43 +0000691 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +0000692
John McCalld608cdb2010-08-22 10:59:02 +0000693 if (isAggregateTypeForABI(RetTy)) {
Anders Carlssona8874232010-01-27 03:25:19 +0000694 if (const RecordType *RT = RetTy->getAs<RecordType>()) {
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +0000695 if (isRecordReturnIndirect(RT, CGT))
Anders Carlsson40092972009-10-20 22:07:59 +0000696 return ABIArgInfo::getIndirect(0, /*ByVal=*/false);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +0000697
Anders Carlsson40092972009-10-20 22:07:59 +0000698 // Structures with flexible arrays are always indirect.
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000699 if (RT->getDecl()->hasFlexibleArrayMember())
700 return ABIArgInfo::getIndirect(0);
Anders Carlsson40092972009-10-20 22:07:59 +0000701 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +0000702
David Chisnall1e4249c2009-08-17 23:08:21 +0000703 // If specified, structs and unions are always indirect.
704 if (!IsSmallStructInRegABI && !RetTy->isAnyComplexType())
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000705 return ABIArgInfo::getIndirect(0);
706
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000707 // Small structures which are register sized are generally returned
708 // in a register.
Aaron Ballman6c60c8d2012-02-22 03:04:13 +0000709 if (X86_32ABIInfo::shouldReturnTypeInRegister(RetTy, getContext(),
710 callingConvention)) {
Chris Lattnera3c109b2010-07-29 02:16:43 +0000711 uint64_t Size = getContext().getTypeSize(RetTy);
Eli Friedmanbd4d3bc2011-11-18 01:25:50 +0000712
713 // As a special-case, if the struct is a "single-element" struct, and
714 // the field is of type "float" or "double", return it in a
Eli Friedman55fc7e22012-01-25 22:46:34 +0000715 // floating-point register. (MSVC does not apply this special case.)
716 // We apply a similar transformation for pointer types to improve the
717 // quality of the generated IR.
Eli Friedmanbd4d3bc2011-11-18 01:25:50 +0000718 if (const Type *SeltTy = isSingleElementStruct(RetTy, getContext()))
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +0000719 if ((!IsWin32StructABI && SeltTy->isRealFloatingType())
Eli Friedman55fc7e22012-01-25 22:46:34 +0000720 || SeltTy->hasPointerRepresentation())
Eli Friedmanbd4d3bc2011-11-18 01:25:50 +0000721 return ABIArgInfo::getDirect(CGT.ConvertType(QualType(SeltTy, 0)));
722
723 // FIXME: We should be able to narrow this integer in cases with dead
724 // padding.
Chris Lattner800588f2010-07-29 06:26:06 +0000725 return ABIArgInfo::getDirect(llvm::IntegerType::get(getVMContext(),Size));
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000726 }
727
728 return ABIArgInfo::getIndirect(0);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000729 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +0000730
Chris Lattnera3c109b2010-07-29 02:16:43 +0000731 // Treat an enum type as its underlying type.
732 if (const EnumType *EnumTy = RetTy->getAs<EnumType>())
733 RetTy = EnumTy->getDecl()->getIntegerType();
734
735 return (RetTy->isPromotableIntegerType() ?
736 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000737}
738
Eli Friedmanf4bd4d82012-06-05 19:40:46 +0000739static bool isSSEVectorType(ASTContext &Context, QualType Ty) {
740 return Ty->getAs<VectorType>() && Context.getTypeSize(Ty) == 128;
741}
742
Daniel Dunbar93ae9472010-09-16 20:42:00 +0000743static bool isRecordWithSSEVectorType(ASTContext &Context, QualType Ty) {
744 const RecordType *RT = Ty->getAs<RecordType>();
745 if (!RT)
746 return 0;
747 const RecordDecl *RD = RT->getDecl();
748
749 // If this is a C++ record, check the bases first.
750 if (const CXXRecordDecl *CXXRD = dyn_cast<CXXRecordDecl>(RD))
751 for (CXXRecordDecl::base_class_const_iterator i = CXXRD->bases_begin(),
752 e = CXXRD->bases_end(); i != e; ++i)
753 if (!isRecordWithSSEVectorType(Context, i->getType()))
754 return false;
755
756 for (RecordDecl::field_iterator i = RD->field_begin(), e = RD->field_end();
757 i != e; ++i) {
758 QualType FT = i->getType();
759
Eli Friedmanf4bd4d82012-06-05 19:40:46 +0000760 if (isSSEVectorType(Context, FT))
Daniel Dunbar93ae9472010-09-16 20:42:00 +0000761 return true;
762
763 if (isRecordWithSSEVectorType(Context, FT))
764 return true;
765 }
766
767 return false;
768}
769
Daniel Dunbare59d8582010-09-16 20:42:06 +0000770unsigned X86_32ABIInfo::getTypeStackAlignInBytes(QualType Ty,
771 unsigned Align) const {
772 // Otherwise, if the alignment is less than or equal to the minimum ABI
773 // alignment, just use the default; the backend will handle this.
Daniel Dunbarfb67d6c2010-09-16 20:41:56 +0000774 if (Align <= MinABIStackAlignInBytes)
Daniel Dunbare59d8582010-09-16 20:42:06 +0000775 return 0; // Use default alignment.
776
777 // On non-Darwin, the stack type alignment is always 4.
778 if (!IsDarwinVectorABI) {
779 // Set explicit alignment, since we may need to realign the top.
Daniel Dunbarfb67d6c2010-09-16 20:41:56 +0000780 return MinABIStackAlignInBytes;
Daniel Dunbare59d8582010-09-16 20:42:06 +0000781 }
Daniel Dunbarfb67d6c2010-09-16 20:41:56 +0000782
Daniel Dunbar93ae9472010-09-16 20:42:00 +0000783 // Otherwise, if the type contains an SSE vector type, the alignment is 16.
Eli Friedmanf4bd4d82012-06-05 19:40:46 +0000784 if (Align >= 16 && (isSSEVectorType(getContext(), Ty) ||
785 isRecordWithSSEVectorType(getContext(), Ty)))
Daniel Dunbar93ae9472010-09-16 20:42:00 +0000786 return 16;
787
788 return MinABIStackAlignInBytes;
Daniel Dunbarfb67d6c2010-09-16 20:41:56 +0000789}
790
Rafael Espindola0b4cc952012-10-19 05:04:37 +0000791ABIArgInfo X86_32ABIInfo::getIndirectResult(QualType Ty, bool ByVal,
792 unsigned &FreeRegs) const {
793 if (!ByVal) {
794 if (FreeRegs) {
795 --FreeRegs; // Non byval indirects just use one pointer.
796 return ABIArgInfo::getIndirectInReg(0, false);
797 }
Daniel Dunbar46c54fb2010-04-21 19:49:55 +0000798 return ABIArgInfo::getIndirect(0, false);
Rafael Espindola0b4cc952012-10-19 05:04:37 +0000799 }
Daniel Dunbar46c54fb2010-04-21 19:49:55 +0000800
Daniel Dunbare59d8582010-09-16 20:42:06 +0000801 // Compute the byval alignment.
802 unsigned TypeAlign = getContext().getTypeAlign(Ty) / 8;
803 unsigned StackAlign = getTypeStackAlignInBytes(Ty, TypeAlign);
804 if (StackAlign == 0)
Chris Lattnerde92d732011-05-22 23:35:00 +0000805 return ABIArgInfo::getIndirect(4);
Daniel Dunbare59d8582010-09-16 20:42:06 +0000806
807 // If the stack alignment is less than the type alignment, realign the
808 // argument.
809 if (StackAlign < TypeAlign)
810 return ABIArgInfo::getIndirect(StackAlign, /*ByVal=*/true,
811 /*Realign=*/true);
812
813 return ABIArgInfo::getIndirect(StackAlign);
Daniel Dunbardc6d5742010-04-21 19:10:51 +0000814}
815
Rafael Espindolab48280b2012-07-31 02:44:24 +0000816X86_32ABIInfo::Class X86_32ABIInfo::classify(QualType Ty) const {
817 const Type *T = isSingleElementStruct(Ty, getContext());
818 if (!T)
819 T = Ty.getTypePtr();
820
821 if (const BuiltinType *BT = T->getAs<BuiltinType>()) {
822 BuiltinType::Kind K = BT->getKind();
823 if (K == BuiltinType::Float || K == BuiltinType::Double)
824 return Float;
825 }
826 return Integer;
827}
828
Rafael Espindolab6932692012-10-24 01:58:58 +0000829bool X86_32ABIInfo::shouldUseInReg(QualType Ty, unsigned &FreeRegs,
Rafael Espindolae4aeeaa2012-10-24 01:59:00 +0000830 bool IsFastCall, bool &NeedsPadding) const {
831 NeedsPadding = false;
Rafael Espindolab48280b2012-07-31 02:44:24 +0000832 Class C = classify(Ty);
833 if (C == Float)
Rafael Espindola0b4cc952012-10-19 05:04:37 +0000834 return false;
Rafael Espindolab48280b2012-07-31 02:44:24 +0000835
Rafael Espindolab6932692012-10-24 01:58:58 +0000836 unsigned Size = getContext().getTypeSize(Ty);
837 unsigned SizeInRegs = (Size + 31) / 32;
Rafael Espindola5f14fcb2012-10-23 02:04:01 +0000838
839 if (SizeInRegs == 0)
840 return false;
841
Rafael Espindolab48280b2012-07-31 02:44:24 +0000842 if (SizeInRegs > FreeRegs) {
843 FreeRegs = 0;
Rafael Espindola0b4cc952012-10-19 05:04:37 +0000844 return false;
Rafael Espindolab48280b2012-07-31 02:44:24 +0000845 }
Rafael Espindola0b4cc952012-10-19 05:04:37 +0000846
Rafael Espindolab48280b2012-07-31 02:44:24 +0000847 FreeRegs -= SizeInRegs;
Rafael Espindolab6932692012-10-24 01:58:58 +0000848
849 if (IsFastCall) {
850 if (Size > 32)
851 return false;
852
853 if (Ty->isIntegralOrEnumerationType())
854 return true;
855
856 if (Ty->isPointerType())
857 return true;
858
859 if (Ty->isReferenceType())
860 return true;
861
Rafael Espindolae4aeeaa2012-10-24 01:59:00 +0000862 if (FreeRegs)
863 NeedsPadding = true;
864
Rafael Espindolab6932692012-10-24 01:58:58 +0000865 return false;
866 }
867
Rafael Espindola0b4cc952012-10-19 05:04:37 +0000868 return true;
Rafael Espindolab48280b2012-07-31 02:44:24 +0000869}
870
Rafael Espindola0b4cc952012-10-19 05:04:37 +0000871ABIArgInfo X86_32ABIInfo::classifyArgumentType(QualType Ty,
Rafael Espindolab6932692012-10-24 01:58:58 +0000872 unsigned &FreeRegs,
873 bool IsFastCall) const {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000874 // FIXME: Set alignment on indirect arguments.
John McCalld608cdb2010-08-22 10:59:02 +0000875 if (isAggregateTypeForABI(Ty)) {
Anders Carlssona8874232010-01-27 03:25:19 +0000876 if (const RecordType *RT = Ty->getAs<RecordType>()) {
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +0000877 if (IsWin32StructABI)
878 return getIndirectResult(Ty, true, FreeRegs);
Daniel Dunbardc6d5742010-04-21 19:10:51 +0000879
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +0000880 if (CGCXXABI::RecordArgABI RAA = getRecordArgABI(RT, CGT))
881 return getIndirectResult(Ty, RAA == CGCXXABI::RAA_DirectInMemory, FreeRegs);
882
883 // Structures with flexible arrays are always indirect.
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000884 if (RT->getDecl()->hasFlexibleArrayMember())
Rafael Espindola0b4cc952012-10-19 05:04:37 +0000885 return getIndirectResult(Ty, true, FreeRegs);
Anders Carlssona8874232010-01-27 03:25:19 +0000886 }
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000887
Eli Friedman5a4d3522011-11-18 00:28:11 +0000888 // Ignore empty structs/unions.
Eli Friedman5a1ac892011-11-18 04:01:36 +0000889 if (isEmptyRecord(getContext(), Ty, true))
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000890 return ABIArgInfo::getIgnore();
891
Rafael Espindolae4aeeaa2012-10-24 01:59:00 +0000892 llvm::LLVMContext &LLVMContext = getVMContext();
893 llvm::IntegerType *Int32 = llvm::Type::getInt32Ty(LLVMContext);
894 bool NeedsPadding;
895 if (shouldUseInReg(Ty, FreeRegs, IsFastCall, NeedsPadding)) {
Rafael Espindola0b4cc952012-10-19 05:04:37 +0000896 unsigned SizeInRegs = (getContext().getTypeSize(Ty) + 31) / 32;
Rafael Espindola0b4cc952012-10-19 05:04:37 +0000897 SmallVector<llvm::Type*, 3> Elements;
898 for (unsigned I = 0; I < SizeInRegs; ++I)
899 Elements.push_back(Int32);
900 llvm::Type *Result = llvm::StructType::get(LLVMContext, Elements);
901 return ABIArgInfo::getDirectInReg(Result);
902 }
Rafael Espindolae4aeeaa2012-10-24 01:59:00 +0000903 llvm::IntegerType *PaddingType = NeedsPadding ? Int32 : 0;
Rafael Espindola0b4cc952012-10-19 05:04:37 +0000904
Daniel Dunbar53012f42009-11-09 01:33:53 +0000905 // Expand small (<= 128-bit) record types when we know that the stack layout
906 // of those arguments will match the struct. This is important because the
907 // LLVM backend isn't smart enough to remove byval, which inhibits many
908 // optimizations.
Chris Lattnera3c109b2010-07-29 02:16:43 +0000909 if (getContext().getTypeSize(Ty) <= 4*32 &&
910 canExpandIndirectArgument(Ty, getContext()))
Rafael Espindolae4aeeaa2012-10-24 01:59:00 +0000911 return ABIArgInfo::getExpandWithPadding(IsFastCall, PaddingType);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000912
Rafael Espindola0b4cc952012-10-19 05:04:37 +0000913 return getIndirectResult(Ty, true, FreeRegs);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +0000914 }
915
Chris Lattnerbbae8b42010-08-26 20:05:13 +0000916 if (const VectorType *VT = Ty->getAs<VectorType>()) {
Chris Lattner7b733502010-08-26 20:08:43 +0000917 // On Darwin, some vectors are passed in memory, we handle this by passing
918 // it as an i8/i16/i32/i64.
Chris Lattnerbbae8b42010-08-26 20:05:13 +0000919 if (IsDarwinVectorABI) {
920 uint64_t Size = getContext().getTypeSize(Ty);
Chris Lattnerbbae8b42010-08-26 20:05:13 +0000921 if ((Size == 8 || Size == 16 || Size == 32) ||
922 (Size == 64 && VT->getNumElements() == 1))
923 return ABIArgInfo::getDirect(llvm::IntegerType::get(getVMContext(),
924 Size));
Chris Lattnerbbae8b42010-08-26 20:05:13 +0000925 }
Bill Wendlingbb465d72010-10-18 03:41:31 +0000926
Chad Rosier1f1df1f2013-03-25 21:00:27 +0000927 if (IsX86_MMXType(CGT.ConvertType(Ty)))
928 return ABIArgInfo::getDirect(llvm::IntegerType::get(getVMContext(), 64));
Michael J. Spencer9cac4942010-10-19 06:39:39 +0000929
Chris Lattnerbbae8b42010-08-26 20:05:13 +0000930 return ABIArgInfo::getDirect();
931 }
Michael J. Spencer9cac4942010-10-19 06:39:39 +0000932
933
Chris Lattnera3c109b2010-07-29 02:16:43 +0000934 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
935 Ty = EnumTy->getDecl()->getIntegerType();
Douglas Gregoraa74a1e2010-02-02 20:10:50 +0000936
Rafael Espindolae4aeeaa2012-10-24 01:59:00 +0000937 bool NeedsPadding;
938 bool InReg = shouldUseInReg(Ty, FreeRegs, IsFastCall, NeedsPadding);
Rafael Espindola0b4cc952012-10-19 05:04:37 +0000939
940 if (Ty->isPromotableIntegerType()) {
941 if (InReg)
942 return ABIArgInfo::getExtendInReg();
943 return ABIArgInfo::getExtend();
944 }
945 if (InReg)
946 return ABIArgInfo::getDirectInReg();
947 return ABIArgInfo::getDirect();
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000948}
949
Rafael Espindolaaa9cf8d2012-07-24 00:01:07 +0000950void X86_32ABIInfo::computeInfo(CGFunctionInfo &FI) const {
951 FI.getReturnInfo() = classifyReturnType(FI.getReturnType(),
952 FI.getCallingConvention());
Rafael Espindolab48280b2012-07-31 02:44:24 +0000953
Rafael Espindolab6932692012-10-24 01:58:58 +0000954 unsigned CC = FI.getCallingConvention();
955 bool IsFastCall = CC == llvm::CallingConv::X86_FastCall;
956 unsigned FreeRegs;
957 if (IsFastCall)
958 FreeRegs = 2;
959 else if (FI.getHasRegParm())
960 FreeRegs = FI.getRegParm();
961 else
962 FreeRegs = DefaultNumRegisterParameters;
Rafael Espindolab48280b2012-07-31 02:44:24 +0000963
964 // If the return value is indirect, then the hidden argument is consuming one
965 // integer register.
966 if (FI.getReturnInfo().isIndirect() && FreeRegs) {
967 --FreeRegs;
968 ABIArgInfo &Old = FI.getReturnInfo();
969 Old = ABIArgInfo::getIndirectInReg(Old.getIndirectAlign(),
970 Old.getIndirectByVal(),
971 Old.getIndirectRealign());
972 }
973
Rafael Espindolaaa9cf8d2012-07-24 00:01:07 +0000974 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
975 it != ie; ++it)
Rafael Espindolab6932692012-10-24 01:58:58 +0000976 it->info = classifyArgumentType(it->type, FreeRegs, IsFastCall);
Rafael Espindolaaa9cf8d2012-07-24 00:01:07 +0000977}
978
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000979llvm::Value *X86_32ABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
980 CodeGenFunction &CGF) const {
Chris Lattner8b418682012-02-07 00:39:47 +0000981 llvm::Type *BPP = CGF.Int8PtrPtrTy;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +0000982
983 CGBuilderTy &Builder = CGF.Builder;
984 llvm::Value *VAListAddrAsBPP = Builder.CreateBitCast(VAListAddr, BPP,
985 "ap");
986 llvm::Value *Addr = Builder.CreateLoad(VAListAddrAsBPP, "ap.cur");
Eli Friedman7b1fb812011-11-18 02:12:09 +0000987
988 // Compute if the address needs to be aligned
989 unsigned Align = CGF.getContext().getTypeAlignInChars(Ty).getQuantity();
990 Align = getTypeStackAlignInBytes(Ty, Align);
991 Align = std::max(Align, 4U);
992 if (Align > 4) {
993 // addr = (addr + align - 1) & -align;
994 llvm::Value *Offset =
995 llvm::ConstantInt::get(CGF.Int32Ty, Align - 1);
996 Addr = CGF.Builder.CreateGEP(Addr, Offset);
997 llvm::Value *AsInt = CGF.Builder.CreatePtrToInt(Addr,
998 CGF.Int32Ty);
999 llvm::Value *Mask = llvm::ConstantInt::get(CGF.Int32Ty, -Align);
1000 Addr = CGF.Builder.CreateIntToPtr(CGF.Builder.CreateAnd(AsInt, Mask),
1001 Addr->getType(),
1002 "ap.cur.aligned");
1003 }
1004
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001005 llvm::Type *PTy =
Owen Anderson96e0fc72009-07-29 22:16:19 +00001006 llvm::PointerType::getUnqual(CGF.ConvertType(Ty));
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001007 llvm::Value *AddrTyped = Builder.CreateBitCast(Addr, PTy);
1008
1009 uint64_t Offset =
Eli Friedman7b1fb812011-11-18 02:12:09 +00001010 llvm::RoundUpToAlignment(CGF.getContext().getTypeSize(Ty) / 8, Align);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001011 llvm::Value *NextAddr =
Chris Lattner77b89b82010-06-27 07:15:29 +00001012 Builder.CreateGEP(Addr, llvm::ConstantInt::get(CGF.Int32Ty, Offset),
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001013 "ap.next");
1014 Builder.CreateStore(NextAddr, VAListAddrAsBPP);
1015
1016 return AddrTyped;
1017}
1018
Charles Davis74f72932010-02-13 15:54:06 +00001019void X86_32TargetCodeGenInfo::SetTargetAttributes(const Decl *D,
1020 llvm::GlobalValue *GV,
1021 CodeGen::CodeGenModule &CGM) const {
1022 if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(D)) {
1023 if (FD->hasAttr<X86ForceAlignArgPointerAttr>()) {
1024 // Get the LLVM function.
1025 llvm::Function *Fn = cast<llvm::Function>(GV);
1026
1027 // Now add the 'alignstack' attribute with a value of 16.
Bill Wendling0d583392012-10-15 20:36:26 +00001028 llvm::AttrBuilder B;
Bill Wendlinge91e9ec2012-10-14 03:28:14 +00001029 B.addStackAlignmentAttr(16);
Bill Wendling909b6de2013-01-23 00:21:06 +00001030 Fn->addAttributes(llvm::AttributeSet::FunctionIndex,
1031 llvm::AttributeSet::get(CGM.getLLVMContext(),
1032 llvm::AttributeSet::FunctionIndex,
1033 B));
Charles Davis74f72932010-02-13 15:54:06 +00001034 }
1035 }
1036}
1037
John McCall6374c332010-03-06 00:35:14 +00001038bool X86_32TargetCodeGenInfo::initDwarfEHRegSizeTable(
1039 CodeGen::CodeGenFunction &CGF,
1040 llvm::Value *Address) const {
1041 CodeGen::CGBuilderTy &Builder = CGF.Builder;
John McCall6374c332010-03-06 00:35:14 +00001042
Chris Lattner8b418682012-02-07 00:39:47 +00001043 llvm::Value *Four8 = llvm::ConstantInt::get(CGF.Int8Ty, 4);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001044
John McCall6374c332010-03-06 00:35:14 +00001045 // 0-7 are the eight integer registers; the order is different
1046 // on Darwin (for EH), but the range is the same.
1047 // 8 is %eip.
John McCallaeeb7012010-05-27 06:19:26 +00001048 AssignToArrayRange(Builder, Address, Four8, 0, 8);
John McCall6374c332010-03-06 00:35:14 +00001049
John McCall64aa4b32013-04-16 22:48:15 +00001050 if (CGF.CGM.getTarget().getTriple().isOSDarwin()) {
John McCall6374c332010-03-06 00:35:14 +00001051 // 12-16 are st(0..4). Not sure why we stop at 4.
1052 // These have size 16, which is sizeof(long double) on
1053 // platforms with 8-byte alignment for that type.
Chris Lattner8b418682012-02-07 00:39:47 +00001054 llvm::Value *Sixteen8 = llvm::ConstantInt::get(CGF.Int8Ty, 16);
John McCallaeeb7012010-05-27 06:19:26 +00001055 AssignToArrayRange(Builder, Address, Sixteen8, 12, 16);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001056
John McCall6374c332010-03-06 00:35:14 +00001057 } else {
1058 // 9 is %eflags, which doesn't get a size on Darwin for some
1059 // reason.
1060 Builder.CreateStore(Four8, Builder.CreateConstInBoundsGEP1_32(Address, 9));
1061
1062 // 11-16 are st(0..5). Not sure why we stop at 5.
1063 // These have size 12, which is sizeof(long double) on
1064 // platforms with 4-byte alignment for that type.
Chris Lattner8b418682012-02-07 00:39:47 +00001065 llvm::Value *Twelve8 = llvm::ConstantInt::get(CGF.Int8Ty, 12);
John McCallaeeb7012010-05-27 06:19:26 +00001066 AssignToArrayRange(Builder, Address, Twelve8, 11, 16);
1067 }
John McCall6374c332010-03-06 00:35:14 +00001068
1069 return false;
1070}
1071
Chris Lattnerdce5ad02010-06-28 20:05:43 +00001072//===----------------------------------------------------------------------===//
1073// X86-64 ABI Implementation
1074//===----------------------------------------------------------------------===//
1075
1076
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001077namespace {
1078/// X86_64ABIInfo - The X86_64 ABI information.
1079class X86_64ABIInfo : public ABIInfo {
1080 enum Class {
1081 Integer = 0,
1082 SSE,
1083 SSEUp,
1084 X87,
1085 X87Up,
1086 ComplexX87,
1087 NoClass,
1088 Memory
1089 };
1090
1091 /// merge - Implement the X86_64 ABI merging algorithm.
1092 ///
1093 /// Merge an accumulating classification \arg Accum with a field
1094 /// classification \arg Field.
1095 ///
1096 /// \param Accum - The accumulating classification. This should
1097 /// always be either NoClass or the result of a previous merge
1098 /// call. In addition, this should never be Memory (the caller
1099 /// should just return Memory for the aggregate).
Chris Lattner1090a9b2010-06-28 21:43:59 +00001100 static Class merge(Class Accum, Class Field);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001101
Bruno Cardoso Lopes4943c152011-07-11 22:41:29 +00001102 /// postMerge - Implement the X86_64 ABI post merging algorithm.
1103 ///
1104 /// Post merger cleanup, reduces a malformed Hi and Lo pair to
1105 /// final MEMORY or SSE classes when necessary.
1106 ///
1107 /// \param AggregateSize - The size of the current aggregate in
1108 /// the classification process.
1109 ///
1110 /// \param Lo - The classification for the parts of the type
1111 /// residing in the low word of the containing object.
1112 ///
1113 /// \param Hi - The classification for the parts of the type
1114 /// residing in the higher words of the containing object.
1115 ///
1116 void postMerge(unsigned AggregateSize, Class &Lo, Class &Hi) const;
1117
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001118 /// classify - Determine the x86_64 register classes in which the
1119 /// given type T should be passed.
1120 ///
1121 /// \param Lo - The classification for the parts of the type
1122 /// residing in the low word of the containing object.
1123 ///
1124 /// \param Hi - The classification for the parts of the type
1125 /// residing in the high word of the containing object.
1126 ///
1127 /// \param OffsetBase - The bit offset of this type in the
1128 /// containing object. Some parameters are classified different
1129 /// depending on whether they straddle an eightbyte boundary.
1130 ///
1131 /// If a word is unused its result will be NoClass; if a type should
1132 /// be passed in Memory then at least the classification of \arg Lo
1133 /// will be Memory.
1134 ///
Sylvestre Ledruf3477c12012-09-27 10:16:10 +00001135 /// The \arg Lo class will be NoClass iff the argument is ignored.
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001136 ///
1137 /// If the \arg Lo class is ComplexX87, then the \arg Hi class will
1138 /// also be ComplexX87.
Chris Lattner9c254f02010-06-29 06:01:59 +00001139 void classify(QualType T, uint64_t OffsetBase, Class &Lo, Class &Hi) const;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001140
Bruno Cardoso Lopes4943c152011-07-11 22:41:29 +00001141 llvm::Type *GetByteVectorType(QualType Ty) const;
Chris Lattner9cbe4f02011-07-09 17:41:47 +00001142 llvm::Type *GetSSETypeAtOffset(llvm::Type *IRType,
1143 unsigned IROffset, QualType SourceTy,
1144 unsigned SourceOffset) const;
1145 llvm::Type *GetINTEGERTypeAtOffset(llvm::Type *IRType,
1146 unsigned IROffset, QualType SourceTy,
1147 unsigned SourceOffset) const;
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001148
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001149 /// getIndirectResult - Give a source type \arg Ty, return a suitable result
Daniel Dunbar46c54fb2010-04-21 19:49:55 +00001150 /// such that the argument will be returned in memory.
Chris Lattner9c254f02010-06-29 06:01:59 +00001151 ABIArgInfo getIndirectReturnResult(QualType Ty) const;
Daniel Dunbar46c54fb2010-04-21 19:49:55 +00001152
1153 /// getIndirectResult - Give a source type \arg Ty, return a suitable result
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001154 /// such that the argument will be passed in memory.
Daniel Dunbaredfac032012-03-10 01:03:58 +00001155 ///
1156 /// \param freeIntRegs - The number of free integer registers remaining
1157 /// available.
1158 ABIArgInfo getIndirectResult(QualType Ty, unsigned freeIntRegs) const;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001159
Chris Lattnera3c109b2010-07-29 02:16:43 +00001160 ABIArgInfo classifyReturnType(QualType RetTy) const;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001161
Bill Wendlingbb465d72010-10-18 03:41:31 +00001162 ABIArgInfo classifyArgumentType(QualType Ty,
Daniel Dunbaredfac032012-03-10 01:03:58 +00001163 unsigned freeIntRegs,
Bill Wendlingbb465d72010-10-18 03:41:31 +00001164 unsigned &neededInt,
Bill Wendling99aaae82010-10-18 23:51:38 +00001165 unsigned &neededSSE) const;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001166
Eli Friedmanee1ad992011-12-02 00:11:43 +00001167 bool IsIllegalVectorType(QualType Ty) const;
1168
John McCall67a57732011-04-21 01:20:55 +00001169 /// The 0.98 ABI revision clarified a lot of ambiguities,
1170 /// unfortunately in ways that were not always consistent with
1171 /// certain previous compilers. In particular, platforms which
1172 /// required strict binary compatibility with older versions of GCC
1173 /// may need to exempt themselves.
1174 bool honorsRevision0_98() const {
John McCall64aa4b32013-04-16 22:48:15 +00001175 return !getTarget().getTriple().isOSDarwin();
John McCall67a57732011-04-21 01:20:55 +00001176 }
1177
Eli Friedmanee1ad992011-12-02 00:11:43 +00001178 bool HasAVX;
Derek Schuffbabaf312012-10-11 15:52:22 +00001179 // Some ABIs (e.g. X32 ABI and Native Client OS) use 32 bit pointers on
1180 // 64-bit hardware.
1181 bool Has64BitPointers;
Eli Friedmanee1ad992011-12-02 00:11:43 +00001182
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001183public:
Eli Friedmanee1ad992011-12-02 00:11:43 +00001184 X86_64ABIInfo(CodeGen::CodeGenTypes &CGT, bool hasavx) :
Derek Schuffbabaf312012-10-11 15:52:22 +00001185 ABIInfo(CGT), HasAVX(hasavx),
Derek Schuff90da80c2012-10-11 18:21:13 +00001186 Has64BitPointers(CGT.getDataLayout().getPointerSize(0) == 8) {
Derek Schuffbabaf312012-10-11 15:52:22 +00001187 }
Chris Lattner9c254f02010-06-29 06:01:59 +00001188
John McCallde5d3c72012-02-17 03:33:10 +00001189 bool isPassedUsingAVXType(QualType type) const {
1190 unsigned neededInt, neededSSE;
Daniel Dunbaredfac032012-03-10 01:03:58 +00001191 // The freeIntRegs argument doesn't matter here.
1192 ABIArgInfo info = classifyArgumentType(type, 0, neededInt, neededSSE);
John McCallde5d3c72012-02-17 03:33:10 +00001193 if (info.isDirect()) {
1194 llvm::Type *ty = info.getCoerceToType();
1195 if (llvm::VectorType *vectorTy = dyn_cast_or_null<llvm::VectorType>(ty))
1196 return (vectorTy->getBitWidth() > 128);
1197 }
1198 return false;
1199 }
1200
Chris Lattneree5dcd02010-07-29 02:31:05 +00001201 virtual void computeInfo(CGFunctionInfo &FI) const;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001202
1203 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
1204 CodeGenFunction &CGF) const;
1205};
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00001206
Chris Lattnerf13721d2010-08-31 16:44:54 +00001207/// WinX86_64ABIInfo - The Windows X86_64 ABI information.
NAKAMURA Takumia7573222011-01-17 22:56:31 +00001208class WinX86_64ABIInfo : public ABIInfo {
1209
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00001210 ABIArgInfo classify(QualType Ty, bool IsReturnType) const;
NAKAMURA Takumia7573222011-01-17 22:56:31 +00001211
Chris Lattnerf13721d2010-08-31 16:44:54 +00001212public:
NAKAMURA Takumia7573222011-01-17 22:56:31 +00001213 WinX86_64ABIInfo(CodeGen::CodeGenTypes &CGT) : ABIInfo(CGT) {}
1214
1215 virtual void computeInfo(CGFunctionInfo &FI) const;
Chris Lattnerf13721d2010-08-31 16:44:54 +00001216
1217 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
1218 CodeGenFunction &CGF) const;
1219};
1220
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00001221class X86_64TargetCodeGenInfo : public TargetCodeGenInfo {
1222public:
Eli Friedmanee1ad992011-12-02 00:11:43 +00001223 X86_64TargetCodeGenInfo(CodeGen::CodeGenTypes &CGT, bool HasAVX)
Derek Schuffbabaf312012-10-11 15:52:22 +00001224 : TargetCodeGenInfo(new X86_64ABIInfo(CGT, HasAVX)) {}
John McCall6374c332010-03-06 00:35:14 +00001225
John McCallde5d3c72012-02-17 03:33:10 +00001226 const X86_64ABIInfo &getABIInfo() const {
1227 return static_cast<const X86_64ABIInfo&>(TargetCodeGenInfo::getABIInfo());
1228 }
1229
John McCall6374c332010-03-06 00:35:14 +00001230 int getDwarfEHStackPointer(CodeGen::CodeGenModule &CGM) const {
1231 return 7;
1232 }
1233
1234 bool initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
1235 llvm::Value *Address) const {
Chris Lattner8b418682012-02-07 00:39:47 +00001236 llvm::Value *Eight8 = llvm::ConstantInt::get(CGF.Int8Ty, 8);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001237
John McCallaeeb7012010-05-27 06:19:26 +00001238 // 0-15 are the 16 integer registers.
1239 // 16 is %rip.
Chris Lattner8b418682012-02-07 00:39:47 +00001240 AssignToArrayRange(CGF.Builder, Address, Eight8, 0, 16);
John McCall6374c332010-03-06 00:35:14 +00001241 return false;
1242 }
Peter Collingbourne4b93d662011-02-19 23:03:58 +00001243
Jay Foadef6de3d2011-07-11 09:56:20 +00001244 llvm::Type* adjustInlineAsmType(CodeGen::CodeGenFunction &CGF,
Chris Lattner5f9e2722011-07-23 10:55:15 +00001245 StringRef Constraint,
Jay Foadef6de3d2011-07-11 09:56:20 +00001246 llvm::Type* Ty) const {
Peter Collingbourne4b93d662011-02-19 23:03:58 +00001247 return X86AdjustInlineAsmType(CGF, Constraint, Ty);
1248 }
1249
John McCallde5d3c72012-02-17 03:33:10 +00001250 bool isNoProtoCallVariadic(const CallArgList &args,
1251 const FunctionNoProtoType *fnType) const {
John McCall01f151e2011-09-21 08:08:30 +00001252 // The default CC on x86-64 sets %al to the number of SSA
1253 // registers used, and GCC sets this when calling an unprototyped
Eli Friedman3ed79032011-12-01 04:53:19 +00001254 // function, so we override the default behavior. However, don't do
Eli Friedman68805fe2011-12-06 03:08:26 +00001255 // that when AVX types are involved: the ABI explicitly states it is
1256 // undefined, and it doesn't work in practice because of how the ABI
1257 // defines varargs anyway.
John McCallde5d3c72012-02-17 03:33:10 +00001258 if (fnType->getCallConv() == CC_Default || fnType->getCallConv() == CC_C) {
Eli Friedman3ed79032011-12-01 04:53:19 +00001259 bool HasAVXType = false;
John McCallde5d3c72012-02-17 03:33:10 +00001260 for (CallArgList::const_iterator
1261 it = args.begin(), ie = args.end(); it != ie; ++it) {
1262 if (getABIInfo().isPassedUsingAVXType(it->Ty)) {
1263 HasAVXType = true;
1264 break;
Eli Friedman3ed79032011-12-01 04:53:19 +00001265 }
1266 }
John McCallde5d3c72012-02-17 03:33:10 +00001267
Eli Friedman3ed79032011-12-01 04:53:19 +00001268 if (!HasAVXType)
1269 return true;
1270 }
John McCall01f151e2011-09-21 08:08:30 +00001271
John McCallde5d3c72012-02-17 03:33:10 +00001272 return TargetCodeGenInfo::isNoProtoCallVariadic(args, fnType);
John McCall01f151e2011-09-21 08:08:30 +00001273 }
1274
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00001275};
1276
Aaron Ballman89735b92013-05-24 15:06:56 +00001277static std::string qualifyWindowsLibrary(llvm::StringRef Lib) {
1278 // If the argument does not end in .lib, automatically add the suffix. This
1279 // matches the behavior of MSVC.
1280 std::string ArgStr = Lib;
1281 if (Lib.size() <= 4 ||
1282 Lib.substr(Lib.size() - 4).compare_lower(".lib") != 0) {
1283 ArgStr += ".lib";
1284 }
1285 return ArgStr;
1286}
1287
Reid Kleckner3190ca92013-05-08 13:44:39 +00001288class WinX86_32TargetCodeGenInfo : public X86_32TargetCodeGenInfo {
1289public:
1290 WinX86_32TargetCodeGenInfo(CodeGen::CodeGenTypes &CGT, unsigned RegParms)
1291 : X86_32TargetCodeGenInfo(CGT, false, true, true, RegParms) {}
1292
1293 void getDependentLibraryOption(llvm::StringRef Lib,
1294 llvm::SmallString<24> &Opt) const {
1295 Opt = "/DEFAULTLIB:";
Aaron Ballman89735b92013-05-24 15:06:56 +00001296 Opt += qualifyWindowsLibrary(Lib);
Reid Kleckner3190ca92013-05-08 13:44:39 +00001297 }
Aaron Ballmana7ff62f2013-06-04 02:07:14 +00001298
1299 void getDetectMismatchOption(llvm::StringRef Name,
1300 llvm::StringRef Value,
1301 llvm::SmallString<32> &Opt) const {
Eli Friedman572ac322013-06-07 22:42:22 +00001302 Opt = "/FAILIFMISMATCH:\"" + Name.str() + "=" + Value.str() + "\"";
Aaron Ballmana7ff62f2013-06-04 02:07:14 +00001303 }
Reid Kleckner3190ca92013-05-08 13:44:39 +00001304};
1305
Chris Lattnerf13721d2010-08-31 16:44:54 +00001306class WinX86_64TargetCodeGenInfo : public TargetCodeGenInfo {
1307public:
1308 WinX86_64TargetCodeGenInfo(CodeGen::CodeGenTypes &CGT)
1309 : TargetCodeGenInfo(new WinX86_64ABIInfo(CGT)) {}
1310
1311 int getDwarfEHStackPointer(CodeGen::CodeGenModule &CGM) const {
1312 return 7;
1313 }
1314
1315 bool initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
1316 llvm::Value *Address) const {
Chris Lattner8b418682012-02-07 00:39:47 +00001317 llvm::Value *Eight8 = llvm::ConstantInt::get(CGF.Int8Ty, 8);
Michael J. Spencer9cac4942010-10-19 06:39:39 +00001318
Chris Lattnerf13721d2010-08-31 16:44:54 +00001319 // 0-15 are the 16 integer registers.
1320 // 16 is %rip.
Chris Lattner8b418682012-02-07 00:39:47 +00001321 AssignToArrayRange(CGF.Builder, Address, Eight8, 0, 16);
Chris Lattnerf13721d2010-08-31 16:44:54 +00001322 return false;
1323 }
Reid Kleckner3190ca92013-05-08 13:44:39 +00001324
1325 void getDependentLibraryOption(llvm::StringRef Lib,
1326 llvm::SmallString<24> &Opt) const {
1327 Opt = "/DEFAULTLIB:";
Aaron Ballman89735b92013-05-24 15:06:56 +00001328 Opt += qualifyWindowsLibrary(Lib);
Reid Kleckner3190ca92013-05-08 13:44:39 +00001329 }
Aaron Ballmana7ff62f2013-06-04 02:07:14 +00001330
1331 void getDetectMismatchOption(llvm::StringRef Name,
1332 llvm::StringRef Value,
1333 llvm::SmallString<32> &Opt) const {
Eli Friedman572ac322013-06-07 22:42:22 +00001334 Opt = "/FAILIFMISMATCH:\"" + Name.str() + "=" + Value.str() + "\"";
Aaron Ballmana7ff62f2013-06-04 02:07:14 +00001335 }
Chris Lattnerf13721d2010-08-31 16:44:54 +00001336};
1337
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001338}
1339
Bruno Cardoso Lopes4943c152011-07-11 22:41:29 +00001340void X86_64ABIInfo::postMerge(unsigned AggregateSize, Class &Lo,
1341 Class &Hi) const {
1342 // AMD64-ABI 3.2.3p2: Rule 5. Then a post merger cleanup is done:
1343 //
1344 // (a) If one of the classes is Memory, the whole argument is passed in
1345 // memory.
1346 //
1347 // (b) If X87UP is not preceded by X87, the whole argument is passed in
1348 // memory.
1349 //
1350 // (c) If the size of the aggregate exceeds two eightbytes and the first
1351 // eightbyte isn't SSE or any other eightbyte isn't SSEUP, the whole
1352 // argument is passed in memory. NOTE: This is necessary to keep the
1353 // ABI working for processors that don't support the __m256 type.
1354 //
1355 // (d) If SSEUP is not preceded by SSE or SSEUP, it is converted to SSE.
1356 //
1357 // Some of these are enforced by the merging logic. Others can arise
1358 // only with unions; for example:
1359 // union { _Complex double; unsigned; }
1360 //
1361 // Note that clauses (b) and (c) were added in 0.98.
1362 //
1363 if (Hi == Memory)
1364 Lo = Memory;
1365 if (Hi == X87Up && Lo != X87 && honorsRevision0_98())
1366 Lo = Memory;
1367 if (AggregateSize > 128 && (Lo != SSE || Hi != SSEUp))
1368 Lo = Memory;
1369 if (Hi == SSEUp && Lo != SSE)
1370 Hi = SSE;
1371}
1372
Chris Lattner1090a9b2010-06-28 21:43:59 +00001373X86_64ABIInfo::Class X86_64ABIInfo::merge(Class Accum, Class Field) {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001374 // AMD64-ABI 3.2.3p2: Rule 4. Each field of an object is
1375 // classified recursively so that always two fields are
1376 // considered. The resulting class is calculated according to
1377 // the classes of the fields in the eightbyte:
1378 //
1379 // (a) If both classes are equal, this is the resulting class.
1380 //
1381 // (b) If one of the classes is NO_CLASS, the resulting class is
1382 // the other class.
1383 //
1384 // (c) If one of the classes is MEMORY, the result is the MEMORY
1385 // class.
1386 //
1387 // (d) If one of the classes is INTEGER, the result is the
1388 // INTEGER.
1389 //
1390 // (e) If one of the classes is X87, X87UP, COMPLEX_X87 class,
1391 // MEMORY is used as class.
1392 //
1393 // (f) Otherwise class SSE is used.
1394
1395 // Accum should never be memory (we should have returned) or
1396 // ComplexX87 (because this cannot be passed in a structure).
1397 assert((Accum != Memory && Accum != ComplexX87) &&
1398 "Invalid accumulated classification during merge.");
1399 if (Accum == Field || Field == NoClass)
1400 return Accum;
Chris Lattner1090a9b2010-06-28 21:43:59 +00001401 if (Field == Memory)
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001402 return Memory;
Chris Lattner1090a9b2010-06-28 21:43:59 +00001403 if (Accum == NoClass)
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001404 return Field;
Chris Lattner1090a9b2010-06-28 21:43:59 +00001405 if (Accum == Integer || Field == Integer)
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001406 return Integer;
Chris Lattner1090a9b2010-06-28 21:43:59 +00001407 if (Field == X87 || Field == X87Up || Field == ComplexX87 ||
1408 Accum == X87 || Accum == X87Up)
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001409 return Memory;
Chris Lattner1090a9b2010-06-28 21:43:59 +00001410 return SSE;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001411}
1412
Chris Lattnerbcaedae2010-06-30 19:14:05 +00001413void X86_64ABIInfo::classify(QualType Ty, uint64_t OffsetBase,
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001414 Class &Lo, Class &Hi) const {
1415 // FIXME: This code can be simplified by introducing a simple value class for
1416 // Class pairs with appropriate constructor methods for the various
1417 // situations.
1418
1419 // FIXME: Some of the split computations are wrong; unaligned vectors
1420 // shouldn't be passed in registers for example, so there is no chance they
1421 // can straddle an eightbyte. Verify & simplify.
1422
1423 Lo = Hi = NoClass;
1424
1425 Class &Current = OffsetBase < 64 ? Lo : Hi;
1426 Current = Memory;
1427
John McCall183700f2009-09-21 23:43:11 +00001428 if (const BuiltinType *BT = Ty->getAs<BuiltinType>()) {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001429 BuiltinType::Kind k = BT->getKind();
1430
1431 if (k == BuiltinType::Void) {
1432 Current = NoClass;
1433 } else if (k == BuiltinType::Int128 || k == BuiltinType::UInt128) {
1434 Lo = Integer;
1435 Hi = Integer;
1436 } else if (k >= BuiltinType::Bool && k <= BuiltinType::LongLong) {
1437 Current = Integer;
Derek Schuff7da46f92012-10-11 16:55:58 +00001438 } else if ((k == BuiltinType::Float || k == BuiltinType::Double) ||
1439 (k == BuiltinType::LongDouble &&
John McCall64aa4b32013-04-16 22:48:15 +00001440 getTarget().getTriple().getOS() == llvm::Triple::NaCl)) {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001441 Current = SSE;
1442 } else if (k == BuiltinType::LongDouble) {
1443 Lo = X87;
1444 Hi = X87Up;
1445 }
1446 // FIXME: _Decimal32 and _Decimal64 are SSE.
1447 // FIXME: _float128 and _Decimal128 are (SSE, SSEUp).
Chris Lattner1090a9b2010-06-28 21:43:59 +00001448 return;
1449 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001450
Chris Lattner1090a9b2010-06-28 21:43:59 +00001451 if (const EnumType *ET = Ty->getAs<EnumType>()) {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001452 // Classify the underlying integer type.
Chris Lattner9c254f02010-06-29 06:01:59 +00001453 classify(ET->getDecl()->getIntegerType(), OffsetBase, Lo, Hi);
Chris Lattner1090a9b2010-06-28 21:43:59 +00001454 return;
1455 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001456
Chris Lattner1090a9b2010-06-28 21:43:59 +00001457 if (Ty->hasPointerRepresentation()) {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001458 Current = Integer;
Chris Lattner1090a9b2010-06-28 21:43:59 +00001459 return;
1460 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001461
Chris Lattner1090a9b2010-06-28 21:43:59 +00001462 if (Ty->isMemberPointerType()) {
Derek Schuffbabaf312012-10-11 15:52:22 +00001463 if (Ty->isMemberFunctionPointerType() && Has64BitPointers)
Daniel Dunbar67d438d2010-05-15 00:00:37 +00001464 Lo = Hi = Integer;
1465 else
1466 Current = Integer;
Chris Lattner1090a9b2010-06-28 21:43:59 +00001467 return;
1468 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001469
Chris Lattner1090a9b2010-06-28 21:43:59 +00001470 if (const VectorType *VT = Ty->getAs<VectorType>()) {
Chris Lattnerea044322010-07-29 02:01:43 +00001471 uint64_t Size = getContext().getTypeSize(VT);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001472 if (Size == 32) {
1473 // gcc passes all <4 x char>, <2 x short>, <1 x int>, <1 x
1474 // float> as integer.
1475 Current = Integer;
1476
1477 // If this type crosses an eightbyte boundary, it should be
1478 // split.
1479 uint64_t EB_Real = (OffsetBase) / 64;
1480 uint64_t EB_Imag = (OffsetBase + Size - 1) / 64;
1481 if (EB_Real != EB_Imag)
1482 Hi = Lo;
1483 } else if (Size == 64) {
1484 // gcc passes <1 x double> in memory. :(
1485 if (VT->getElementType()->isSpecificBuiltinType(BuiltinType::Double))
1486 return;
1487
1488 // gcc passes <1 x long long> as INTEGER.
Chris Lattner473f8e72010-08-26 18:03:20 +00001489 if (VT->getElementType()->isSpecificBuiltinType(BuiltinType::LongLong) ||
Chris Lattner0fefa412010-08-26 18:13:50 +00001490 VT->getElementType()->isSpecificBuiltinType(BuiltinType::ULongLong) ||
1491 VT->getElementType()->isSpecificBuiltinType(BuiltinType::Long) ||
1492 VT->getElementType()->isSpecificBuiltinType(BuiltinType::ULong))
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001493 Current = Integer;
1494 else
1495 Current = SSE;
1496
1497 // If this type crosses an eightbyte boundary, it should be
1498 // split.
1499 if (OffsetBase && OffsetBase != 64)
1500 Hi = Lo;
Eli Friedmanee1ad992011-12-02 00:11:43 +00001501 } else if (Size == 128 || (HasAVX && Size == 256)) {
Bruno Cardoso Lopes4943c152011-07-11 22:41:29 +00001502 // Arguments of 256-bits are split into four eightbyte chunks. The
1503 // least significant one belongs to class SSE and all the others to class
1504 // SSEUP. The original Lo and Hi design considers that types can't be
1505 // greater than 128-bits, so a 64-bit split in Hi and Lo makes sense.
1506 // This design isn't correct for 256-bits, but since there're no cases
1507 // where the upper parts would need to be inspected, avoid adding
1508 // complexity and just consider Hi to match the 64-256 part.
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001509 Lo = SSE;
1510 Hi = SSEUp;
1511 }
Chris Lattner1090a9b2010-06-28 21:43:59 +00001512 return;
1513 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001514
Chris Lattner1090a9b2010-06-28 21:43:59 +00001515 if (const ComplexType *CT = Ty->getAs<ComplexType>()) {
Chris Lattnerea044322010-07-29 02:01:43 +00001516 QualType ET = getContext().getCanonicalType(CT->getElementType());
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001517
Chris Lattnerea044322010-07-29 02:01:43 +00001518 uint64_t Size = getContext().getTypeSize(Ty);
Douglas Gregor2ade35e2010-06-16 00:17:44 +00001519 if (ET->isIntegralOrEnumerationType()) {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001520 if (Size <= 64)
1521 Current = Integer;
1522 else if (Size <= 128)
1523 Lo = Hi = Integer;
Chris Lattnerea044322010-07-29 02:01:43 +00001524 } else if (ET == getContext().FloatTy)
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001525 Current = SSE;
Derek Schuff7da46f92012-10-11 16:55:58 +00001526 else if (ET == getContext().DoubleTy ||
1527 (ET == getContext().LongDoubleTy &&
John McCall64aa4b32013-04-16 22:48:15 +00001528 getTarget().getTriple().getOS() == llvm::Triple::NaCl))
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001529 Lo = Hi = SSE;
Chris Lattnerea044322010-07-29 02:01:43 +00001530 else if (ET == getContext().LongDoubleTy)
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001531 Current = ComplexX87;
1532
1533 // If this complex type crosses an eightbyte boundary then it
1534 // should be split.
1535 uint64_t EB_Real = (OffsetBase) / 64;
Chris Lattnerea044322010-07-29 02:01:43 +00001536 uint64_t EB_Imag = (OffsetBase + getContext().getTypeSize(ET)) / 64;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001537 if (Hi == NoClass && EB_Real != EB_Imag)
1538 Hi = Lo;
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001539
Chris Lattner1090a9b2010-06-28 21:43:59 +00001540 return;
1541 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001542
Chris Lattnerea044322010-07-29 02:01:43 +00001543 if (const ConstantArrayType *AT = getContext().getAsConstantArrayType(Ty)) {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001544 // Arrays are treated like structures.
1545
Chris Lattnerea044322010-07-29 02:01:43 +00001546 uint64_t Size = getContext().getTypeSize(Ty);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001547
1548 // AMD64-ABI 3.2.3p2: Rule 1. If the size of an object is larger
Bruno Cardoso Lopes4943c152011-07-11 22:41:29 +00001549 // than four eightbytes, ..., it has class MEMORY.
1550 if (Size > 256)
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001551 return;
1552
1553 // AMD64-ABI 3.2.3p2: Rule 1. If ..., or it contains unaligned
1554 // fields, it has class MEMORY.
1555 //
1556 // Only need to check alignment of array base.
Chris Lattnerea044322010-07-29 02:01:43 +00001557 if (OffsetBase % getContext().getTypeAlign(AT->getElementType()))
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001558 return;
1559
1560 // Otherwise implement simplified merge. We could be smarter about
1561 // this, but it isn't worth it and would be harder to verify.
1562 Current = NoClass;
Chris Lattnerea044322010-07-29 02:01:43 +00001563 uint64_t EltSize = getContext().getTypeSize(AT->getElementType());
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001564 uint64_t ArraySize = AT->getSize().getZExtValue();
Bruno Cardoso Lopes089d8922011-07-12 01:27:38 +00001565
1566 // The only case a 256-bit wide vector could be used is when the array
1567 // contains a single 256-bit element. Since Lo and Hi logic isn't extended
1568 // to work for sizes wider than 128, early check and fallback to memory.
1569 if (Size > 128 && EltSize != 256)
1570 return;
1571
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001572 for (uint64_t i=0, Offset=OffsetBase; i<ArraySize; ++i, Offset += EltSize) {
1573 Class FieldLo, FieldHi;
Chris Lattner9c254f02010-06-29 06:01:59 +00001574 classify(AT->getElementType(), Offset, FieldLo, FieldHi);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001575 Lo = merge(Lo, FieldLo);
1576 Hi = merge(Hi, FieldHi);
1577 if (Lo == Memory || Hi == Memory)
1578 break;
1579 }
1580
Bruno Cardoso Lopes4943c152011-07-11 22:41:29 +00001581 postMerge(Size, Lo, Hi);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001582 assert((Hi != SSEUp || Lo == SSE) && "Invalid SSEUp array classification.");
Chris Lattner1090a9b2010-06-28 21:43:59 +00001583 return;
1584 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001585
Chris Lattner1090a9b2010-06-28 21:43:59 +00001586 if (const RecordType *RT = Ty->getAs<RecordType>()) {
Chris Lattnerea044322010-07-29 02:01:43 +00001587 uint64_t Size = getContext().getTypeSize(Ty);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001588
1589 // AMD64-ABI 3.2.3p2: Rule 1. If the size of an object is larger
Bruno Cardoso Lopes4943c152011-07-11 22:41:29 +00001590 // than four eightbytes, ..., it has class MEMORY.
1591 if (Size > 256)
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001592 return;
1593
Anders Carlsson0a8f8472009-09-16 15:53:40 +00001594 // AMD64-ABI 3.2.3p2: Rule 2. If a C++ object has either a non-trivial
1595 // copy constructor or a non-trivial destructor, it is passed by invisible
1596 // reference.
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00001597 if (getRecordArgABI(RT, CGT))
Anders Carlsson0a8f8472009-09-16 15:53:40 +00001598 return;
Daniel Dunbarce9f4232009-11-22 23:01:23 +00001599
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001600 const RecordDecl *RD = RT->getDecl();
1601
1602 // Assume variable sized types are passed in memory.
1603 if (RD->hasFlexibleArrayMember())
1604 return;
1605
Chris Lattnerea044322010-07-29 02:01:43 +00001606 const ASTRecordLayout &Layout = getContext().getASTRecordLayout(RD);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001607
1608 // Reset Lo class, this will be recomputed.
1609 Current = NoClass;
Daniel Dunbarce9f4232009-11-22 23:01:23 +00001610
1611 // If this is a C++ record, classify the bases first.
1612 if (const CXXRecordDecl *CXXRD = dyn_cast<CXXRecordDecl>(RD)) {
1613 for (CXXRecordDecl::base_class_const_iterator i = CXXRD->bases_begin(),
1614 e = CXXRD->bases_end(); i != e; ++i) {
1615 assert(!i->isVirtual() && !i->getType()->isDependentType() &&
1616 "Unexpected base class!");
1617 const CXXRecordDecl *Base =
1618 cast<CXXRecordDecl>(i->getType()->getAs<RecordType>()->getDecl());
1619
1620 // Classify this field.
1621 //
1622 // AMD64-ABI 3.2.3p2: Rule 3. If the size of the aggregate exceeds a
1623 // single eightbyte, each is classified separately. Each eightbyte gets
1624 // initialized to class NO_CLASS.
1625 Class FieldLo, FieldHi;
Benjamin Kramerd4f51982012-07-04 18:45:14 +00001626 uint64_t Offset =
1627 OffsetBase + getContext().toBits(Layout.getBaseClassOffset(Base));
Chris Lattner9c254f02010-06-29 06:01:59 +00001628 classify(i->getType(), Offset, FieldLo, FieldHi);
Daniel Dunbarce9f4232009-11-22 23:01:23 +00001629 Lo = merge(Lo, FieldLo);
1630 Hi = merge(Hi, FieldHi);
1631 if (Lo == Memory || Hi == Memory)
1632 break;
1633 }
1634 }
1635
1636 // Classify the fields one at a time, merging the results.
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001637 unsigned idx = 0;
Bruno Cardoso Lopes548e4782011-07-12 22:30:58 +00001638 for (RecordDecl::field_iterator i = RD->field_begin(), e = RD->field_end();
Argyrios Kyrtzidis17945a02009-06-30 02:36:12 +00001639 i != e; ++i, ++idx) {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001640 uint64_t Offset = OffsetBase + Layout.getFieldOffset(idx);
1641 bool BitField = i->isBitField();
1642
Bruno Cardoso Lopesb8981df2011-07-13 21:58:55 +00001643 // AMD64-ABI 3.2.3p2: Rule 1. If the size of an object is larger than
1644 // four eightbytes, or it contains unaligned fields, it has class MEMORY.
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001645 //
Bruno Cardoso Lopesb8981df2011-07-13 21:58:55 +00001646 // The only case a 256-bit wide vector could be used is when the struct
1647 // contains a single 256-bit element. Since Lo and Hi logic isn't extended
1648 // to work for sizes wider than 128, early check and fallback to memory.
1649 //
1650 if (Size > 128 && getContext().getTypeSize(i->getType()) != 256) {
1651 Lo = Memory;
1652 return;
1653 }
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001654 // Note, skip this test for bit-fields, see below.
Chris Lattnerea044322010-07-29 02:01:43 +00001655 if (!BitField && Offset % getContext().getTypeAlign(i->getType())) {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001656 Lo = Memory;
1657 return;
1658 }
1659
1660 // Classify this field.
1661 //
1662 // AMD64-ABI 3.2.3p2: Rule 3. If the size of the aggregate
1663 // exceeds a single eightbyte, each is classified
1664 // separately. Each eightbyte gets initialized to class
1665 // NO_CLASS.
1666 Class FieldLo, FieldHi;
1667
1668 // Bit-fields require special handling, they do not force the
1669 // structure to be passed in memory even if unaligned, and
1670 // therefore they can straddle an eightbyte.
1671 if (BitField) {
1672 // Ignore padding bit-fields.
1673 if (i->isUnnamedBitfield())
1674 continue;
1675
1676 uint64_t Offset = OffsetBase + Layout.getFieldOffset(idx);
Richard Smitha6b8b2c2011-10-10 18:28:20 +00001677 uint64_t Size = i->getBitWidthValue(getContext());
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001678
1679 uint64_t EB_Lo = Offset / 64;
1680 uint64_t EB_Hi = (Offset + Size - 1) / 64;
1681 FieldLo = FieldHi = NoClass;
1682 if (EB_Lo) {
1683 assert(EB_Hi == EB_Lo && "Invalid classification, type > 16 bytes.");
1684 FieldLo = NoClass;
1685 FieldHi = Integer;
1686 } else {
1687 FieldLo = Integer;
1688 FieldHi = EB_Hi ? Integer : NoClass;
1689 }
1690 } else
Chris Lattner9c254f02010-06-29 06:01:59 +00001691 classify(i->getType(), Offset, FieldLo, FieldHi);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001692 Lo = merge(Lo, FieldLo);
1693 Hi = merge(Hi, FieldHi);
1694 if (Lo == Memory || Hi == Memory)
1695 break;
1696 }
1697
Bruno Cardoso Lopes4943c152011-07-11 22:41:29 +00001698 postMerge(Size, Lo, Hi);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001699 }
1700}
1701
Chris Lattner9c254f02010-06-29 06:01:59 +00001702ABIArgInfo X86_64ABIInfo::getIndirectReturnResult(QualType Ty) const {
Daniel Dunbar46c54fb2010-04-21 19:49:55 +00001703 // If this is a scalar LLVM value then assume LLVM will pass it in the right
1704 // place naturally.
John McCalld608cdb2010-08-22 10:59:02 +00001705 if (!isAggregateTypeForABI(Ty)) {
Daniel Dunbar46c54fb2010-04-21 19:49:55 +00001706 // Treat an enum type as its underlying type.
1707 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
1708 Ty = EnumTy->getDecl()->getIntegerType();
1709
1710 return (Ty->isPromotableIntegerType() ?
1711 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
1712 }
1713
1714 return ABIArgInfo::getIndirect(0);
1715}
1716
Eli Friedmanee1ad992011-12-02 00:11:43 +00001717bool X86_64ABIInfo::IsIllegalVectorType(QualType Ty) const {
1718 if (const VectorType *VecTy = Ty->getAs<VectorType>()) {
1719 uint64_t Size = getContext().getTypeSize(VecTy);
1720 unsigned LargestVector = HasAVX ? 256 : 128;
1721 if (Size <= 64 || Size > LargestVector)
1722 return true;
1723 }
1724
1725 return false;
1726}
1727
Daniel Dunbaredfac032012-03-10 01:03:58 +00001728ABIArgInfo X86_64ABIInfo::getIndirectResult(QualType Ty,
1729 unsigned freeIntRegs) const {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001730 // If this is a scalar LLVM value then assume LLVM will pass it in the right
1731 // place naturally.
Daniel Dunbaredfac032012-03-10 01:03:58 +00001732 //
1733 // This assumption is optimistic, as there could be free registers available
1734 // when we need to pass this argument in memory, and LLVM could try to pass
1735 // the argument in the free register. This does not seem to happen currently,
1736 // but this code would be much safer if we could mark the argument with
1737 // 'onstack'. See PR12193.
Eli Friedmanee1ad992011-12-02 00:11:43 +00001738 if (!isAggregateTypeForABI(Ty) && !IsIllegalVectorType(Ty)) {
Douglas Gregoraa74a1e2010-02-02 20:10:50 +00001739 // Treat an enum type as its underlying type.
1740 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
1741 Ty = EnumTy->getDecl()->getIntegerType();
1742
Anton Korobeynikovcc6fa882009-06-06 09:36:29 +00001743 return (Ty->isPromotableIntegerType() ?
1744 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Douglas Gregoraa74a1e2010-02-02 20:10:50 +00001745 }
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001746
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00001747 if (CGCXXABI::RecordArgABI RAA = getRecordArgABI(Ty, CGT))
1748 return ABIArgInfo::getIndirect(0, RAA == CGCXXABI::RAA_DirectInMemory);
Anders Carlsson0a8f8472009-09-16 15:53:40 +00001749
Chris Lattner855d2272011-05-22 23:21:23 +00001750 // Compute the byval alignment. We specify the alignment of the byval in all
1751 // cases so that the mid-level optimizer knows the alignment of the byval.
1752 unsigned Align = std::max(getContext().getTypeAlign(Ty) / 8, 8U);
Daniel Dunbaredfac032012-03-10 01:03:58 +00001753
1754 // Attempt to avoid passing indirect results using byval when possible. This
1755 // is important for good codegen.
1756 //
1757 // We do this by coercing the value into a scalar type which the backend can
1758 // handle naturally (i.e., without using byval).
1759 //
1760 // For simplicity, we currently only do this when we have exhausted all of the
1761 // free integer registers. Doing this when there are free integer registers
1762 // would require more care, as we would have to ensure that the coerced value
1763 // did not claim the unused register. That would require either reording the
1764 // arguments to the function (so that any subsequent inreg values came first),
1765 // or only doing this optimization when there were no following arguments that
1766 // might be inreg.
1767 //
1768 // We currently expect it to be rare (particularly in well written code) for
1769 // arguments to be passed on the stack when there are still free integer
1770 // registers available (this would typically imply large structs being passed
1771 // by value), so this seems like a fair tradeoff for now.
1772 //
1773 // We can revisit this if the backend grows support for 'onstack' parameter
1774 // attributes. See PR12193.
1775 if (freeIntRegs == 0) {
1776 uint64_t Size = getContext().getTypeSize(Ty);
1777
1778 // If this type fits in an eightbyte, coerce it into the matching integral
1779 // type, which will end up on the stack (with alignment 8).
1780 if (Align == 8 && Size <= 64)
1781 return ABIArgInfo::getDirect(llvm::IntegerType::get(getVMContext(),
1782 Size));
1783 }
1784
Chris Lattner855d2272011-05-22 23:21:23 +00001785 return ABIArgInfo::getIndirect(Align);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00001786}
1787
Bruno Cardoso Lopes4943c152011-07-11 22:41:29 +00001788/// GetByteVectorType - The ABI specifies that a value should be passed in an
1789/// full vector XMM/YMM register. Pick an LLVM IR type that will be passed as a
Chris Lattner0f408f52010-07-29 04:56:46 +00001790/// vector register.
Bruno Cardoso Lopes4943c152011-07-11 22:41:29 +00001791llvm::Type *X86_64ABIInfo::GetByteVectorType(QualType Ty) const {
Chris Lattner9cbe4f02011-07-09 17:41:47 +00001792 llvm::Type *IRType = CGT.ConvertType(Ty);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001793
Chris Lattner15842bd2010-07-29 05:02:29 +00001794 // Wrapper structs that just contain vectors are passed just like vectors,
1795 // strip them off if present.
Chris Lattner9cbe4f02011-07-09 17:41:47 +00001796 llvm::StructType *STy = dyn_cast<llvm::StructType>(IRType);
Chris Lattner15842bd2010-07-29 05:02:29 +00001797 while (STy && STy->getNumElements() == 1) {
1798 IRType = STy->getElementType(0);
1799 STy = dyn_cast<llvm::StructType>(IRType);
1800 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001801
Bruno Cardoso Lopes528a8c72011-07-08 22:57:35 +00001802 // If the preferred type is a 16-byte vector, prefer to pass it.
Chris Lattner9cbe4f02011-07-09 17:41:47 +00001803 if (llvm::VectorType *VT = dyn_cast<llvm::VectorType>(IRType)){
1804 llvm::Type *EltTy = VT->getElementType();
Bruno Cardoso Lopes4943c152011-07-11 22:41:29 +00001805 unsigned BitWidth = VT->getBitWidth();
Tanya Lattnerce275672011-11-28 23:18:11 +00001806 if ((BitWidth >= 128 && BitWidth <= 256) &&
Chris Lattner0f408f52010-07-29 04:56:46 +00001807 (EltTy->isFloatTy() || EltTy->isDoubleTy() ||
1808 EltTy->isIntegerTy(8) || EltTy->isIntegerTy(16) ||
1809 EltTy->isIntegerTy(32) || EltTy->isIntegerTy(64) ||
1810 EltTy->isIntegerTy(128)))
1811 return VT;
1812 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001813
Chris Lattner0f408f52010-07-29 04:56:46 +00001814 return llvm::VectorType::get(llvm::Type::getDoubleTy(getVMContext()), 2);
1815}
1816
Chris Lattnere2962be2010-07-29 07:30:00 +00001817/// BitsContainNoUserData - Return true if the specified [start,end) bit range
1818/// is known to either be off the end of the specified type or being in
1819/// alignment padding. The user type specified is known to be at most 128 bits
1820/// in size, and have passed through X86_64ABIInfo::classify with a successful
1821/// classification that put one of the two halves in the INTEGER class.
1822///
1823/// It is conservatively correct to return false.
1824static bool BitsContainNoUserData(QualType Ty, unsigned StartBit,
1825 unsigned EndBit, ASTContext &Context) {
1826 // If the bytes being queried are off the end of the type, there is no user
1827 // data hiding here. This handles analysis of builtins, vectors and other
1828 // types that don't contain interesting padding.
1829 unsigned TySize = (unsigned)Context.getTypeSize(Ty);
1830 if (TySize <= StartBit)
1831 return true;
1832
Chris Lattner021c3a32010-07-29 07:43:55 +00001833 if (const ConstantArrayType *AT = Context.getAsConstantArrayType(Ty)) {
1834 unsigned EltSize = (unsigned)Context.getTypeSize(AT->getElementType());
1835 unsigned NumElts = (unsigned)AT->getSize().getZExtValue();
1836
1837 // Check each element to see if the element overlaps with the queried range.
1838 for (unsigned i = 0; i != NumElts; ++i) {
1839 // If the element is after the span we care about, then we're done..
1840 unsigned EltOffset = i*EltSize;
1841 if (EltOffset >= EndBit) break;
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001842
Chris Lattner021c3a32010-07-29 07:43:55 +00001843 unsigned EltStart = EltOffset < StartBit ? StartBit-EltOffset :0;
1844 if (!BitsContainNoUserData(AT->getElementType(), EltStart,
1845 EndBit-EltOffset, Context))
1846 return false;
1847 }
1848 // If it overlaps no elements, then it is safe to process as padding.
1849 return true;
1850 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001851
Chris Lattnere2962be2010-07-29 07:30:00 +00001852 if (const RecordType *RT = Ty->getAs<RecordType>()) {
1853 const RecordDecl *RD = RT->getDecl();
1854 const ASTRecordLayout &Layout = Context.getASTRecordLayout(RD);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001855
Chris Lattnere2962be2010-07-29 07:30:00 +00001856 // If this is a C++ record, check the bases first.
1857 if (const CXXRecordDecl *CXXRD = dyn_cast<CXXRecordDecl>(RD)) {
1858 for (CXXRecordDecl::base_class_const_iterator i = CXXRD->bases_begin(),
1859 e = CXXRD->bases_end(); i != e; ++i) {
1860 assert(!i->isVirtual() && !i->getType()->isDependentType() &&
1861 "Unexpected base class!");
1862 const CXXRecordDecl *Base =
1863 cast<CXXRecordDecl>(i->getType()->getAs<RecordType>()->getDecl());
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001864
Chris Lattnere2962be2010-07-29 07:30:00 +00001865 // If the base is after the span we care about, ignore it.
Benjamin Kramerd4f51982012-07-04 18:45:14 +00001866 unsigned BaseOffset = Context.toBits(Layout.getBaseClassOffset(Base));
Chris Lattnere2962be2010-07-29 07:30:00 +00001867 if (BaseOffset >= EndBit) continue;
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001868
Chris Lattnere2962be2010-07-29 07:30:00 +00001869 unsigned BaseStart = BaseOffset < StartBit ? StartBit-BaseOffset :0;
1870 if (!BitsContainNoUserData(i->getType(), BaseStart,
1871 EndBit-BaseOffset, Context))
1872 return false;
1873 }
1874 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001875
Chris Lattnere2962be2010-07-29 07:30:00 +00001876 // Verify that no field has data that overlaps the region of interest. Yes
1877 // this could be sped up a lot by being smarter about queried fields,
1878 // however we're only looking at structs up to 16 bytes, so we don't care
1879 // much.
1880 unsigned idx = 0;
1881 for (RecordDecl::field_iterator i = RD->field_begin(), e = RD->field_end();
1882 i != e; ++i, ++idx) {
1883 unsigned FieldOffset = (unsigned)Layout.getFieldOffset(idx);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001884
Chris Lattnere2962be2010-07-29 07:30:00 +00001885 // If we found a field after the region we care about, then we're done.
1886 if (FieldOffset >= EndBit) break;
1887
1888 unsigned FieldStart = FieldOffset < StartBit ? StartBit-FieldOffset :0;
1889 if (!BitsContainNoUserData(i->getType(), FieldStart, EndBit-FieldOffset,
1890 Context))
1891 return false;
1892 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001893
Chris Lattnere2962be2010-07-29 07:30:00 +00001894 // If nothing in this record overlapped the area of interest, then we're
1895 // clean.
1896 return true;
1897 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001898
Chris Lattnere2962be2010-07-29 07:30:00 +00001899 return false;
1900}
1901
Chris Lattner0b362002010-07-29 18:39:32 +00001902/// ContainsFloatAtOffset - Return true if the specified LLVM IR type has a
1903/// float member at the specified offset. For example, {int,{float}} has a
1904/// float at offset 4. It is conservatively correct for this routine to return
1905/// false.
Chris Lattner2acc6e32011-07-18 04:24:23 +00001906static bool ContainsFloatAtOffset(llvm::Type *IRType, unsigned IROffset,
Micah Villmow25a6a842012-10-08 16:25:52 +00001907 const llvm::DataLayout &TD) {
Chris Lattner0b362002010-07-29 18:39:32 +00001908 // Base case if we find a float.
1909 if (IROffset == 0 && IRType->isFloatTy())
1910 return true;
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001911
Chris Lattner0b362002010-07-29 18:39:32 +00001912 // If this is a struct, recurse into the field at the specified offset.
Chris Lattner2acc6e32011-07-18 04:24:23 +00001913 if (llvm::StructType *STy = dyn_cast<llvm::StructType>(IRType)) {
Chris Lattner0b362002010-07-29 18:39:32 +00001914 const llvm::StructLayout *SL = TD.getStructLayout(STy);
1915 unsigned Elt = SL->getElementContainingOffset(IROffset);
1916 IROffset -= SL->getElementOffset(Elt);
1917 return ContainsFloatAtOffset(STy->getElementType(Elt), IROffset, TD);
1918 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001919
Chris Lattner0b362002010-07-29 18:39:32 +00001920 // If this is an array, recurse into the field at the specified offset.
Chris Lattner2acc6e32011-07-18 04:24:23 +00001921 if (llvm::ArrayType *ATy = dyn_cast<llvm::ArrayType>(IRType)) {
1922 llvm::Type *EltTy = ATy->getElementType();
Chris Lattner0b362002010-07-29 18:39:32 +00001923 unsigned EltSize = TD.getTypeAllocSize(EltTy);
1924 IROffset -= IROffset/EltSize*EltSize;
1925 return ContainsFloatAtOffset(EltTy, IROffset, TD);
1926 }
1927
1928 return false;
1929}
1930
Chris Lattnerf47c9442010-07-29 18:13:09 +00001931
1932/// GetSSETypeAtOffset - Return a type that will be passed by the backend in the
1933/// low 8 bytes of an XMM register, corresponding to the SSE class.
Chris Lattner9cbe4f02011-07-09 17:41:47 +00001934llvm::Type *X86_64ABIInfo::
1935GetSSETypeAtOffset(llvm::Type *IRType, unsigned IROffset,
Chris Lattnerf47c9442010-07-29 18:13:09 +00001936 QualType SourceTy, unsigned SourceOffset) const {
Chris Lattnercba8d312010-07-29 18:19:50 +00001937 // The only three choices we have are either double, <2 x float>, or float. We
Chris Lattnerf47c9442010-07-29 18:13:09 +00001938 // pass as float if the last 4 bytes is just padding. This happens for
1939 // structs that contain 3 floats.
1940 if (BitsContainNoUserData(SourceTy, SourceOffset*8+32,
1941 SourceOffset*8+64, getContext()))
1942 return llvm::Type::getFloatTy(getVMContext());
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001943
Chris Lattner0b362002010-07-29 18:39:32 +00001944 // We want to pass as <2 x float> if the LLVM IR type contains a float at
1945 // offset+0 and offset+4. Walk the LLVM IR type to find out if this is the
1946 // case.
Micah Villmow25a6a842012-10-08 16:25:52 +00001947 if (ContainsFloatAtOffset(IRType, IROffset, getDataLayout()) &&
1948 ContainsFloatAtOffset(IRType, IROffset+4, getDataLayout()))
Chris Lattner22fd4ba2010-08-25 23:39:14 +00001949 return llvm::VectorType::get(llvm::Type::getFloatTy(getVMContext()), 2);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001950
Chris Lattnerf47c9442010-07-29 18:13:09 +00001951 return llvm::Type::getDoubleTy(getVMContext());
1952}
1953
1954
Chris Lattner0d2656d2010-07-29 17:40:35 +00001955/// GetINTEGERTypeAtOffset - The ABI specifies that a value should be passed in
1956/// an 8-byte GPR. This means that we either have a scalar or we are talking
1957/// about the high or low part of an up-to-16-byte struct. This routine picks
1958/// the best LLVM IR type to represent this, which may be i64 or may be anything
Chris Lattner49382de2010-07-28 22:44:07 +00001959/// else that the backend will pass in a GPR that works better (e.g. i8, %foo*,
1960/// etc).
1961///
1962/// PrefType is an LLVM IR type that corresponds to (part of) the IR type for
1963/// the source type. IROffset is an offset in bytes into the LLVM IR type that
1964/// the 8-byte value references. PrefType may be null.
1965///
1966/// SourceTy is the source level type for the entire argument. SourceOffset is
1967/// an offset into this that we're processing (which is always either 0 or 8).
1968///
Chris Lattner9cbe4f02011-07-09 17:41:47 +00001969llvm::Type *X86_64ABIInfo::
1970GetINTEGERTypeAtOffset(llvm::Type *IRType, unsigned IROffset,
Chris Lattner0d2656d2010-07-29 17:40:35 +00001971 QualType SourceTy, unsigned SourceOffset) const {
Chris Lattnere2962be2010-07-29 07:30:00 +00001972 // If we're dealing with an un-offset LLVM IR type, then it means that we're
1973 // returning an 8-byte unit starting with it. See if we can safely use it.
1974 if (IROffset == 0) {
1975 // Pointers and int64's always fill the 8-byte unit.
Derek Schuffbabaf312012-10-11 15:52:22 +00001976 if ((isa<llvm::PointerType>(IRType) && Has64BitPointers) ||
1977 IRType->isIntegerTy(64))
Chris Lattnere2962be2010-07-29 07:30:00 +00001978 return IRType;
Chris Lattner49382de2010-07-28 22:44:07 +00001979
Chris Lattnere2962be2010-07-29 07:30:00 +00001980 // If we have a 1/2/4-byte integer, we can use it only if the rest of the
1981 // goodness in the source type is just tail padding. This is allowed to
1982 // kick in for struct {double,int} on the int, but not on
1983 // struct{double,int,int} because we wouldn't return the second int. We
1984 // have to do this analysis on the source type because we can't depend on
1985 // unions being lowered a specific way etc.
1986 if (IRType->isIntegerTy(8) || IRType->isIntegerTy(16) ||
Derek Schuffbabaf312012-10-11 15:52:22 +00001987 IRType->isIntegerTy(32) ||
1988 (isa<llvm::PointerType>(IRType) && !Has64BitPointers)) {
1989 unsigned BitWidth = isa<llvm::PointerType>(IRType) ? 32 :
1990 cast<llvm::IntegerType>(IRType)->getBitWidth();
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00001991
Chris Lattnere2962be2010-07-29 07:30:00 +00001992 if (BitsContainNoUserData(SourceTy, SourceOffset*8+BitWidth,
1993 SourceOffset*8+64, getContext()))
1994 return IRType;
1995 }
1996 }
Chris Lattner49382de2010-07-28 22:44:07 +00001997
Chris Lattner2acc6e32011-07-18 04:24:23 +00001998 if (llvm::StructType *STy = dyn_cast<llvm::StructType>(IRType)) {
Chris Lattner49382de2010-07-28 22:44:07 +00001999 // If this is a struct, recurse into the field at the specified offset.
Micah Villmow25a6a842012-10-08 16:25:52 +00002000 const llvm::StructLayout *SL = getDataLayout().getStructLayout(STy);
Chris Lattner49382de2010-07-28 22:44:07 +00002001 if (IROffset < SL->getSizeInBytes()) {
2002 unsigned FieldIdx = SL->getElementContainingOffset(IROffset);
2003 IROffset -= SL->getElementOffset(FieldIdx);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002004
Chris Lattner0d2656d2010-07-29 17:40:35 +00002005 return GetINTEGERTypeAtOffset(STy->getElementType(FieldIdx), IROffset,
2006 SourceTy, SourceOffset);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002007 }
Chris Lattner49382de2010-07-28 22:44:07 +00002008 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002009
Chris Lattner2acc6e32011-07-18 04:24:23 +00002010 if (llvm::ArrayType *ATy = dyn_cast<llvm::ArrayType>(IRType)) {
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002011 llvm::Type *EltTy = ATy->getElementType();
Micah Villmow25a6a842012-10-08 16:25:52 +00002012 unsigned EltSize = getDataLayout().getTypeAllocSize(EltTy);
Chris Lattner021c3a32010-07-29 07:43:55 +00002013 unsigned EltOffset = IROffset/EltSize*EltSize;
Chris Lattner0d2656d2010-07-29 17:40:35 +00002014 return GetINTEGERTypeAtOffset(EltTy, IROffset-EltOffset, SourceTy,
2015 SourceOffset);
Chris Lattner021c3a32010-07-29 07:43:55 +00002016 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002017
Chris Lattner49382de2010-07-28 22:44:07 +00002018 // Okay, we don't have any better idea of what to pass, so we pass this in an
2019 // integer register that isn't too big to fit the rest of the struct.
Chris Lattner9e45a3d2010-07-29 17:34:39 +00002020 unsigned TySizeInBytes =
2021 (unsigned)getContext().getTypeSizeInChars(SourceTy).getQuantity();
Chris Lattner49382de2010-07-28 22:44:07 +00002022
Chris Lattner9e45a3d2010-07-29 17:34:39 +00002023 assert(TySizeInBytes != SourceOffset && "Empty field?");
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002024
Chris Lattner49382de2010-07-28 22:44:07 +00002025 // It is always safe to classify this as an integer type up to i64 that
2026 // isn't larger than the structure.
Chris Lattner9e45a3d2010-07-29 17:34:39 +00002027 return llvm::IntegerType::get(getVMContext(),
2028 std::min(TySizeInBytes-SourceOffset, 8U)*8);
Chris Lattner9c254f02010-06-29 06:01:59 +00002029}
2030
Chris Lattner66e7b682010-09-01 00:50:20 +00002031
2032/// GetX86_64ByValArgumentPair - Given a high and low type that can ideally
2033/// be used as elements of a two register pair to pass or return, return a
2034/// first class aggregate to represent them. For example, if the low part of
2035/// a by-value argument should be passed as i32* and the high part as float,
2036/// return {i32*, float}.
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002037static llvm::Type *
Jay Foadef6de3d2011-07-11 09:56:20 +00002038GetX86_64ByValArgumentPair(llvm::Type *Lo, llvm::Type *Hi,
Micah Villmow25a6a842012-10-08 16:25:52 +00002039 const llvm::DataLayout &TD) {
Chris Lattner66e7b682010-09-01 00:50:20 +00002040 // In order to correctly satisfy the ABI, we need to the high part to start
2041 // at offset 8. If the high and low parts we inferred are both 4-byte types
2042 // (e.g. i32 and i32) then the resultant struct type ({i32,i32}) won't have
2043 // the second element at offset 8. Check for this:
2044 unsigned LoSize = (unsigned)TD.getTypeAllocSize(Lo);
2045 unsigned HiAlign = TD.getABITypeAlignment(Hi);
Micah Villmow25a6a842012-10-08 16:25:52 +00002046 unsigned HiStart = llvm::DataLayout::RoundUpAlignment(LoSize, HiAlign);
Chris Lattner66e7b682010-09-01 00:50:20 +00002047 assert(HiStart != 0 && HiStart <= 8 && "Invalid x86-64 argument pair!");
Michael J. Spencer9cac4942010-10-19 06:39:39 +00002048
Chris Lattner66e7b682010-09-01 00:50:20 +00002049 // To handle this, we have to increase the size of the low part so that the
2050 // second element will start at an 8 byte offset. We can't increase the size
2051 // of the second element because it might make us access off the end of the
2052 // struct.
2053 if (HiStart != 8) {
2054 // There are only two sorts of types the ABI generation code can produce for
2055 // the low part of a pair that aren't 8 bytes in size: float or i8/i16/i32.
2056 // Promote these to a larger type.
2057 if (Lo->isFloatTy())
2058 Lo = llvm::Type::getDoubleTy(Lo->getContext());
2059 else {
2060 assert(Lo->isIntegerTy() && "Invalid/unknown lo type");
2061 Lo = llvm::Type::getInt64Ty(Lo->getContext());
2062 }
2063 }
Michael J. Spencer9cac4942010-10-19 06:39:39 +00002064
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002065 llvm::StructType *Result = llvm::StructType::get(Lo, Hi, NULL);
Michael J. Spencer9cac4942010-10-19 06:39:39 +00002066
2067
Chris Lattner66e7b682010-09-01 00:50:20 +00002068 // Verify that the second element is at an 8-byte offset.
2069 assert(TD.getStructLayout(Result)->getElementOffset(1) == 8 &&
2070 "Invalid x86-64 argument pair!");
2071 return Result;
2072}
2073
Chris Lattner519f68c2010-07-28 23:06:14 +00002074ABIArgInfo X86_64ABIInfo::
Chris Lattnera3c109b2010-07-29 02:16:43 +00002075classifyReturnType(QualType RetTy) const {
Chris Lattner519f68c2010-07-28 23:06:14 +00002076 // AMD64-ABI 3.2.3p4: Rule 1. Classify the return type with the
2077 // classification algorithm.
2078 X86_64ABIInfo::Class Lo, Hi;
2079 classify(RetTy, 0, Lo, Hi);
2080
2081 // Check some invariants.
2082 assert((Hi != Memory || Lo == Memory) && "Invalid memory classification.");
Chris Lattner519f68c2010-07-28 23:06:14 +00002083 assert((Hi != SSEUp || Lo == SSE) && "Invalid SSEUp classification.");
2084
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002085 llvm::Type *ResType = 0;
Chris Lattner519f68c2010-07-28 23:06:14 +00002086 switch (Lo) {
2087 case NoClass:
Chris Lattner117e3f42010-07-30 04:02:24 +00002088 if (Hi == NoClass)
2089 return ABIArgInfo::getIgnore();
2090 // If the low part is just padding, it takes no register, leave ResType
2091 // null.
2092 assert((Hi == SSE || Hi == Integer || Hi == X87Up) &&
2093 "Unknown missing lo part");
2094 break;
Chris Lattner519f68c2010-07-28 23:06:14 +00002095
2096 case SSEUp:
2097 case X87Up:
David Blaikieb219cfc2011-09-23 05:06:16 +00002098 llvm_unreachable("Invalid classification for lo word.");
Chris Lattner519f68c2010-07-28 23:06:14 +00002099
2100 // AMD64-ABI 3.2.3p4: Rule 2. Types of class memory are returned via
2101 // hidden argument.
2102 case Memory:
2103 return getIndirectReturnResult(RetTy);
2104
2105 // AMD64-ABI 3.2.3p4: Rule 3. If the class is INTEGER, the next
2106 // available register of the sequence %rax, %rdx is used.
2107 case Integer:
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002108 ResType = GetINTEGERTypeAtOffset(CGT.ConvertType(RetTy), 0, RetTy, 0);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002109
Chris Lattnereb518b42010-07-29 21:42:50 +00002110 // If we have a sign or zero extended integer, make sure to return Extend
2111 // so that the parameter gets the right LLVM IR attributes.
2112 if (Hi == NoClass && isa<llvm::IntegerType>(ResType)) {
2113 // Treat an enum type as its underlying type.
2114 if (const EnumType *EnumTy = RetTy->getAs<EnumType>())
2115 RetTy = EnumTy->getDecl()->getIntegerType();
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002116
Chris Lattnereb518b42010-07-29 21:42:50 +00002117 if (RetTy->isIntegralOrEnumerationType() &&
2118 RetTy->isPromotableIntegerType())
2119 return ABIArgInfo::getExtend();
2120 }
Chris Lattner519f68c2010-07-28 23:06:14 +00002121 break;
2122
2123 // AMD64-ABI 3.2.3p4: Rule 4. If the class is SSE, the next
2124 // available SSE register of the sequence %xmm0, %xmm1 is used.
2125 case SSE:
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002126 ResType = GetSSETypeAtOffset(CGT.ConvertType(RetTy), 0, RetTy, 0);
Chris Lattner0b30c672010-07-28 23:12:33 +00002127 break;
Chris Lattner519f68c2010-07-28 23:06:14 +00002128
2129 // AMD64-ABI 3.2.3p4: Rule 6. If the class is X87, the value is
2130 // returned on the X87 stack in %st0 as 80-bit x87 number.
2131 case X87:
Chris Lattnerea044322010-07-29 02:01:43 +00002132 ResType = llvm::Type::getX86_FP80Ty(getVMContext());
Chris Lattner0b30c672010-07-28 23:12:33 +00002133 break;
Chris Lattner519f68c2010-07-28 23:06:14 +00002134
2135 // AMD64-ABI 3.2.3p4: Rule 8. If the class is COMPLEX_X87, the real
2136 // part of the value is returned in %st0 and the imaginary part in
2137 // %st1.
2138 case ComplexX87:
2139 assert(Hi == ComplexX87 && "Unexpected ComplexX87 classification.");
Chris Lattner7650d952011-06-18 22:49:11 +00002140 ResType = llvm::StructType::get(llvm::Type::getX86_FP80Ty(getVMContext()),
Chris Lattnerea044322010-07-29 02:01:43 +00002141 llvm::Type::getX86_FP80Ty(getVMContext()),
Chris Lattner519f68c2010-07-28 23:06:14 +00002142 NULL);
2143 break;
2144 }
2145
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002146 llvm::Type *HighPart = 0;
Chris Lattner519f68c2010-07-28 23:06:14 +00002147 switch (Hi) {
2148 // Memory was handled previously and X87 should
2149 // never occur as a hi class.
2150 case Memory:
2151 case X87:
David Blaikieb219cfc2011-09-23 05:06:16 +00002152 llvm_unreachable("Invalid classification for hi word.");
Chris Lattner519f68c2010-07-28 23:06:14 +00002153
2154 case ComplexX87: // Previously handled.
Chris Lattner0b30c672010-07-28 23:12:33 +00002155 case NoClass:
2156 break;
Chris Lattner519f68c2010-07-28 23:06:14 +00002157
Chris Lattner3db4dde2010-09-01 00:20:33 +00002158 case Integer:
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002159 HighPart = GetINTEGERTypeAtOffset(CGT.ConvertType(RetTy), 8, RetTy, 8);
Chris Lattner3db4dde2010-09-01 00:20:33 +00002160 if (Lo == NoClass) // Return HighPart at offset 8 in memory.
2161 return ABIArgInfo::getDirect(HighPart, 8);
Chris Lattner519f68c2010-07-28 23:06:14 +00002162 break;
Chris Lattner3db4dde2010-09-01 00:20:33 +00002163 case SSE:
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002164 HighPart = GetSSETypeAtOffset(CGT.ConvertType(RetTy), 8, RetTy, 8);
Chris Lattner3db4dde2010-09-01 00:20:33 +00002165 if (Lo == NoClass) // Return HighPart at offset 8 in memory.
2166 return ABIArgInfo::getDirect(HighPart, 8);
Chris Lattner519f68c2010-07-28 23:06:14 +00002167 break;
2168
2169 // AMD64-ABI 3.2.3p4: Rule 5. If the class is SSEUP, the eightbyte
Bruno Cardoso Lopes4943c152011-07-11 22:41:29 +00002170 // is passed in the next available eightbyte chunk if the last used
2171 // vector register.
Chris Lattner519f68c2010-07-28 23:06:14 +00002172 //
Chris Lattnerfc8f0e12011-04-15 05:22:18 +00002173 // SSEUP should always be preceded by SSE, just widen.
Chris Lattner519f68c2010-07-28 23:06:14 +00002174 case SSEUp:
2175 assert(Lo == SSE && "Unexpected SSEUp classification.");
Bruno Cardoso Lopes4943c152011-07-11 22:41:29 +00002176 ResType = GetByteVectorType(RetTy);
Chris Lattner519f68c2010-07-28 23:06:14 +00002177 break;
2178
2179 // AMD64-ABI 3.2.3p4: Rule 7. If the class is X87UP, the value is
2180 // returned together with the previous X87 value in %st0.
2181 case X87Up:
Chris Lattnerfc8f0e12011-04-15 05:22:18 +00002182 // If X87Up is preceded by X87, we don't need to do
Chris Lattner519f68c2010-07-28 23:06:14 +00002183 // anything. However, in some cases with unions it may not be
Chris Lattnerfc8f0e12011-04-15 05:22:18 +00002184 // preceded by X87. In such situations we follow gcc and pass the
Chris Lattner519f68c2010-07-28 23:06:14 +00002185 // extra bits in an SSE reg.
Chris Lattner603519d2010-07-29 17:49:08 +00002186 if (Lo != X87) {
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002187 HighPart = GetSSETypeAtOffset(CGT.ConvertType(RetTy), 8, RetTy, 8);
Chris Lattner3db4dde2010-09-01 00:20:33 +00002188 if (Lo == NoClass) // Return HighPart at offset 8 in memory.
2189 return ABIArgInfo::getDirect(HighPart, 8);
Chris Lattner603519d2010-07-29 17:49:08 +00002190 }
Chris Lattner519f68c2010-07-28 23:06:14 +00002191 break;
2192 }
Michael J. Spencer9cac4942010-10-19 06:39:39 +00002193
Chris Lattner3db4dde2010-09-01 00:20:33 +00002194 // If a high part was specified, merge it together with the low part. It is
Chris Lattner645406a2010-09-01 00:24:35 +00002195 // known to pass in the high eightbyte of the result. We do this by forming a
2196 // first class struct aggregate with the high and low part: {low, high}
Chris Lattner66e7b682010-09-01 00:50:20 +00002197 if (HighPart)
Micah Villmow25a6a842012-10-08 16:25:52 +00002198 ResType = GetX86_64ByValArgumentPair(ResType, HighPart, getDataLayout());
Chris Lattner519f68c2010-07-28 23:06:14 +00002199
Chris Lattnereb518b42010-07-29 21:42:50 +00002200 return ABIArgInfo::getDirect(ResType);
Chris Lattner519f68c2010-07-28 23:06:14 +00002201}
2202
Daniel Dunbaredfac032012-03-10 01:03:58 +00002203ABIArgInfo X86_64ABIInfo::classifyArgumentType(
2204 QualType Ty, unsigned freeIntRegs, unsigned &neededInt, unsigned &neededSSE)
2205 const
2206{
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002207 X86_64ABIInfo::Class Lo, Hi;
Chris Lattner9c254f02010-06-29 06:01:59 +00002208 classify(Ty, 0, Lo, Hi);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002209
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002210 // Check some invariants.
2211 // FIXME: Enforce these by construction.
2212 assert((Hi != Memory || Lo == Memory) && "Invalid memory classification.");
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002213 assert((Hi != SSEUp || Lo == SSE) && "Invalid SSEUp classification.");
2214
2215 neededInt = 0;
2216 neededSSE = 0;
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002217 llvm::Type *ResType = 0;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002218 switch (Lo) {
2219 case NoClass:
Chris Lattner117e3f42010-07-30 04:02:24 +00002220 if (Hi == NoClass)
2221 return ABIArgInfo::getIgnore();
2222 // If the low part is just padding, it takes no register, leave ResType
2223 // null.
2224 assert((Hi == SSE || Hi == Integer || Hi == X87Up) &&
2225 "Unknown missing lo part");
2226 break;
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002227
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002228 // AMD64-ABI 3.2.3p3: Rule 1. If the class is MEMORY, pass the argument
2229 // on the stack.
2230 case Memory:
2231
2232 // AMD64-ABI 3.2.3p3: Rule 5. If the class is X87, X87UP or
2233 // COMPLEX_X87, it is passed in memory.
2234 case X87:
2235 case ComplexX87:
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00002236 if (getRecordArgABI(Ty, CGT) == CGCXXABI::RAA_Indirect)
Eli Friedmanded137f2011-06-29 07:04:55 +00002237 ++neededInt;
Daniel Dunbaredfac032012-03-10 01:03:58 +00002238 return getIndirectResult(Ty, freeIntRegs);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002239
2240 case SSEUp:
2241 case X87Up:
David Blaikieb219cfc2011-09-23 05:06:16 +00002242 llvm_unreachable("Invalid classification for lo word.");
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002243
2244 // AMD64-ABI 3.2.3p3: Rule 2. If the class is INTEGER, the next
2245 // available register of the sequence %rdi, %rsi, %rdx, %rcx, %r8
2246 // and %r9 is used.
2247 case Integer:
Chris Lattner9c254f02010-06-29 06:01:59 +00002248 ++neededInt;
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002249
Chris Lattner49382de2010-07-28 22:44:07 +00002250 // Pick an 8-byte type based on the preferred type.
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002251 ResType = GetINTEGERTypeAtOffset(CGT.ConvertType(Ty), 0, Ty, 0);
Chris Lattnereb518b42010-07-29 21:42:50 +00002252
2253 // If we have a sign or zero extended integer, make sure to return Extend
2254 // so that the parameter gets the right LLVM IR attributes.
2255 if (Hi == NoClass && isa<llvm::IntegerType>(ResType)) {
2256 // Treat an enum type as its underlying type.
2257 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
2258 Ty = EnumTy->getDecl()->getIntegerType();
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002259
Chris Lattnereb518b42010-07-29 21:42:50 +00002260 if (Ty->isIntegralOrEnumerationType() &&
2261 Ty->isPromotableIntegerType())
2262 return ABIArgInfo::getExtend();
2263 }
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002264
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002265 break;
2266
2267 // AMD64-ABI 3.2.3p3: Rule 3. If the class is SSE, the next
2268 // available SSE register is used, the registers are taken in the
2269 // order from %xmm0 to %xmm7.
Bill Wendlingbb465d72010-10-18 03:41:31 +00002270 case SSE: {
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002271 llvm::Type *IRType = CGT.ConvertType(Ty);
Eli Friedman14508ff2011-07-02 00:57:27 +00002272 ResType = GetSSETypeAtOffset(IRType, 0, Ty, 0);
Bill Wendling99aaae82010-10-18 23:51:38 +00002273 ++neededSSE;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002274 break;
2275 }
Bill Wendlingbb465d72010-10-18 03:41:31 +00002276 }
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002277
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002278 llvm::Type *HighPart = 0;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002279 switch (Hi) {
2280 // Memory was handled previously, ComplexX87 and X87 should
Chris Lattnerfc8f0e12011-04-15 05:22:18 +00002281 // never occur as hi classes, and X87Up must be preceded by X87,
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002282 // which is passed in memory.
2283 case Memory:
2284 case X87:
2285 case ComplexX87:
David Blaikieb219cfc2011-09-23 05:06:16 +00002286 llvm_unreachable("Invalid classification for hi word.");
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002287
2288 case NoClass: break;
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002289
Chris Lattner645406a2010-09-01 00:24:35 +00002290 case Integer:
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002291 ++neededInt;
Chris Lattner49382de2010-07-28 22:44:07 +00002292 // Pick an 8-byte type based on the preferred type.
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002293 HighPart = GetINTEGERTypeAtOffset(CGT.ConvertType(Ty), 8, Ty, 8);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002294
Chris Lattner645406a2010-09-01 00:24:35 +00002295 if (Lo == NoClass) // Pass HighPart at offset 8 in memory.
2296 return ABIArgInfo::getDirect(HighPart, 8);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002297 break;
2298
2299 // X87Up generally doesn't occur here (long double is passed in
2300 // memory), except in situations involving unions.
2301 case X87Up:
Chris Lattner645406a2010-09-01 00:24:35 +00002302 case SSE:
Chris Lattner9cbe4f02011-07-09 17:41:47 +00002303 HighPart = GetSSETypeAtOffset(CGT.ConvertType(Ty), 8, Ty, 8);
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002304
Chris Lattner645406a2010-09-01 00:24:35 +00002305 if (Lo == NoClass) // Pass HighPart at offset 8 in memory.
2306 return ABIArgInfo::getDirect(HighPart, 8);
Chris Lattner117e3f42010-07-30 04:02:24 +00002307
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002308 ++neededSSE;
2309 break;
2310
2311 // AMD64-ABI 3.2.3p3: Rule 4. If the class is SSEUP, the
2312 // eightbyte is passed in the upper half of the last used SSE
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002313 // register. This only happens when 128-bit vectors are passed.
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002314 case SSEUp:
Chris Lattnerab5722e2010-07-28 23:47:21 +00002315 assert(Lo == SSE && "Unexpected SSEUp classification");
Bruno Cardoso Lopes4943c152011-07-11 22:41:29 +00002316 ResType = GetByteVectorType(Ty);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002317 break;
2318 }
2319
Chris Lattner645406a2010-09-01 00:24:35 +00002320 // If a high part was specified, merge it together with the low part. It is
2321 // known to pass in the high eightbyte of the result. We do this by forming a
2322 // first class struct aggregate with the high and low part: {low, high}
2323 if (HighPart)
Micah Villmow25a6a842012-10-08 16:25:52 +00002324 ResType = GetX86_64ByValArgumentPair(ResType, HighPart, getDataLayout());
Michael J. Spencer9cac4942010-10-19 06:39:39 +00002325
Chris Lattnereb518b42010-07-29 21:42:50 +00002326 return ABIArgInfo::getDirect(ResType);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002327}
2328
Chris Lattneree5dcd02010-07-29 02:31:05 +00002329void X86_64ABIInfo::computeInfo(CGFunctionInfo &FI) const {
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002330
Chris Lattnera3c109b2010-07-29 02:16:43 +00002331 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002332
2333 // Keep track of the number of assigned registers.
Bill Wendling99aaae82010-10-18 23:51:38 +00002334 unsigned freeIntRegs = 6, freeSSERegs = 8;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002335
2336 // If the return value is indirect, then the hidden argument is consuming one
2337 // integer register.
2338 if (FI.getReturnInfo().isIndirect())
2339 --freeIntRegs;
2340
2341 // AMD64-ABI 3.2.3p3: Once arguments are classified, the registers
2342 // get assigned (in left-to-right order) for passing as follows...
2343 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
2344 it != ie; ++it) {
Bill Wendling99aaae82010-10-18 23:51:38 +00002345 unsigned neededInt, neededSSE;
Daniel Dunbaredfac032012-03-10 01:03:58 +00002346 it->info = classifyArgumentType(it->type, freeIntRegs, neededInt,
2347 neededSSE);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002348
2349 // AMD64-ABI 3.2.3p3: If there are no registers available for any
2350 // eightbyte of an argument, the whole argument is passed on the
2351 // stack. If registers have already been assigned for some
2352 // eightbytes of such an argument, the assignments get reverted.
Bill Wendling99aaae82010-10-18 23:51:38 +00002353 if (freeIntRegs >= neededInt && freeSSERegs >= neededSSE) {
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002354 freeIntRegs -= neededInt;
2355 freeSSERegs -= neededSSE;
2356 } else {
Daniel Dunbaredfac032012-03-10 01:03:58 +00002357 it->info = getIndirectResult(it->type, freeIntRegs);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002358 }
2359 }
2360}
2361
2362static llvm::Value *EmitVAArgFromMemory(llvm::Value *VAListAddr,
2363 QualType Ty,
2364 CodeGenFunction &CGF) {
2365 llvm::Value *overflow_arg_area_p =
2366 CGF.Builder.CreateStructGEP(VAListAddr, 2, "overflow_arg_area_p");
2367 llvm::Value *overflow_arg_area =
2368 CGF.Builder.CreateLoad(overflow_arg_area_p, "overflow_arg_area");
2369
2370 // AMD64-ABI 3.5.7p5: Step 7. Align l->overflow_arg_area upwards to a 16
2371 // byte boundary if alignment needed by type exceeds 8 byte boundary.
Eli Friedman8d2fe422011-11-18 02:44:19 +00002372 // It isn't stated explicitly in the standard, but in practice we use
2373 // alignment greater than 16 where necessary.
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002374 uint64_t Align = CGF.getContext().getTypeAlign(Ty) / 8;
2375 if (Align > 8) {
Eli Friedman8d2fe422011-11-18 02:44:19 +00002376 // overflow_arg_area = (overflow_arg_area + align - 1) & -align;
Owen Anderson0032b272009-08-13 21:57:51 +00002377 llvm::Value *Offset =
Eli Friedman8d2fe422011-11-18 02:44:19 +00002378 llvm::ConstantInt::get(CGF.Int64Ty, Align - 1);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002379 overflow_arg_area = CGF.Builder.CreateGEP(overflow_arg_area, Offset);
2380 llvm::Value *AsInt = CGF.Builder.CreatePtrToInt(overflow_arg_area,
Chris Lattner77b89b82010-06-27 07:15:29 +00002381 CGF.Int64Ty);
Eli Friedman8d2fe422011-11-18 02:44:19 +00002382 llvm::Value *Mask = llvm::ConstantInt::get(CGF.Int64Ty, -(uint64_t)Align);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002383 overflow_arg_area =
2384 CGF.Builder.CreateIntToPtr(CGF.Builder.CreateAnd(AsInt, Mask),
2385 overflow_arg_area->getType(),
2386 "overflow_arg_area.align");
2387 }
2388
2389 // AMD64-ABI 3.5.7p5: Step 8. Fetch type from l->overflow_arg_area.
Chris Lattner2acc6e32011-07-18 04:24:23 +00002390 llvm::Type *LTy = CGF.ConvertTypeForMem(Ty);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002391 llvm::Value *Res =
2392 CGF.Builder.CreateBitCast(overflow_arg_area,
Owen Anderson96e0fc72009-07-29 22:16:19 +00002393 llvm::PointerType::getUnqual(LTy));
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002394
2395 // AMD64-ABI 3.5.7p5: Step 9. Set l->overflow_arg_area to:
2396 // l->overflow_arg_area + sizeof(type).
2397 // AMD64-ABI 3.5.7p5: Step 10. Align l->overflow_arg_area upwards to
2398 // an 8 byte boundary.
2399
2400 uint64_t SizeInBytes = (CGF.getContext().getTypeSize(Ty) + 7) / 8;
Owen Anderson0032b272009-08-13 21:57:51 +00002401 llvm::Value *Offset =
Chris Lattner77b89b82010-06-27 07:15:29 +00002402 llvm::ConstantInt::get(CGF.Int32Ty, (SizeInBytes + 7) & ~7);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002403 overflow_arg_area = CGF.Builder.CreateGEP(overflow_arg_area, Offset,
2404 "overflow_arg_area.next");
2405 CGF.Builder.CreateStore(overflow_arg_area, overflow_arg_area_p);
2406
2407 // AMD64-ABI 3.5.7p5: Step 11. Return the fetched type.
2408 return Res;
2409}
2410
2411llvm::Value *X86_64ABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
2412 CodeGenFunction &CGF) const {
2413 // Assume that va_list type is correct; should be pointer to LLVM type:
2414 // struct {
2415 // i32 gp_offset;
2416 // i32 fp_offset;
2417 // i8* overflow_arg_area;
2418 // i8* reg_save_area;
2419 // };
Bill Wendling99aaae82010-10-18 23:51:38 +00002420 unsigned neededInt, neededSSE;
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002421
Chris Lattnera14db752010-03-11 18:19:55 +00002422 Ty = CGF.getContext().getCanonicalType(Ty);
Daniel Dunbaredfac032012-03-10 01:03:58 +00002423 ABIArgInfo AI = classifyArgumentType(Ty, 0, neededInt, neededSSE);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002424
2425 // AMD64-ABI 3.5.7p5: Step 1. Determine whether type may be passed
2426 // in the registers. If not go to step 7.
2427 if (!neededInt && !neededSSE)
2428 return EmitVAArgFromMemory(VAListAddr, Ty, CGF);
2429
2430 // AMD64-ABI 3.5.7p5: Step 2. Compute num_gp to hold the number of
2431 // general purpose registers needed to pass type and num_fp to hold
2432 // the number of floating point registers needed.
2433
2434 // AMD64-ABI 3.5.7p5: Step 3. Verify whether arguments fit into
2435 // registers. In the case: l->gp_offset > 48 - num_gp * 8 or
2436 // l->fp_offset > 304 - num_fp * 16 go to step 7.
2437 //
2438 // NOTE: 304 is a typo, there are (6 * 8 + 8 * 16) = 176 bytes of
2439 // register save space).
2440
2441 llvm::Value *InRegs = 0;
2442 llvm::Value *gp_offset_p = 0, *gp_offset = 0;
2443 llvm::Value *fp_offset_p = 0, *fp_offset = 0;
2444 if (neededInt) {
2445 gp_offset_p = CGF.Builder.CreateStructGEP(VAListAddr, 0, "gp_offset_p");
2446 gp_offset = CGF.Builder.CreateLoad(gp_offset_p, "gp_offset");
Chris Lattner1090a9b2010-06-28 21:43:59 +00002447 InRegs = llvm::ConstantInt::get(CGF.Int32Ty, 48 - neededInt * 8);
2448 InRegs = CGF.Builder.CreateICmpULE(gp_offset, InRegs, "fits_in_gp");
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002449 }
2450
2451 if (neededSSE) {
2452 fp_offset_p = CGF.Builder.CreateStructGEP(VAListAddr, 1, "fp_offset_p");
2453 fp_offset = CGF.Builder.CreateLoad(fp_offset_p, "fp_offset");
2454 llvm::Value *FitsInFP =
Chris Lattner1090a9b2010-06-28 21:43:59 +00002455 llvm::ConstantInt::get(CGF.Int32Ty, 176 - neededSSE * 16);
2456 FitsInFP = CGF.Builder.CreateICmpULE(fp_offset, FitsInFP, "fits_in_fp");
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002457 InRegs = InRegs ? CGF.Builder.CreateAnd(InRegs, FitsInFP) : FitsInFP;
2458 }
2459
2460 llvm::BasicBlock *InRegBlock = CGF.createBasicBlock("vaarg.in_reg");
2461 llvm::BasicBlock *InMemBlock = CGF.createBasicBlock("vaarg.in_mem");
2462 llvm::BasicBlock *ContBlock = CGF.createBasicBlock("vaarg.end");
2463 CGF.Builder.CreateCondBr(InRegs, InRegBlock, InMemBlock);
2464
2465 // Emit code to load the value if it was passed in registers.
2466
2467 CGF.EmitBlock(InRegBlock);
2468
2469 // AMD64-ABI 3.5.7p5: Step 4. Fetch type from l->reg_save_area with
2470 // an offset of l->gp_offset and/or l->fp_offset. This may require
2471 // copying to a temporary location in case the parameter is passed
2472 // in different register classes or requires an alignment greater
2473 // than 8 for general purpose registers and 16 for XMM registers.
2474 //
2475 // FIXME: This really results in shameful code when we end up needing to
2476 // collect arguments from different places; often what should result in a
2477 // simple assembling of a structure from scattered addresses has many more
2478 // loads than necessary. Can we clean this up?
Chris Lattner2acc6e32011-07-18 04:24:23 +00002479 llvm::Type *LTy = CGF.ConvertTypeForMem(Ty);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002480 llvm::Value *RegAddr =
2481 CGF.Builder.CreateLoad(CGF.Builder.CreateStructGEP(VAListAddr, 3),
2482 "reg_save_area");
2483 if (neededInt && neededSSE) {
2484 // FIXME: Cleanup.
Chris Lattner800588f2010-07-29 06:26:06 +00002485 assert(AI.isDirect() && "Unexpected ABI info for mixed regs");
Chris Lattner2acc6e32011-07-18 04:24:23 +00002486 llvm::StructType *ST = cast<llvm::StructType>(AI.getCoerceToType());
Eli Friedmaneeb00622013-06-07 23:20:55 +00002487 llvm::Value *Tmp = CGF.CreateMemTemp(Ty);
2488 Tmp = CGF.Builder.CreateBitCast(Tmp, ST->getPointerTo());
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002489 assert(ST->getNumElements() == 2 && "Unexpected ABI info for mixed regs");
Chris Lattner2acc6e32011-07-18 04:24:23 +00002490 llvm::Type *TyLo = ST->getElementType(0);
2491 llvm::Type *TyHi = ST->getElementType(1);
Chris Lattnera8b7a7d2010-08-26 06:28:35 +00002492 assert((TyLo->isFPOrFPVectorTy() ^ TyHi->isFPOrFPVectorTy()) &&
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002493 "Unexpected ABI info for mixed regs");
Chris Lattner2acc6e32011-07-18 04:24:23 +00002494 llvm::Type *PTyLo = llvm::PointerType::getUnqual(TyLo);
2495 llvm::Type *PTyHi = llvm::PointerType::getUnqual(TyHi);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002496 llvm::Value *GPAddr = CGF.Builder.CreateGEP(RegAddr, gp_offset);
2497 llvm::Value *FPAddr = CGF.Builder.CreateGEP(RegAddr, fp_offset);
Duncan Sandsf177d9d2010-02-15 16:14:01 +00002498 llvm::Value *RegLoAddr = TyLo->isFloatingPointTy() ? FPAddr : GPAddr;
2499 llvm::Value *RegHiAddr = TyLo->isFloatingPointTy() ? GPAddr : FPAddr;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002500 llvm::Value *V =
2501 CGF.Builder.CreateLoad(CGF.Builder.CreateBitCast(RegLoAddr, PTyLo));
2502 CGF.Builder.CreateStore(V, CGF.Builder.CreateStructGEP(Tmp, 0));
2503 V = CGF.Builder.CreateLoad(CGF.Builder.CreateBitCast(RegHiAddr, PTyHi));
2504 CGF.Builder.CreateStore(V, CGF.Builder.CreateStructGEP(Tmp, 1));
2505
Owen Andersona1cf15f2009-07-14 23:10:40 +00002506 RegAddr = CGF.Builder.CreateBitCast(Tmp,
Owen Anderson96e0fc72009-07-29 22:16:19 +00002507 llvm::PointerType::getUnqual(LTy));
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002508 } else if (neededInt) {
2509 RegAddr = CGF.Builder.CreateGEP(RegAddr, gp_offset);
2510 RegAddr = CGF.Builder.CreateBitCast(RegAddr,
Owen Anderson96e0fc72009-07-29 22:16:19 +00002511 llvm::PointerType::getUnqual(LTy));
Eli Friedmaneeb00622013-06-07 23:20:55 +00002512
2513 // Copy to a temporary if necessary to ensure the appropriate alignment.
2514 std::pair<CharUnits, CharUnits> SizeAlign =
2515 CGF.getContext().getTypeInfoInChars(Ty);
2516 uint64_t TySize = SizeAlign.first.getQuantity();
2517 unsigned TyAlign = SizeAlign.second.getQuantity();
2518 if (TyAlign > 8) {
Eli Friedmaneeb00622013-06-07 23:20:55 +00002519 llvm::Value *Tmp = CGF.CreateMemTemp(Ty);
2520 CGF.Builder.CreateMemCpy(Tmp, RegAddr, TySize, 8, false);
2521 RegAddr = Tmp;
2522 }
Chris Lattnerdce5ad02010-06-28 20:05:43 +00002523 } else if (neededSSE == 1) {
2524 RegAddr = CGF.Builder.CreateGEP(RegAddr, fp_offset);
2525 RegAddr = CGF.Builder.CreateBitCast(RegAddr,
2526 llvm::PointerType::getUnqual(LTy));
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002527 } else {
Chris Lattnerdce5ad02010-06-28 20:05:43 +00002528 assert(neededSSE == 2 && "Invalid number of needed registers!");
2529 // SSE registers are spaced 16 bytes apart in the register save
2530 // area, we need to collect the two eightbytes together.
2531 llvm::Value *RegAddrLo = CGF.Builder.CreateGEP(RegAddr, fp_offset);
Chris Lattner1090a9b2010-06-28 21:43:59 +00002532 llvm::Value *RegAddrHi = CGF.Builder.CreateConstGEP1_32(RegAddrLo, 16);
Chris Lattner8b418682012-02-07 00:39:47 +00002533 llvm::Type *DoubleTy = CGF.DoubleTy;
Chris Lattner2acc6e32011-07-18 04:24:23 +00002534 llvm::Type *DblPtrTy =
Chris Lattnerdce5ad02010-06-28 20:05:43 +00002535 llvm::PointerType::getUnqual(DoubleTy);
Eli Friedmaneeb00622013-06-07 23:20:55 +00002536 llvm::StructType *ST = llvm::StructType::get(DoubleTy, DoubleTy, NULL);
2537 llvm::Value *V, *Tmp = CGF.CreateMemTemp(Ty);
2538 Tmp = CGF.Builder.CreateBitCast(Tmp, ST->getPointerTo());
Chris Lattnerdce5ad02010-06-28 20:05:43 +00002539 V = CGF.Builder.CreateLoad(CGF.Builder.CreateBitCast(RegAddrLo,
2540 DblPtrTy));
2541 CGF.Builder.CreateStore(V, CGF.Builder.CreateStructGEP(Tmp, 0));
2542 V = CGF.Builder.CreateLoad(CGF.Builder.CreateBitCast(RegAddrHi,
2543 DblPtrTy));
2544 CGF.Builder.CreateStore(V, CGF.Builder.CreateStructGEP(Tmp, 1));
2545 RegAddr = CGF.Builder.CreateBitCast(Tmp,
2546 llvm::PointerType::getUnqual(LTy));
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002547 }
2548
2549 // AMD64-ABI 3.5.7p5: Step 5. Set:
2550 // l->gp_offset = l->gp_offset + num_gp * 8
2551 // l->fp_offset = l->fp_offset + num_fp * 16.
2552 if (neededInt) {
Chris Lattner77b89b82010-06-27 07:15:29 +00002553 llvm::Value *Offset = llvm::ConstantInt::get(CGF.Int32Ty, neededInt * 8);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002554 CGF.Builder.CreateStore(CGF.Builder.CreateAdd(gp_offset, Offset),
2555 gp_offset_p);
2556 }
2557 if (neededSSE) {
Chris Lattner77b89b82010-06-27 07:15:29 +00002558 llvm::Value *Offset = llvm::ConstantInt::get(CGF.Int32Ty, neededSSE * 16);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002559 CGF.Builder.CreateStore(CGF.Builder.CreateAdd(fp_offset, Offset),
2560 fp_offset_p);
2561 }
2562 CGF.EmitBranch(ContBlock);
2563
2564 // Emit code to load the value if it was passed in memory.
2565
2566 CGF.EmitBlock(InMemBlock);
2567 llvm::Value *MemAddr = EmitVAArgFromMemory(VAListAddr, Ty, CGF);
2568
2569 // Return the appropriate result.
2570
2571 CGF.EmitBlock(ContBlock);
Jay Foadbbf3bac2011-03-30 11:28:58 +00002572 llvm::PHINode *ResAddr = CGF.Builder.CreatePHI(RegAddr->getType(), 2,
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002573 "vaarg.addr");
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002574 ResAddr->addIncoming(RegAddr, InRegBlock);
2575 ResAddr->addIncoming(MemAddr, InMemBlock);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00002576 return ResAddr;
2577}
2578
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00002579ABIArgInfo WinX86_64ABIInfo::classify(QualType Ty, bool IsReturnType) const {
NAKAMURA Takumia7573222011-01-17 22:56:31 +00002580
2581 if (Ty->isVoidType())
2582 return ABIArgInfo::getIgnore();
2583
2584 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
2585 Ty = EnumTy->getDecl()->getIntegerType();
2586
2587 uint64_t Size = getContext().getTypeSize(Ty);
2588
2589 if (const RecordType *RT = Ty->getAs<RecordType>()) {
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00002590 if (IsReturnType) {
2591 if (isRecordReturnIndirect(RT, CGT))
2592 return ABIArgInfo::getIndirect(0, false);
2593 } else {
2594 if (CGCXXABI::RecordArgABI RAA = getRecordArgABI(RT, CGT))
2595 return ABIArgInfo::getIndirect(0, RAA == CGCXXABI::RAA_DirectInMemory);
2596 }
2597
2598 if (RT->getDecl()->hasFlexibleArrayMember())
NAKAMURA Takumia7573222011-01-17 22:56:31 +00002599 return ABIArgInfo::getIndirect(0, /*ByVal=*/false);
2600
NAKAMURA Takumi6f174332011-02-22 03:56:57 +00002601 // FIXME: mingw-w64-gcc emits 128-bit struct as i128
John McCall64aa4b32013-04-16 22:48:15 +00002602 if (Size == 128 && getTarget().getTriple().getOS() == llvm::Triple::MinGW32)
NAKAMURA Takumi6f174332011-02-22 03:56:57 +00002603 return ABIArgInfo::getDirect(llvm::IntegerType::get(getVMContext(),
2604 Size));
2605
2606 // MS x64 ABI requirement: "Any argument that doesn't fit in 8 bytes, or is
2607 // not 1, 2, 4, or 8 bytes, must be passed by reference."
2608 if (Size <= 64 &&
NAKAMURA Takumiff8be0e2011-01-19 00:11:33 +00002609 (Size & (Size - 1)) == 0)
NAKAMURA Takumia7573222011-01-17 22:56:31 +00002610 return ABIArgInfo::getDirect(llvm::IntegerType::get(getVMContext(),
2611 Size));
2612
2613 return ABIArgInfo::getIndirect(0, /*ByVal=*/false);
2614 }
2615
2616 if (Ty->isPromotableIntegerType())
2617 return ABIArgInfo::getExtend();
2618
2619 return ABIArgInfo::getDirect();
2620}
2621
2622void WinX86_64ABIInfo::computeInfo(CGFunctionInfo &FI) const {
2623
2624 QualType RetTy = FI.getReturnType();
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00002625 FI.getReturnInfo() = classify(RetTy, true);
NAKAMURA Takumia7573222011-01-17 22:56:31 +00002626
NAKAMURA Takumia7573222011-01-17 22:56:31 +00002627 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
2628 it != ie; ++it)
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00002629 it->info = classify(it->type, false);
NAKAMURA Takumia7573222011-01-17 22:56:31 +00002630}
2631
Chris Lattnerf13721d2010-08-31 16:44:54 +00002632llvm::Value *WinX86_64ABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
2633 CodeGenFunction &CGF) const {
Chris Lattner8b418682012-02-07 00:39:47 +00002634 llvm::Type *BPP = CGF.Int8PtrPtrTy;
Chris Lattnerdce5ad02010-06-28 20:05:43 +00002635
Chris Lattnerf13721d2010-08-31 16:44:54 +00002636 CGBuilderTy &Builder = CGF.Builder;
2637 llvm::Value *VAListAddrAsBPP = Builder.CreateBitCast(VAListAddr, BPP,
2638 "ap");
2639 llvm::Value *Addr = Builder.CreateLoad(VAListAddrAsBPP, "ap.cur");
2640 llvm::Type *PTy =
2641 llvm::PointerType::getUnqual(CGF.ConvertType(Ty));
2642 llvm::Value *AddrTyped = Builder.CreateBitCast(Addr, PTy);
2643
2644 uint64_t Offset =
2645 llvm::RoundUpToAlignment(CGF.getContext().getTypeSize(Ty) / 8, 8);
2646 llvm::Value *NextAddr =
2647 Builder.CreateGEP(Addr, llvm::ConstantInt::get(CGF.Int32Ty, Offset),
2648 "ap.next");
2649 Builder.CreateStore(NextAddr, VAListAddrAsBPP);
2650
2651 return AddrTyped;
2652}
Chris Lattnerdce5ad02010-06-28 20:05:43 +00002653
Benjamin Kramerc6f84cf2012-10-20 13:02:06 +00002654namespace {
2655
Derek Schuff263366f2012-10-16 22:30:41 +00002656class NaClX86_64ABIInfo : public ABIInfo {
2657 public:
2658 NaClX86_64ABIInfo(CodeGen::CodeGenTypes &CGT, bool HasAVX)
2659 : ABIInfo(CGT), PInfo(CGT), NInfo(CGT, HasAVX) {}
2660 virtual void computeInfo(CGFunctionInfo &FI) const;
2661 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
2662 CodeGenFunction &CGF) const;
2663 private:
2664 PNaClABIInfo PInfo; // Used for generating calls with pnaclcall callingconv.
2665 X86_64ABIInfo NInfo; // Used for everything else.
2666};
2667
2668class NaClX86_64TargetCodeGenInfo : public TargetCodeGenInfo {
2669 public:
2670 NaClX86_64TargetCodeGenInfo(CodeGen::CodeGenTypes &CGT, bool HasAVX)
2671 : TargetCodeGenInfo(new NaClX86_64ABIInfo(CGT, HasAVX)) {}
2672};
2673
Benjamin Kramerc6f84cf2012-10-20 13:02:06 +00002674}
2675
Derek Schuff263366f2012-10-16 22:30:41 +00002676void NaClX86_64ABIInfo::computeInfo(CGFunctionInfo &FI) const {
2677 if (FI.getASTCallingConvention() == CC_PnaclCall)
2678 PInfo.computeInfo(FI);
2679 else
2680 NInfo.computeInfo(FI);
2681}
2682
2683llvm::Value *NaClX86_64ABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
2684 CodeGenFunction &CGF) const {
2685 // Always use the native convention; calling pnacl-style varargs functions
2686 // is unuspported.
2687 return NInfo.EmitVAArg(VAListAddr, Ty, CGF);
2688}
2689
2690
John McCallec853ba2010-03-11 00:10:12 +00002691// PowerPC-32
2692
2693namespace {
2694class PPC32TargetCodeGenInfo : public DefaultTargetCodeGenInfo {
2695public:
Chris Lattnerea044322010-07-29 02:01:43 +00002696 PPC32TargetCodeGenInfo(CodeGenTypes &CGT) : DefaultTargetCodeGenInfo(CGT) {}
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002697
John McCallec853ba2010-03-11 00:10:12 +00002698 int getDwarfEHStackPointer(CodeGen::CodeGenModule &M) const {
2699 // This is recovered from gcc output.
2700 return 1; // r1 is the dedicated stack pointer
2701 }
2702
2703 bool initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002704 llvm::Value *Address) const;
John McCallec853ba2010-03-11 00:10:12 +00002705};
2706
2707}
2708
2709bool
2710PPC32TargetCodeGenInfo::initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
2711 llvm::Value *Address) const {
2712 // This is calculated from the LLVM and GCC tables and verified
2713 // against gcc output. AFAIK all ABIs use the same encoding.
2714
2715 CodeGen::CGBuilderTy &Builder = CGF.Builder;
John McCallec853ba2010-03-11 00:10:12 +00002716
Chris Lattner8b418682012-02-07 00:39:47 +00002717 llvm::IntegerType *i8 = CGF.Int8Ty;
John McCallec853ba2010-03-11 00:10:12 +00002718 llvm::Value *Four8 = llvm::ConstantInt::get(i8, 4);
2719 llvm::Value *Eight8 = llvm::ConstantInt::get(i8, 8);
2720 llvm::Value *Sixteen8 = llvm::ConstantInt::get(i8, 16);
2721
2722 // 0-31: r0-31, the 4-byte general-purpose registers
John McCallaeeb7012010-05-27 06:19:26 +00002723 AssignToArrayRange(Builder, Address, Four8, 0, 31);
John McCallec853ba2010-03-11 00:10:12 +00002724
2725 // 32-63: fp0-31, the 8-byte floating-point registers
John McCallaeeb7012010-05-27 06:19:26 +00002726 AssignToArrayRange(Builder, Address, Eight8, 32, 63);
John McCallec853ba2010-03-11 00:10:12 +00002727
2728 // 64-76 are various 4-byte special-purpose registers:
2729 // 64: mq
2730 // 65: lr
2731 // 66: ctr
2732 // 67: ap
2733 // 68-75 cr0-7
2734 // 76: xer
John McCallaeeb7012010-05-27 06:19:26 +00002735 AssignToArrayRange(Builder, Address, Four8, 64, 76);
John McCallec853ba2010-03-11 00:10:12 +00002736
2737 // 77-108: v0-31, the 16-byte vector registers
John McCallaeeb7012010-05-27 06:19:26 +00002738 AssignToArrayRange(Builder, Address, Sixteen8, 77, 108);
John McCallec853ba2010-03-11 00:10:12 +00002739
2740 // 109: vrsave
2741 // 110: vscr
2742 // 111: spe_acc
2743 // 112: spefscr
2744 // 113: sfp
John McCallaeeb7012010-05-27 06:19:26 +00002745 AssignToArrayRange(Builder, Address, Four8, 109, 113);
John McCallec853ba2010-03-11 00:10:12 +00002746
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00002747 return false;
John McCallec853ba2010-03-11 00:10:12 +00002748}
2749
Roman Divacky0fbc4b92012-05-09 18:22:46 +00002750// PowerPC-64
2751
2752namespace {
Bill Schmidt2fc107f2012-10-03 19:18:57 +00002753/// PPC64_SVR4_ABIInfo - The 64-bit PowerPC ELF (SVR4) ABI information.
2754class PPC64_SVR4_ABIInfo : public DefaultABIInfo {
2755
2756public:
2757 PPC64_SVR4_ABIInfo(CodeGen::CodeGenTypes &CGT) : DefaultABIInfo(CGT) {}
2758
Ulrich Weigand71c0dcc2012-11-05 19:13:42 +00002759 bool isPromotableTypeForABI(QualType Ty) const;
2760
2761 ABIArgInfo classifyReturnType(QualType RetTy) const;
2762 ABIArgInfo classifyArgumentType(QualType Ty) const;
2763
Bill Schmidtb1f5fe02012-10-12 19:26:17 +00002764 // TODO: We can add more logic to computeInfo to improve performance.
2765 // Example: For aggregate arguments that fit in a register, we could
2766 // use getDirectInReg (as is done below for structs containing a single
2767 // floating-point value) to avoid pushing them to memory on function
2768 // entry. This would require changing the logic in PPCISelLowering
2769 // when lowering the parameters in the caller and args in the callee.
2770 virtual void computeInfo(CGFunctionInfo &FI) const {
2771 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
2772 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
2773 it != ie; ++it) {
2774 // We rely on the default argument classification for the most part.
2775 // One exception: An aggregate containing a single floating-point
2776 // item must be passed in a register if one is available.
2777 const Type *T = isSingleElementStruct(it->type, getContext());
2778 if (T) {
2779 const BuiltinType *BT = T->getAs<BuiltinType>();
2780 if (BT && BT->isFloatingPoint()) {
2781 QualType QT(T, 0);
2782 it->info = ABIArgInfo::getDirectInReg(CGT.ConvertType(QT));
2783 continue;
2784 }
2785 }
2786 it->info = classifyArgumentType(it->type);
2787 }
2788 }
Bill Schmidt2fc107f2012-10-03 19:18:57 +00002789
2790 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr,
2791 QualType Ty,
2792 CodeGenFunction &CGF) const;
2793};
2794
2795class PPC64_SVR4_TargetCodeGenInfo : public TargetCodeGenInfo {
2796public:
2797 PPC64_SVR4_TargetCodeGenInfo(CodeGenTypes &CGT)
2798 : TargetCodeGenInfo(new PPC64_SVR4_ABIInfo(CGT)) {}
2799
2800 int getDwarfEHStackPointer(CodeGen::CodeGenModule &M) const {
2801 // This is recovered from gcc output.
2802 return 1; // r1 is the dedicated stack pointer
2803 }
2804
2805 bool initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
2806 llvm::Value *Address) const;
2807};
2808
Roman Divacky0fbc4b92012-05-09 18:22:46 +00002809class PPC64TargetCodeGenInfo : public DefaultTargetCodeGenInfo {
2810public:
2811 PPC64TargetCodeGenInfo(CodeGenTypes &CGT) : DefaultTargetCodeGenInfo(CGT) {}
2812
2813 int getDwarfEHStackPointer(CodeGen::CodeGenModule &M) const {
2814 // This is recovered from gcc output.
2815 return 1; // r1 is the dedicated stack pointer
2816 }
2817
2818 bool initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
2819 llvm::Value *Address) const;
2820};
2821
2822}
2823
Ulrich Weigand71c0dcc2012-11-05 19:13:42 +00002824// Return true if the ABI requires Ty to be passed sign- or zero-
2825// extended to 64 bits.
2826bool
2827PPC64_SVR4_ABIInfo::isPromotableTypeForABI(QualType Ty) const {
2828 // Treat an enum type as its underlying type.
2829 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
2830 Ty = EnumTy->getDecl()->getIntegerType();
2831
2832 // Promotable integer types are required to be promoted by the ABI.
2833 if (Ty->isPromotableIntegerType())
2834 return true;
2835
2836 // In addition to the usual promotable integer types, we also need to
2837 // extend all 32-bit types, since the ABI requires promotion to 64 bits.
2838 if (const BuiltinType *BT = Ty->getAs<BuiltinType>())
2839 switch (BT->getKind()) {
2840 case BuiltinType::Int:
2841 case BuiltinType::UInt:
2842 return true;
2843 default:
2844 break;
2845 }
2846
2847 return false;
2848}
2849
2850ABIArgInfo
2851PPC64_SVR4_ABIInfo::classifyArgumentType(QualType Ty) const {
Bill Schmidtc9715fc2012-11-27 02:46:43 +00002852 if (Ty->isAnyComplexType())
2853 return ABIArgInfo::getDirect();
2854
Ulrich Weigand71c0dcc2012-11-05 19:13:42 +00002855 if (isAggregateTypeForABI(Ty)) {
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00002856 if (CGCXXABI::RecordArgABI RAA = getRecordArgABI(Ty, CGT))
2857 return ABIArgInfo::getIndirect(0, RAA == CGCXXABI::RAA_DirectInMemory);
Ulrich Weigand71c0dcc2012-11-05 19:13:42 +00002858
2859 return ABIArgInfo::getIndirect(0);
2860 }
2861
2862 return (isPromotableTypeForABI(Ty) ?
2863 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
2864}
2865
2866ABIArgInfo
2867PPC64_SVR4_ABIInfo::classifyReturnType(QualType RetTy) const {
2868 if (RetTy->isVoidType())
2869 return ABIArgInfo::getIgnore();
2870
Bill Schmidt9e6111a2012-12-17 04:20:17 +00002871 if (RetTy->isAnyComplexType())
2872 return ABIArgInfo::getDirect();
2873
Ulrich Weigand71c0dcc2012-11-05 19:13:42 +00002874 if (isAggregateTypeForABI(RetTy))
2875 return ABIArgInfo::getIndirect(0);
2876
2877 return (isPromotableTypeForABI(RetTy) ?
2878 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
2879}
2880
Bill Schmidt2fc107f2012-10-03 19:18:57 +00002881// Based on ARMABIInfo::EmitVAArg, adjusted for 64-bit machine.
2882llvm::Value *PPC64_SVR4_ABIInfo::EmitVAArg(llvm::Value *VAListAddr,
2883 QualType Ty,
2884 CodeGenFunction &CGF) const {
2885 llvm::Type *BP = CGF.Int8PtrTy;
2886 llvm::Type *BPP = CGF.Int8PtrPtrTy;
2887
2888 CGBuilderTy &Builder = CGF.Builder;
2889 llvm::Value *VAListAddrAsBPP = Builder.CreateBitCast(VAListAddr, BPP, "ap");
2890 llvm::Value *Addr = Builder.CreateLoad(VAListAddrAsBPP, "ap.cur");
2891
Bill Schmidt19f8e852013-01-14 17:45:36 +00002892 // Update the va_list pointer. The pointer should be bumped by the
2893 // size of the object. We can trust getTypeSize() except for a complex
2894 // type whose base type is smaller than a doubleword. For these, the
2895 // size of the object is 16 bytes; see below for further explanation.
Bill Schmidt2fc107f2012-10-03 19:18:57 +00002896 unsigned SizeInBytes = CGF.getContext().getTypeSize(Ty) / 8;
Bill Schmidt19f8e852013-01-14 17:45:36 +00002897 QualType BaseTy;
2898 unsigned CplxBaseSize = 0;
2899
2900 if (const ComplexType *CTy = Ty->getAs<ComplexType>()) {
2901 BaseTy = CTy->getElementType();
2902 CplxBaseSize = CGF.getContext().getTypeSize(BaseTy) / 8;
2903 if (CplxBaseSize < 8)
2904 SizeInBytes = 16;
2905 }
2906
Bill Schmidt2fc107f2012-10-03 19:18:57 +00002907 unsigned Offset = llvm::RoundUpToAlignment(SizeInBytes, 8);
2908 llvm::Value *NextAddr =
2909 Builder.CreateGEP(Addr, llvm::ConstantInt::get(CGF.Int64Ty, Offset),
2910 "ap.next");
2911 Builder.CreateStore(NextAddr, VAListAddrAsBPP);
2912
Bill Schmidt19f8e852013-01-14 17:45:36 +00002913 // If we have a complex type and the base type is smaller than 8 bytes,
2914 // the ABI calls for the real and imaginary parts to be right-adjusted
2915 // in separate doublewords. However, Clang expects us to produce a
2916 // pointer to a structure with the two parts packed tightly. So generate
2917 // loads of the real and imaginary parts relative to the va_list pointer,
2918 // and store them to a temporary structure.
2919 if (CplxBaseSize && CplxBaseSize < 8) {
2920 llvm::Value *RealAddr = Builder.CreatePtrToInt(Addr, CGF.Int64Ty);
2921 llvm::Value *ImagAddr = RealAddr;
2922 RealAddr = Builder.CreateAdd(RealAddr, Builder.getInt64(8 - CplxBaseSize));
2923 ImagAddr = Builder.CreateAdd(ImagAddr, Builder.getInt64(16 - CplxBaseSize));
2924 llvm::Type *PBaseTy = llvm::PointerType::getUnqual(CGF.ConvertType(BaseTy));
2925 RealAddr = Builder.CreateIntToPtr(RealAddr, PBaseTy);
2926 ImagAddr = Builder.CreateIntToPtr(ImagAddr, PBaseTy);
2927 llvm::Value *Real = Builder.CreateLoad(RealAddr, false, ".vareal");
2928 llvm::Value *Imag = Builder.CreateLoad(ImagAddr, false, ".vaimag");
2929 llvm::Value *Ptr = CGF.CreateTempAlloca(CGT.ConvertTypeForMem(Ty),
2930 "vacplx");
2931 llvm::Value *RealPtr = Builder.CreateStructGEP(Ptr, 0, ".real");
2932 llvm::Value *ImagPtr = Builder.CreateStructGEP(Ptr, 1, ".imag");
2933 Builder.CreateStore(Real, RealPtr, false);
2934 Builder.CreateStore(Imag, ImagPtr, false);
2935 return Ptr;
2936 }
2937
Bill Schmidt2fc107f2012-10-03 19:18:57 +00002938 // If the argument is smaller than 8 bytes, it is right-adjusted in
2939 // its doubleword slot. Adjust the pointer to pick it up from the
2940 // correct offset.
2941 if (SizeInBytes < 8) {
2942 llvm::Value *AddrAsInt = Builder.CreatePtrToInt(Addr, CGF.Int64Ty);
2943 AddrAsInt = Builder.CreateAdd(AddrAsInt, Builder.getInt64(8 - SizeInBytes));
2944 Addr = Builder.CreateIntToPtr(AddrAsInt, BP);
2945 }
2946
2947 llvm::Type *PTy = llvm::PointerType::getUnqual(CGF.ConvertType(Ty));
2948 return Builder.CreateBitCast(Addr, PTy);
2949}
2950
2951static bool
2952PPC64_initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
2953 llvm::Value *Address) {
Roman Divacky0fbc4b92012-05-09 18:22:46 +00002954 // This is calculated from the LLVM and GCC tables and verified
2955 // against gcc output. AFAIK all ABIs use the same encoding.
2956
2957 CodeGen::CGBuilderTy &Builder = CGF.Builder;
2958
2959 llvm::IntegerType *i8 = CGF.Int8Ty;
2960 llvm::Value *Four8 = llvm::ConstantInt::get(i8, 4);
2961 llvm::Value *Eight8 = llvm::ConstantInt::get(i8, 8);
2962 llvm::Value *Sixteen8 = llvm::ConstantInt::get(i8, 16);
2963
2964 // 0-31: r0-31, the 8-byte general-purpose registers
2965 AssignToArrayRange(Builder, Address, Eight8, 0, 31);
2966
2967 // 32-63: fp0-31, the 8-byte floating-point registers
2968 AssignToArrayRange(Builder, Address, Eight8, 32, 63);
2969
2970 // 64-76 are various 4-byte special-purpose registers:
2971 // 64: mq
2972 // 65: lr
2973 // 66: ctr
2974 // 67: ap
2975 // 68-75 cr0-7
2976 // 76: xer
2977 AssignToArrayRange(Builder, Address, Four8, 64, 76);
2978
2979 // 77-108: v0-31, the 16-byte vector registers
2980 AssignToArrayRange(Builder, Address, Sixteen8, 77, 108);
2981
2982 // 109: vrsave
2983 // 110: vscr
2984 // 111: spe_acc
2985 // 112: spefscr
2986 // 113: sfp
2987 AssignToArrayRange(Builder, Address, Four8, 109, 113);
2988
2989 return false;
2990}
John McCallec853ba2010-03-11 00:10:12 +00002991
Bill Schmidt2fc107f2012-10-03 19:18:57 +00002992bool
2993PPC64_SVR4_TargetCodeGenInfo::initDwarfEHRegSizeTable(
2994 CodeGen::CodeGenFunction &CGF,
2995 llvm::Value *Address) const {
2996
2997 return PPC64_initDwarfEHRegSizeTable(CGF, Address);
2998}
2999
3000bool
3001PPC64TargetCodeGenInfo::initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
3002 llvm::Value *Address) const {
3003
3004 return PPC64_initDwarfEHRegSizeTable(CGF, Address);
3005}
3006
Chris Lattnerdce5ad02010-06-28 20:05:43 +00003007//===----------------------------------------------------------------------===//
Daniel Dunbar34d91fd2009-09-12 00:59:49 +00003008// ARM ABI Implementation
Chris Lattnerdce5ad02010-06-28 20:05:43 +00003009//===----------------------------------------------------------------------===//
Daniel Dunbar34d91fd2009-09-12 00:59:49 +00003010
3011namespace {
3012
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003013class ARMABIInfo : public ABIInfo {
Daniel Dunbar5e7bace2009-09-12 01:00:39 +00003014public:
3015 enum ABIKind {
3016 APCS = 0,
3017 AAPCS = 1,
3018 AAPCS_VFP
3019 };
3020
3021private:
3022 ABIKind Kind;
3023
3024public:
John McCallbd7370a2013-02-28 19:01:20 +00003025 ARMABIInfo(CodeGenTypes &CGT, ABIKind _Kind) : ABIInfo(CGT), Kind(_Kind) {
3026 setRuntimeCC();
3027 }
Daniel Dunbar5e7bace2009-09-12 01:00:39 +00003028
John McCall49e34be2011-08-30 01:42:09 +00003029 bool isEABI() const {
John McCall64aa4b32013-04-16 22:48:15 +00003030 StringRef Env = getTarget().getTriple().getEnvironmentName();
Logan Chien94a71422012-09-02 09:30:11 +00003031 return (Env == "gnueabi" || Env == "eabi" ||
3032 Env == "android" || Env == "androideabi");
John McCall49e34be2011-08-30 01:42:09 +00003033 }
3034
Daniel Dunbar5e7bace2009-09-12 01:00:39 +00003035private:
3036 ABIKind getABIKind() const { return Kind; }
3037
Chris Lattnera3c109b2010-07-29 02:16:43 +00003038 ABIArgInfo classifyReturnType(QualType RetTy) const;
Manman Ren710c5172012-10-31 19:02:26 +00003039 ABIArgInfo classifyArgumentType(QualType RetTy, int *VFPRegs,
3040 unsigned &AllocatedVFP,
Manman Renb3fa55f2012-10-30 23:21:41 +00003041 bool &IsHA) const;
Manman Ren97f81572012-10-16 19:18:39 +00003042 bool isIllegalVectorType(QualType Ty) const;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003043
Chris Lattneree5dcd02010-07-29 02:31:05 +00003044 virtual void computeInfo(CGFunctionInfo &FI) const;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003045
3046 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
3047 CodeGenFunction &CGF) const;
John McCallbd7370a2013-02-28 19:01:20 +00003048
3049 llvm::CallingConv::ID getLLVMDefaultCC() const;
3050 llvm::CallingConv::ID getABIDefaultCC() const;
3051 void setRuntimeCC();
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003052};
3053
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00003054class ARMTargetCodeGenInfo : public TargetCodeGenInfo {
3055public:
Chris Lattnerea044322010-07-29 02:01:43 +00003056 ARMTargetCodeGenInfo(CodeGenTypes &CGT, ARMABIInfo::ABIKind K)
3057 :TargetCodeGenInfo(new ARMABIInfo(CGT, K)) {}
John McCall6374c332010-03-06 00:35:14 +00003058
John McCall49e34be2011-08-30 01:42:09 +00003059 const ARMABIInfo &getABIInfo() const {
3060 return static_cast<const ARMABIInfo&>(TargetCodeGenInfo::getABIInfo());
3061 }
3062
John McCall6374c332010-03-06 00:35:14 +00003063 int getDwarfEHStackPointer(CodeGen::CodeGenModule &M) const {
3064 return 13;
3065 }
Roman Divacky09345d12011-05-18 19:36:54 +00003066
Chris Lattner5f9e2722011-07-23 10:55:15 +00003067 StringRef getARCRetainAutoreleasedReturnValueMarker() const {
John McCallf85e1932011-06-15 23:02:42 +00003068 return "mov\tr7, r7\t\t@ marker for objc_retainAutoreleaseReturnValue";
3069 }
3070
Roman Divacky09345d12011-05-18 19:36:54 +00003071 bool initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
3072 llvm::Value *Address) const {
Chris Lattner8b418682012-02-07 00:39:47 +00003073 llvm::Value *Four8 = llvm::ConstantInt::get(CGF.Int8Ty, 4);
Roman Divacky09345d12011-05-18 19:36:54 +00003074
3075 // 0-15 are the 16 integer registers.
Chris Lattner8b418682012-02-07 00:39:47 +00003076 AssignToArrayRange(CGF.Builder, Address, Four8, 0, 15);
Roman Divacky09345d12011-05-18 19:36:54 +00003077 return false;
3078 }
John McCall49e34be2011-08-30 01:42:09 +00003079
3080 unsigned getSizeOfUnwindException() const {
3081 if (getABIInfo().isEABI()) return 88;
3082 return TargetCodeGenInfo::getSizeOfUnwindException();
3083 }
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00003084};
3085
Daniel Dunbar34d91fd2009-09-12 00:59:49 +00003086}
3087
Chris Lattneree5dcd02010-07-29 02:31:05 +00003088void ARMABIInfo::computeInfo(CGFunctionInfo &FI) const {
Manman Renb3fa55f2012-10-30 23:21:41 +00003089 // To correctly handle Homogeneous Aggregate, we need to keep track of the
Manman Ren710c5172012-10-31 19:02:26 +00003090 // VFP registers allocated so far.
Manman Renb3fa55f2012-10-30 23:21:41 +00003091 // C.1.vfp If the argument is a VFP CPRC and there are sufficient consecutive
3092 // VFP registers of the appropriate type unallocated then the argument is
3093 // allocated to the lowest-numbered sequence of such registers.
3094 // C.2.vfp If the argument is a VFP CPRC then any VFP registers that are
3095 // unallocated are marked as unavailable.
3096 unsigned AllocatedVFP = 0;
Manman Ren710c5172012-10-31 19:02:26 +00003097 int VFPRegs[16] = { 0 };
Chris Lattnera3c109b2010-07-29 02:16:43 +00003098 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003099 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
Manman Renb3fa55f2012-10-30 23:21:41 +00003100 it != ie; ++it) {
3101 unsigned PreAllocation = AllocatedVFP;
3102 bool IsHA = false;
3103 // 6.1.2.3 There is one VFP co-processor register class using registers
3104 // s0-s15 (d0-d7) for passing arguments.
3105 const unsigned NumVFPs = 16;
Manman Ren710c5172012-10-31 19:02:26 +00003106 it->info = classifyArgumentType(it->type, VFPRegs, AllocatedVFP, IsHA);
Manman Renb3fa55f2012-10-30 23:21:41 +00003107 // If we do not have enough VFP registers for the HA, any VFP registers
3108 // that are unallocated are marked as unavailable. To achieve this, we add
3109 // padding of (NumVFPs - PreAllocation) floats.
3110 if (IsHA && AllocatedVFP > NumVFPs && PreAllocation < NumVFPs) {
3111 llvm::Type *PaddingTy = llvm::ArrayType::get(
3112 llvm::Type::getFloatTy(getVMContext()), NumVFPs - PreAllocation);
3113 it->info = ABIArgInfo::getExpandWithPadding(false, PaddingTy);
3114 }
3115 }
Daniel Dunbar5e7bace2009-09-12 01:00:39 +00003116
Anton Korobeynikov414d8962011-04-14 20:06:49 +00003117 // Always honor user-specified calling convention.
3118 if (FI.getCallingConvention() != llvm::CallingConv::C)
3119 return;
3120
John McCallbd7370a2013-02-28 19:01:20 +00003121 llvm::CallingConv::ID cc = getRuntimeCC();
3122 if (cc != llvm::CallingConv::C)
3123 FI.setEffectiveCallingConvention(cc);
3124}
Rafael Espindola25117ab2010-06-16 16:13:39 +00003125
John McCallbd7370a2013-02-28 19:01:20 +00003126/// Return the default calling convention that LLVM will use.
3127llvm::CallingConv::ID ARMABIInfo::getLLVMDefaultCC() const {
3128 // The default calling convention that LLVM will infer.
John McCall64aa4b32013-04-16 22:48:15 +00003129 if (getTarget().getTriple().getEnvironmentName()=="gnueabihf")
John McCallbd7370a2013-02-28 19:01:20 +00003130 return llvm::CallingConv::ARM_AAPCS_VFP;
3131 else if (isEABI())
3132 return llvm::CallingConv::ARM_AAPCS;
3133 else
3134 return llvm::CallingConv::ARM_APCS;
3135}
3136
3137/// Return the calling convention that our ABI would like us to use
3138/// as the C calling convention.
3139llvm::CallingConv::ID ARMABIInfo::getABIDefaultCC() const {
Daniel Dunbar5e7bace2009-09-12 01:00:39 +00003140 switch (getABIKind()) {
John McCallbd7370a2013-02-28 19:01:20 +00003141 case APCS: return llvm::CallingConv::ARM_APCS;
3142 case AAPCS: return llvm::CallingConv::ARM_AAPCS;
3143 case AAPCS_VFP: return llvm::CallingConv::ARM_AAPCS_VFP;
Daniel Dunbar5e7bace2009-09-12 01:00:39 +00003144 }
John McCallbd7370a2013-02-28 19:01:20 +00003145 llvm_unreachable("bad ABI kind");
3146}
3147
3148void ARMABIInfo::setRuntimeCC() {
3149 assert(getRuntimeCC() == llvm::CallingConv::C);
3150
3151 // Don't muddy up the IR with a ton of explicit annotations if
3152 // they'd just match what LLVM will infer from the triple.
3153 llvm::CallingConv::ID abiCC = getABIDefaultCC();
3154 if (abiCC != getLLVMDefaultCC())
3155 RuntimeCC = abiCC;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003156}
3157
Bob Wilson194f06a2011-08-03 05:58:22 +00003158/// isHomogeneousAggregate - Return true if a type is an AAPCS-VFP homogeneous
3159/// aggregate. If HAMembers is non-null, the number of base elements
3160/// contained in the type is returned through it; this is used for the
3161/// recursive calls that check aggregate component types.
3162static bool isHomogeneousAggregate(QualType Ty, const Type *&Base,
3163 ASTContext &Context,
3164 uint64_t *HAMembers = 0) {
Anton Korobeynikoveaf856d2012-04-13 11:22:00 +00003165 uint64_t Members = 0;
Bob Wilson194f06a2011-08-03 05:58:22 +00003166 if (const ConstantArrayType *AT = Context.getAsConstantArrayType(Ty)) {
3167 if (!isHomogeneousAggregate(AT->getElementType(), Base, Context, &Members))
3168 return false;
3169 Members *= AT->getSize().getZExtValue();
3170 } else if (const RecordType *RT = Ty->getAs<RecordType>()) {
3171 const RecordDecl *RD = RT->getDecl();
Anton Korobeynikoveaf856d2012-04-13 11:22:00 +00003172 if (RD->hasFlexibleArrayMember())
Bob Wilson194f06a2011-08-03 05:58:22 +00003173 return false;
Anton Korobeynikoveaf856d2012-04-13 11:22:00 +00003174
Bob Wilson194f06a2011-08-03 05:58:22 +00003175 Members = 0;
3176 for (RecordDecl::field_iterator i = RD->field_begin(), e = RD->field_end();
3177 i != e; ++i) {
David Blaikie581deb32012-06-06 20:45:41 +00003178 const FieldDecl *FD = *i;
Bob Wilson194f06a2011-08-03 05:58:22 +00003179 uint64_t FldMembers;
3180 if (!isHomogeneousAggregate(FD->getType(), Base, Context, &FldMembers))
3181 return false;
Anton Korobeynikoveaf856d2012-04-13 11:22:00 +00003182
3183 Members = (RD->isUnion() ?
3184 std::max(Members, FldMembers) : Members + FldMembers);
Bob Wilson194f06a2011-08-03 05:58:22 +00003185 }
3186 } else {
3187 Members = 1;
3188 if (const ComplexType *CT = Ty->getAs<ComplexType>()) {
3189 Members = 2;
3190 Ty = CT->getElementType();
3191 }
3192
3193 // Homogeneous aggregates for AAPCS-VFP must have base types of float,
3194 // double, or 64-bit or 128-bit vectors.
3195 if (const BuiltinType *BT = Ty->getAs<BuiltinType>()) {
3196 if (BT->getKind() != BuiltinType::Float &&
Tim Northoveradfa45f2012-07-20 22:29:29 +00003197 BT->getKind() != BuiltinType::Double &&
3198 BT->getKind() != BuiltinType::LongDouble)
Bob Wilson194f06a2011-08-03 05:58:22 +00003199 return false;
3200 } else if (const VectorType *VT = Ty->getAs<VectorType>()) {
3201 unsigned VecSize = Context.getTypeSize(VT);
3202 if (VecSize != 64 && VecSize != 128)
3203 return false;
3204 } else {
3205 return false;
3206 }
3207
3208 // The base type must be the same for all members. Vector types of the
3209 // same total size are treated as being equivalent here.
3210 const Type *TyPtr = Ty.getTypePtr();
3211 if (!Base)
3212 Base = TyPtr;
3213 if (Base != TyPtr &&
3214 (!Base->isVectorType() || !TyPtr->isVectorType() ||
3215 Context.getTypeSize(Base) != Context.getTypeSize(TyPtr)))
3216 return false;
3217 }
3218
3219 // Homogeneous Aggregates can have at most 4 members of the base type.
3220 if (HAMembers)
3221 *HAMembers = Members;
Anton Korobeynikoveaf856d2012-04-13 11:22:00 +00003222
3223 return (Members > 0 && Members <= 4);
Bob Wilson194f06a2011-08-03 05:58:22 +00003224}
3225
Manman Ren710c5172012-10-31 19:02:26 +00003226/// markAllocatedVFPs - update VFPRegs according to the alignment and
3227/// number of VFP registers (unit is S register) requested.
3228static void markAllocatedVFPs(int *VFPRegs, unsigned &AllocatedVFP,
3229 unsigned Alignment,
3230 unsigned NumRequired) {
3231 // Early Exit.
3232 if (AllocatedVFP >= 16)
3233 return;
3234 // C.1.vfp If the argument is a VFP CPRC and there are sufficient consecutive
3235 // VFP registers of the appropriate type unallocated then the argument is
3236 // allocated to the lowest-numbered sequence of such registers.
3237 for (unsigned I = 0; I < 16; I += Alignment) {
3238 bool FoundSlot = true;
3239 for (unsigned J = I, JEnd = I + NumRequired; J < JEnd; J++)
3240 if (J >= 16 || VFPRegs[J]) {
3241 FoundSlot = false;
3242 break;
3243 }
3244 if (FoundSlot) {
3245 for (unsigned J = I, JEnd = I + NumRequired; J < JEnd; J++)
3246 VFPRegs[J] = 1;
3247 AllocatedVFP += NumRequired;
3248 return;
3249 }
3250 }
3251 // C.2.vfp If the argument is a VFP CPRC then any VFP registers that are
3252 // unallocated are marked as unavailable.
3253 for (unsigned I = 0; I < 16; I++)
3254 VFPRegs[I] = 1;
3255 AllocatedVFP = 17; // We do not have enough VFP registers.
3256}
3257
3258ABIArgInfo ARMABIInfo::classifyArgumentType(QualType Ty, int *VFPRegs,
3259 unsigned &AllocatedVFP,
Manman Renb3fa55f2012-10-30 23:21:41 +00003260 bool &IsHA) const {
3261 // We update number of allocated VFPs according to
3262 // 6.1.2.1 The following argument types are VFP CPRCs:
3263 // A single-precision floating-point type (including promoted
3264 // half-precision types); A double-precision floating-point type;
3265 // A 64-bit or 128-bit containerized vector type; Homogeneous Aggregate
3266 // with a Base Type of a single- or double-precision floating-point type,
3267 // 64-bit containerized vectors or 128-bit containerized vectors with one
3268 // to four Elements.
3269
Manman Ren97f81572012-10-16 19:18:39 +00003270 // Handle illegal vector types here.
3271 if (isIllegalVectorType(Ty)) {
3272 uint64_t Size = getContext().getTypeSize(Ty);
3273 if (Size <= 32) {
3274 llvm::Type *ResType =
3275 llvm::Type::getInt32Ty(getVMContext());
3276 return ABIArgInfo::getDirect(ResType);
3277 }
3278 if (Size == 64) {
3279 llvm::Type *ResType = llvm::VectorType::get(
3280 llvm::Type::getInt32Ty(getVMContext()), 2);
Manman Ren710c5172012-10-31 19:02:26 +00003281 markAllocatedVFPs(VFPRegs, AllocatedVFP, 2, 2);
Manman Ren97f81572012-10-16 19:18:39 +00003282 return ABIArgInfo::getDirect(ResType);
3283 }
3284 if (Size == 128) {
3285 llvm::Type *ResType = llvm::VectorType::get(
3286 llvm::Type::getInt32Ty(getVMContext()), 4);
Manman Ren710c5172012-10-31 19:02:26 +00003287 markAllocatedVFPs(VFPRegs, AllocatedVFP, 4, 4);
Manman Ren97f81572012-10-16 19:18:39 +00003288 return ABIArgInfo::getDirect(ResType);
3289 }
3290 return ABIArgInfo::getIndirect(0, /*ByVal=*/false);
3291 }
Manman Ren710c5172012-10-31 19:02:26 +00003292 // Update VFPRegs for legal vector types.
Manman Renb3fa55f2012-10-30 23:21:41 +00003293 if (const VectorType *VT = Ty->getAs<VectorType>()) {
3294 uint64_t Size = getContext().getTypeSize(VT);
3295 // Size of a legal vector should be power of 2 and above 64.
Manman Ren710c5172012-10-31 19:02:26 +00003296 markAllocatedVFPs(VFPRegs, AllocatedVFP, Size >= 128 ? 4 : 2, Size / 32);
Manman Renb3fa55f2012-10-30 23:21:41 +00003297 }
Manman Ren710c5172012-10-31 19:02:26 +00003298 // Update VFPRegs for floating point types.
Manman Renb3fa55f2012-10-30 23:21:41 +00003299 if (const BuiltinType *BT = Ty->getAs<BuiltinType>()) {
3300 if (BT->getKind() == BuiltinType::Half ||
3301 BT->getKind() == BuiltinType::Float)
Manman Ren710c5172012-10-31 19:02:26 +00003302 markAllocatedVFPs(VFPRegs, AllocatedVFP, 1, 1);
Manman Renb3fa55f2012-10-30 23:21:41 +00003303 if (BT->getKind() == BuiltinType::Double ||
Manman Ren710c5172012-10-31 19:02:26 +00003304 BT->getKind() == BuiltinType::LongDouble)
3305 markAllocatedVFPs(VFPRegs, AllocatedVFP, 2, 2);
Manman Renb3fa55f2012-10-30 23:21:41 +00003306 }
Manman Ren97f81572012-10-16 19:18:39 +00003307
John McCalld608cdb2010-08-22 10:59:02 +00003308 if (!isAggregateTypeForABI(Ty)) {
Douglas Gregoraa74a1e2010-02-02 20:10:50 +00003309 // Treat an enum type as its underlying type.
3310 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
3311 Ty = EnumTy->getDecl()->getIntegerType();
3312
Anton Korobeynikovcc6fa882009-06-06 09:36:29 +00003313 return (Ty->isPromotableIntegerType() ?
3314 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Douglas Gregoraa74a1e2010-02-02 20:10:50 +00003315 }
Daniel Dunbar98303b92009-09-13 08:03:58 +00003316
Daniel Dunbar42025572009-09-14 21:54:03 +00003317 // Ignore empty records.
Chris Lattnera3c109b2010-07-29 02:16:43 +00003318 if (isEmptyRecord(getContext(), Ty, true))
Daniel Dunbar42025572009-09-14 21:54:03 +00003319 return ABIArgInfo::getIgnore();
3320
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00003321 if (CGCXXABI::RecordArgABI RAA = getRecordArgABI(Ty, CGT))
3322 return ABIArgInfo::getIndirect(0, RAA == CGCXXABI::RAA_DirectInMemory);
Rafael Espindola0eb1d972010-06-08 02:42:08 +00003323
Bob Wilson194f06a2011-08-03 05:58:22 +00003324 if (getABIKind() == ARMABIInfo::AAPCS_VFP) {
Manman Renb3fa55f2012-10-30 23:21:41 +00003325 // Homogeneous Aggregates need to be expanded when we can fit the aggregate
3326 // into VFP registers.
Bob Wilson194f06a2011-08-03 05:58:22 +00003327 const Type *Base = 0;
Manman Renb3fa55f2012-10-30 23:21:41 +00003328 uint64_t Members = 0;
3329 if (isHomogeneousAggregate(Ty, Base, getContext(), &Members)) {
Anton Korobeynikoveaf856d2012-04-13 11:22:00 +00003330 assert(Base && "Base class should be set for homogeneous aggregate");
Manman Renb3fa55f2012-10-30 23:21:41 +00003331 // Base can be a floating-point or a vector.
3332 if (Base->isVectorType()) {
3333 // ElementSize is in number of floats.
3334 unsigned ElementSize = getContext().getTypeSize(Base) == 64 ? 2 : 4;
Manman Rencb489dd2012-11-06 19:05:29 +00003335 markAllocatedVFPs(VFPRegs, AllocatedVFP, ElementSize,
3336 Members * ElementSize);
Manman Renb3fa55f2012-10-30 23:21:41 +00003337 } else if (Base->isSpecificBuiltinType(BuiltinType::Float))
Manman Ren710c5172012-10-31 19:02:26 +00003338 markAllocatedVFPs(VFPRegs, AllocatedVFP, 1, Members);
Manman Renb3fa55f2012-10-30 23:21:41 +00003339 else {
3340 assert(Base->isSpecificBuiltinType(BuiltinType::Double) ||
3341 Base->isSpecificBuiltinType(BuiltinType::LongDouble));
Manman Ren710c5172012-10-31 19:02:26 +00003342 markAllocatedVFPs(VFPRegs, AllocatedVFP, 2, Members * 2);
Manman Renb3fa55f2012-10-30 23:21:41 +00003343 }
3344 IsHA = true;
Bob Wilson194f06a2011-08-03 05:58:22 +00003345 return ABIArgInfo::getExpand();
Anton Korobeynikoveaf856d2012-04-13 11:22:00 +00003346 }
Bob Wilson194f06a2011-08-03 05:58:22 +00003347 }
3348
Manman Ren634b3d22012-08-13 21:23:55 +00003349 // Support byval for ARM.
Manman Rencb489dd2012-11-06 19:05:29 +00003350 // The ABI alignment for APCS is 4-byte and for AAPCS at least 4-byte and at
3351 // most 8-byte. We realign the indirect argument if type alignment is bigger
3352 // than ABI alignment.
Manman Renfd1ba912012-11-05 22:42:46 +00003353 uint64_t ABIAlign = 4;
3354 uint64_t TyAlign = getContext().getTypeAlign(Ty) / 8;
3355 if (getABIKind() == ARMABIInfo::AAPCS_VFP ||
3356 getABIKind() == ARMABIInfo::AAPCS)
3357 ABIAlign = std::min(std::max(TyAlign, (uint64_t)4), (uint64_t)8);
Manman Ren885ad692012-11-06 04:58:01 +00003358 if (getContext().getTypeSizeInChars(Ty) > CharUnits::fromQuantity(64)) {
3359 return ABIArgInfo::getIndirect(0, /*ByVal=*/true,
Manman Rencb489dd2012-11-06 19:05:29 +00003360 /*Realign=*/TyAlign > ABIAlign);
Eli Friedman79f30982012-08-09 00:31:40 +00003361 }
3362
Daniel Dunbar8aa87c72010-09-23 01:54:28 +00003363 // Otherwise, pass by coercing to a structure of the appropriate size.
Chris Lattner2acc6e32011-07-18 04:24:23 +00003364 llvm::Type* ElemTy;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003365 unsigned SizeRegs;
Eli Friedman79f30982012-08-09 00:31:40 +00003366 // FIXME: Try to match the types of the arguments more accurately where
3367 // we can.
3368 if (getContext().getTypeAlign(Ty) <= 32) {
Bob Wilson53fc1a62011-08-01 23:39:04 +00003369 ElemTy = llvm::Type::getInt32Ty(getVMContext());
3370 SizeRegs = (getContext().getTypeSize(Ty) + 31) / 32;
Manman Ren78eb76e2012-06-25 22:04:00 +00003371 } else {
Manman Ren78eb76e2012-06-25 22:04:00 +00003372 ElemTy = llvm::Type::getInt64Ty(getVMContext());
3373 SizeRegs = (getContext().getTypeSize(Ty) + 63) / 64;
Stuart Hastings67d097e2011-04-27 17:24:02 +00003374 }
Stuart Hastingsb7f62d02011-04-28 18:16:06 +00003375
Chris Lattner9cbe4f02011-07-09 17:41:47 +00003376 llvm::Type *STy =
Chris Lattner7650d952011-06-18 22:49:11 +00003377 llvm::StructType::get(llvm::ArrayType::get(ElemTy, SizeRegs), NULL);
Stuart Hastingsb7f62d02011-04-28 18:16:06 +00003378 return ABIArgInfo::getDirect(STy);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003379}
3380
Chris Lattnera3c109b2010-07-29 02:16:43 +00003381static bool isIntegerLikeType(QualType Ty, ASTContext &Context,
Daniel Dunbar98303b92009-09-13 08:03:58 +00003382 llvm::LLVMContext &VMContext) {
3383 // APCS, C Language Calling Conventions, Non-Simple Return Values: A structure
3384 // is called integer-like if its size is less than or equal to one word, and
3385 // the offset of each of its addressable sub-fields is zero.
3386
3387 uint64_t Size = Context.getTypeSize(Ty);
3388
3389 // Check that the type fits in a word.
3390 if (Size > 32)
3391 return false;
3392
3393 // FIXME: Handle vector types!
3394 if (Ty->isVectorType())
3395 return false;
3396
Daniel Dunbarb0d58192009-09-14 02:20:34 +00003397 // Float types are never treated as "integer like".
3398 if (Ty->isRealFloatingType())
3399 return false;
3400
Daniel Dunbar98303b92009-09-13 08:03:58 +00003401 // If this is a builtin or pointer type then it is ok.
John McCall183700f2009-09-21 23:43:11 +00003402 if (Ty->getAs<BuiltinType>() || Ty->isPointerType())
Daniel Dunbar98303b92009-09-13 08:03:58 +00003403 return true;
3404
Daniel Dunbar45815812010-02-01 23:31:26 +00003405 // Small complex integer types are "integer like".
3406 if (const ComplexType *CT = Ty->getAs<ComplexType>())
3407 return isIntegerLikeType(CT->getElementType(), Context, VMContext);
Daniel Dunbar98303b92009-09-13 08:03:58 +00003408
3409 // Single element and zero sized arrays should be allowed, by the definition
3410 // above, but they are not.
3411
3412 // Otherwise, it must be a record type.
3413 const RecordType *RT = Ty->getAs<RecordType>();
3414 if (!RT) return false;
3415
3416 // Ignore records with flexible arrays.
3417 const RecordDecl *RD = RT->getDecl();
3418 if (RD->hasFlexibleArrayMember())
3419 return false;
3420
3421 // Check that all sub-fields are at offset 0, and are themselves "integer
3422 // like".
3423 const ASTRecordLayout &Layout = Context.getASTRecordLayout(RD);
3424
3425 bool HadField = false;
3426 unsigned idx = 0;
3427 for (RecordDecl::field_iterator i = RD->field_begin(), e = RD->field_end();
3428 i != e; ++i, ++idx) {
David Blaikie581deb32012-06-06 20:45:41 +00003429 const FieldDecl *FD = *i;
Daniel Dunbar98303b92009-09-13 08:03:58 +00003430
Daniel Dunbar679855a2010-01-29 03:22:29 +00003431 // Bit-fields are not addressable, we only need to verify they are "integer
3432 // like". We still have to disallow a subsequent non-bitfield, for example:
3433 // struct { int : 0; int x }
3434 // is non-integer like according to gcc.
3435 if (FD->isBitField()) {
3436 if (!RD->isUnion())
3437 HadField = true;
Daniel Dunbar98303b92009-09-13 08:03:58 +00003438
Daniel Dunbar679855a2010-01-29 03:22:29 +00003439 if (!isIntegerLikeType(FD->getType(), Context, VMContext))
3440 return false;
Daniel Dunbar98303b92009-09-13 08:03:58 +00003441
Daniel Dunbar679855a2010-01-29 03:22:29 +00003442 continue;
Daniel Dunbar98303b92009-09-13 08:03:58 +00003443 }
3444
Daniel Dunbar679855a2010-01-29 03:22:29 +00003445 // Check if this field is at offset 0.
3446 if (Layout.getFieldOffset(idx) != 0)
3447 return false;
3448
Daniel Dunbar98303b92009-09-13 08:03:58 +00003449 if (!isIntegerLikeType(FD->getType(), Context, VMContext))
3450 return false;
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00003451
Daniel Dunbar679855a2010-01-29 03:22:29 +00003452 // Only allow at most one field in a structure. This doesn't match the
3453 // wording above, but follows gcc in situations with a field following an
3454 // empty structure.
Daniel Dunbar98303b92009-09-13 08:03:58 +00003455 if (!RD->isUnion()) {
3456 if (HadField)
3457 return false;
3458
3459 HadField = true;
3460 }
3461 }
3462
3463 return true;
3464}
3465
Chris Lattnera3c109b2010-07-29 02:16:43 +00003466ABIArgInfo ARMABIInfo::classifyReturnType(QualType RetTy) const {
Daniel Dunbar98303b92009-09-13 08:03:58 +00003467 if (RetTy->isVoidType())
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003468 return ABIArgInfo::getIgnore();
Daniel Dunbar98303b92009-09-13 08:03:58 +00003469
Daniel Dunbarf554b1c2010-09-23 01:54:32 +00003470 // Large vector types should be returned via memory.
3471 if (RetTy->isVectorType() && getContext().getTypeSize(RetTy) > 128)
3472 return ABIArgInfo::getIndirect(0);
3473
John McCalld608cdb2010-08-22 10:59:02 +00003474 if (!isAggregateTypeForABI(RetTy)) {
Douglas Gregoraa74a1e2010-02-02 20:10:50 +00003475 // Treat an enum type as its underlying type.
3476 if (const EnumType *EnumTy = RetTy->getAs<EnumType>())
3477 RetTy = EnumTy->getDecl()->getIntegerType();
3478
Anton Korobeynikovcc6fa882009-06-06 09:36:29 +00003479 return (RetTy->isPromotableIntegerType() ?
3480 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
Douglas Gregoraa74a1e2010-02-02 20:10:50 +00003481 }
Daniel Dunbar98303b92009-09-13 08:03:58 +00003482
Rafael Espindola0eb1d972010-06-08 02:42:08 +00003483 // Structures with either a non-trivial destructor or a non-trivial
3484 // copy constructor are always indirect.
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00003485 if (isRecordReturnIndirect(RetTy, CGT))
Rafael Espindola0eb1d972010-06-08 02:42:08 +00003486 return ABIArgInfo::getIndirect(0, /*ByVal=*/false);
3487
Daniel Dunbar98303b92009-09-13 08:03:58 +00003488 // Are we following APCS?
3489 if (getABIKind() == APCS) {
Chris Lattnera3c109b2010-07-29 02:16:43 +00003490 if (isEmptyRecord(getContext(), RetTy, false))
Daniel Dunbar98303b92009-09-13 08:03:58 +00003491 return ABIArgInfo::getIgnore();
3492
Daniel Dunbar4cc753f2010-02-01 23:31:19 +00003493 // Complex types are all returned as packed integers.
3494 //
3495 // FIXME: Consider using 2 x vector types if the back end handles them
3496 // correctly.
3497 if (RetTy->isAnyComplexType())
Chris Lattner800588f2010-07-29 06:26:06 +00003498 return ABIArgInfo::getDirect(llvm::IntegerType::get(getVMContext(),
Chris Lattnera3c109b2010-07-29 02:16:43 +00003499 getContext().getTypeSize(RetTy)));
Daniel Dunbar4cc753f2010-02-01 23:31:19 +00003500
Daniel Dunbar98303b92009-09-13 08:03:58 +00003501 // Integer like structures are returned in r0.
Chris Lattnera3c109b2010-07-29 02:16:43 +00003502 if (isIntegerLikeType(RetTy, getContext(), getVMContext())) {
Daniel Dunbar98303b92009-09-13 08:03:58 +00003503 // Return in the smallest viable integer type.
Chris Lattnera3c109b2010-07-29 02:16:43 +00003504 uint64_t Size = getContext().getTypeSize(RetTy);
Daniel Dunbar98303b92009-09-13 08:03:58 +00003505 if (Size <= 8)
Chris Lattner800588f2010-07-29 06:26:06 +00003506 return ABIArgInfo::getDirect(llvm::Type::getInt8Ty(getVMContext()));
Daniel Dunbar98303b92009-09-13 08:03:58 +00003507 if (Size <= 16)
Chris Lattner800588f2010-07-29 06:26:06 +00003508 return ABIArgInfo::getDirect(llvm::Type::getInt16Ty(getVMContext()));
3509 return ABIArgInfo::getDirect(llvm::Type::getInt32Ty(getVMContext()));
Daniel Dunbar98303b92009-09-13 08:03:58 +00003510 }
3511
3512 // Otherwise return in memory.
3513 return ABIArgInfo::getIndirect(0);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003514 }
Daniel Dunbar98303b92009-09-13 08:03:58 +00003515
3516 // Otherwise this is an AAPCS variant.
3517
Chris Lattnera3c109b2010-07-29 02:16:43 +00003518 if (isEmptyRecord(getContext(), RetTy, true))
Daniel Dunbar16a08082009-09-14 00:56:55 +00003519 return ABIArgInfo::getIgnore();
3520
Bob Wilson3b694fa2011-11-02 04:51:36 +00003521 // Check for homogeneous aggregates with AAPCS-VFP.
3522 if (getABIKind() == AAPCS_VFP) {
3523 const Type *Base = 0;
Anton Korobeynikoveaf856d2012-04-13 11:22:00 +00003524 if (isHomogeneousAggregate(RetTy, Base, getContext())) {
3525 assert(Base && "Base class should be set for homogeneous aggregate");
Bob Wilson3b694fa2011-11-02 04:51:36 +00003526 // Homogeneous Aggregates are returned directly.
3527 return ABIArgInfo::getDirect();
Anton Korobeynikoveaf856d2012-04-13 11:22:00 +00003528 }
Bob Wilson3b694fa2011-11-02 04:51:36 +00003529 }
3530
Daniel Dunbar98303b92009-09-13 08:03:58 +00003531 // Aggregates <= 4 bytes are returned in r0; other aggregates
3532 // are returned indirectly.
Chris Lattnera3c109b2010-07-29 02:16:43 +00003533 uint64_t Size = getContext().getTypeSize(RetTy);
Daniel Dunbar16a08082009-09-14 00:56:55 +00003534 if (Size <= 32) {
3535 // Return in the smallest viable integer type.
3536 if (Size <= 8)
Chris Lattner800588f2010-07-29 06:26:06 +00003537 return ABIArgInfo::getDirect(llvm::Type::getInt8Ty(getVMContext()));
Daniel Dunbar16a08082009-09-14 00:56:55 +00003538 if (Size <= 16)
Chris Lattner800588f2010-07-29 06:26:06 +00003539 return ABIArgInfo::getDirect(llvm::Type::getInt16Ty(getVMContext()));
3540 return ABIArgInfo::getDirect(llvm::Type::getInt32Ty(getVMContext()));
Daniel Dunbar16a08082009-09-14 00:56:55 +00003541 }
3542
Daniel Dunbar98303b92009-09-13 08:03:58 +00003543 return ABIArgInfo::getIndirect(0);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003544}
3545
Manman Ren97f81572012-10-16 19:18:39 +00003546/// isIllegalVector - check whether Ty is an illegal vector type.
3547bool ARMABIInfo::isIllegalVectorType(QualType Ty) const {
3548 if (const VectorType *VT = Ty->getAs<VectorType>()) {
3549 // Check whether VT is legal.
3550 unsigned NumElements = VT->getNumElements();
3551 uint64_t Size = getContext().getTypeSize(VT);
3552 // NumElements should be power of 2.
3553 if ((NumElements & (NumElements - 1)) != 0)
3554 return true;
3555 // Size should be greater than 32 bits.
3556 return Size <= 32;
3557 }
3558 return false;
3559}
3560
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003561llvm::Value *ARMABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
Chris Lattner77b89b82010-06-27 07:15:29 +00003562 CodeGenFunction &CGF) const {
Chris Lattner8b418682012-02-07 00:39:47 +00003563 llvm::Type *BP = CGF.Int8PtrTy;
3564 llvm::Type *BPP = CGF.Int8PtrPtrTy;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003565
3566 CGBuilderTy &Builder = CGF.Builder;
Chris Lattner8b418682012-02-07 00:39:47 +00003567 llvm::Value *VAListAddrAsBPP = Builder.CreateBitCast(VAListAddr, BPP, "ap");
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003568 llvm::Value *Addr = Builder.CreateLoad(VAListAddrAsBPP, "ap.cur");
Manman Rend105e732012-10-16 19:01:37 +00003569
3570 uint64_t Size = CGF.getContext().getTypeSize(Ty) / 8;
Rafael Espindolae164c182011-08-02 22:33:37 +00003571 uint64_t TyAlign = CGF.getContext().getTypeAlign(Ty) / 8;
Manman Ren97f81572012-10-16 19:18:39 +00003572 bool IsIndirect = false;
Manman Rend105e732012-10-16 19:01:37 +00003573
3574 // The ABI alignment for 64-bit or 128-bit vectors is 8 for AAPCS and 4 for
3575 // APCS. For AAPCS, the ABI alignment is at least 4-byte and at most 8-byte.
Manman Ren93371022012-10-16 19:51:48 +00003576 if (getABIKind() == ARMABIInfo::AAPCS_VFP ||
3577 getABIKind() == ARMABIInfo::AAPCS)
3578 TyAlign = std::min(std::max(TyAlign, (uint64_t)4), (uint64_t)8);
3579 else
3580 TyAlign = 4;
Manman Ren97f81572012-10-16 19:18:39 +00003581 // Use indirect if size of the illegal vector is bigger than 16 bytes.
3582 if (isIllegalVectorType(Ty) && Size > 16) {
3583 IsIndirect = true;
3584 Size = 4;
3585 TyAlign = 4;
3586 }
Manman Rend105e732012-10-16 19:01:37 +00003587
3588 // Handle address alignment for ABI alignment > 4 bytes.
Rafael Espindolae164c182011-08-02 22:33:37 +00003589 if (TyAlign > 4) {
3590 assert((TyAlign & (TyAlign - 1)) == 0 &&
3591 "Alignment is not power of 2!");
3592 llvm::Value *AddrAsInt = Builder.CreatePtrToInt(Addr, CGF.Int32Ty);
3593 AddrAsInt = Builder.CreateAdd(AddrAsInt, Builder.getInt32(TyAlign - 1));
3594 AddrAsInt = Builder.CreateAnd(AddrAsInt, Builder.getInt32(~(TyAlign - 1)));
Manman Rend105e732012-10-16 19:01:37 +00003595 Addr = Builder.CreateIntToPtr(AddrAsInt, BP, "ap.align");
Rafael Espindolae164c182011-08-02 22:33:37 +00003596 }
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003597
3598 uint64_t Offset =
Manman Rend105e732012-10-16 19:01:37 +00003599 llvm::RoundUpToAlignment(Size, 4);
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003600 llvm::Value *NextAddr =
Chris Lattner77b89b82010-06-27 07:15:29 +00003601 Builder.CreateGEP(Addr, llvm::ConstantInt::get(CGF.Int32Ty, Offset),
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003602 "ap.next");
3603 Builder.CreateStore(NextAddr, VAListAddrAsBPP);
3604
Manman Ren97f81572012-10-16 19:18:39 +00003605 if (IsIndirect)
3606 Addr = Builder.CreateLoad(Builder.CreateBitCast(Addr, BPP));
Manman Ren93371022012-10-16 19:51:48 +00003607 else if (TyAlign < CGF.getContext().getTypeAlign(Ty) / 8) {
Manman Rend105e732012-10-16 19:01:37 +00003608 // We can't directly cast ap.cur to pointer to a vector type, since ap.cur
3609 // may not be correctly aligned for the vector type. We create an aligned
3610 // temporary space and copy the content over from ap.cur to the temporary
3611 // space. This is necessary if the natural alignment of the type is greater
3612 // than the ABI alignment.
3613 llvm::Type *I8PtrTy = Builder.getInt8PtrTy();
3614 CharUnits CharSize = getContext().getTypeSizeInChars(Ty);
3615 llvm::Value *AlignedTemp = CGF.CreateTempAlloca(CGF.ConvertType(Ty),
3616 "var.align");
3617 llvm::Value *Dst = Builder.CreateBitCast(AlignedTemp, I8PtrTy);
3618 llvm::Value *Src = Builder.CreateBitCast(Addr, I8PtrTy);
3619 Builder.CreateMemCpy(Dst, Src,
3620 llvm::ConstantInt::get(CGF.IntPtrTy, CharSize.getQuantity()),
3621 TyAlign, false);
3622 Addr = AlignedTemp; //The content is in aligned location.
3623 }
3624 llvm::Type *PTy =
3625 llvm::PointerType::getUnqual(CGF.ConvertType(Ty));
3626 llvm::Value *AddrTyped = Builder.CreateBitCast(Addr, PTy);
3627
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00003628 return AddrTyped;
3629}
3630
Benjamin Kramerc6f84cf2012-10-20 13:02:06 +00003631namespace {
3632
Derek Schuff263366f2012-10-16 22:30:41 +00003633class NaClARMABIInfo : public ABIInfo {
3634 public:
3635 NaClARMABIInfo(CodeGen::CodeGenTypes &CGT, ARMABIInfo::ABIKind Kind)
3636 : ABIInfo(CGT), PInfo(CGT), NInfo(CGT, Kind) {}
3637 virtual void computeInfo(CGFunctionInfo &FI) const;
3638 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
3639 CodeGenFunction &CGF) const;
3640 private:
3641 PNaClABIInfo PInfo; // Used for generating calls with pnaclcall callingconv.
3642 ARMABIInfo NInfo; // Used for everything else.
3643};
3644
3645class NaClARMTargetCodeGenInfo : public TargetCodeGenInfo {
3646 public:
3647 NaClARMTargetCodeGenInfo(CodeGen::CodeGenTypes &CGT, ARMABIInfo::ABIKind Kind)
3648 : TargetCodeGenInfo(new NaClARMABIInfo(CGT, Kind)) {}
3649};
3650
Benjamin Kramerc6f84cf2012-10-20 13:02:06 +00003651}
3652
Derek Schuff263366f2012-10-16 22:30:41 +00003653void NaClARMABIInfo::computeInfo(CGFunctionInfo &FI) const {
3654 if (FI.getASTCallingConvention() == CC_PnaclCall)
3655 PInfo.computeInfo(FI);
3656 else
3657 static_cast<const ABIInfo&>(NInfo).computeInfo(FI);
3658}
3659
3660llvm::Value *NaClARMABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
3661 CodeGenFunction &CGF) const {
3662 // Always use the native convention; calling pnacl-style varargs functions
3663 // is unsupported.
3664 return static_cast<const ABIInfo&>(NInfo).EmitVAArg(VAListAddr, Ty, CGF);
3665}
3666
Chris Lattnerdce5ad02010-06-28 20:05:43 +00003667//===----------------------------------------------------------------------===//
Tim Northoverc264e162013-01-31 12:13:10 +00003668// AArch64 ABI Implementation
3669//===----------------------------------------------------------------------===//
3670
3671namespace {
3672
3673class AArch64ABIInfo : public ABIInfo {
3674public:
3675 AArch64ABIInfo(CodeGenTypes &CGT) : ABIInfo(CGT) {}
3676
3677private:
3678 // The AArch64 PCS is explicit about return types and argument types being
3679 // handled identically, so we don't need to draw a distinction between
3680 // Argument and Return classification.
3681 ABIArgInfo classifyGenericType(QualType Ty, int &FreeIntRegs,
3682 int &FreeVFPRegs) const;
3683
3684 ABIArgInfo tryUseRegs(QualType Ty, int &FreeRegs, int RegsNeeded, bool IsInt,
3685 llvm::Type *DirectTy = 0) const;
3686
3687 virtual void computeInfo(CGFunctionInfo &FI) const;
3688
3689 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
3690 CodeGenFunction &CGF) const;
3691};
3692
3693class AArch64TargetCodeGenInfo : public TargetCodeGenInfo {
3694public:
3695 AArch64TargetCodeGenInfo(CodeGenTypes &CGT)
3696 :TargetCodeGenInfo(new AArch64ABIInfo(CGT)) {}
3697
3698 const AArch64ABIInfo &getABIInfo() const {
3699 return static_cast<const AArch64ABIInfo&>(TargetCodeGenInfo::getABIInfo());
3700 }
3701
3702 int getDwarfEHStackPointer(CodeGen::CodeGenModule &M) const {
3703 return 31;
3704 }
3705
3706 bool initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
3707 llvm::Value *Address) const {
3708 // 0-31 are x0-x30 and sp: 8 bytes each
3709 llvm::Value *Eight8 = llvm::ConstantInt::get(CGF.Int8Ty, 8);
3710 AssignToArrayRange(CGF.Builder, Address, Eight8, 0, 31);
3711
3712 // 64-95 are v0-v31: 16 bytes each
3713 llvm::Value *Sixteen8 = llvm::ConstantInt::get(CGF.Int8Ty, 16);
3714 AssignToArrayRange(CGF.Builder, Address, Sixteen8, 64, 95);
3715
3716 return false;
3717 }
3718
3719};
3720
3721}
3722
3723void AArch64ABIInfo::computeInfo(CGFunctionInfo &FI) const {
3724 int FreeIntRegs = 8, FreeVFPRegs = 8;
3725
3726 FI.getReturnInfo() = classifyGenericType(FI.getReturnType(),
3727 FreeIntRegs, FreeVFPRegs);
3728
3729 FreeIntRegs = FreeVFPRegs = 8;
3730 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
3731 it != ie; ++it) {
3732 it->info = classifyGenericType(it->type, FreeIntRegs, FreeVFPRegs);
3733
3734 }
3735}
3736
3737ABIArgInfo
3738AArch64ABIInfo::tryUseRegs(QualType Ty, int &FreeRegs, int RegsNeeded,
3739 bool IsInt, llvm::Type *DirectTy) const {
3740 if (FreeRegs >= RegsNeeded) {
3741 FreeRegs -= RegsNeeded;
3742 return ABIArgInfo::getDirect(DirectTy);
3743 }
3744
3745 llvm::Type *Padding = 0;
3746
3747 // We need padding so that later arguments don't get filled in anyway. That
3748 // wouldn't happen if only ByVal arguments followed in the same category, but
3749 // a large structure will simply seem to be a pointer as far as LLVM is
3750 // concerned.
3751 if (FreeRegs > 0) {
3752 if (IsInt)
3753 Padding = llvm::Type::getInt64Ty(getVMContext());
3754 else
3755 Padding = llvm::Type::getFloatTy(getVMContext());
3756
3757 // Either [N x i64] or [N x float].
3758 Padding = llvm::ArrayType::get(Padding, FreeRegs);
3759 FreeRegs = 0;
3760 }
3761
3762 return ABIArgInfo::getIndirect(getContext().getTypeAlign(Ty) / 8,
3763 /*IsByVal=*/ true, /*Realign=*/ false,
3764 Padding);
3765}
3766
3767
3768ABIArgInfo AArch64ABIInfo::classifyGenericType(QualType Ty,
3769 int &FreeIntRegs,
3770 int &FreeVFPRegs) const {
3771 // Can only occurs for return, but harmless otherwise.
3772 if (Ty->isVoidType())
3773 return ABIArgInfo::getIgnore();
3774
3775 // Large vector types should be returned via memory. There's no such concept
3776 // in the ABI, but they'd be over 16 bytes anyway so no matter how they're
3777 // classified they'd go into memory (see B.3).
3778 if (Ty->isVectorType() && getContext().getTypeSize(Ty) > 128) {
3779 if (FreeIntRegs > 0)
3780 --FreeIntRegs;
3781 return ABIArgInfo::getIndirect(0, /*ByVal=*/false);
3782 }
3783
3784 // All non-aggregate LLVM types have a concrete ABI representation so they can
3785 // be passed directly. After this block we're guaranteed to be in a
3786 // complicated case.
3787 if (!isAggregateTypeForABI(Ty)) {
3788 // Treat an enum type as its underlying type.
3789 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
3790 Ty = EnumTy->getDecl()->getIntegerType();
3791
3792 if (Ty->isFloatingType() || Ty->isVectorType())
3793 return tryUseRegs(Ty, FreeVFPRegs, /*RegsNeeded=*/ 1, /*IsInt=*/ false);
3794
3795 assert(getContext().getTypeSize(Ty) <= 128 &&
3796 "unexpectedly large scalar type");
3797
3798 int RegsNeeded = getContext().getTypeSize(Ty) > 64 ? 2 : 1;
3799
3800 // If the type may need padding registers to ensure "alignment", we must be
3801 // careful when this is accounted for. Increasing the effective size covers
3802 // all cases.
3803 if (getContext().getTypeAlign(Ty) == 128)
3804 RegsNeeded += FreeIntRegs % 2 != 0;
3805
3806 return tryUseRegs(Ty, FreeIntRegs, RegsNeeded, /*IsInt=*/ true);
3807 }
3808
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00003809 if (CGCXXABI::RecordArgABI RAA = getRecordArgABI(Ty, CGT)) {
3810 if (FreeIntRegs > 0 && RAA == CGCXXABI::RAA_Indirect)
Tim Northoverc264e162013-01-31 12:13:10 +00003811 --FreeIntRegs;
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00003812 return ABIArgInfo::getIndirect(0, RAA == CGCXXABI::RAA_DirectInMemory);
Tim Northoverc264e162013-01-31 12:13:10 +00003813 }
3814
3815 if (isEmptyRecord(getContext(), Ty, true)) {
3816 if (!getContext().getLangOpts().CPlusPlus) {
3817 // Empty structs outside C++ mode are a GNU extension, so no ABI can
3818 // possibly tell us what to do. It turns out (I believe) that GCC ignores
3819 // the object for parameter-passsing purposes.
3820 return ABIArgInfo::getIgnore();
3821 }
3822
3823 // The combination of C++98 9p5 (sizeof(struct) != 0) and the pseudocode
3824 // description of va_arg in the PCS require that an empty struct does
3825 // actually occupy space for parameter-passing. I'm hoping for a
3826 // clarification giving an explicit paragraph to point to in future.
3827 return tryUseRegs(Ty, FreeIntRegs, /*RegsNeeded=*/ 1, /*IsInt=*/ true,
3828 llvm::Type::getInt8Ty(getVMContext()));
3829 }
3830
3831 // Homogeneous vector aggregates get passed in registers or on the stack.
3832 const Type *Base = 0;
3833 uint64_t NumMembers = 0;
3834 if (isHomogeneousAggregate(Ty, Base, getContext(), &NumMembers)) {
3835 assert(Base && "Base class should be set for homogeneous aggregate");
3836 // Homogeneous aggregates are passed and returned directly.
3837 return tryUseRegs(Ty, FreeVFPRegs, /*RegsNeeded=*/ NumMembers,
3838 /*IsInt=*/ false);
3839 }
3840
3841 uint64_t Size = getContext().getTypeSize(Ty);
3842 if (Size <= 128) {
3843 // Small structs can use the same direct type whether they're in registers
3844 // or on the stack.
3845 llvm::Type *BaseTy;
3846 unsigned NumBases;
3847 int SizeInRegs = (Size + 63) / 64;
3848
3849 if (getContext().getTypeAlign(Ty) == 128) {
3850 BaseTy = llvm::Type::getIntNTy(getVMContext(), 128);
3851 NumBases = 1;
3852
3853 // If the type may need padding registers to ensure "alignment", we must
3854 // be careful when this is accounted for. Increasing the effective size
3855 // covers all cases.
3856 SizeInRegs += FreeIntRegs % 2 != 0;
3857 } else {
3858 BaseTy = llvm::Type::getInt64Ty(getVMContext());
3859 NumBases = SizeInRegs;
3860 }
3861 llvm::Type *DirectTy = llvm::ArrayType::get(BaseTy, NumBases);
3862
3863 return tryUseRegs(Ty, FreeIntRegs, /*RegsNeeded=*/ SizeInRegs,
3864 /*IsInt=*/ true, DirectTy);
3865 }
3866
3867 // If the aggregate is > 16 bytes, it's passed and returned indirectly. In
3868 // LLVM terms the return uses an "sret" pointer, but that's handled elsewhere.
3869 --FreeIntRegs;
3870 return ABIArgInfo::getIndirect(0, /* byVal = */ false);
3871}
3872
3873llvm::Value *AArch64ABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
3874 CodeGenFunction &CGF) const {
3875 // The AArch64 va_list type and handling is specified in the Procedure Call
3876 // Standard, section B.4:
3877 //
3878 // struct {
3879 // void *__stack;
3880 // void *__gr_top;
3881 // void *__vr_top;
3882 // int __gr_offs;
3883 // int __vr_offs;
3884 // };
3885
3886 assert(!CGF.CGM.getDataLayout().isBigEndian()
3887 && "va_arg not implemented for big-endian AArch64");
3888
3889 int FreeIntRegs = 8, FreeVFPRegs = 8;
3890 Ty = CGF.getContext().getCanonicalType(Ty);
3891 ABIArgInfo AI = classifyGenericType(Ty, FreeIntRegs, FreeVFPRegs);
3892
3893 llvm::BasicBlock *MaybeRegBlock = CGF.createBasicBlock("vaarg.maybe_reg");
3894 llvm::BasicBlock *InRegBlock = CGF.createBasicBlock("vaarg.in_reg");
3895 llvm::BasicBlock *OnStackBlock = CGF.createBasicBlock("vaarg.on_stack");
3896 llvm::BasicBlock *ContBlock = CGF.createBasicBlock("vaarg.end");
3897
3898 llvm::Value *reg_offs_p = 0, *reg_offs = 0;
3899 int reg_top_index;
3900 int RegSize;
3901 if (FreeIntRegs < 8) {
3902 assert(FreeVFPRegs == 8 && "Arguments never split between int & VFP regs");
3903 // 3 is the field number of __gr_offs
3904 reg_offs_p = CGF.Builder.CreateStructGEP(VAListAddr, 3, "gr_offs_p");
3905 reg_offs = CGF.Builder.CreateLoad(reg_offs_p, "gr_offs");
3906 reg_top_index = 1; // field number for __gr_top
3907 RegSize = 8 * (8 - FreeIntRegs);
3908 } else {
3909 assert(FreeVFPRegs < 8 && "Argument must go in VFP or int regs");
3910 // 4 is the field number of __vr_offs.
3911 reg_offs_p = CGF.Builder.CreateStructGEP(VAListAddr, 4, "vr_offs_p");
3912 reg_offs = CGF.Builder.CreateLoad(reg_offs_p, "vr_offs");
3913 reg_top_index = 2; // field number for __vr_top
3914 RegSize = 16 * (8 - FreeVFPRegs);
3915 }
3916
3917 //=======================================
3918 // Find out where argument was passed
3919 //=======================================
3920
3921 // If reg_offs >= 0 we're already using the stack for this type of
3922 // argument. We don't want to keep updating reg_offs (in case it overflows,
3923 // though anyone passing 2GB of arguments, each at most 16 bytes, deserves
3924 // whatever they get).
3925 llvm::Value *UsingStack = 0;
3926 UsingStack = CGF.Builder.CreateICmpSGE(reg_offs,
3927 llvm::ConstantInt::get(CGF.Int32Ty, 0));
3928
3929 CGF.Builder.CreateCondBr(UsingStack, OnStackBlock, MaybeRegBlock);
3930
3931 // Otherwise, at least some kind of argument could go in these registers, the
3932 // quesiton is whether this particular type is too big.
3933 CGF.EmitBlock(MaybeRegBlock);
3934
3935 // Integer arguments may need to correct register alignment (for example a
3936 // "struct { __int128 a; };" gets passed in x_2N, x_{2N+1}). In this case we
3937 // align __gr_offs to calculate the potential address.
3938 if (FreeIntRegs < 8 && AI.isDirect() && getContext().getTypeAlign(Ty) > 64) {
3939 int Align = getContext().getTypeAlign(Ty) / 8;
3940
3941 reg_offs = CGF.Builder.CreateAdd(reg_offs,
3942 llvm::ConstantInt::get(CGF.Int32Ty, Align - 1),
3943 "align_regoffs");
3944 reg_offs = CGF.Builder.CreateAnd(reg_offs,
3945 llvm::ConstantInt::get(CGF.Int32Ty, -Align),
3946 "aligned_regoffs");
3947 }
3948
3949 // Update the gr_offs/vr_offs pointer for next call to va_arg on this va_list.
3950 llvm::Value *NewOffset = 0;
3951 NewOffset = CGF.Builder.CreateAdd(reg_offs,
3952 llvm::ConstantInt::get(CGF.Int32Ty, RegSize),
3953 "new_reg_offs");
3954 CGF.Builder.CreateStore(NewOffset, reg_offs_p);
3955
3956 // Now we're in a position to decide whether this argument really was in
3957 // registers or not.
3958 llvm::Value *InRegs = 0;
3959 InRegs = CGF.Builder.CreateICmpSLE(NewOffset,
3960 llvm::ConstantInt::get(CGF.Int32Ty, 0),
3961 "inreg");
3962
3963 CGF.Builder.CreateCondBr(InRegs, InRegBlock, OnStackBlock);
3964
3965 //=======================================
3966 // Argument was in registers
3967 //=======================================
3968
3969 // Now we emit the code for if the argument was originally passed in
3970 // registers. First start the appropriate block:
3971 CGF.EmitBlock(InRegBlock);
3972
3973 llvm::Value *reg_top_p = 0, *reg_top = 0;
3974 reg_top_p = CGF.Builder.CreateStructGEP(VAListAddr, reg_top_index, "reg_top_p");
3975 reg_top = CGF.Builder.CreateLoad(reg_top_p, "reg_top");
3976 llvm::Value *BaseAddr = CGF.Builder.CreateGEP(reg_top, reg_offs);
3977 llvm::Value *RegAddr = 0;
3978 llvm::Type *MemTy = llvm::PointerType::getUnqual(CGF.ConvertTypeForMem(Ty));
3979
3980 if (!AI.isDirect()) {
3981 // If it's been passed indirectly (actually a struct), whatever we find from
3982 // stored registers or on the stack will actually be a struct **.
3983 MemTy = llvm::PointerType::getUnqual(MemTy);
3984 }
3985
3986 const Type *Base = 0;
3987 uint64_t NumMembers;
3988 if (isHomogeneousAggregate(Ty, Base, getContext(), &NumMembers)
3989 && NumMembers > 1) {
3990 // Homogeneous aggregates passed in registers will have their elements split
3991 // and stored 16-bytes apart regardless of size (they're notionally in qN,
3992 // qN+1, ...). We reload and store into a temporary local variable
3993 // contiguously.
3994 assert(AI.isDirect() && "Homogeneous aggregates should be passed directly");
3995 llvm::Type *BaseTy = CGF.ConvertType(QualType(Base, 0));
3996 llvm::Type *HFATy = llvm::ArrayType::get(BaseTy, NumMembers);
3997 llvm::Value *Tmp = CGF.CreateTempAlloca(HFATy);
3998
3999 for (unsigned i = 0; i < NumMembers; ++i) {
4000 llvm::Value *BaseOffset = llvm::ConstantInt::get(CGF.Int32Ty, 16 * i);
4001 llvm::Value *LoadAddr = CGF.Builder.CreateGEP(BaseAddr, BaseOffset);
4002 LoadAddr = CGF.Builder.CreateBitCast(LoadAddr,
4003 llvm::PointerType::getUnqual(BaseTy));
4004 llvm::Value *StoreAddr = CGF.Builder.CreateStructGEP(Tmp, i);
4005
4006 llvm::Value *Elem = CGF.Builder.CreateLoad(LoadAddr);
4007 CGF.Builder.CreateStore(Elem, StoreAddr);
4008 }
4009
4010 RegAddr = CGF.Builder.CreateBitCast(Tmp, MemTy);
4011 } else {
4012 // Otherwise the object is contiguous in memory
4013 RegAddr = CGF.Builder.CreateBitCast(BaseAddr, MemTy);
4014 }
4015
4016 CGF.EmitBranch(ContBlock);
4017
4018 //=======================================
4019 // Argument was on the stack
4020 //=======================================
4021 CGF.EmitBlock(OnStackBlock);
4022
4023 llvm::Value *stack_p = 0, *OnStackAddr = 0;
4024 stack_p = CGF.Builder.CreateStructGEP(VAListAddr, 0, "stack_p");
4025 OnStackAddr = CGF.Builder.CreateLoad(stack_p, "stack");
4026
4027 // Again, stack arguments may need realigmnent. In this case both integer and
4028 // floating-point ones might be affected.
4029 if (AI.isDirect() && getContext().getTypeAlign(Ty) > 64) {
4030 int Align = getContext().getTypeAlign(Ty) / 8;
4031
4032 OnStackAddr = CGF.Builder.CreatePtrToInt(OnStackAddr, CGF.Int64Ty);
4033
4034 OnStackAddr = CGF.Builder.CreateAdd(OnStackAddr,
4035 llvm::ConstantInt::get(CGF.Int64Ty, Align - 1),
4036 "align_stack");
4037 OnStackAddr = CGF.Builder.CreateAnd(OnStackAddr,
4038 llvm::ConstantInt::get(CGF.Int64Ty, -Align),
4039 "align_stack");
4040
4041 OnStackAddr = CGF.Builder.CreateIntToPtr(OnStackAddr, CGF.Int8PtrTy);
4042 }
4043
4044 uint64_t StackSize;
4045 if (AI.isDirect())
4046 StackSize = getContext().getTypeSize(Ty) / 8;
4047 else
4048 StackSize = 8;
4049
4050 // All stack slots are 8 bytes
4051 StackSize = llvm::RoundUpToAlignment(StackSize, 8);
4052
4053 llvm::Value *StackSizeC = llvm::ConstantInt::get(CGF.Int32Ty, StackSize);
4054 llvm::Value *NewStack = CGF.Builder.CreateGEP(OnStackAddr, StackSizeC,
4055 "new_stack");
4056
4057 // Write the new value of __stack for the next call to va_arg
4058 CGF.Builder.CreateStore(NewStack, stack_p);
4059
4060 OnStackAddr = CGF.Builder.CreateBitCast(OnStackAddr, MemTy);
4061
4062 CGF.EmitBranch(ContBlock);
4063
4064 //=======================================
4065 // Tidy up
4066 //=======================================
4067 CGF.EmitBlock(ContBlock);
4068
4069 llvm::PHINode *ResAddr = CGF.Builder.CreatePHI(MemTy, 2, "vaarg.addr");
4070 ResAddr->addIncoming(RegAddr, InRegBlock);
4071 ResAddr->addIncoming(OnStackAddr, OnStackBlock);
4072
4073 if (AI.isDirect())
4074 return ResAddr;
4075
4076 return CGF.Builder.CreateLoad(ResAddr, "vaarg.addr");
4077}
4078
4079//===----------------------------------------------------------------------===//
Justin Holewinski2c585b92012-05-24 17:43:12 +00004080// NVPTX ABI Implementation
Justin Holewinski0259c3a2011-04-22 11:10:38 +00004081//===----------------------------------------------------------------------===//
4082
4083namespace {
4084
Justin Holewinski2c585b92012-05-24 17:43:12 +00004085class NVPTXABIInfo : public ABIInfo {
Justin Holewinski0259c3a2011-04-22 11:10:38 +00004086public:
Justin Holewinskidca8f332013-03-30 14:38:24 +00004087 NVPTXABIInfo(CodeGenTypes &CGT) : ABIInfo(CGT) {}
Justin Holewinski0259c3a2011-04-22 11:10:38 +00004088
4089 ABIArgInfo classifyReturnType(QualType RetTy) const;
4090 ABIArgInfo classifyArgumentType(QualType Ty) const;
4091
4092 virtual void computeInfo(CGFunctionInfo &FI) const;
4093 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
4094 CodeGenFunction &CFG) const;
4095};
4096
Justin Holewinski2c585b92012-05-24 17:43:12 +00004097class NVPTXTargetCodeGenInfo : public TargetCodeGenInfo {
Justin Holewinski0259c3a2011-04-22 11:10:38 +00004098public:
Justin Holewinski2c585b92012-05-24 17:43:12 +00004099 NVPTXTargetCodeGenInfo(CodeGenTypes &CGT)
4100 : TargetCodeGenInfo(new NVPTXABIInfo(CGT)) {}
Justin Holewinski818eafb2011-10-05 17:58:44 +00004101
Peter Collingbourne2f7aa992011-10-13 16:24:41 +00004102 virtual void SetTargetAttributes(const Decl *D, llvm::GlobalValue *GV,
4103 CodeGen::CodeGenModule &M) const;
Justin Holewinskidca8f332013-03-30 14:38:24 +00004104private:
4105 static void addKernelMetadata(llvm::Function *F);
Justin Holewinski0259c3a2011-04-22 11:10:38 +00004106};
4107
Justin Holewinski2c585b92012-05-24 17:43:12 +00004108ABIArgInfo NVPTXABIInfo::classifyReturnType(QualType RetTy) const {
Justin Holewinski0259c3a2011-04-22 11:10:38 +00004109 if (RetTy->isVoidType())
4110 return ABIArgInfo::getIgnore();
4111 if (isAggregateTypeForABI(RetTy))
4112 return ABIArgInfo::getIndirect(0);
4113 return ABIArgInfo::getDirect();
4114}
4115
Justin Holewinski2c585b92012-05-24 17:43:12 +00004116ABIArgInfo NVPTXABIInfo::classifyArgumentType(QualType Ty) const {
Justin Holewinski0259c3a2011-04-22 11:10:38 +00004117 if (isAggregateTypeForABI(Ty))
4118 return ABIArgInfo::getIndirect(0);
4119
4120 return ABIArgInfo::getDirect();
4121}
4122
Justin Holewinski2c585b92012-05-24 17:43:12 +00004123void NVPTXABIInfo::computeInfo(CGFunctionInfo &FI) const {
Justin Holewinski0259c3a2011-04-22 11:10:38 +00004124 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
4125 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
4126 it != ie; ++it)
4127 it->info = classifyArgumentType(it->type);
4128
4129 // Always honor user-specified calling convention.
4130 if (FI.getCallingConvention() != llvm::CallingConv::C)
4131 return;
4132
John McCallbd7370a2013-02-28 19:01:20 +00004133 FI.setEffectiveCallingConvention(getRuntimeCC());
4134}
4135
Justin Holewinski2c585b92012-05-24 17:43:12 +00004136llvm::Value *NVPTXABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
4137 CodeGenFunction &CFG) const {
4138 llvm_unreachable("NVPTX does not support varargs");
Justin Holewinski0259c3a2011-04-22 11:10:38 +00004139}
4140
Justin Holewinski2c585b92012-05-24 17:43:12 +00004141void NVPTXTargetCodeGenInfo::
4142SetTargetAttributes(const Decl *D, llvm::GlobalValue *GV,
4143 CodeGen::CodeGenModule &M) const{
Justin Holewinski818eafb2011-10-05 17:58:44 +00004144 const FunctionDecl *FD = dyn_cast<FunctionDecl>(D);
4145 if (!FD) return;
4146
4147 llvm::Function *F = cast<llvm::Function>(GV);
4148
4149 // Perform special handling in OpenCL mode
David Blaikie4e4d0842012-03-11 07:00:24 +00004150 if (M.getLangOpts().OpenCL) {
Justin Holewinskidca8f332013-03-30 14:38:24 +00004151 // Use OpenCL function attributes to check for kernel functions
Justin Holewinski818eafb2011-10-05 17:58:44 +00004152 // By default, all functions are device functions
Justin Holewinski818eafb2011-10-05 17:58:44 +00004153 if (FD->hasAttr<OpenCLKernelAttr>()) {
Justin Holewinskidca8f332013-03-30 14:38:24 +00004154 // OpenCL __kernel functions get kernel metadata
4155 addKernelMetadata(F);
Justin Holewinski818eafb2011-10-05 17:58:44 +00004156 // And kernel functions are not subject to inlining
Bill Wendling72390b32012-12-20 19:27:06 +00004157 F->addFnAttr(llvm::Attribute::NoInline);
Justin Holewinski818eafb2011-10-05 17:58:44 +00004158 }
Peter Collingbourne744d90b2011-10-06 16:49:54 +00004159 }
Justin Holewinski818eafb2011-10-05 17:58:44 +00004160
Peter Collingbourne744d90b2011-10-06 16:49:54 +00004161 // Perform special handling in CUDA mode.
David Blaikie4e4d0842012-03-11 07:00:24 +00004162 if (M.getLangOpts().CUDA) {
Justin Holewinskidca8f332013-03-30 14:38:24 +00004163 // CUDA __global__ functions get a kernel metadata entry. Since
Peter Collingbourne744d90b2011-10-06 16:49:54 +00004164 // __global__ functions cannot be called from the device, we do not
4165 // need to set the noinline attribute.
4166 if (FD->getAttr<CUDAGlobalAttr>())
Justin Holewinskidca8f332013-03-30 14:38:24 +00004167 addKernelMetadata(F);
Justin Holewinski818eafb2011-10-05 17:58:44 +00004168 }
4169}
4170
Justin Holewinskidca8f332013-03-30 14:38:24 +00004171void NVPTXTargetCodeGenInfo::addKernelMetadata(llvm::Function *F) {
4172 llvm::Module *M = F->getParent();
4173 llvm::LLVMContext &Ctx = M->getContext();
4174
4175 // Get "nvvm.annotations" metadata node
4176 llvm::NamedMDNode *MD = M->getOrInsertNamedMetadata("nvvm.annotations");
4177
4178 // Create !{<func-ref>, metadata !"kernel", i32 1} node
4179 llvm::SmallVector<llvm::Value *, 3> MDVals;
4180 MDVals.push_back(F);
4181 MDVals.push_back(llvm::MDString::get(Ctx, "kernel"));
4182 MDVals.push_back(llvm::ConstantInt::get(llvm::Type::getInt32Ty(Ctx), 1));
4183
4184 // Append metadata to nvvm.annotations
4185 MD->addOperand(llvm::MDNode::get(Ctx, MDVals));
4186}
4187
Justin Holewinski0259c3a2011-04-22 11:10:38 +00004188}
4189
4190//===----------------------------------------------------------------------===//
Ulrich Weigandb8409212013-05-06 16:26:41 +00004191// SystemZ ABI Implementation
4192//===----------------------------------------------------------------------===//
4193
4194namespace {
4195
4196class SystemZABIInfo : public ABIInfo {
4197public:
4198 SystemZABIInfo(CodeGenTypes &CGT) : ABIInfo(CGT) {}
4199
4200 bool isPromotableIntegerType(QualType Ty) const;
4201 bool isCompoundType(QualType Ty) const;
4202 bool isFPArgumentType(QualType Ty) const;
4203
4204 ABIArgInfo classifyReturnType(QualType RetTy) const;
4205 ABIArgInfo classifyArgumentType(QualType ArgTy) const;
4206
4207 virtual void computeInfo(CGFunctionInfo &FI) const {
4208 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
4209 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
4210 it != ie; ++it)
4211 it->info = classifyArgumentType(it->type);
4212 }
4213
4214 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
4215 CodeGenFunction &CGF) const;
4216};
4217
4218class SystemZTargetCodeGenInfo : public TargetCodeGenInfo {
4219public:
4220 SystemZTargetCodeGenInfo(CodeGenTypes &CGT)
4221 : TargetCodeGenInfo(new SystemZABIInfo(CGT)) {}
4222};
4223
4224}
4225
4226bool SystemZABIInfo::isPromotableIntegerType(QualType Ty) const {
4227 // Treat an enum type as its underlying type.
4228 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
4229 Ty = EnumTy->getDecl()->getIntegerType();
4230
4231 // Promotable integer types are required to be promoted by the ABI.
4232 if (Ty->isPromotableIntegerType())
4233 return true;
4234
4235 // 32-bit values must also be promoted.
4236 if (const BuiltinType *BT = Ty->getAs<BuiltinType>())
4237 switch (BT->getKind()) {
4238 case BuiltinType::Int:
4239 case BuiltinType::UInt:
4240 return true;
4241 default:
4242 return false;
4243 }
4244 return false;
4245}
4246
4247bool SystemZABIInfo::isCompoundType(QualType Ty) const {
4248 return Ty->isAnyComplexType() || isAggregateTypeForABI(Ty);
4249}
4250
4251bool SystemZABIInfo::isFPArgumentType(QualType Ty) const {
4252 if (const BuiltinType *BT = Ty->getAs<BuiltinType>())
4253 switch (BT->getKind()) {
4254 case BuiltinType::Float:
4255 case BuiltinType::Double:
4256 return true;
4257 default:
4258 return false;
4259 }
4260
4261 if (const RecordType *RT = Ty->getAsStructureType()) {
4262 const RecordDecl *RD = RT->getDecl();
4263 bool Found = false;
4264
4265 // If this is a C++ record, check the bases first.
4266 if (const CXXRecordDecl *CXXRD = dyn_cast<CXXRecordDecl>(RD))
4267 for (CXXRecordDecl::base_class_const_iterator I = CXXRD->bases_begin(),
4268 E = CXXRD->bases_end(); I != E; ++I) {
4269 QualType Base = I->getType();
4270
4271 // Empty bases don't affect things either way.
4272 if (isEmptyRecord(getContext(), Base, true))
4273 continue;
4274
4275 if (Found)
4276 return false;
4277 Found = isFPArgumentType(Base);
4278 if (!Found)
4279 return false;
4280 }
4281
4282 // Check the fields.
4283 for (RecordDecl::field_iterator I = RD->field_begin(),
4284 E = RD->field_end(); I != E; ++I) {
4285 const FieldDecl *FD = *I;
4286
4287 // Empty bitfields don't affect things either way.
4288 // Unlike isSingleElementStruct(), empty structure and array fields
4289 // do count. So do anonymous bitfields that aren't zero-sized.
4290 if (FD->isBitField() && FD->getBitWidthValue(getContext()) == 0)
4291 return true;
4292
4293 // Unlike isSingleElementStruct(), arrays do not count.
4294 // Nested isFPArgumentType structures still do though.
4295 if (Found)
4296 return false;
4297 Found = isFPArgumentType(FD->getType());
4298 if (!Found)
4299 return false;
4300 }
4301
4302 // Unlike isSingleElementStruct(), trailing padding is allowed.
4303 // An 8-byte aligned struct s { float f; } is passed as a double.
4304 return Found;
4305 }
4306
4307 return false;
4308}
4309
4310llvm::Value *SystemZABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
4311 CodeGenFunction &CGF) const {
4312 // Assume that va_list type is correct; should be pointer to LLVM type:
4313 // struct {
4314 // i64 __gpr;
4315 // i64 __fpr;
4316 // i8 *__overflow_arg_area;
4317 // i8 *__reg_save_area;
4318 // };
4319
4320 // Every argument occupies 8 bytes and is passed by preference in either
4321 // GPRs or FPRs.
4322 Ty = CGF.getContext().getCanonicalType(Ty);
4323 ABIArgInfo AI = classifyArgumentType(Ty);
4324 bool InFPRs = isFPArgumentType(Ty);
4325
4326 llvm::Type *APTy = llvm::PointerType::getUnqual(CGF.ConvertTypeForMem(Ty));
4327 bool IsIndirect = AI.isIndirect();
4328 unsigned UnpaddedBitSize;
4329 if (IsIndirect) {
4330 APTy = llvm::PointerType::getUnqual(APTy);
4331 UnpaddedBitSize = 64;
4332 } else
4333 UnpaddedBitSize = getContext().getTypeSize(Ty);
4334 unsigned PaddedBitSize = 64;
4335 assert((UnpaddedBitSize <= PaddedBitSize) && "Invalid argument size.");
4336
4337 unsigned PaddedSize = PaddedBitSize / 8;
4338 unsigned Padding = (PaddedBitSize - UnpaddedBitSize) / 8;
4339
4340 unsigned MaxRegs, RegCountField, RegSaveIndex, RegPadding;
4341 if (InFPRs) {
4342 MaxRegs = 4; // Maximum of 4 FPR arguments
4343 RegCountField = 1; // __fpr
4344 RegSaveIndex = 16; // save offset for f0
4345 RegPadding = 0; // floats are passed in the high bits of an FPR
4346 } else {
4347 MaxRegs = 5; // Maximum of 5 GPR arguments
4348 RegCountField = 0; // __gpr
4349 RegSaveIndex = 2; // save offset for r2
4350 RegPadding = Padding; // values are passed in the low bits of a GPR
4351 }
4352
4353 llvm::Value *RegCountPtr =
4354 CGF.Builder.CreateStructGEP(VAListAddr, RegCountField, "reg_count_ptr");
4355 llvm::Value *RegCount = CGF.Builder.CreateLoad(RegCountPtr, "reg_count");
4356 llvm::Type *IndexTy = RegCount->getType();
4357 llvm::Value *MaxRegsV = llvm::ConstantInt::get(IndexTy, MaxRegs);
4358 llvm::Value *InRegs = CGF.Builder.CreateICmpULT(RegCount, MaxRegsV,
4359 "fits_in_regs");
4360
4361 llvm::BasicBlock *InRegBlock = CGF.createBasicBlock("vaarg.in_reg");
4362 llvm::BasicBlock *InMemBlock = CGF.createBasicBlock("vaarg.in_mem");
4363 llvm::BasicBlock *ContBlock = CGF.createBasicBlock("vaarg.end");
4364 CGF.Builder.CreateCondBr(InRegs, InRegBlock, InMemBlock);
4365
4366 // Emit code to load the value if it was passed in registers.
4367 CGF.EmitBlock(InRegBlock);
4368
4369 // Work out the address of an argument register.
4370 llvm::Value *PaddedSizeV = llvm::ConstantInt::get(IndexTy, PaddedSize);
4371 llvm::Value *ScaledRegCount =
4372 CGF.Builder.CreateMul(RegCount, PaddedSizeV, "scaled_reg_count");
4373 llvm::Value *RegBase =
4374 llvm::ConstantInt::get(IndexTy, RegSaveIndex * PaddedSize + RegPadding);
4375 llvm::Value *RegOffset =
4376 CGF.Builder.CreateAdd(ScaledRegCount, RegBase, "reg_offset");
4377 llvm::Value *RegSaveAreaPtr =
4378 CGF.Builder.CreateStructGEP(VAListAddr, 3, "reg_save_area_ptr");
4379 llvm::Value *RegSaveArea =
4380 CGF.Builder.CreateLoad(RegSaveAreaPtr, "reg_save_area");
4381 llvm::Value *RawRegAddr =
4382 CGF.Builder.CreateGEP(RegSaveArea, RegOffset, "raw_reg_addr");
4383 llvm::Value *RegAddr =
4384 CGF.Builder.CreateBitCast(RawRegAddr, APTy, "reg_addr");
4385
4386 // Update the register count
4387 llvm::Value *One = llvm::ConstantInt::get(IndexTy, 1);
4388 llvm::Value *NewRegCount =
4389 CGF.Builder.CreateAdd(RegCount, One, "reg_count");
4390 CGF.Builder.CreateStore(NewRegCount, RegCountPtr);
4391 CGF.EmitBranch(ContBlock);
4392
4393 // Emit code to load the value if it was passed in memory.
4394 CGF.EmitBlock(InMemBlock);
4395
4396 // Work out the address of a stack argument.
4397 llvm::Value *OverflowArgAreaPtr =
4398 CGF.Builder.CreateStructGEP(VAListAddr, 2, "overflow_arg_area_ptr");
4399 llvm::Value *OverflowArgArea =
4400 CGF.Builder.CreateLoad(OverflowArgAreaPtr, "overflow_arg_area");
4401 llvm::Value *PaddingV = llvm::ConstantInt::get(IndexTy, Padding);
4402 llvm::Value *RawMemAddr =
4403 CGF.Builder.CreateGEP(OverflowArgArea, PaddingV, "raw_mem_addr");
4404 llvm::Value *MemAddr =
4405 CGF.Builder.CreateBitCast(RawMemAddr, APTy, "mem_addr");
4406
4407 // Update overflow_arg_area_ptr pointer
4408 llvm::Value *NewOverflowArgArea =
4409 CGF.Builder.CreateGEP(OverflowArgArea, PaddedSizeV, "overflow_arg_area");
4410 CGF.Builder.CreateStore(NewOverflowArgArea, OverflowArgAreaPtr);
4411 CGF.EmitBranch(ContBlock);
4412
4413 // Return the appropriate result.
4414 CGF.EmitBlock(ContBlock);
4415 llvm::PHINode *ResAddr = CGF.Builder.CreatePHI(APTy, 2, "va_arg.addr");
4416 ResAddr->addIncoming(RegAddr, InRegBlock);
4417 ResAddr->addIncoming(MemAddr, InMemBlock);
4418
4419 if (IsIndirect)
4420 return CGF.Builder.CreateLoad(ResAddr, "indirect_arg");
4421
4422 return ResAddr;
4423}
4424
4425
4426ABIArgInfo SystemZABIInfo::classifyReturnType(QualType RetTy) const {
4427 if (RetTy->isVoidType())
4428 return ABIArgInfo::getIgnore();
4429 if (isCompoundType(RetTy) || getContext().getTypeSize(RetTy) > 64)
4430 return ABIArgInfo::getIndirect(0);
4431 return (isPromotableIntegerType(RetTy) ?
4432 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
4433}
4434
4435ABIArgInfo SystemZABIInfo::classifyArgumentType(QualType Ty) const {
4436 // Handle the generic C++ ABI.
4437 if (CGCXXABI::RecordArgABI RAA = getRecordArgABI(Ty, CGT))
4438 return ABIArgInfo::getIndirect(0, RAA == CGCXXABI::RAA_DirectInMemory);
4439
4440 // Integers and enums are extended to full register width.
4441 if (isPromotableIntegerType(Ty))
4442 return ABIArgInfo::getExtend();
4443
4444 // Values that are not 1, 2, 4 or 8 bytes in size are passed indirectly.
4445 uint64_t Size = getContext().getTypeSize(Ty);
4446 if (Size != 8 && Size != 16 && Size != 32 && Size != 64)
4447 return ABIArgInfo::getIndirect(0);
4448
4449 // Handle small structures.
4450 if (const RecordType *RT = Ty->getAs<RecordType>()) {
4451 // Structures with flexible arrays have variable length, so really
4452 // fail the size test above.
4453 const RecordDecl *RD = RT->getDecl();
4454 if (RD->hasFlexibleArrayMember())
4455 return ABIArgInfo::getIndirect(0);
4456
4457 // The structure is passed as an unextended integer, a float, or a double.
4458 llvm::Type *PassTy;
4459 if (isFPArgumentType(Ty)) {
4460 assert(Size == 32 || Size == 64);
4461 if (Size == 32)
4462 PassTy = llvm::Type::getFloatTy(getVMContext());
4463 else
4464 PassTy = llvm::Type::getDoubleTy(getVMContext());
4465 } else
4466 PassTy = llvm::IntegerType::get(getVMContext(), Size);
4467 return ABIArgInfo::getDirect(PassTy);
4468 }
4469
4470 // Non-structure compounds are passed indirectly.
4471 if (isCompoundType(Ty))
4472 return ABIArgInfo::getIndirect(0);
4473
4474 return ABIArgInfo::getDirect(0);
4475}
4476
4477//===----------------------------------------------------------------------===//
Wesley Peck276fdf42010-12-19 19:57:51 +00004478// MBlaze ABI Implementation
4479//===----------------------------------------------------------------------===//
4480
4481namespace {
4482
4483class MBlazeABIInfo : public ABIInfo {
4484public:
4485 MBlazeABIInfo(CodeGenTypes &CGT) : ABIInfo(CGT) {}
4486
4487 bool isPromotableIntegerType(QualType Ty) const;
4488
4489 ABIArgInfo classifyReturnType(QualType RetTy) const;
4490 ABIArgInfo classifyArgumentType(QualType RetTy) const;
4491
4492 virtual void computeInfo(CGFunctionInfo &FI) const {
4493 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
4494 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
4495 it != ie; ++it)
4496 it->info = classifyArgumentType(it->type);
4497 }
4498
4499 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
4500 CodeGenFunction &CGF) const;
4501};
4502
4503class MBlazeTargetCodeGenInfo : public TargetCodeGenInfo {
4504public:
4505 MBlazeTargetCodeGenInfo(CodeGenTypes &CGT)
4506 : TargetCodeGenInfo(new MBlazeABIInfo(CGT)) {}
4507 void SetTargetAttributes(const Decl *D, llvm::GlobalValue *GV,
4508 CodeGen::CodeGenModule &M) const;
4509};
4510
4511}
4512
4513bool MBlazeABIInfo::isPromotableIntegerType(QualType Ty) const {
4514 // MBlaze ABI requires all 8 and 16 bit quantities to be extended.
4515 if (const BuiltinType *BT = Ty->getAs<BuiltinType>())
4516 switch (BT->getKind()) {
4517 case BuiltinType::Bool:
4518 case BuiltinType::Char_S:
4519 case BuiltinType::Char_U:
4520 case BuiltinType::SChar:
4521 case BuiltinType::UChar:
4522 case BuiltinType::Short:
4523 case BuiltinType::UShort:
4524 return true;
4525 default:
4526 return false;
4527 }
4528 return false;
4529}
4530
4531llvm::Value *MBlazeABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
4532 CodeGenFunction &CGF) const {
4533 // FIXME: Implement
4534 return 0;
4535}
4536
4537
4538ABIArgInfo MBlazeABIInfo::classifyReturnType(QualType RetTy) const {
4539 if (RetTy->isVoidType())
4540 return ABIArgInfo::getIgnore();
4541 if (isAggregateTypeForABI(RetTy))
4542 return ABIArgInfo::getIndirect(0);
4543
4544 return (isPromotableIntegerType(RetTy) ?
4545 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
4546}
4547
4548ABIArgInfo MBlazeABIInfo::classifyArgumentType(QualType Ty) const {
4549 if (isAggregateTypeForABI(Ty))
4550 return ABIArgInfo::getIndirect(0);
4551
4552 return (isPromotableIntegerType(Ty) ?
4553 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
4554}
4555
4556void MBlazeTargetCodeGenInfo::SetTargetAttributes(const Decl *D,
4557 llvm::GlobalValue *GV,
4558 CodeGen::CodeGenModule &M)
4559 const {
4560 const FunctionDecl *FD = dyn_cast<FunctionDecl>(D);
4561 if (!FD) return;
NAKAMURA Takumi125b4cb2011-02-17 08:50:50 +00004562
Wesley Peck276fdf42010-12-19 19:57:51 +00004563 llvm::CallingConv::ID CC = llvm::CallingConv::C;
4564 if (FD->hasAttr<MBlazeInterruptHandlerAttr>())
4565 CC = llvm::CallingConv::MBLAZE_INTR;
4566 else if (FD->hasAttr<MBlazeSaveVolatilesAttr>())
4567 CC = llvm::CallingConv::MBLAZE_SVOL;
4568
4569 if (CC != llvm::CallingConv::C) {
4570 // Handle 'interrupt_handler' attribute:
4571 llvm::Function *F = cast<llvm::Function>(GV);
4572
4573 // Step 1: Set ISR calling convention.
4574 F->setCallingConv(CC);
4575
4576 // Step 2: Add attributes goodness.
Bill Wendling72390b32012-12-20 19:27:06 +00004577 F->addFnAttr(llvm::Attribute::NoInline);
Wesley Peck276fdf42010-12-19 19:57:51 +00004578 }
4579
4580 // Step 3: Emit _interrupt_handler alias.
4581 if (CC == llvm::CallingConv::MBLAZE_INTR)
4582 new llvm::GlobalAlias(GV->getType(), llvm::Function::ExternalLinkage,
4583 "_interrupt_handler", GV, &M.getModule());
4584}
4585
4586
4587//===----------------------------------------------------------------------===//
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00004588// MSP430 ABI Implementation
Chris Lattnerdce5ad02010-06-28 20:05:43 +00004589//===----------------------------------------------------------------------===//
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00004590
4591namespace {
4592
4593class MSP430TargetCodeGenInfo : public TargetCodeGenInfo {
4594public:
Chris Lattnerea044322010-07-29 02:01:43 +00004595 MSP430TargetCodeGenInfo(CodeGenTypes &CGT)
4596 : TargetCodeGenInfo(new DefaultABIInfo(CGT)) {}
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00004597 void SetTargetAttributes(const Decl *D, llvm::GlobalValue *GV,
4598 CodeGen::CodeGenModule &M) const;
4599};
4600
4601}
4602
4603void MSP430TargetCodeGenInfo::SetTargetAttributes(const Decl *D,
4604 llvm::GlobalValue *GV,
4605 CodeGen::CodeGenModule &M) const {
4606 if (const FunctionDecl *FD = dyn_cast<FunctionDecl>(D)) {
4607 if (const MSP430InterruptAttr *attr = FD->getAttr<MSP430InterruptAttr>()) {
4608 // Handle 'interrupt' attribute:
4609 llvm::Function *F = cast<llvm::Function>(GV);
4610
4611 // Step 1: Set ISR calling convention.
4612 F->setCallingConv(llvm::CallingConv::MSP430_INTR);
4613
4614 // Step 2: Add attributes goodness.
Bill Wendling72390b32012-12-20 19:27:06 +00004615 F->addFnAttr(llvm::Attribute::NoInline);
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00004616
4617 // Step 3: Emit ISR vector alias.
Anton Korobeynikovf419a852012-11-26 18:59:10 +00004618 unsigned Num = attr->getNumber() / 2;
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00004619 new llvm::GlobalAlias(GV->getType(), llvm::Function::ExternalLinkage,
Anton Korobeynikovf419a852012-11-26 18:59:10 +00004620 "__isr_" + Twine(Num),
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00004621 GV, &M.getModule());
4622 }
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00004623 }
4624}
4625
Chris Lattnerdce5ad02010-06-28 20:05:43 +00004626//===----------------------------------------------------------------------===//
John McCallaeeb7012010-05-27 06:19:26 +00004627// MIPS ABI Implementation. This works for both little-endian and
4628// big-endian variants.
Chris Lattnerdce5ad02010-06-28 20:05:43 +00004629//===----------------------------------------------------------------------===//
4630
John McCallaeeb7012010-05-27 06:19:26 +00004631namespace {
Akira Hatanaka619e8872011-06-02 00:09:17 +00004632class MipsABIInfo : public ABIInfo {
Akira Hatanakac0e3b662011-11-02 23:14:57 +00004633 bool IsO32;
Akira Hatanakac359f202012-07-03 19:24:06 +00004634 unsigned MinABIStackAlignInBytes, StackAlignInBytes;
4635 void CoerceToIntArgs(uint64_t TySize,
4636 SmallVector<llvm::Type*, 8> &ArgList) const;
Akira Hatanaka91338cf2012-05-11 21:56:58 +00004637 llvm::Type* HandleAggregates(QualType Ty, uint64_t TySize) const;
Akira Hatanakac7ecc2e2012-01-04 03:34:42 +00004638 llvm::Type* returnAggregateInRegs(QualType RetTy, uint64_t Size) const;
Akira Hatanakaa33fd392012-01-09 19:31:25 +00004639 llvm::Type* getPaddingType(uint64_t Align, uint64_t Offset) const;
Akira Hatanaka619e8872011-06-02 00:09:17 +00004640public:
Akira Hatanakab551dd32011-11-03 00:05:50 +00004641 MipsABIInfo(CodeGenTypes &CGT, bool _IsO32) :
Akira Hatanakac359f202012-07-03 19:24:06 +00004642 ABIInfo(CGT), IsO32(_IsO32), MinABIStackAlignInBytes(IsO32 ? 4 : 8),
4643 StackAlignInBytes(IsO32 ? 8 : 16) {}
Akira Hatanaka619e8872011-06-02 00:09:17 +00004644
4645 ABIArgInfo classifyReturnType(QualType RetTy) const;
Akira Hatanakaf0cc2082012-01-07 00:25:33 +00004646 ABIArgInfo classifyArgumentType(QualType RetTy, uint64_t &Offset) const;
Akira Hatanaka619e8872011-06-02 00:09:17 +00004647 virtual void computeInfo(CGFunctionInfo &FI) const;
4648 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
4649 CodeGenFunction &CGF) const;
4650};
4651
John McCallaeeb7012010-05-27 06:19:26 +00004652class MIPSTargetCodeGenInfo : public TargetCodeGenInfo {
Akira Hatanakae624fa02011-09-20 18:23:28 +00004653 unsigned SizeOfUnwindException;
John McCallaeeb7012010-05-27 06:19:26 +00004654public:
Akira Hatanakac0e3b662011-11-02 23:14:57 +00004655 MIPSTargetCodeGenInfo(CodeGenTypes &CGT, bool IsO32)
4656 : TargetCodeGenInfo(new MipsABIInfo(CGT, IsO32)),
4657 SizeOfUnwindException(IsO32 ? 24 : 32) {}
John McCallaeeb7012010-05-27 06:19:26 +00004658
4659 int getDwarfEHStackPointer(CodeGen::CodeGenModule &CGM) const {
4660 return 29;
4661 }
4662
Reed Kotler7dfd1822013-01-16 17:10:28 +00004663 void SetTargetAttributes(const Decl *D, llvm::GlobalValue *GV,
4664 CodeGen::CodeGenModule &CGM) const {
Reed Kotlerad4b8b42013-03-13 20:40:30 +00004665 const FunctionDecl *FD = dyn_cast<FunctionDecl>(D);
4666 if (!FD) return;
Rafael Espindolad8e6d6d2013-03-19 14:32:23 +00004667 llvm::Function *Fn = cast<llvm::Function>(GV);
Reed Kotlerad4b8b42013-03-13 20:40:30 +00004668 if (FD->hasAttr<Mips16Attr>()) {
4669 Fn->addFnAttr("mips16");
4670 }
4671 else if (FD->hasAttr<NoMips16Attr>()) {
4672 Fn->addFnAttr("nomips16");
4673 }
Reed Kotler7dfd1822013-01-16 17:10:28 +00004674 }
Reed Kotlerad4b8b42013-03-13 20:40:30 +00004675
John McCallaeeb7012010-05-27 06:19:26 +00004676 bool initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
Michael J. Spencer8bea82f2010-08-25 18:17:27 +00004677 llvm::Value *Address) const;
John McCall49e34be2011-08-30 01:42:09 +00004678
4679 unsigned getSizeOfUnwindException() const {
Akira Hatanakae624fa02011-09-20 18:23:28 +00004680 return SizeOfUnwindException;
John McCall49e34be2011-08-30 01:42:09 +00004681 }
John McCallaeeb7012010-05-27 06:19:26 +00004682};
4683}
4684
Akira Hatanakac359f202012-07-03 19:24:06 +00004685void MipsABIInfo::CoerceToIntArgs(uint64_t TySize,
4686 SmallVector<llvm::Type*, 8> &ArgList) const {
4687 llvm::IntegerType *IntTy =
4688 llvm::IntegerType::get(getVMContext(), MinABIStackAlignInBytes * 8);
Akira Hatanaka91338cf2012-05-11 21:56:58 +00004689
4690 // Add (TySize / MinABIStackAlignInBytes) args of IntTy.
4691 for (unsigned N = TySize / (MinABIStackAlignInBytes * 8); N; --N)
4692 ArgList.push_back(IntTy);
4693
4694 // If necessary, add one more integer type to ArgList.
4695 unsigned R = TySize % (MinABIStackAlignInBytes * 8);
4696
4697 if (R)
4698 ArgList.push_back(llvm::IntegerType::get(getVMContext(), R));
Akira Hatanaka91338cf2012-05-11 21:56:58 +00004699}
4700
Akira Hatanakad5a257f2011-11-02 23:54:49 +00004701// In N32/64, an aligned double precision floating point field is passed in
4702// a register.
Akira Hatanaka91338cf2012-05-11 21:56:58 +00004703llvm::Type* MipsABIInfo::HandleAggregates(QualType Ty, uint64_t TySize) const {
Akira Hatanakac359f202012-07-03 19:24:06 +00004704 SmallVector<llvm::Type*, 8> ArgList, IntArgList;
4705
4706 if (IsO32) {
4707 CoerceToIntArgs(TySize, ArgList);
4708 return llvm::StructType::get(getVMContext(), ArgList);
4709 }
Akira Hatanakad5a257f2011-11-02 23:54:49 +00004710
Akira Hatanaka2afd23d2012-01-12 00:52:17 +00004711 if (Ty->isComplexType())
4712 return CGT.ConvertType(Ty);
Akira Hatanaka6d1080f2012-01-10 23:12:19 +00004713
Akira Hatanakaa34e9212012-02-09 19:54:16 +00004714 const RecordType *RT = Ty->getAs<RecordType>();
Akira Hatanakad5a257f2011-11-02 23:54:49 +00004715
Akira Hatanakac359f202012-07-03 19:24:06 +00004716 // Unions/vectors are passed in integer registers.
4717 if (!RT || !RT->isStructureOrClassType()) {
4718 CoerceToIntArgs(TySize, ArgList);
4719 return llvm::StructType::get(getVMContext(), ArgList);
4720 }
Akira Hatanakad5a257f2011-11-02 23:54:49 +00004721
4722 const RecordDecl *RD = RT->getDecl();
4723 const ASTRecordLayout &Layout = getContext().getASTRecordLayout(RD);
Akira Hatanaka91338cf2012-05-11 21:56:58 +00004724 assert(!(TySize % 8) && "Size of structure must be multiple of 8.");
Akira Hatanakad5a257f2011-11-02 23:54:49 +00004725
Akira Hatanakad5a257f2011-11-02 23:54:49 +00004726 uint64_t LastOffset = 0;
4727 unsigned idx = 0;
4728 llvm::IntegerType *I64 = llvm::IntegerType::get(getVMContext(), 64);
4729
Akira Hatanakaa34e9212012-02-09 19:54:16 +00004730 // Iterate over fields in the struct/class and check if there are any aligned
4731 // double fields.
Akira Hatanakad5a257f2011-11-02 23:54:49 +00004732 for (RecordDecl::field_iterator i = RD->field_begin(), e = RD->field_end();
4733 i != e; ++i, ++idx) {
David Blaikie262bc182012-04-30 02:36:29 +00004734 const QualType Ty = i->getType();
Akira Hatanakad5a257f2011-11-02 23:54:49 +00004735 const BuiltinType *BT = Ty->getAs<BuiltinType>();
4736
4737 if (!BT || BT->getKind() != BuiltinType::Double)
4738 continue;
4739
4740 uint64_t Offset = Layout.getFieldOffset(idx);
4741 if (Offset % 64) // Ignore doubles that are not aligned.
4742 continue;
4743
4744 // Add ((Offset - LastOffset) / 64) args of type i64.
4745 for (unsigned j = (Offset - LastOffset) / 64; j > 0; --j)
4746 ArgList.push_back(I64);
4747
4748 // Add double type.
4749 ArgList.push_back(llvm::Type::getDoubleTy(getVMContext()));
4750 LastOffset = Offset + 64;
4751 }
4752
Akira Hatanakac359f202012-07-03 19:24:06 +00004753 CoerceToIntArgs(TySize - LastOffset, IntArgList);
4754 ArgList.append(IntArgList.begin(), IntArgList.end());
Akira Hatanakad5a257f2011-11-02 23:54:49 +00004755
4756 return llvm::StructType::get(getVMContext(), ArgList);
4757}
4758
Akira Hatanakaa33fd392012-01-09 19:31:25 +00004759llvm::Type *MipsABIInfo::getPaddingType(uint64_t Align, uint64_t Offset) const {
Akira Hatanaka91338cf2012-05-11 21:56:58 +00004760 assert((Offset % MinABIStackAlignInBytes) == 0);
Akira Hatanakaa33fd392012-01-09 19:31:25 +00004761
Akira Hatanaka91338cf2012-05-11 21:56:58 +00004762 if ((Align - 1) & Offset)
4763 return llvm::IntegerType::get(getVMContext(), MinABIStackAlignInBytes * 8);
4764
4765 return 0;
Akira Hatanakaa33fd392012-01-09 19:31:25 +00004766}
Akira Hatanaka9659d592012-01-10 22:44:52 +00004767
Akira Hatanakaf0cc2082012-01-07 00:25:33 +00004768ABIArgInfo
4769MipsABIInfo::classifyArgumentType(QualType Ty, uint64_t &Offset) const {
Akira Hatanakaa33fd392012-01-09 19:31:25 +00004770 uint64_t OrigOffset = Offset;
Akira Hatanaka91338cf2012-05-11 21:56:58 +00004771 uint64_t TySize = getContext().getTypeSize(Ty);
Akira Hatanakaa33fd392012-01-09 19:31:25 +00004772 uint64_t Align = getContext().getTypeAlign(Ty) / 8;
Akira Hatanaka91338cf2012-05-11 21:56:58 +00004773
Akira Hatanakac359f202012-07-03 19:24:06 +00004774 Align = std::min(std::max(Align, (uint64_t)MinABIStackAlignInBytes),
4775 (uint64_t)StackAlignInBytes);
Akira Hatanaka91338cf2012-05-11 21:56:58 +00004776 Offset = llvm::RoundUpToAlignment(Offset, Align);
4777 Offset += llvm::RoundUpToAlignment(TySize, Align * 8) / 8;
Akira Hatanakaa33fd392012-01-09 19:31:25 +00004778
Akira Hatanakac359f202012-07-03 19:24:06 +00004779 if (isAggregateTypeForABI(Ty) || Ty->isVectorType()) {
Akira Hatanaka619e8872011-06-02 00:09:17 +00004780 // Ignore empty aggregates.
Akira Hatanakaf0cc2082012-01-07 00:25:33 +00004781 if (TySize == 0)
Akira Hatanaka619e8872011-06-02 00:09:17 +00004782 return ABIArgInfo::getIgnore();
4783
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00004784 if (CGCXXABI::RecordArgABI RAA = getRecordArgABI(Ty, CGT)) {
Akira Hatanaka91338cf2012-05-11 21:56:58 +00004785 Offset = OrigOffset + MinABIStackAlignInBytes;
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00004786 return ABIArgInfo::getIndirect(0, RAA == CGCXXABI::RAA_DirectInMemory);
Akira Hatanakaf0cc2082012-01-07 00:25:33 +00004787 }
Akira Hatanaka511949b2011-08-01 18:09:58 +00004788
Akira Hatanaka91338cf2012-05-11 21:56:58 +00004789 // If we have reached here, aggregates are passed directly by coercing to
4790 // another structure type. Padding is inserted if the offset of the
4791 // aggregate is unaligned.
4792 return ABIArgInfo::getDirect(HandleAggregates(Ty, TySize), 0,
4793 getPaddingType(Align, OrigOffset));
Akira Hatanaka619e8872011-06-02 00:09:17 +00004794 }
4795
4796 // Treat an enum type as its underlying type.
4797 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
4798 Ty = EnumTy->getDecl()->getIntegerType();
4799
Akira Hatanakaa33fd392012-01-09 19:31:25 +00004800 if (Ty->isPromotableIntegerType())
4801 return ABIArgInfo::getExtend();
4802
Akira Hatanaka4055cfc2013-01-24 21:47:33 +00004803 return ABIArgInfo::getDirect(0, 0,
4804 IsO32 ? 0 : getPaddingType(Align, OrigOffset));
Akira Hatanaka619e8872011-06-02 00:09:17 +00004805}
4806
Akira Hatanakac7ecc2e2012-01-04 03:34:42 +00004807llvm::Type*
4808MipsABIInfo::returnAggregateInRegs(QualType RetTy, uint64_t Size) const {
Akira Hatanakada54ff32012-02-09 18:49:26 +00004809 const RecordType *RT = RetTy->getAs<RecordType>();
Akira Hatanakac359f202012-07-03 19:24:06 +00004810 SmallVector<llvm::Type*, 8> RTList;
Akira Hatanakac7ecc2e2012-01-04 03:34:42 +00004811
Akira Hatanakada54ff32012-02-09 18:49:26 +00004812 if (RT && RT->isStructureOrClassType()) {
Akira Hatanakac7ecc2e2012-01-04 03:34:42 +00004813 const RecordDecl *RD = RT->getDecl();
Akira Hatanakada54ff32012-02-09 18:49:26 +00004814 const ASTRecordLayout &Layout = getContext().getASTRecordLayout(RD);
4815 unsigned FieldCnt = Layout.getFieldCount();
Akira Hatanakac7ecc2e2012-01-04 03:34:42 +00004816
Akira Hatanakada54ff32012-02-09 18:49:26 +00004817 // N32/64 returns struct/classes in floating point registers if the
4818 // following conditions are met:
4819 // 1. The size of the struct/class is no larger than 128-bit.
4820 // 2. The struct/class has one or two fields all of which are floating
4821 // point types.
4822 // 3. The offset of the first field is zero (this follows what gcc does).
4823 //
4824 // Any other composite results are returned in integer registers.
4825 //
4826 if (FieldCnt && (FieldCnt <= 2) && !Layout.getFieldOffset(0)) {
4827 RecordDecl::field_iterator b = RD->field_begin(), e = RD->field_end();
4828 for (; b != e; ++b) {
David Blaikie262bc182012-04-30 02:36:29 +00004829 const BuiltinType *BT = b->getType()->getAs<BuiltinType>();
Akira Hatanakac7ecc2e2012-01-04 03:34:42 +00004830
Akira Hatanakada54ff32012-02-09 18:49:26 +00004831 if (!BT || !BT->isFloatingPoint())
4832 break;
Akira Hatanakac7ecc2e2012-01-04 03:34:42 +00004833
David Blaikie262bc182012-04-30 02:36:29 +00004834 RTList.push_back(CGT.ConvertType(b->getType()));
Akira Hatanakada54ff32012-02-09 18:49:26 +00004835 }
4836
4837 if (b == e)
4838 return llvm::StructType::get(getVMContext(), RTList,
4839 RD->hasAttr<PackedAttr>());
4840
4841 RTList.clear();
Akira Hatanakac7ecc2e2012-01-04 03:34:42 +00004842 }
Akira Hatanakac7ecc2e2012-01-04 03:34:42 +00004843 }
4844
Akira Hatanakac359f202012-07-03 19:24:06 +00004845 CoerceToIntArgs(Size, RTList);
Akira Hatanakac7ecc2e2012-01-04 03:34:42 +00004846 return llvm::StructType::get(getVMContext(), RTList);
4847}
4848
Akira Hatanaka619e8872011-06-02 00:09:17 +00004849ABIArgInfo MipsABIInfo::classifyReturnType(QualType RetTy) const {
Akira Hatanakaa8536c02012-01-23 23:18:57 +00004850 uint64_t Size = getContext().getTypeSize(RetTy);
4851
4852 if (RetTy->isVoidType() || Size == 0)
Akira Hatanaka619e8872011-06-02 00:09:17 +00004853 return ABIArgInfo::getIgnore();
4854
Akira Hatanaka8aeb1472012-05-11 21:01:17 +00004855 if (isAggregateTypeForABI(RetTy) || RetTy->isVectorType()) {
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00004856 if (isRecordReturnIndirect(RetTy, CGT))
4857 return ABIArgInfo::getIndirect(0);
4858
Akira Hatanakac7ecc2e2012-01-04 03:34:42 +00004859 if (Size <= 128) {
4860 if (RetTy->isAnyComplexType())
4861 return ABIArgInfo::getDirect();
4862
Akira Hatanakac359f202012-07-03 19:24:06 +00004863 // O32 returns integer vectors in registers.
4864 if (IsO32 && RetTy->isVectorType() && !RetTy->hasFloatingRepresentation())
4865 return ABIArgInfo::getDirect(returnAggregateInRegs(RetTy, Size));
4866
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00004867 if (!IsO32)
Akira Hatanakac7ecc2e2012-01-04 03:34:42 +00004868 return ABIArgInfo::getDirect(returnAggregateInRegs(RetTy, Size));
4869 }
Akira Hatanaka619e8872011-06-02 00:09:17 +00004870
4871 return ABIArgInfo::getIndirect(0);
4872 }
4873
4874 // Treat an enum type as its underlying type.
4875 if (const EnumType *EnumTy = RetTy->getAs<EnumType>())
4876 RetTy = EnumTy->getDecl()->getIntegerType();
4877
4878 return (RetTy->isPromotableIntegerType() ?
4879 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
4880}
4881
4882void MipsABIInfo::computeInfo(CGFunctionInfo &FI) const {
Akira Hatanakacc662542012-01-12 01:10:09 +00004883 ABIArgInfo &RetInfo = FI.getReturnInfo();
4884 RetInfo = classifyReturnType(FI.getReturnType());
4885
4886 // Check if a pointer to an aggregate is passed as a hidden argument.
Akira Hatanaka91338cf2012-05-11 21:56:58 +00004887 uint64_t Offset = RetInfo.isIndirect() ? MinABIStackAlignInBytes : 0;
Akira Hatanakacc662542012-01-12 01:10:09 +00004888
Akira Hatanaka619e8872011-06-02 00:09:17 +00004889 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
4890 it != ie; ++it)
Akira Hatanakaf0cc2082012-01-07 00:25:33 +00004891 it->info = classifyArgumentType(it->type, Offset);
Akira Hatanaka619e8872011-06-02 00:09:17 +00004892}
4893
4894llvm::Value* MipsABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
4895 CodeGenFunction &CGF) const {
Chris Lattner8b418682012-02-07 00:39:47 +00004896 llvm::Type *BP = CGF.Int8PtrTy;
4897 llvm::Type *BPP = CGF.Int8PtrPtrTy;
Akira Hatanakac35e69d2011-08-01 20:48:01 +00004898
4899 CGBuilderTy &Builder = CGF.Builder;
4900 llvm::Value *VAListAddrAsBPP = Builder.CreateBitCast(VAListAddr, BPP, "ap");
4901 llvm::Value *Addr = Builder.CreateLoad(VAListAddrAsBPP, "ap.cur");
Akira Hatanaka8f675e42012-01-23 23:59:52 +00004902 int64_t TypeAlign = getContext().getTypeAlign(Ty) / 8;
Akira Hatanakac35e69d2011-08-01 20:48:01 +00004903 llvm::Type *PTy = llvm::PointerType::getUnqual(CGF.ConvertType(Ty));
4904 llvm::Value *AddrTyped;
John McCall64aa4b32013-04-16 22:48:15 +00004905 unsigned PtrWidth = getTarget().getPointerWidth(0);
Akira Hatanaka8f675e42012-01-23 23:59:52 +00004906 llvm::IntegerType *IntTy = (PtrWidth == 32) ? CGF.Int32Ty : CGF.Int64Ty;
Akira Hatanakac35e69d2011-08-01 20:48:01 +00004907
4908 if (TypeAlign > MinABIStackAlignInBytes) {
Akira Hatanaka8f675e42012-01-23 23:59:52 +00004909 llvm::Value *AddrAsInt = CGF.Builder.CreatePtrToInt(Addr, IntTy);
4910 llvm::Value *Inc = llvm::ConstantInt::get(IntTy, TypeAlign - 1);
4911 llvm::Value *Mask = llvm::ConstantInt::get(IntTy, -TypeAlign);
4912 llvm::Value *Add = CGF.Builder.CreateAdd(AddrAsInt, Inc);
Akira Hatanakac35e69d2011-08-01 20:48:01 +00004913 llvm::Value *And = CGF.Builder.CreateAnd(Add, Mask);
4914 AddrTyped = CGF.Builder.CreateIntToPtr(And, PTy);
4915 }
4916 else
4917 AddrTyped = Builder.CreateBitCast(Addr, PTy);
4918
4919 llvm::Value *AlignedAddr = Builder.CreateBitCast(AddrTyped, BP);
Akira Hatanaka8f675e42012-01-23 23:59:52 +00004920 TypeAlign = std::max((unsigned)TypeAlign, MinABIStackAlignInBytes);
Akira Hatanakac35e69d2011-08-01 20:48:01 +00004921 uint64_t Offset =
4922 llvm::RoundUpToAlignment(CGF.getContext().getTypeSize(Ty) / 8, TypeAlign);
4923 llvm::Value *NextAddr =
Akira Hatanaka8f675e42012-01-23 23:59:52 +00004924 Builder.CreateGEP(AlignedAddr, llvm::ConstantInt::get(IntTy, Offset),
Akira Hatanakac35e69d2011-08-01 20:48:01 +00004925 "ap.next");
4926 Builder.CreateStore(NextAddr, VAListAddrAsBPP);
4927
4928 return AddrTyped;
Akira Hatanaka619e8872011-06-02 00:09:17 +00004929}
4930
John McCallaeeb7012010-05-27 06:19:26 +00004931bool
4932MIPSTargetCodeGenInfo::initDwarfEHRegSizeTable(CodeGen::CodeGenFunction &CGF,
4933 llvm::Value *Address) const {
4934 // This information comes from gcc's implementation, which seems to
4935 // as canonical as it gets.
4936
John McCallaeeb7012010-05-27 06:19:26 +00004937 // Everything on MIPS is 4 bytes. Double-precision FP registers
4938 // are aliased to pairs of single-precision FP registers.
Chris Lattner8b418682012-02-07 00:39:47 +00004939 llvm::Value *Four8 = llvm::ConstantInt::get(CGF.Int8Ty, 4);
John McCallaeeb7012010-05-27 06:19:26 +00004940
4941 // 0-31 are the general purpose registers, $0 - $31.
4942 // 32-63 are the floating-point registers, $f0 - $f31.
4943 // 64 and 65 are the multiply/divide registers, $hi and $lo.
4944 // 66 is the (notional, I think) register for signal-handler return.
Chris Lattner8b418682012-02-07 00:39:47 +00004945 AssignToArrayRange(CGF.Builder, Address, Four8, 0, 65);
John McCallaeeb7012010-05-27 06:19:26 +00004946
4947 // 67-74 are the floating-point status registers, $fcc0 - $fcc7.
4948 // They are one bit wide and ignored here.
4949
4950 // 80-111 are the coprocessor 0 registers, $c0r0 - $c0r31.
4951 // (coprocessor 1 is the FP unit)
4952 // 112-143 are the coprocessor 2 registers, $c2r0 - $c2r31.
4953 // 144-175 are the coprocessor 3 registers, $c3r0 - $c3r31.
4954 // 176-181 are the DSP accumulator registers.
Chris Lattner8b418682012-02-07 00:39:47 +00004955 AssignToArrayRange(CGF.Builder, Address, Four8, 80, 181);
John McCallaeeb7012010-05-27 06:19:26 +00004956 return false;
4957}
4958
Peter Collingbourne2f7aa992011-10-13 16:24:41 +00004959//===----------------------------------------------------------------------===//
4960// TCE ABI Implementation (see http://tce.cs.tut.fi). Uses mostly the defaults.
4961// Currently subclassed only to implement custom OpenCL C function attribute
4962// handling.
4963//===----------------------------------------------------------------------===//
4964
4965namespace {
4966
4967class TCETargetCodeGenInfo : public DefaultTargetCodeGenInfo {
4968public:
4969 TCETargetCodeGenInfo(CodeGenTypes &CGT)
4970 : DefaultTargetCodeGenInfo(CGT) {}
4971
4972 virtual void SetTargetAttributes(const Decl *D, llvm::GlobalValue *GV,
4973 CodeGen::CodeGenModule &M) const;
4974};
4975
4976void TCETargetCodeGenInfo::SetTargetAttributes(const Decl *D,
4977 llvm::GlobalValue *GV,
4978 CodeGen::CodeGenModule &M) const {
4979 const FunctionDecl *FD = dyn_cast<FunctionDecl>(D);
4980 if (!FD) return;
4981
4982 llvm::Function *F = cast<llvm::Function>(GV);
4983
David Blaikie4e4d0842012-03-11 07:00:24 +00004984 if (M.getLangOpts().OpenCL) {
Peter Collingbourne2f7aa992011-10-13 16:24:41 +00004985 if (FD->hasAttr<OpenCLKernelAttr>()) {
4986 // OpenCL C Kernel functions are not subject to inlining
Bill Wendling72390b32012-12-20 19:27:06 +00004987 F->addFnAttr(llvm::Attribute::NoInline);
Peter Collingbourne2f7aa992011-10-13 16:24:41 +00004988
4989 if (FD->hasAttr<ReqdWorkGroupSizeAttr>()) {
4990
4991 // Convert the reqd_work_group_size() attributes to metadata.
4992 llvm::LLVMContext &Context = F->getContext();
4993 llvm::NamedMDNode *OpenCLMetadata =
4994 M.getModule().getOrInsertNamedMetadata("opencl.kernel_wg_size_info");
4995
4996 SmallVector<llvm::Value*, 5> Operands;
4997 Operands.push_back(F);
4998
Chris Lattner8b418682012-02-07 00:39:47 +00004999 Operands.push_back(llvm::Constant::getIntegerValue(M.Int32Ty,
5000 llvm::APInt(32,
5001 FD->getAttr<ReqdWorkGroupSizeAttr>()->getXDim())));
5002 Operands.push_back(llvm::Constant::getIntegerValue(M.Int32Ty,
5003 llvm::APInt(32,
Peter Collingbourne2f7aa992011-10-13 16:24:41 +00005004 FD->getAttr<ReqdWorkGroupSizeAttr>()->getYDim())));
Chris Lattner8b418682012-02-07 00:39:47 +00005005 Operands.push_back(llvm::Constant::getIntegerValue(M.Int32Ty,
5006 llvm::APInt(32,
Peter Collingbourne2f7aa992011-10-13 16:24:41 +00005007 FD->getAttr<ReqdWorkGroupSizeAttr>()->getZDim())));
5008
5009 // Add a boolean constant operand for "required" (true) or "hint" (false)
5010 // for implementing the work_group_size_hint attr later. Currently
5011 // always true as the hint is not yet implemented.
Chris Lattner8b418682012-02-07 00:39:47 +00005012 Operands.push_back(llvm::ConstantInt::getTrue(Context));
Peter Collingbourne2f7aa992011-10-13 16:24:41 +00005013 OpenCLMetadata->addOperand(llvm::MDNode::get(Context, Operands));
5014 }
5015 }
5016 }
5017}
5018
5019}
John McCallaeeb7012010-05-27 06:19:26 +00005020
Tony Linthicum96319392011-12-12 21:14:55 +00005021//===----------------------------------------------------------------------===//
5022// Hexagon ABI Implementation
5023//===----------------------------------------------------------------------===//
5024
5025namespace {
5026
5027class HexagonABIInfo : public ABIInfo {
5028
5029
5030public:
5031 HexagonABIInfo(CodeGenTypes &CGT) : ABIInfo(CGT) {}
5032
5033private:
5034
5035 ABIArgInfo classifyReturnType(QualType RetTy) const;
5036 ABIArgInfo classifyArgumentType(QualType RetTy) const;
5037
5038 virtual void computeInfo(CGFunctionInfo &FI) const;
5039
5040 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
5041 CodeGenFunction &CGF) const;
5042};
5043
5044class HexagonTargetCodeGenInfo : public TargetCodeGenInfo {
5045public:
5046 HexagonTargetCodeGenInfo(CodeGenTypes &CGT)
5047 :TargetCodeGenInfo(new HexagonABIInfo(CGT)) {}
5048
5049 int getDwarfEHStackPointer(CodeGen::CodeGenModule &M) const {
5050 return 29;
5051 }
5052};
5053
5054}
5055
5056void HexagonABIInfo::computeInfo(CGFunctionInfo &FI) const {
5057 FI.getReturnInfo() = classifyReturnType(FI.getReturnType());
5058 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
5059 it != ie; ++it)
5060 it->info = classifyArgumentType(it->type);
5061}
5062
5063ABIArgInfo HexagonABIInfo::classifyArgumentType(QualType Ty) const {
5064 if (!isAggregateTypeForABI(Ty)) {
5065 // Treat an enum type as its underlying type.
5066 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
5067 Ty = EnumTy->getDecl()->getIntegerType();
5068
5069 return (Ty->isPromotableIntegerType() ?
5070 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
5071 }
5072
5073 // Ignore empty records.
5074 if (isEmptyRecord(getContext(), Ty, true))
5075 return ABIArgInfo::getIgnore();
5076
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00005077 if (CGCXXABI::RecordArgABI RAA = getRecordArgABI(Ty, CGT))
5078 return ABIArgInfo::getIndirect(0, RAA == CGCXXABI::RAA_DirectInMemory);
Tony Linthicum96319392011-12-12 21:14:55 +00005079
5080 uint64_t Size = getContext().getTypeSize(Ty);
5081 if (Size > 64)
5082 return ABIArgInfo::getIndirect(0, /*ByVal=*/true);
5083 // Pass in the smallest viable integer type.
5084 else if (Size > 32)
5085 return ABIArgInfo::getDirect(llvm::Type::getInt64Ty(getVMContext()));
5086 else if (Size > 16)
5087 return ABIArgInfo::getDirect(llvm::Type::getInt32Ty(getVMContext()));
5088 else if (Size > 8)
5089 return ABIArgInfo::getDirect(llvm::Type::getInt16Ty(getVMContext()));
5090 else
5091 return ABIArgInfo::getDirect(llvm::Type::getInt8Ty(getVMContext()));
5092}
5093
5094ABIArgInfo HexagonABIInfo::classifyReturnType(QualType RetTy) const {
5095 if (RetTy->isVoidType())
5096 return ABIArgInfo::getIgnore();
5097
5098 // Large vector types should be returned via memory.
5099 if (RetTy->isVectorType() && getContext().getTypeSize(RetTy) > 64)
5100 return ABIArgInfo::getIndirect(0);
5101
5102 if (!isAggregateTypeForABI(RetTy)) {
5103 // Treat an enum type as its underlying type.
5104 if (const EnumType *EnumTy = RetTy->getAs<EnumType>())
5105 RetTy = EnumTy->getDecl()->getIntegerType();
5106
5107 return (RetTy->isPromotableIntegerType() ?
5108 ABIArgInfo::getExtend() : ABIArgInfo::getDirect());
5109 }
5110
5111 // Structures with either a non-trivial destructor or a non-trivial
5112 // copy constructor are always indirect.
Timur Iskhodzhanoved23bdf2013-04-17 12:54:10 +00005113 if (isRecordReturnIndirect(RetTy, CGT))
Tony Linthicum96319392011-12-12 21:14:55 +00005114 return ABIArgInfo::getIndirect(0, /*ByVal=*/false);
5115
5116 if (isEmptyRecord(getContext(), RetTy, true))
5117 return ABIArgInfo::getIgnore();
5118
5119 // Aggregates <= 8 bytes are returned in r0; other aggregates
5120 // are returned indirectly.
5121 uint64_t Size = getContext().getTypeSize(RetTy);
5122 if (Size <= 64) {
5123 // Return in the smallest viable integer type.
5124 if (Size <= 8)
5125 return ABIArgInfo::getDirect(llvm::Type::getInt8Ty(getVMContext()));
5126 if (Size <= 16)
5127 return ABIArgInfo::getDirect(llvm::Type::getInt16Ty(getVMContext()));
5128 if (Size <= 32)
5129 return ABIArgInfo::getDirect(llvm::Type::getInt32Ty(getVMContext()));
5130 return ABIArgInfo::getDirect(llvm::Type::getInt64Ty(getVMContext()));
5131 }
5132
5133 return ABIArgInfo::getIndirect(0, /*ByVal=*/true);
5134}
5135
5136llvm::Value *HexagonABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
Chris Lattner8b418682012-02-07 00:39:47 +00005137 CodeGenFunction &CGF) const {
Tony Linthicum96319392011-12-12 21:14:55 +00005138 // FIXME: Need to handle alignment
Chris Lattner8b418682012-02-07 00:39:47 +00005139 llvm::Type *BPP = CGF.Int8PtrPtrTy;
Tony Linthicum96319392011-12-12 21:14:55 +00005140
5141 CGBuilderTy &Builder = CGF.Builder;
5142 llvm::Value *VAListAddrAsBPP = Builder.CreateBitCast(VAListAddr, BPP,
5143 "ap");
5144 llvm::Value *Addr = Builder.CreateLoad(VAListAddrAsBPP, "ap.cur");
5145 llvm::Type *PTy =
5146 llvm::PointerType::getUnqual(CGF.ConvertType(Ty));
5147 llvm::Value *AddrTyped = Builder.CreateBitCast(Addr, PTy);
5148
5149 uint64_t Offset =
5150 llvm::RoundUpToAlignment(CGF.getContext().getTypeSize(Ty) / 8, 4);
5151 llvm::Value *NextAddr =
5152 Builder.CreateGEP(Addr, llvm::ConstantInt::get(CGF.Int32Ty, Offset),
5153 "ap.next");
5154 Builder.CreateStore(NextAddr, VAListAddrAsBPP);
5155
5156 return AddrTyped;
5157}
5158
5159
Jakob Stoklund Olesen107196c2013-05-27 21:48:25 +00005160//===----------------------------------------------------------------------===//
5161// SPARC v9 ABI Implementation.
5162// Based on the SPARC Compliance Definition version 2.4.1.
5163//
5164// Function arguments a mapped to a nominal "parameter array" and promoted to
5165// registers depending on their type. Each argument occupies 8 or 16 bytes in
5166// the array, structs larger than 16 bytes are passed indirectly.
5167//
5168// One case requires special care:
5169//
5170// struct mixed {
5171// int i;
5172// float f;
5173// };
5174//
5175// When a struct mixed is passed by value, it only occupies 8 bytes in the
5176// parameter array, but the int is passed in an integer register, and the float
5177// is passed in a floating point register. This is represented as two arguments
5178// with the LLVM IR inreg attribute:
5179//
5180// declare void f(i32 inreg %i, float inreg %f)
5181//
5182// The code generator will only allocate 4 bytes from the parameter array for
5183// the inreg arguments. All other arguments are allocated a multiple of 8
5184// bytes.
5185//
5186namespace {
5187class SparcV9ABIInfo : public ABIInfo {
5188public:
5189 SparcV9ABIInfo(CodeGenTypes &CGT) : ABIInfo(CGT) {}
5190
5191private:
5192 ABIArgInfo classifyType(QualType RetTy, unsigned SizeLimit) const;
5193 virtual void computeInfo(CGFunctionInfo &FI) const;
5194 virtual llvm::Value *EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
5195 CodeGenFunction &CGF) const;
Jakob Stoklund Olesenfc782fb2013-05-28 04:57:37 +00005196
5197 // Coercion type builder for structs passed in registers. The coercion type
5198 // serves two purposes:
5199 //
5200 // 1. Pad structs to a multiple of 64 bits, so they are passed 'left-aligned'
5201 // in registers.
5202 // 2. Expose aligned floating point elements as first-level elements, so the
5203 // code generator knows to pass them in floating point registers.
5204 //
5205 // We also compute the InReg flag which indicates that the struct contains
5206 // aligned 32-bit floats.
5207 //
5208 struct CoerceBuilder {
5209 llvm::LLVMContext &Context;
5210 const llvm::DataLayout &DL;
5211 SmallVector<llvm::Type*, 8> Elems;
5212 uint64_t Size;
5213 bool InReg;
5214
5215 CoerceBuilder(llvm::LLVMContext &c, const llvm::DataLayout &dl)
5216 : Context(c), DL(dl), Size(0), InReg(false) {}
5217
5218 // Pad Elems with integers until Size is ToSize.
5219 void pad(uint64_t ToSize) {
5220 assert(ToSize >= Size && "Cannot remove elements");
5221 if (ToSize == Size)
5222 return;
5223
5224 // Finish the current 64-bit word.
5225 uint64_t Aligned = llvm::RoundUpToAlignment(Size, 64);
5226 if (Aligned > Size && Aligned <= ToSize) {
5227 Elems.push_back(llvm::IntegerType::get(Context, Aligned - Size));
5228 Size = Aligned;
5229 }
5230
5231 // Add whole 64-bit words.
5232 while (Size + 64 <= ToSize) {
5233 Elems.push_back(llvm::Type::getInt64Ty(Context));
5234 Size += 64;
5235 }
5236
5237 // Final in-word padding.
5238 if (Size < ToSize) {
5239 Elems.push_back(llvm::IntegerType::get(Context, ToSize - Size));
5240 Size = ToSize;
5241 }
5242 }
5243
5244 // Add a floating point element at Offset.
5245 void addFloat(uint64_t Offset, llvm::Type *Ty, unsigned Bits) {
5246 // Unaligned floats are treated as integers.
5247 if (Offset % Bits)
5248 return;
5249 // The InReg flag is only required if there are any floats < 64 bits.
5250 if (Bits < 64)
5251 InReg = true;
5252 pad(Offset);
5253 Elems.push_back(Ty);
5254 Size = Offset + Bits;
5255 }
5256
5257 // Add a struct type to the coercion type, starting at Offset (in bits).
5258 void addStruct(uint64_t Offset, llvm::StructType *StrTy) {
5259 const llvm::StructLayout *Layout = DL.getStructLayout(StrTy);
5260 for (unsigned i = 0, e = StrTy->getNumElements(); i != e; ++i) {
5261 llvm::Type *ElemTy = StrTy->getElementType(i);
5262 uint64_t ElemOffset = Offset + Layout->getElementOffsetInBits(i);
5263 switch (ElemTy->getTypeID()) {
5264 case llvm::Type::StructTyID:
5265 addStruct(ElemOffset, cast<llvm::StructType>(ElemTy));
5266 break;
5267 case llvm::Type::FloatTyID:
5268 addFloat(ElemOffset, ElemTy, 32);
5269 break;
5270 case llvm::Type::DoubleTyID:
5271 addFloat(ElemOffset, ElemTy, 64);
5272 break;
5273 case llvm::Type::FP128TyID:
5274 addFloat(ElemOffset, ElemTy, 128);
5275 break;
5276 case llvm::Type::PointerTyID:
5277 if (ElemOffset % 64 == 0) {
5278 pad(ElemOffset);
5279 Elems.push_back(ElemTy);
5280 Size += 64;
5281 }
5282 break;
5283 default:
5284 break;
5285 }
5286 }
5287 }
5288
5289 // Check if Ty is a usable substitute for the coercion type.
5290 bool isUsableType(llvm::StructType *Ty) const {
5291 if (Ty->getNumElements() != Elems.size())
5292 return false;
5293 for (unsigned i = 0, e = Elems.size(); i != e; ++i)
5294 if (Elems[i] != Ty->getElementType(i))
5295 return false;
5296 return true;
5297 }
5298
5299 // Get the coercion type as a literal struct type.
5300 llvm::Type *getType() const {
5301 if (Elems.size() == 1)
5302 return Elems.front();
5303 else
5304 return llvm::StructType::get(Context, Elems);
5305 }
5306 };
Jakob Stoklund Olesen107196c2013-05-27 21:48:25 +00005307};
5308} // end anonymous namespace
5309
5310ABIArgInfo
5311SparcV9ABIInfo::classifyType(QualType Ty, unsigned SizeLimit) const {
5312 if (Ty->isVoidType())
5313 return ABIArgInfo::getIgnore();
5314
5315 uint64_t Size = getContext().getTypeSize(Ty);
5316
5317 // Anything too big to fit in registers is passed with an explicit indirect
5318 // pointer / sret pointer.
5319 if (Size > SizeLimit)
5320 return ABIArgInfo::getIndirect(0, /*ByVal=*/false);
5321
5322 // Treat an enum type as its underlying type.
5323 if (const EnumType *EnumTy = Ty->getAs<EnumType>())
5324 Ty = EnumTy->getDecl()->getIntegerType();
5325
5326 // Integer types smaller than a register are extended.
5327 if (Size < 64 && Ty->isIntegerType())
5328 return ABIArgInfo::getExtend();
5329
5330 // Other non-aggregates go in registers.
5331 if (!isAggregateTypeForABI(Ty))
5332 return ABIArgInfo::getDirect();
5333
5334 // This is a small aggregate type that should be passed in registers.
Jakob Stoklund Olesenfc782fb2013-05-28 04:57:37 +00005335 // Build a coercion type from the LLVM struct type.
5336 llvm::StructType *StrTy = dyn_cast<llvm::StructType>(CGT.ConvertType(Ty));
5337 if (!StrTy)
5338 return ABIArgInfo::getDirect();
5339
5340 CoerceBuilder CB(getVMContext(), getDataLayout());
5341 CB.addStruct(0, StrTy);
5342 CB.pad(llvm::RoundUpToAlignment(CB.DL.getTypeSizeInBits(StrTy), 64));
5343
5344 // Try to use the original type for coercion.
5345 llvm::Type *CoerceTy = CB.isUsableType(StrTy) ? StrTy : CB.getType();
5346
5347 if (CB.InReg)
5348 return ABIArgInfo::getDirectInReg(CoerceTy);
5349 else
5350 return ABIArgInfo::getDirect(CoerceTy);
Jakob Stoklund Olesen107196c2013-05-27 21:48:25 +00005351}
5352
5353llvm::Value *SparcV9ABIInfo::EmitVAArg(llvm::Value *VAListAddr, QualType Ty,
5354 CodeGenFunction &CGF) const {
Jakob Stoklund Olesena4b56d32013-06-05 03:00:18 +00005355 ABIArgInfo AI = classifyType(Ty, 16 * 8);
5356 llvm::Type *ArgTy = CGT.ConvertType(Ty);
5357 if (AI.canHaveCoerceToType() && !AI.getCoerceToType())
5358 AI.setCoerceToType(ArgTy);
5359
5360 llvm::Type *BPP = CGF.Int8PtrPtrTy;
5361 CGBuilderTy &Builder = CGF.Builder;
5362 llvm::Value *VAListAddrAsBPP = Builder.CreateBitCast(VAListAddr, BPP, "ap");
5363 llvm::Value *Addr = Builder.CreateLoad(VAListAddrAsBPP, "ap.cur");
5364 llvm::Type *ArgPtrTy = llvm::PointerType::getUnqual(ArgTy);
5365 llvm::Value *ArgAddr;
5366 unsigned Stride;
5367
5368 switch (AI.getKind()) {
5369 case ABIArgInfo::Expand:
5370 llvm_unreachable("Unsupported ABI kind for va_arg");
5371
5372 case ABIArgInfo::Extend:
5373 Stride = 8;
5374 ArgAddr = Builder
5375 .CreateConstGEP1_32(Addr, 8 - getDataLayout().getTypeAllocSize(ArgTy),
5376 "extend");
5377 break;
5378
5379 case ABIArgInfo::Direct:
5380 Stride = getDataLayout().getTypeAllocSize(AI.getCoerceToType());
5381 ArgAddr = Addr;
5382 break;
5383
5384 case ABIArgInfo::Indirect:
5385 Stride = 8;
5386 ArgAddr = Builder.CreateBitCast(Addr,
5387 llvm::PointerType::getUnqual(ArgPtrTy),
5388 "indirect");
5389 ArgAddr = Builder.CreateLoad(ArgAddr, "indirect.arg");
5390 break;
5391
5392 case ABIArgInfo::Ignore:
5393 return llvm::UndefValue::get(ArgPtrTy);
5394 }
5395
5396 // Update VAList.
5397 Addr = Builder.CreateConstGEP1_32(Addr, Stride, "ap.next");
5398 Builder.CreateStore(Addr, VAListAddrAsBPP);
5399
5400 return Builder.CreatePointerCast(ArgAddr, ArgPtrTy, "arg.addr");
Jakob Stoklund Olesen107196c2013-05-27 21:48:25 +00005401}
5402
5403void SparcV9ABIInfo::computeInfo(CGFunctionInfo &FI) const {
5404 FI.getReturnInfo() = classifyType(FI.getReturnType(), 32 * 8);
5405 for (CGFunctionInfo::arg_iterator it = FI.arg_begin(), ie = FI.arg_end();
5406 it != ie; ++it)
5407 it->info = classifyType(it->type, 16 * 8);
5408}
5409
5410namespace {
5411class SparcV9TargetCodeGenInfo : public TargetCodeGenInfo {
5412public:
5413 SparcV9TargetCodeGenInfo(CodeGenTypes &CGT)
5414 : TargetCodeGenInfo(new SparcV9ABIInfo(CGT)) {}
5415};
5416} // end anonymous namespace
5417
5418
Chris Lattnerea044322010-07-29 02:01:43 +00005419const TargetCodeGenInfo &CodeGenModule::getTargetCodeGenInfo() {
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00005420 if (TheTargetCodeGenInfo)
5421 return *TheTargetCodeGenInfo;
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00005422
John McCall64aa4b32013-04-16 22:48:15 +00005423 const llvm::Triple &Triple = getTarget().getTriple();
Daniel Dunbar1752ee42009-08-24 09:10:05 +00005424 switch (Triple.getArch()) {
Daniel Dunbar2c0843f2009-08-24 08:52:16 +00005425 default:
Chris Lattnerea044322010-07-29 02:01:43 +00005426 return *(TheTargetCodeGenInfo = new DefaultTargetCodeGenInfo(Types));
Daniel Dunbar2c0843f2009-08-24 08:52:16 +00005427
Derek Schuff9ed63f82012-09-06 17:37:28 +00005428 case llvm::Triple::le32:
5429 return *(TheTargetCodeGenInfo = new PNaClTargetCodeGenInfo(Types));
John McCallaeeb7012010-05-27 06:19:26 +00005430 case llvm::Triple::mips:
5431 case llvm::Triple::mipsel:
Akira Hatanakac0e3b662011-11-02 23:14:57 +00005432 return *(TheTargetCodeGenInfo = new MIPSTargetCodeGenInfo(Types, true));
John McCallaeeb7012010-05-27 06:19:26 +00005433
Akira Hatanaka8c6dfbe2011-09-20 18:30:57 +00005434 case llvm::Triple::mips64:
5435 case llvm::Triple::mips64el:
Akira Hatanakac0e3b662011-11-02 23:14:57 +00005436 return *(TheTargetCodeGenInfo = new MIPSTargetCodeGenInfo(Types, false));
Akira Hatanaka8c6dfbe2011-09-20 18:30:57 +00005437
Tim Northoverc264e162013-01-31 12:13:10 +00005438 case llvm::Triple::aarch64:
5439 return *(TheTargetCodeGenInfo = new AArch64TargetCodeGenInfo(Types));
5440
Daniel Dunbar34d91fd2009-09-12 00:59:49 +00005441 case llvm::Triple::arm:
5442 case llvm::Triple::thumb:
Sandeep Patel34c1af82011-04-05 00:23:47 +00005443 {
5444 ARMABIInfo::ABIKind Kind = ARMABIInfo::AAPCS;
John McCall64aa4b32013-04-16 22:48:15 +00005445 if (strcmp(getTarget().getABI(), "apcs-gnu") == 0)
Sandeep Patel34c1af82011-04-05 00:23:47 +00005446 Kind = ARMABIInfo::APCS;
David Tweedb16abb12012-10-25 13:33:01 +00005447 else if (CodeGenOpts.FloatABI == "hard" ||
John McCall64aa4b32013-04-16 22:48:15 +00005448 (CodeGenOpts.FloatABI != "soft" &&
5449 Triple.getEnvironment() == llvm::Triple::GNUEABIHF))
Sandeep Patel34c1af82011-04-05 00:23:47 +00005450 Kind = ARMABIInfo::AAPCS_VFP;
5451
Derek Schuff263366f2012-10-16 22:30:41 +00005452 switch (Triple.getOS()) {
Eli Bendersky441d9f72012-12-04 18:38:10 +00005453 case llvm::Triple::NaCl:
Derek Schuff263366f2012-10-16 22:30:41 +00005454 return *(TheTargetCodeGenInfo =
5455 new NaClARMTargetCodeGenInfo(Types, Kind));
5456 default:
5457 return *(TheTargetCodeGenInfo =
5458 new ARMTargetCodeGenInfo(Types, Kind));
5459 }
Sandeep Patel34c1af82011-04-05 00:23:47 +00005460 }
Daniel Dunbar34d91fd2009-09-12 00:59:49 +00005461
John McCallec853ba2010-03-11 00:10:12 +00005462 case llvm::Triple::ppc:
Chris Lattnerea044322010-07-29 02:01:43 +00005463 return *(TheTargetCodeGenInfo = new PPC32TargetCodeGenInfo(Types));
Roman Divacky0fbc4b92012-05-09 18:22:46 +00005464 case llvm::Triple::ppc64:
Bill Schmidt2fc107f2012-10-03 19:18:57 +00005465 if (Triple.isOSBinFormatELF())
5466 return *(TheTargetCodeGenInfo = new PPC64_SVR4_TargetCodeGenInfo(Types));
5467 else
5468 return *(TheTargetCodeGenInfo = new PPC64TargetCodeGenInfo(Types));
John McCallec853ba2010-03-11 00:10:12 +00005469
Peter Collingbourneedb66f32012-05-20 23:28:41 +00005470 case llvm::Triple::nvptx:
5471 case llvm::Triple::nvptx64:
Justin Holewinski2c585b92012-05-24 17:43:12 +00005472 return *(TheTargetCodeGenInfo = new NVPTXTargetCodeGenInfo(Types));
Justin Holewinski0259c3a2011-04-22 11:10:38 +00005473
Wesley Peck276fdf42010-12-19 19:57:51 +00005474 case llvm::Triple::mblaze:
5475 return *(TheTargetCodeGenInfo = new MBlazeTargetCodeGenInfo(Types));
5476
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00005477 case llvm::Triple::msp430:
Chris Lattnerea044322010-07-29 02:01:43 +00005478 return *(TheTargetCodeGenInfo = new MSP430TargetCodeGenInfo(Types));
Daniel Dunbar34d91fd2009-09-12 00:59:49 +00005479
Ulrich Weigandb8409212013-05-06 16:26:41 +00005480 case llvm::Triple::systemz:
5481 return *(TheTargetCodeGenInfo = new SystemZTargetCodeGenInfo(Types));
5482
Peter Collingbourne2f7aa992011-10-13 16:24:41 +00005483 case llvm::Triple::tce:
5484 return *(TheTargetCodeGenInfo = new TCETargetCodeGenInfo(Types));
5485
Eli Friedmanc3e0fb42011-07-08 23:31:17 +00005486 case llvm::Triple::x86: {
Daniel Dunbardb57a4c2011-04-19 21:43:27 +00005487 if (Triple.isOSDarwin())
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00005488 return *(TheTargetCodeGenInfo =
Chad Rosier1f1df1f2013-03-25 21:00:27 +00005489 new X86_32TargetCodeGenInfo(Types, true, true, false,
Rafael Espindolab48280b2012-07-31 02:44:24 +00005490 CodeGenOpts.NumRegisterParameters));
Daniel Dunbardb57a4c2011-04-19 21:43:27 +00005491
5492 switch (Triple.getOS()) {
Daniel Dunbar2c0843f2009-08-24 08:52:16 +00005493 case llvm::Triple::Cygwin:
Daniel Dunbar2c0843f2009-08-24 08:52:16 +00005494 case llvm::Triple::MinGW32:
Edward O'Callaghan727e2682009-10-21 11:58:24 +00005495 case llvm::Triple::AuroraUX:
5496 case llvm::Triple::DragonFly:
David Chisnall75c135a2009-09-03 01:48:05 +00005497 case llvm::Triple::FreeBSD:
Daniel Dunbar2c0843f2009-08-24 08:52:16 +00005498 case llvm::Triple::OpenBSD:
Eli Friedman42f74f22012-08-08 23:57:20 +00005499 case llvm::Triple::Bitrig:
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00005500 return *(TheTargetCodeGenInfo =
Chad Rosier1f1df1f2013-03-25 21:00:27 +00005501 new X86_32TargetCodeGenInfo(Types, false, true, false,
Rafael Espindolab48280b2012-07-31 02:44:24 +00005502 CodeGenOpts.NumRegisterParameters));
Eli Friedman55fc7e22012-01-25 22:46:34 +00005503
5504 case llvm::Triple::Win32:
5505 return *(TheTargetCodeGenInfo =
Reid Kleckner3190ca92013-05-08 13:44:39 +00005506 new WinX86_32TargetCodeGenInfo(Types,
5507 CodeGenOpts.NumRegisterParameters));
Daniel Dunbar2c0843f2009-08-24 08:52:16 +00005508
5509 default:
Anton Korobeynikov82d0a412010-01-10 12:58:08 +00005510 return *(TheTargetCodeGenInfo =
Chad Rosier1f1df1f2013-03-25 21:00:27 +00005511 new X86_32TargetCodeGenInfo(Types, false, false, false,
Rafael Espindolab48280b2012-07-31 02:44:24 +00005512 CodeGenOpts.NumRegisterParameters));
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00005513 }
Eli Friedmanc3e0fb42011-07-08 23:31:17 +00005514 }
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00005515
Eli Friedmanee1ad992011-12-02 00:11:43 +00005516 case llvm::Triple::x86_64: {
John McCall64aa4b32013-04-16 22:48:15 +00005517 bool HasAVX = strcmp(getTarget().getABI(), "avx") == 0;
Eli Friedmanee1ad992011-12-02 00:11:43 +00005518
Chris Lattnerf13721d2010-08-31 16:44:54 +00005519 switch (Triple.getOS()) {
5520 case llvm::Triple::Win32:
NAKAMURA Takumi0aa20572011-02-17 08:51:38 +00005521 case llvm::Triple::MinGW32:
Chris Lattnerf13721d2010-08-31 16:44:54 +00005522 case llvm::Triple::Cygwin:
5523 return *(TheTargetCodeGenInfo = new WinX86_64TargetCodeGenInfo(Types));
Eli Bendersky441d9f72012-12-04 18:38:10 +00005524 case llvm::Triple::NaCl:
John McCall64aa4b32013-04-16 22:48:15 +00005525 return *(TheTargetCodeGenInfo = new NaClX86_64TargetCodeGenInfo(Types,
5526 HasAVX));
Chris Lattnerf13721d2010-08-31 16:44:54 +00005527 default:
Eli Friedmanee1ad992011-12-02 00:11:43 +00005528 return *(TheTargetCodeGenInfo = new X86_64TargetCodeGenInfo(Types,
5529 HasAVX));
Chris Lattnerf13721d2010-08-31 16:44:54 +00005530 }
Daniel Dunbar2c0843f2009-08-24 08:52:16 +00005531 }
Tony Linthicum96319392011-12-12 21:14:55 +00005532 case llvm::Triple::hexagon:
5533 return *(TheTargetCodeGenInfo = new HexagonTargetCodeGenInfo(Types));
Jakob Stoklund Olesen107196c2013-05-27 21:48:25 +00005534 case llvm::Triple::sparcv9:
5535 return *(TheTargetCodeGenInfo = new SparcV9TargetCodeGenInfo(Types));
Eli Friedmanee1ad992011-12-02 00:11:43 +00005536 }
Anton Korobeynikovc4a59eb2009-06-05 22:08:42 +00005537}