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Dan Gohmanf17a25c2007-07-18 16:29:46 +00001//===-- CBackend.cpp - Library for converting LLVM code to C --------------===//
2//
3// The LLVM Compiler Infrastructure
4//
Chris Lattner081ce942007-12-29 20:36:04 +00005// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00007//
8//===----------------------------------------------------------------------===//
9//
10// This library converts LLVM code to C code, compilable by GCC and other C
11// compilers.
12//
13//===----------------------------------------------------------------------===//
14
15#include "CTargetMachine.h"
16#include "llvm/CallingConv.h"
17#include "llvm/Constants.h"
18#include "llvm/DerivedTypes.h"
19#include "llvm/Module.h"
20#include "llvm/Instructions.h"
Dan Gohmanf17a25c2007-07-18 16:29:46 +000021#include "llvm/Pass.h"
22#include "llvm/PassManager.h"
23#include "llvm/TypeSymbolTable.h"
24#include "llvm/Intrinsics.h"
25#include "llvm/IntrinsicInst.h"
26#include "llvm/InlineAsm.h"
27#include "llvm/Analysis/ConstantsScanner.h"
28#include "llvm/Analysis/FindUsedTypes.h"
29#include "llvm/Analysis/LoopInfo.h"
Gordon Henriksendf87fdc2008-01-07 01:30:38 +000030#include "llvm/CodeGen/Passes.h"
Dan Gohmanf17a25c2007-07-18 16:29:46 +000031#include "llvm/CodeGen/IntrinsicLowering.h"
32#include "llvm/Transforms/Scalar.h"
33#include "llvm/Target/TargetMachineRegistry.h"
34#include "llvm/Target/TargetAsmInfo.h"
35#include "llvm/Target/TargetData.h"
36#include "llvm/Support/CallSite.h"
37#include "llvm/Support/CFG.h"
38#include "llvm/Support/GetElementPtrTypeIterator.h"
39#include "llvm/Support/InstVisitor.h"
40#include "llvm/Support/Mangler.h"
41#include "llvm/Support/MathExtras.h"
Owen Anderson847b99b2008-08-21 00:14:44 +000042#include "llvm/Support/raw_ostream.h"
Dan Gohmanf17a25c2007-07-18 16:29:46 +000043#include "llvm/ADT/StringExtras.h"
44#include "llvm/ADT/STLExtras.h"
45#include "llvm/Support/MathExtras.h"
46#include "llvm/Config/config.h"
47#include <algorithm>
48#include <sstream>
49using namespace llvm;
50
Oscar Fuentes4f012352008-11-15 21:36:30 +000051/// CBackendTargetMachineModule - Note that this is used on hosts that
52/// cannot link in a library unless there are references into the
53/// library. In particular, it seems that it is not possible to get
54/// things to work on Win32 without this. Though it is unused, do not
55/// remove it.
56extern "C" int CBackendTargetMachineModule;
57int CBackendTargetMachineModule = 0;
58
Dan Gohman089efff2008-05-13 00:00:25 +000059// Register the target.
Dan Gohman669b9bf2008-10-14 20:25:08 +000060static RegisterTarget<CTargetMachine> X("c", "C backend");
Dan Gohmanf17a25c2007-07-18 16:29:46 +000061
Bob Wilsonebbc1c42009-06-23 23:59:40 +000062// Force static initialization.
63extern "C" void LLVMInitializeCBackendTarget() { }
Douglas Gregor1dc5ff42009-06-16 20:12:29 +000064
Dan Gohman089efff2008-05-13 00:00:25 +000065namespace {
Dan Gohmanf17a25c2007-07-18 16:29:46 +000066 /// CBackendNameAllUsedStructsAndMergeFunctions - This pass inserts names for
67 /// any unnamed structure types that are used by the program, and merges
68 /// external functions with the same name.
69 ///
70 class CBackendNameAllUsedStructsAndMergeFunctions : public ModulePass {
71 public:
72 static char ID;
73 CBackendNameAllUsedStructsAndMergeFunctions()
Dan Gohman26f8c272008-09-04 17:05:41 +000074 : ModulePass(&ID) {}
Dan Gohmanf17a25c2007-07-18 16:29:46 +000075 void getAnalysisUsage(AnalysisUsage &AU) const {
76 AU.addRequired<FindUsedTypes>();
77 }
78
79 virtual const char *getPassName() const {
80 return "C backend type canonicalizer";
81 }
82
83 virtual bool runOnModule(Module &M);
84 };
85
86 char CBackendNameAllUsedStructsAndMergeFunctions::ID = 0;
87
88 /// CWriter - This class is the main chunk of code that converts an LLVM
89 /// module to a C translation unit.
90 class CWriter : public FunctionPass, public InstVisitor<CWriter> {
Owen Anderson847b99b2008-08-21 00:14:44 +000091 raw_ostream &Out;
Dan Gohmanf17a25c2007-07-18 16:29:46 +000092 IntrinsicLowering *IL;
93 Mangler *Mang;
94 LoopInfo *LI;
95 const Module *TheModule;
96 const TargetAsmInfo* TAsm;
97 const TargetData* TD;
98 std::map<const Type *, std::string> TypeNames;
99 std::map<const ConstantFP *, unsigned> FPConstantMap;
100 std::set<Function*> intrinsicPrototypesAlreadyGenerated;
Chris Lattner8bbc8592008-03-02 08:07:24 +0000101 std::set<const Argument*> ByValParams;
Chris Lattnerf6e12012008-10-22 04:53:16 +0000102 unsigned FPCounter;
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000103
104 public:
105 static char ID;
Owen Anderson847b99b2008-08-21 00:14:44 +0000106 explicit CWriter(raw_ostream &o)
Dan Gohman26f8c272008-09-04 17:05:41 +0000107 : FunctionPass(&ID), Out(o), IL(0), Mang(0), LI(0),
Chris Lattnerf6e12012008-10-22 04:53:16 +0000108 TheModule(0), TAsm(0), TD(0) {
109 FPCounter = 0;
110 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000111
112 virtual const char *getPassName() const { return "C backend"; }
113
114 void getAnalysisUsage(AnalysisUsage &AU) const {
115 AU.addRequired<LoopInfo>();
116 AU.setPreservesAll();
117 }
118
119 virtual bool doInitialization(Module &M);
120
121 bool runOnFunction(Function &F) {
Chris Lattner3ed055f2009-04-17 00:26:12 +0000122 // Do not codegen any 'available_externally' functions at all, they have
123 // definitions outside the translation unit.
124 if (F.hasAvailableExternallyLinkage())
125 return false;
126
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000127 LI = &getAnalysis<LoopInfo>();
128
129 // Get rid of intrinsics we can't handle.
130 lowerIntrinsics(F);
131
132 // Output all floating point constants that cannot be printed accurately.
133 printFloatingPointConstants(F);
134
135 printFunction(F);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000136 return false;
137 }
138
139 virtual bool doFinalization(Module &M) {
140 // Free memory...
Nuno Lopes6c857162009-01-13 23:35:49 +0000141 delete IL;
142 delete TD;
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000143 delete Mang;
Evan Cheng17254e62008-01-11 09:12:49 +0000144 FPConstantMap.clear();
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000145 TypeNames.clear();
Evan Cheng17254e62008-01-11 09:12:49 +0000146 ByValParams.clear();
Chris Lattner8bbc8592008-03-02 08:07:24 +0000147 intrinsicPrototypesAlreadyGenerated.clear();
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000148 return false;
149 }
150
Owen Anderson847b99b2008-08-21 00:14:44 +0000151 raw_ostream &printType(raw_ostream &Out, const Type *Ty,
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000152 bool isSigned = false,
153 const std::string &VariableName = "",
Duncan Sandsf5588dc2007-11-27 13:23:08 +0000154 bool IgnoreName = false,
Devang Pateld222f862008-09-25 21:00:45 +0000155 const AttrListPtr &PAL = AttrListPtr());
Owen Anderson847b99b2008-08-21 00:14:44 +0000156 std::ostream &printType(std::ostream &Out, const Type *Ty,
157 bool isSigned = false,
158 const std::string &VariableName = "",
159 bool IgnoreName = false,
Devang Pateld222f862008-09-25 21:00:45 +0000160 const AttrListPtr &PAL = AttrListPtr());
Owen Anderson847b99b2008-08-21 00:14:44 +0000161 raw_ostream &printSimpleType(raw_ostream &Out, const Type *Ty,
Chris Lattner63fb1f02008-03-02 03:16:38 +0000162 bool isSigned,
163 const std::string &NameSoFar = "");
Owen Anderson847b99b2008-08-21 00:14:44 +0000164 std::ostream &printSimpleType(std::ostream &Out, const Type *Ty,
165 bool isSigned,
166 const std::string &NameSoFar = "");
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000167
Owen Anderson847b99b2008-08-21 00:14:44 +0000168 void printStructReturnPointerFunctionType(raw_ostream &Out,
Devang Pateld222f862008-09-25 21:00:45 +0000169 const AttrListPtr &PAL,
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000170 const PointerType *Ty);
Chris Lattner8bbc8592008-03-02 08:07:24 +0000171
172 /// writeOperandDeref - Print the result of dereferencing the specified
173 /// operand with '*'. This is equivalent to printing '*' then using
174 /// writeOperand, but avoids excess syntax in some cases.
175 void writeOperandDeref(Value *Operand) {
176 if (isAddressExposed(Operand)) {
177 // Already something with an address exposed.
178 writeOperandInternal(Operand);
179 } else {
180 Out << "*(";
181 writeOperand(Operand);
182 Out << ")";
183 }
184 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000185
Dan Gohmanad831302008-07-24 17:57:48 +0000186 void writeOperand(Value *Operand, bool Static = false);
Chris Lattnerd70f5a82008-05-31 09:23:55 +0000187 void writeInstComputationInline(Instruction &I);
Dan Gohmanad831302008-07-24 17:57:48 +0000188 void writeOperandInternal(Value *Operand, bool Static = false);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000189 void writeOperandWithCast(Value* Operand, unsigned Opcode);
Chris Lattner389c9142007-09-15 06:51:03 +0000190 void writeOperandWithCast(Value* Operand, const ICmpInst &I);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000191 bool writeInstructionCast(const Instruction &I);
192
Lauro Ramos Venancio11048c12008-02-01 21:25:59 +0000193 void writeMemoryAccess(Value *Operand, const Type *OperandType,
194 bool IsVolatile, unsigned Alignment);
195
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000196 private :
197 std::string InterpretASMConstraint(InlineAsm::ConstraintInfo& c);
198
199 void lowerIntrinsics(Function &F);
200
201 void printModule(Module *M);
202 void printModuleTypes(const TypeSymbolTable &ST);
Dan Gohman5d995b02008-06-02 21:30:49 +0000203 void printContainedStructs(const Type *Ty, std::set<const Type *> &);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000204 void printFloatingPointConstants(Function &F);
Chris Lattnerf6e12012008-10-22 04:53:16 +0000205 void printFloatingPointConstants(const Constant *C);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000206 void printFunctionSignature(const Function *F, bool Prototype);
207
208 void printFunction(Function &);
209 void printBasicBlock(BasicBlock *BB);
210 void printLoop(Loop *L);
211
212 void printCast(unsigned opcode, const Type *SrcTy, const Type *DstTy);
Dan Gohmanad831302008-07-24 17:57:48 +0000213 void printConstant(Constant *CPV, bool Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000214 void printConstantWithCast(Constant *CPV, unsigned Opcode);
Dan Gohmanad831302008-07-24 17:57:48 +0000215 bool printConstExprCast(const ConstantExpr *CE, bool Static);
216 void printConstantArray(ConstantArray *CPA, bool Static);
217 void printConstantVector(ConstantVector *CV, bool Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000218
Chris Lattner8bbc8592008-03-02 08:07:24 +0000219 /// isAddressExposed - Return true if the specified value's name needs to
220 /// have its address taken in order to get a C value of the correct type.
221 /// This happens for global variables, byval parameters, and direct allocas.
222 bool isAddressExposed(const Value *V) const {
223 if (const Argument *A = dyn_cast<Argument>(V))
224 return ByValParams.count(A);
225 return isa<GlobalVariable>(V) || isDirectAlloca(V);
226 }
227
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000228 // isInlinableInst - Attempt to inline instructions into their uses to build
229 // trees as much as possible. To do this, we have to consistently decide
230 // what is acceptable to inline, so that variable declarations don't get
231 // printed and an extra copy of the expr is not emitted.
232 //
233 static bool isInlinableInst(const Instruction &I) {
234 // Always inline cmp instructions, even if they are shared by multiple
235 // expressions. GCC generates horrible code if we don't.
236 if (isa<CmpInst>(I))
237 return true;
238
239 // Must be an expression, must be used exactly once. If it is dead, we
240 // emit it inline where it would go.
241 if (I.getType() == Type::VoidTy || !I.hasOneUse() ||
242 isa<TerminatorInst>(I) || isa<CallInst>(I) || isa<PHINode>(I) ||
Dan Gohman5d995b02008-06-02 21:30:49 +0000243 isa<LoadInst>(I) || isa<VAArgInst>(I) || isa<InsertElementInst>(I) ||
244 isa<InsertValueInst>(I))
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000245 // Don't inline a load across a store or other bad things!
246 return false;
247
Chris Lattnerf858a042008-03-02 05:41:07 +0000248 // Must not be used in inline asm, extractelement, or shufflevector.
249 if (I.hasOneUse()) {
250 const Instruction &User = cast<Instruction>(*I.use_back());
251 if (isInlineAsm(User) || isa<ExtractElementInst>(User) ||
252 isa<ShuffleVectorInst>(User))
253 return false;
254 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000255
256 // Only inline instruction it if it's use is in the same BB as the inst.
257 return I.getParent() == cast<Instruction>(I.use_back())->getParent();
258 }
259
260 // isDirectAlloca - Define fixed sized allocas in the entry block as direct
261 // variables which are accessed with the & operator. This causes GCC to
262 // generate significantly better code than to emit alloca calls directly.
263 //
264 static const AllocaInst *isDirectAlloca(const Value *V) {
265 const AllocaInst *AI = dyn_cast<AllocaInst>(V);
266 if (!AI) return false;
267 if (AI->isArrayAllocation())
268 return 0; // FIXME: we can also inline fixed size array allocas!
269 if (AI->getParent() != &AI->getParent()->getParent()->getEntryBlock())
270 return 0;
271 return AI;
272 }
273
274 // isInlineAsm - Check if the instruction is a call to an inline asm chunk
275 static bool isInlineAsm(const Instruction& I) {
276 if (isa<CallInst>(&I) && isa<InlineAsm>(I.getOperand(0)))
277 return true;
278 return false;
279 }
280
281 // Instruction visitation functions
282 friend class InstVisitor<CWriter>;
283
284 void visitReturnInst(ReturnInst &I);
285 void visitBranchInst(BranchInst &I);
286 void visitSwitchInst(SwitchInst &I);
287 void visitInvokeInst(InvokeInst &I) {
288 assert(0 && "Lowerinvoke pass didn't work!");
289 }
290
291 void visitUnwindInst(UnwindInst &I) {
292 assert(0 && "Lowerinvoke pass didn't work!");
293 }
294 void visitUnreachableInst(UnreachableInst &I);
295
296 void visitPHINode(PHINode &I);
297 void visitBinaryOperator(Instruction &I);
298 void visitICmpInst(ICmpInst &I);
299 void visitFCmpInst(FCmpInst &I);
300
301 void visitCastInst (CastInst &I);
302 void visitSelectInst(SelectInst &I);
303 void visitCallInst (CallInst &I);
304 void visitInlineAsm(CallInst &I);
Chris Lattnera74b9182008-03-02 08:29:41 +0000305 bool visitBuiltinCall(CallInst &I, Intrinsic::ID ID, bool &WroteCallee);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000306
307 void visitMallocInst(MallocInst &I);
308 void visitAllocaInst(AllocaInst &I);
309 void visitFreeInst (FreeInst &I);
310 void visitLoadInst (LoadInst &I);
311 void visitStoreInst (StoreInst &I);
312 void visitGetElementPtrInst(GetElementPtrInst &I);
313 void visitVAArgInst (VAArgInst &I);
Chris Lattnerf41a7942008-03-02 03:52:39 +0000314
315 void visitInsertElementInst(InsertElementInst &I);
Chris Lattnera5f0bc02008-03-02 03:57:08 +0000316 void visitExtractElementInst(ExtractElementInst &I);
Chris Lattnerf858a042008-03-02 05:41:07 +0000317 void visitShuffleVectorInst(ShuffleVectorInst &SVI);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000318
Dan Gohman5d995b02008-06-02 21:30:49 +0000319 void visitInsertValueInst(InsertValueInst &I);
320 void visitExtractValueInst(ExtractValueInst &I);
321
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000322 void visitInstruction(Instruction &I) {
323 cerr << "C Writer does not know about " << I;
324 abort();
325 }
326
327 void outputLValue(Instruction *I) {
328 Out << " " << GetValueName(I) << " = ";
329 }
330
331 bool isGotoCodeNecessary(BasicBlock *From, BasicBlock *To);
332 void printPHICopiesForSuccessor(BasicBlock *CurBlock,
333 BasicBlock *Successor, unsigned Indent);
334 void printBranchToBlock(BasicBlock *CurBlock, BasicBlock *SuccBlock,
335 unsigned Indent);
Chris Lattner8bbc8592008-03-02 08:07:24 +0000336 void printGEPExpression(Value *Ptr, gep_type_iterator I,
Dan Gohmanad831302008-07-24 17:57:48 +0000337 gep_type_iterator E, bool Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000338
339 std::string GetValueName(const Value *Operand);
340 };
341}
342
343char CWriter::ID = 0;
344
345/// This method inserts names for any unnamed structure types that are used by
346/// the program, and removes names from structure types that are not used by the
347/// program.
348///
349bool CBackendNameAllUsedStructsAndMergeFunctions::runOnModule(Module &M) {
350 // Get a set of types that are used by the program...
351 std::set<const Type *> UT = getAnalysis<FindUsedTypes>().getTypes();
352
353 // Loop over the module symbol table, removing types from UT that are
354 // already named, and removing names for types that are not used.
355 //
356 TypeSymbolTable &TST = M.getTypeSymbolTable();
357 for (TypeSymbolTable::iterator TI = TST.begin(), TE = TST.end();
358 TI != TE; ) {
359 TypeSymbolTable::iterator I = TI++;
360
Dan Gohman5d995b02008-06-02 21:30:49 +0000361 // If this isn't a struct or array type, remove it from our set of types
362 // to name. This simplifies emission later.
363 if (!isa<StructType>(I->second) && !isa<OpaqueType>(I->second) &&
364 !isa<ArrayType>(I->second)) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000365 TST.remove(I);
366 } else {
367 // If this is not used, remove it from the symbol table.
368 std::set<const Type *>::iterator UTI = UT.find(I->second);
369 if (UTI == UT.end())
370 TST.remove(I);
371 else
372 UT.erase(UTI); // Only keep one name for this type.
373 }
374 }
375
376 // UT now contains types that are not named. Loop over it, naming
377 // structure types.
378 //
379 bool Changed = false;
380 unsigned RenameCounter = 0;
381 for (std::set<const Type *>::const_iterator I = UT.begin(), E = UT.end();
382 I != E; ++I)
Dan Gohman5d995b02008-06-02 21:30:49 +0000383 if (isa<StructType>(*I) || isa<ArrayType>(*I)) {
384 while (M.addTypeName("unnamed"+utostr(RenameCounter), *I))
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000385 ++RenameCounter;
386 Changed = true;
387 }
388
389
390 // Loop over all external functions and globals. If we have two with
391 // identical names, merge them.
392 // FIXME: This code should disappear when we don't allow values with the same
393 // names when they have different types!
394 std::map<std::string, GlobalValue*> ExtSymbols;
395 for (Module::iterator I = M.begin(), E = M.end(); I != E;) {
396 Function *GV = I++;
397 if (GV->isDeclaration() && GV->hasName()) {
398 std::pair<std::map<std::string, GlobalValue*>::iterator, bool> X
399 = ExtSymbols.insert(std::make_pair(GV->getName(), GV));
400 if (!X.second) {
401 // Found a conflict, replace this global with the previous one.
402 GlobalValue *OldGV = X.first->second;
403 GV->replaceAllUsesWith(ConstantExpr::getBitCast(OldGV, GV->getType()));
404 GV->eraseFromParent();
405 Changed = true;
406 }
407 }
408 }
409 // Do the same for globals.
410 for (Module::global_iterator I = M.global_begin(), E = M.global_end();
411 I != E;) {
412 GlobalVariable *GV = I++;
413 if (GV->isDeclaration() && GV->hasName()) {
414 std::pair<std::map<std::string, GlobalValue*>::iterator, bool> X
415 = ExtSymbols.insert(std::make_pair(GV->getName(), GV));
416 if (!X.second) {
417 // Found a conflict, replace this global with the previous one.
418 GlobalValue *OldGV = X.first->second;
419 GV->replaceAllUsesWith(ConstantExpr::getBitCast(OldGV, GV->getType()));
420 GV->eraseFromParent();
421 Changed = true;
422 }
423 }
424 }
425
426 return Changed;
427}
428
429/// printStructReturnPointerFunctionType - This is like printType for a struct
430/// return type, except, instead of printing the type as void (*)(Struct*, ...)
431/// print it as "Struct (*)(...)", for struct return functions.
Owen Anderson847b99b2008-08-21 00:14:44 +0000432void CWriter::printStructReturnPointerFunctionType(raw_ostream &Out,
Devang Pateld222f862008-09-25 21:00:45 +0000433 const AttrListPtr &PAL,
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000434 const PointerType *TheTy) {
435 const FunctionType *FTy = cast<FunctionType>(TheTy->getElementType());
436 std::stringstream FunctionInnards;
437 FunctionInnards << " (*) (";
438 bool PrintedType = false;
439
440 FunctionType::param_iterator I = FTy->param_begin(), E = FTy->param_end();
441 const Type *RetTy = cast<PointerType>(I->get())->getElementType();
442 unsigned Idx = 1;
Evan Cheng2054cb02008-01-11 03:07:46 +0000443 for (++I, ++Idx; I != E; ++I, ++Idx) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000444 if (PrintedType)
445 FunctionInnards << ", ";
Evan Cheng2054cb02008-01-11 03:07:46 +0000446 const Type *ArgTy = *I;
Devang Pateld222f862008-09-25 21:00:45 +0000447 if (PAL.paramHasAttr(Idx, Attribute::ByVal)) {
Evan Cheng17254e62008-01-11 09:12:49 +0000448 assert(isa<PointerType>(ArgTy));
449 ArgTy = cast<PointerType>(ArgTy)->getElementType();
450 }
Evan Cheng2054cb02008-01-11 03:07:46 +0000451 printType(FunctionInnards, ArgTy,
Devang Pateld222f862008-09-25 21:00:45 +0000452 /*isSigned=*/PAL.paramHasAttr(Idx, Attribute::SExt), "");
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000453 PrintedType = true;
454 }
455 if (FTy->isVarArg()) {
456 if (PrintedType)
457 FunctionInnards << ", ...";
458 } else if (!PrintedType) {
459 FunctionInnards << "void";
460 }
461 FunctionInnards << ')';
462 std::string tstr = FunctionInnards.str();
463 printType(Out, RetTy,
Devang Pateld222f862008-09-25 21:00:45 +0000464 /*isSigned=*/PAL.paramHasAttr(0, Attribute::SExt), tstr);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000465}
466
Owen Anderson847b99b2008-08-21 00:14:44 +0000467raw_ostream &
468CWriter::printSimpleType(raw_ostream &Out, const Type *Ty, bool isSigned,
469 const std::string &NameSoFar) {
470 assert((Ty->isPrimitiveType() || Ty->isInteger() || isa<VectorType>(Ty)) &&
471 "Invalid type for printSimpleType");
472 switch (Ty->getTypeID()) {
473 case Type::VoidTyID: return Out << "void " << NameSoFar;
474 case Type::IntegerTyID: {
475 unsigned NumBits = cast<IntegerType>(Ty)->getBitWidth();
476 if (NumBits == 1)
477 return Out << "bool " << NameSoFar;
478 else if (NumBits <= 8)
479 return Out << (isSigned?"signed":"unsigned") << " char " << NameSoFar;
480 else if (NumBits <= 16)
481 return Out << (isSigned?"signed":"unsigned") << " short " << NameSoFar;
482 else if (NumBits <= 32)
483 return Out << (isSigned?"signed":"unsigned") << " int " << NameSoFar;
484 else if (NumBits <= 64)
485 return Out << (isSigned?"signed":"unsigned") << " long long "<< NameSoFar;
486 else {
487 assert(NumBits <= 128 && "Bit widths > 128 not implemented yet");
488 return Out << (isSigned?"llvmInt128":"llvmUInt128") << " " << NameSoFar;
489 }
490 }
491 case Type::FloatTyID: return Out << "float " << NameSoFar;
492 case Type::DoubleTyID: return Out << "double " << NameSoFar;
493 // Lacking emulation of FP80 on PPC, etc., we assume whichever of these is
494 // present matches host 'long double'.
495 case Type::X86_FP80TyID:
496 case Type::PPC_FP128TyID:
497 case Type::FP128TyID: return Out << "long double " << NameSoFar;
498
499 case Type::VectorTyID: {
500 const VectorType *VTy = cast<VectorType>(Ty);
501 return printSimpleType(Out, VTy->getElementType(), isSigned,
502 " __attribute__((vector_size(" +
Duncan Sandsec4f97d2009-05-09 07:06:46 +0000503 utostr(TD->getTypeAllocSize(VTy)) + " ))) " + NameSoFar);
Owen Anderson847b99b2008-08-21 00:14:44 +0000504 }
505
506 default:
507 cerr << "Unknown primitive type: " << *Ty << "\n";
508 abort();
509 }
510}
511
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000512std::ostream &
513CWriter::printSimpleType(std::ostream &Out, const Type *Ty, bool isSigned,
Chris Lattnerd8090712008-03-02 03:41:23 +0000514 const std::string &NameSoFar) {
Chris Lattnerdb6d5ce2008-03-02 03:33:31 +0000515 assert((Ty->isPrimitiveType() || Ty->isInteger() || isa<VectorType>(Ty)) &&
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000516 "Invalid type for printSimpleType");
517 switch (Ty->getTypeID()) {
518 case Type::VoidTyID: return Out << "void " << NameSoFar;
519 case Type::IntegerTyID: {
520 unsigned NumBits = cast<IntegerType>(Ty)->getBitWidth();
521 if (NumBits == 1)
522 return Out << "bool " << NameSoFar;
523 else if (NumBits <= 8)
524 return Out << (isSigned?"signed":"unsigned") << " char " << NameSoFar;
525 else if (NumBits <= 16)
526 return Out << (isSigned?"signed":"unsigned") << " short " << NameSoFar;
527 else if (NumBits <= 32)
528 return Out << (isSigned?"signed":"unsigned") << " int " << NameSoFar;
Dan Gohmana2245af2008-04-02 19:40:14 +0000529 else if (NumBits <= 64)
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000530 return Out << (isSigned?"signed":"unsigned") << " long long "<< NameSoFar;
Dan Gohmana2245af2008-04-02 19:40:14 +0000531 else {
532 assert(NumBits <= 128 && "Bit widths > 128 not implemented yet");
533 return Out << (isSigned?"llvmInt128":"llvmUInt128") << " " << NameSoFar;
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000534 }
535 }
536 case Type::FloatTyID: return Out << "float " << NameSoFar;
537 case Type::DoubleTyID: return Out << "double " << NameSoFar;
Dale Johannesen137cef62007-09-17 00:38:27 +0000538 // Lacking emulation of FP80 on PPC, etc., we assume whichever of these is
539 // present matches host 'long double'.
540 case Type::X86_FP80TyID:
541 case Type::PPC_FP128TyID:
542 case Type::FP128TyID: return Out << "long double " << NameSoFar;
Chris Lattnerdb6d5ce2008-03-02 03:33:31 +0000543
544 case Type::VectorTyID: {
545 const VectorType *VTy = cast<VectorType>(Ty);
Chris Lattnerd8090712008-03-02 03:41:23 +0000546 return printSimpleType(Out, VTy->getElementType(), isSigned,
Chris Lattnerfddca552008-03-02 03:39:43 +0000547 " __attribute__((vector_size(" +
Duncan Sandsec4f97d2009-05-09 07:06:46 +0000548 utostr(TD->getTypeAllocSize(VTy)) + " ))) " + NameSoFar);
Chris Lattnerdb6d5ce2008-03-02 03:33:31 +0000549 }
550
551 default:
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000552 cerr << "Unknown primitive type: " << *Ty << "\n";
553 abort();
554 }
555}
556
557// Pass the Type* and the variable name and this prints out the variable
558// declaration.
559//
Owen Anderson847b99b2008-08-21 00:14:44 +0000560raw_ostream &CWriter::printType(raw_ostream &Out, const Type *Ty,
561 bool isSigned, const std::string &NameSoFar,
Devang Pateld222f862008-09-25 21:00:45 +0000562 bool IgnoreName, const AttrListPtr &PAL) {
Owen Anderson847b99b2008-08-21 00:14:44 +0000563 if (Ty->isPrimitiveType() || Ty->isInteger() || isa<VectorType>(Ty)) {
564 printSimpleType(Out, Ty, isSigned, NameSoFar);
565 return Out;
566 }
567
568 // Check to see if the type is named.
569 if (!IgnoreName || isa<OpaqueType>(Ty)) {
570 std::map<const Type *, std::string>::iterator I = TypeNames.find(Ty);
571 if (I != TypeNames.end()) return Out << I->second << ' ' << NameSoFar;
572 }
573
574 switch (Ty->getTypeID()) {
575 case Type::FunctionTyID: {
576 const FunctionType *FTy = cast<FunctionType>(Ty);
577 std::stringstream FunctionInnards;
578 FunctionInnards << " (" << NameSoFar << ") (";
579 unsigned Idx = 1;
580 for (FunctionType::param_iterator I = FTy->param_begin(),
581 E = FTy->param_end(); I != E; ++I) {
582 const Type *ArgTy = *I;
Devang Pateld222f862008-09-25 21:00:45 +0000583 if (PAL.paramHasAttr(Idx, Attribute::ByVal)) {
Owen Anderson847b99b2008-08-21 00:14:44 +0000584 assert(isa<PointerType>(ArgTy));
585 ArgTy = cast<PointerType>(ArgTy)->getElementType();
586 }
587 if (I != FTy->param_begin())
588 FunctionInnards << ", ";
589 printType(FunctionInnards, ArgTy,
Devang Pateld222f862008-09-25 21:00:45 +0000590 /*isSigned=*/PAL.paramHasAttr(Idx, Attribute::SExt), "");
Owen Anderson847b99b2008-08-21 00:14:44 +0000591 ++Idx;
592 }
593 if (FTy->isVarArg()) {
594 if (FTy->getNumParams())
595 FunctionInnards << ", ...";
596 } else if (!FTy->getNumParams()) {
597 FunctionInnards << "void";
598 }
599 FunctionInnards << ')';
600 std::string tstr = FunctionInnards.str();
601 printType(Out, FTy->getReturnType(),
Devang Pateld222f862008-09-25 21:00:45 +0000602 /*isSigned=*/PAL.paramHasAttr(0, Attribute::SExt), tstr);
Owen Anderson847b99b2008-08-21 00:14:44 +0000603 return Out;
604 }
605 case Type::StructTyID: {
606 const StructType *STy = cast<StructType>(Ty);
607 Out << NameSoFar + " {\n";
608 unsigned Idx = 0;
609 for (StructType::element_iterator I = STy->element_begin(),
610 E = STy->element_end(); I != E; ++I) {
611 Out << " ";
612 printType(Out, *I, false, "field" + utostr(Idx++));
613 Out << ";\n";
614 }
615 Out << '}';
616 if (STy->isPacked())
617 Out << " __attribute__ ((packed))";
618 return Out;
619 }
620
621 case Type::PointerTyID: {
622 const PointerType *PTy = cast<PointerType>(Ty);
623 std::string ptrName = "*" + NameSoFar;
624
625 if (isa<ArrayType>(PTy->getElementType()) ||
626 isa<VectorType>(PTy->getElementType()))
627 ptrName = "(" + ptrName + ")";
628
629 if (!PAL.isEmpty())
630 // Must be a function ptr cast!
631 return printType(Out, PTy->getElementType(), false, ptrName, true, PAL);
632 return printType(Out, PTy->getElementType(), false, ptrName);
633 }
634
635 case Type::ArrayTyID: {
636 const ArrayType *ATy = cast<ArrayType>(Ty);
637 unsigned NumElements = ATy->getNumElements();
638 if (NumElements == 0) NumElements = 1;
639 // Arrays are wrapped in structs to allow them to have normal
640 // value semantics (avoiding the array "decay").
641 Out << NameSoFar << " { ";
642 printType(Out, ATy->getElementType(), false,
643 "array[" + utostr(NumElements) + "]");
644 return Out << "; }";
645 }
646
647 case Type::OpaqueTyID: {
648 static int Count = 0;
649 std::string TyName = "struct opaque_" + itostr(Count++);
650 assert(TypeNames.find(Ty) == TypeNames.end());
651 TypeNames[Ty] = TyName;
652 return Out << TyName << ' ' << NameSoFar;
653 }
654 default:
655 assert(0 && "Unhandled case in getTypeProps!");
656 abort();
657 }
658
659 return Out;
660}
661
662// Pass the Type* and the variable name and this prints out the variable
663// declaration.
664//
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000665std::ostream &CWriter::printType(std::ostream &Out, const Type *Ty,
666 bool isSigned, const std::string &NameSoFar,
Devang Pateld222f862008-09-25 21:00:45 +0000667 bool IgnoreName, const AttrListPtr &PAL) {
Chris Lattnerdb6d5ce2008-03-02 03:33:31 +0000668 if (Ty->isPrimitiveType() || Ty->isInteger() || isa<VectorType>(Ty)) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000669 printSimpleType(Out, Ty, isSigned, NameSoFar);
670 return Out;
671 }
672
673 // Check to see if the type is named.
674 if (!IgnoreName || isa<OpaqueType>(Ty)) {
675 std::map<const Type *, std::string>::iterator I = TypeNames.find(Ty);
676 if (I != TypeNames.end()) return Out << I->second << ' ' << NameSoFar;
677 }
678
679 switch (Ty->getTypeID()) {
680 case Type::FunctionTyID: {
681 const FunctionType *FTy = cast<FunctionType>(Ty);
682 std::stringstream FunctionInnards;
683 FunctionInnards << " (" << NameSoFar << ") (";
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000684 unsigned Idx = 1;
685 for (FunctionType::param_iterator I = FTy->param_begin(),
686 E = FTy->param_end(); I != E; ++I) {
Evan Chengb8a072c2008-01-12 18:53:07 +0000687 const Type *ArgTy = *I;
Devang Pateld222f862008-09-25 21:00:45 +0000688 if (PAL.paramHasAttr(Idx, Attribute::ByVal)) {
Evan Chengb8a072c2008-01-12 18:53:07 +0000689 assert(isa<PointerType>(ArgTy));
690 ArgTy = cast<PointerType>(ArgTy)->getElementType();
691 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000692 if (I != FTy->param_begin())
693 FunctionInnards << ", ";
Evan Chengb8a072c2008-01-12 18:53:07 +0000694 printType(FunctionInnards, ArgTy,
Devang Pateld222f862008-09-25 21:00:45 +0000695 /*isSigned=*/PAL.paramHasAttr(Idx, Attribute::SExt), "");
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000696 ++Idx;
697 }
698 if (FTy->isVarArg()) {
699 if (FTy->getNumParams())
700 FunctionInnards << ", ...";
701 } else if (!FTy->getNumParams()) {
702 FunctionInnards << "void";
703 }
704 FunctionInnards << ')';
705 std::string tstr = FunctionInnards.str();
706 printType(Out, FTy->getReturnType(),
Devang Pateld222f862008-09-25 21:00:45 +0000707 /*isSigned=*/PAL.paramHasAttr(0, Attribute::SExt), tstr);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000708 return Out;
709 }
710 case Type::StructTyID: {
711 const StructType *STy = cast<StructType>(Ty);
712 Out << NameSoFar + " {\n";
713 unsigned Idx = 0;
714 for (StructType::element_iterator I = STy->element_begin(),
715 E = STy->element_end(); I != E; ++I) {
716 Out << " ";
717 printType(Out, *I, false, "field" + utostr(Idx++));
718 Out << ";\n";
719 }
720 Out << '}';
721 if (STy->isPacked())
722 Out << " __attribute__ ((packed))";
723 return Out;
724 }
725
726 case Type::PointerTyID: {
727 const PointerType *PTy = cast<PointerType>(Ty);
728 std::string ptrName = "*" + NameSoFar;
729
730 if (isa<ArrayType>(PTy->getElementType()) ||
731 isa<VectorType>(PTy->getElementType()))
732 ptrName = "(" + ptrName + ")";
733
Chris Lattner1c8733e2008-03-12 17:45:29 +0000734 if (!PAL.isEmpty())
Evan Chengb8a072c2008-01-12 18:53:07 +0000735 // Must be a function ptr cast!
736 return printType(Out, PTy->getElementType(), false, ptrName, true, PAL);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000737 return printType(Out, PTy->getElementType(), false, ptrName);
738 }
739
740 case Type::ArrayTyID: {
741 const ArrayType *ATy = cast<ArrayType>(Ty);
742 unsigned NumElements = ATy->getNumElements();
743 if (NumElements == 0) NumElements = 1;
Dan Gohman5d995b02008-06-02 21:30:49 +0000744 // Arrays are wrapped in structs to allow them to have normal
745 // value semantics (avoiding the array "decay").
746 Out << NameSoFar << " { ";
747 printType(Out, ATy->getElementType(), false,
748 "array[" + utostr(NumElements) + "]");
749 return Out << "; }";
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000750 }
751
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000752 case Type::OpaqueTyID: {
753 static int Count = 0;
754 std::string TyName = "struct opaque_" + itostr(Count++);
755 assert(TypeNames.find(Ty) == TypeNames.end());
756 TypeNames[Ty] = TyName;
757 return Out << TyName << ' ' << NameSoFar;
758 }
759 default:
760 assert(0 && "Unhandled case in getTypeProps!");
761 abort();
762 }
763
764 return Out;
765}
766
Dan Gohmanad831302008-07-24 17:57:48 +0000767void CWriter::printConstantArray(ConstantArray *CPA, bool Static) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000768
769 // As a special case, print the array as a string if it is an array of
770 // ubytes or an array of sbytes with positive values.
771 //
772 const Type *ETy = CPA->getType()->getElementType();
773 bool isString = (ETy == Type::Int8Ty || ETy == Type::Int8Ty);
774
775 // Make sure the last character is a null char, as automatically added by C
776 if (isString && (CPA->getNumOperands() == 0 ||
777 !cast<Constant>(*(CPA->op_end()-1))->isNullValue()))
778 isString = false;
779
780 if (isString) {
781 Out << '\"';
782 // Keep track of whether the last number was a hexadecimal escape
783 bool LastWasHex = false;
784
785 // Do not include the last character, which we know is null
786 for (unsigned i = 0, e = CPA->getNumOperands()-1; i != e; ++i) {
787 unsigned char C = cast<ConstantInt>(CPA->getOperand(i))->getZExtValue();
788
789 // Print it out literally if it is a printable character. The only thing
790 // to be careful about is when the last letter output was a hex escape
791 // code, in which case we have to be careful not to print out hex digits
792 // explicitly (the C compiler thinks it is a continuation of the previous
793 // character, sheesh...)
794 //
795 if (isprint(C) && (!LastWasHex || !isxdigit(C))) {
796 LastWasHex = false;
797 if (C == '"' || C == '\\')
Chris Lattner009f3962008-08-21 05:51:43 +0000798 Out << "\\" << (char)C;
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000799 else
Chris Lattner009f3962008-08-21 05:51:43 +0000800 Out << (char)C;
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000801 } else {
802 LastWasHex = false;
803 switch (C) {
804 case '\n': Out << "\\n"; break;
805 case '\t': Out << "\\t"; break;
806 case '\r': Out << "\\r"; break;
807 case '\v': Out << "\\v"; break;
808 case '\a': Out << "\\a"; break;
809 case '\"': Out << "\\\""; break;
810 case '\'': Out << "\\\'"; break;
811 default:
812 Out << "\\x";
813 Out << (char)(( C/16 < 10) ? ( C/16 +'0') : ( C/16 -10+'A'));
814 Out << (char)(((C&15) < 10) ? ((C&15)+'0') : ((C&15)-10+'A'));
815 LastWasHex = true;
816 break;
817 }
818 }
819 }
820 Out << '\"';
821 } else {
822 Out << '{';
823 if (CPA->getNumOperands()) {
824 Out << ' ';
Dan Gohmanad831302008-07-24 17:57:48 +0000825 printConstant(cast<Constant>(CPA->getOperand(0)), Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000826 for (unsigned i = 1, e = CPA->getNumOperands(); i != e; ++i) {
827 Out << ", ";
Dan Gohmanad831302008-07-24 17:57:48 +0000828 printConstant(cast<Constant>(CPA->getOperand(i)), Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000829 }
830 }
831 Out << " }";
832 }
833}
834
Dan Gohmanad831302008-07-24 17:57:48 +0000835void CWriter::printConstantVector(ConstantVector *CP, bool Static) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000836 Out << '{';
837 if (CP->getNumOperands()) {
838 Out << ' ';
Dan Gohmanad831302008-07-24 17:57:48 +0000839 printConstant(cast<Constant>(CP->getOperand(0)), Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000840 for (unsigned i = 1, e = CP->getNumOperands(); i != e; ++i) {
841 Out << ", ";
Dan Gohmanad831302008-07-24 17:57:48 +0000842 printConstant(cast<Constant>(CP->getOperand(i)), Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000843 }
844 }
845 Out << " }";
846}
847
848// isFPCSafeToPrint - Returns true if we may assume that CFP may be written out
849// textually as a double (rather than as a reference to a stack-allocated
850// variable). We decide this by converting CFP to a string and back into a
851// double, and then checking whether the conversion results in a bit-equal
852// double to the original value of CFP. This depends on us and the target C
853// compiler agreeing on the conversion process (which is pretty likely since we
854// only deal in IEEE FP).
855//
856static bool isFPCSafeToPrint(const ConstantFP *CFP) {
Dale Johannesen6e547b42008-10-09 23:00:39 +0000857 bool ignored;
Dale Johannesen137cef62007-09-17 00:38:27 +0000858 // Do long doubles in hex for now.
Chris Lattnerf6e12012008-10-22 04:53:16 +0000859 if (CFP->getType() != Type::FloatTy && CFP->getType() != Type::DoubleTy)
Dale Johannesen2fc20782007-09-14 22:26:36 +0000860 return false;
Dale Johannesenb9de9f02007-09-06 18:13:44 +0000861 APFloat APF = APFloat(CFP->getValueAPF()); // copy
Chris Lattnerf6e12012008-10-22 04:53:16 +0000862 if (CFP->getType() == Type::FloatTy)
Dale Johannesen6e547b42008-10-09 23:00:39 +0000863 APF.convert(APFloat::IEEEdouble, APFloat::rmNearestTiesToEven, &ignored);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000864#if HAVE_PRINTF_A && ENABLE_CBE_PRINTF_A
865 char Buffer[100];
Dale Johannesenb9de9f02007-09-06 18:13:44 +0000866 sprintf(Buffer, "%a", APF.convertToDouble());
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000867 if (!strncmp(Buffer, "0x", 2) ||
868 !strncmp(Buffer, "-0x", 3) ||
869 !strncmp(Buffer, "+0x", 3))
Dale Johannesenb9de9f02007-09-06 18:13:44 +0000870 return APF.bitwiseIsEqual(APFloat(atof(Buffer)));
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000871 return false;
872#else
Dale Johannesenb9de9f02007-09-06 18:13:44 +0000873 std::string StrVal = ftostr(APF);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000874
875 while (StrVal[0] == ' ')
876 StrVal.erase(StrVal.begin());
877
878 // Check to make sure that the stringized number is not some string like "Inf"
879 // or NaN. Check that the string matches the "[-+]?[0-9]" regex.
880 if ((StrVal[0] >= '0' && StrVal[0] <= '9') ||
881 ((StrVal[0] == '-' || StrVal[0] == '+') &&
882 (StrVal[1] >= '0' && StrVal[1] <= '9')))
883 // Reparse stringized version!
Dale Johannesenb9de9f02007-09-06 18:13:44 +0000884 return APF.bitwiseIsEqual(APFloat(atof(StrVal.c_str())));
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000885 return false;
886#endif
887}
888
889/// Print out the casting for a cast operation. This does the double casting
890/// necessary for conversion to the destination type, if necessary.
891/// @brief Print a cast
892void CWriter::printCast(unsigned opc, const Type *SrcTy, const Type *DstTy) {
893 // Print the destination type cast
894 switch (opc) {
895 case Instruction::UIToFP:
896 case Instruction::SIToFP:
897 case Instruction::IntToPtr:
898 case Instruction::Trunc:
899 case Instruction::BitCast:
900 case Instruction::FPExt:
901 case Instruction::FPTrunc: // For these the DstTy sign doesn't matter
902 Out << '(';
903 printType(Out, DstTy);
904 Out << ')';
905 break;
906 case Instruction::ZExt:
907 case Instruction::PtrToInt:
908 case Instruction::FPToUI: // For these, make sure we get an unsigned dest
909 Out << '(';
910 printSimpleType(Out, DstTy, false);
911 Out << ')';
912 break;
913 case Instruction::SExt:
914 case Instruction::FPToSI: // For these, make sure we get a signed dest
915 Out << '(';
916 printSimpleType(Out, DstTy, true);
917 Out << ')';
918 break;
919 default:
920 assert(0 && "Invalid cast opcode");
921 }
922
923 // Print the source type cast
924 switch (opc) {
925 case Instruction::UIToFP:
926 case Instruction::ZExt:
927 Out << '(';
928 printSimpleType(Out, SrcTy, false);
929 Out << ')';
930 break;
931 case Instruction::SIToFP:
932 case Instruction::SExt:
933 Out << '(';
934 printSimpleType(Out, SrcTy, true);
935 Out << ')';
936 break;
937 case Instruction::IntToPtr:
938 case Instruction::PtrToInt:
939 // Avoid "cast to pointer from integer of different size" warnings
940 Out << "(unsigned long)";
941 break;
942 case Instruction::Trunc:
943 case Instruction::BitCast:
944 case Instruction::FPExt:
945 case Instruction::FPTrunc:
946 case Instruction::FPToSI:
947 case Instruction::FPToUI:
948 break; // These don't need a source cast.
949 default:
950 assert(0 && "Invalid cast opcode");
951 break;
952 }
953}
954
955// printConstant - The LLVM Constant to C Constant converter.
Dan Gohmanad831302008-07-24 17:57:48 +0000956void CWriter::printConstant(Constant *CPV, bool Static) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000957 if (const ConstantExpr *CE = dyn_cast<ConstantExpr>(CPV)) {
958 switch (CE->getOpcode()) {
959 case Instruction::Trunc:
960 case Instruction::ZExt:
961 case Instruction::SExt:
962 case Instruction::FPTrunc:
963 case Instruction::FPExt:
964 case Instruction::UIToFP:
965 case Instruction::SIToFP:
966 case Instruction::FPToUI:
967 case Instruction::FPToSI:
968 case Instruction::PtrToInt:
969 case Instruction::IntToPtr:
970 case Instruction::BitCast:
971 Out << "(";
972 printCast(CE->getOpcode(), CE->getOperand(0)->getType(), CE->getType());
973 if (CE->getOpcode() == Instruction::SExt &&
974 CE->getOperand(0)->getType() == Type::Int1Ty) {
975 // Make sure we really sext from bool here by subtracting from 0
976 Out << "0-";
977 }
Dan Gohmanad831302008-07-24 17:57:48 +0000978 printConstant(CE->getOperand(0), Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000979 if (CE->getType() == Type::Int1Ty &&
980 (CE->getOpcode() == Instruction::Trunc ||
981 CE->getOpcode() == Instruction::FPToUI ||
982 CE->getOpcode() == Instruction::FPToSI ||
983 CE->getOpcode() == Instruction::PtrToInt)) {
984 // Make sure we really truncate to bool here by anding with 1
985 Out << "&1u";
986 }
987 Out << ')';
988 return;
989
990 case Instruction::GetElementPtr:
Chris Lattner8bbc8592008-03-02 08:07:24 +0000991 Out << "(";
992 printGEPExpression(CE->getOperand(0), gep_type_begin(CPV),
Dan Gohmanad831302008-07-24 17:57:48 +0000993 gep_type_end(CPV), Static);
Chris Lattner8bbc8592008-03-02 08:07:24 +0000994 Out << ")";
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000995 return;
996 case Instruction::Select:
997 Out << '(';
Dan Gohmanad831302008-07-24 17:57:48 +0000998 printConstant(CE->getOperand(0), Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +0000999 Out << '?';
Dan Gohmanad831302008-07-24 17:57:48 +00001000 printConstant(CE->getOperand(1), Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001001 Out << ':';
Dan Gohmanad831302008-07-24 17:57:48 +00001002 printConstant(CE->getOperand(2), Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001003 Out << ')';
1004 return;
1005 case Instruction::Add:
Dan Gohman7ce405e2009-06-04 22:49:04 +00001006 case Instruction::FAdd:
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001007 case Instruction::Sub:
Dan Gohman7ce405e2009-06-04 22:49:04 +00001008 case Instruction::FSub:
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001009 case Instruction::Mul:
Dan Gohman7ce405e2009-06-04 22:49:04 +00001010 case Instruction::FMul:
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001011 case Instruction::SDiv:
1012 case Instruction::UDiv:
1013 case Instruction::FDiv:
1014 case Instruction::URem:
1015 case Instruction::SRem:
1016 case Instruction::FRem:
1017 case Instruction::And:
1018 case Instruction::Or:
1019 case Instruction::Xor:
1020 case Instruction::ICmp:
1021 case Instruction::Shl:
1022 case Instruction::LShr:
1023 case Instruction::AShr:
1024 {
1025 Out << '(';
Dan Gohmanad831302008-07-24 17:57:48 +00001026 bool NeedsClosingParens = printConstExprCast(CE, Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001027 printConstantWithCast(CE->getOperand(0), CE->getOpcode());
1028 switch (CE->getOpcode()) {
Dan Gohman7ce405e2009-06-04 22:49:04 +00001029 case Instruction::Add:
1030 case Instruction::FAdd: Out << " + "; break;
1031 case Instruction::Sub:
1032 case Instruction::FSub: Out << " - "; break;
1033 case Instruction::Mul:
1034 case Instruction::FMul: Out << " * "; break;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001035 case Instruction::URem:
1036 case Instruction::SRem:
1037 case Instruction::FRem: Out << " % "; break;
1038 case Instruction::UDiv:
1039 case Instruction::SDiv:
1040 case Instruction::FDiv: Out << " / "; break;
1041 case Instruction::And: Out << " & "; break;
1042 case Instruction::Or: Out << " | "; break;
1043 case Instruction::Xor: Out << " ^ "; break;
1044 case Instruction::Shl: Out << " << "; break;
1045 case Instruction::LShr:
1046 case Instruction::AShr: Out << " >> "; break;
1047 case Instruction::ICmp:
1048 switch (CE->getPredicate()) {
1049 case ICmpInst::ICMP_EQ: Out << " == "; break;
1050 case ICmpInst::ICMP_NE: Out << " != "; break;
1051 case ICmpInst::ICMP_SLT:
1052 case ICmpInst::ICMP_ULT: Out << " < "; break;
1053 case ICmpInst::ICMP_SLE:
1054 case ICmpInst::ICMP_ULE: Out << " <= "; break;
1055 case ICmpInst::ICMP_SGT:
1056 case ICmpInst::ICMP_UGT: Out << " > "; break;
1057 case ICmpInst::ICMP_SGE:
1058 case ICmpInst::ICMP_UGE: Out << " >= "; break;
1059 default: assert(0 && "Illegal ICmp predicate");
1060 }
1061 break;
1062 default: assert(0 && "Illegal opcode here!");
1063 }
1064 printConstantWithCast(CE->getOperand(1), CE->getOpcode());
1065 if (NeedsClosingParens)
1066 Out << "))";
1067 Out << ')';
1068 return;
1069 }
1070 case Instruction::FCmp: {
1071 Out << '(';
Dan Gohmanad831302008-07-24 17:57:48 +00001072 bool NeedsClosingParens = printConstExprCast(CE, Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001073 if (CE->getPredicate() == FCmpInst::FCMP_FALSE)
1074 Out << "0";
1075 else if (CE->getPredicate() == FCmpInst::FCMP_TRUE)
1076 Out << "1";
1077 else {
1078 const char* op = 0;
1079 switch (CE->getPredicate()) {
1080 default: assert(0 && "Illegal FCmp predicate");
1081 case FCmpInst::FCMP_ORD: op = "ord"; break;
1082 case FCmpInst::FCMP_UNO: op = "uno"; break;
1083 case FCmpInst::FCMP_UEQ: op = "ueq"; break;
1084 case FCmpInst::FCMP_UNE: op = "une"; break;
1085 case FCmpInst::FCMP_ULT: op = "ult"; break;
1086 case FCmpInst::FCMP_ULE: op = "ule"; break;
1087 case FCmpInst::FCMP_UGT: op = "ugt"; break;
1088 case FCmpInst::FCMP_UGE: op = "uge"; break;
1089 case FCmpInst::FCMP_OEQ: op = "oeq"; break;
1090 case FCmpInst::FCMP_ONE: op = "one"; break;
1091 case FCmpInst::FCMP_OLT: op = "olt"; break;
1092 case FCmpInst::FCMP_OLE: op = "ole"; break;
1093 case FCmpInst::FCMP_OGT: op = "ogt"; break;
1094 case FCmpInst::FCMP_OGE: op = "oge"; break;
1095 }
1096 Out << "llvm_fcmp_" << op << "(";
1097 printConstantWithCast(CE->getOperand(0), CE->getOpcode());
1098 Out << ", ";
1099 printConstantWithCast(CE->getOperand(1), CE->getOpcode());
1100 Out << ")";
1101 }
1102 if (NeedsClosingParens)
1103 Out << "))";
1104 Out << ')';
Anton Korobeynikov44891ce2007-12-21 23:33:44 +00001105 return;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001106 }
1107 default:
1108 cerr << "CWriter Error: Unhandled constant expression: "
1109 << *CE << "\n";
1110 abort();
1111 }
Dan Gohman76c2cb42008-05-23 16:57:00 +00001112 } else if (isa<UndefValue>(CPV) && CPV->getType()->isSingleValueType()) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001113 Out << "((";
1114 printType(Out, CPV->getType()); // sign doesn't matter
Chris Lattnerc72d9e32008-03-02 08:14:45 +00001115 Out << ")/*UNDEF*/";
1116 if (!isa<VectorType>(CPV->getType())) {
1117 Out << "0)";
1118 } else {
1119 Out << "{})";
1120 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001121 return;
1122 }
1123
1124 if (ConstantInt *CI = dyn_cast<ConstantInt>(CPV)) {
1125 const Type* Ty = CI->getType();
1126 if (Ty == Type::Int1Ty)
Chris Lattner63fb1f02008-03-02 03:16:38 +00001127 Out << (CI->getZExtValue() ? '1' : '0');
1128 else if (Ty == Type::Int32Ty)
1129 Out << CI->getZExtValue() << 'u';
1130 else if (Ty->getPrimitiveSizeInBits() > 32)
1131 Out << CI->getZExtValue() << "ull";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001132 else {
1133 Out << "((";
1134 printSimpleType(Out, Ty, false) << ')';
1135 if (CI->isMinValue(true))
1136 Out << CI->getZExtValue() << 'u';
1137 else
1138 Out << CI->getSExtValue();
Dale Johannesen8830f922009-05-19 00:46:42 +00001139 Out << ')';
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001140 }
1141 return;
1142 }
1143
1144 switch (CPV->getType()->getTypeID()) {
1145 case Type::FloatTyID:
Dale Johannesen137cef62007-09-17 00:38:27 +00001146 case Type::DoubleTyID:
1147 case Type::X86_FP80TyID:
1148 case Type::PPC_FP128TyID:
1149 case Type::FP128TyID: {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001150 ConstantFP *FPC = cast<ConstantFP>(CPV);
1151 std::map<const ConstantFP*, unsigned>::iterator I = FPConstantMap.find(FPC);
1152 if (I != FPConstantMap.end()) {
1153 // Because of FP precision problems we must load from a stack allocated
1154 // value that holds the value in hex.
Dale Johannesen137cef62007-09-17 00:38:27 +00001155 Out << "(*(" << (FPC->getType() == Type::FloatTy ? "float" :
1156 FPC->getType() == Type::DoubleTy ? "double" :
1157 "long double")
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001158 << "*)&FPConstant" << I->second << ')';
1159 } else {
Chris Lattnera68e3512008-10-17 06:11:48 +00001160 double V;
1161 if (FPC->getType() == Type::FloatTy)
1162 V = FPC->getValueAPF().convertToFloat();
1163 else if (FPC->getType() == Type::DoubleTy)
1164 V = FPC->getValueAPF().convertToDouble();
1165 else {
1166 // Long double. Convert the number to double, discarding precision.
1167 // This is not awesome, but it at least makes the CBE output somewhat
1168 // useful.
1169 APFloat Tmp = FPC->getValueAPF();
1170 bool LosesInfo;
1171 Tmp.convert(APFloat::IEEEdouble, APFloat::rmTowardZero, &LosesInfo);
1172 V = Tmp.convertToDouble();
1173 }
1174
Dale Johannesenb9de9f02007-09-06 18:13:44 +00001175 if (IsNAN(V)) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001176 // The value is NaN
1177
Dale Johannesenb9de9f02007-09-06 18:13:44 +00001178 // FIXME the actual NaN bits should be emitted.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001179 // The prefix for a quiet NaN is 0x7FF8. For a signalling NaN,
1180 // it's 0x7ff4.
1181 const unsigned long QuietNaN = 0x7ff8UL;
1182 //const unsigned long SignalNaN = 0x7ff4UL;
1183
1184 // We need to grab the first part of the FP #
1185 char Buffer[100];
1186
Dale Johannesenb9de9f02007-09-06 18:13:44 +00001187 uint64_t ll = DoubleToBits(V);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001188 sprintf(Buffer, "0x%llx", static_cast<long long>(ll));
1189
1190 std::string Num(&Buffer[0], &Buffer[6]);
1191 unsigned long Val = strtoul(Num.c_str(), 0, 16);
1192
1193 if (FPC->getType() == Type::FloatTy)
1194 Out << "LLVM_NAN" << (Val == QuietNaN ? "" : "S") << "F(\""
1195 << Buffer << "\") /*nan*/ ";
1196 else
1197 Out << "LLVM_NAN" << (Val == QuietNaN ? "" : "S") << "(\""
1198 << Buffer << "\") /*nan*/ ";
Dale Johannesenb9de9f02007-09-06 18:13:44 +00001199 } else if (IsInf(V)) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001200 // The value is Inf
Dale Johannesenb9de9f02007-09-06 18:13:44 +00001201 if (V < 0) Out << '-';
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001202 Out << "LLVM_INF" << (FPC->getType() == Type::FloatTy ? "F" : "")
1203 << " /*inf*/ ";
1204 } else {
1205 std::string Num;
1206#if HAVE_PRINTF_A && ENABLE_CBE_PRINTF_A
1207 // Print out the constant as a floating point number.
1208 char Buffer[100];
Dale Johannesenb9de9f02007-09-06 18:13:44 +00001209 sprintf(Buffer, "%a", V);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001210 Num = Buffer;
1211#else
Dale Johannesenb9de9f02007-09-06 18:13:44 +00001212 Num = ftostr(FPC->getValueAPF());
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001213#endif
Dale Johannesenb9de9f02007-09-06 18:13:44 +00001214 Out << Num;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001215 }
1216 }
1217 break;
1218 }
1219
1220 case Type::ArrayTyID:
Dan Gohman29b19472008-07-23 18:41:03 +00001221 // Use C99 compound expression literal initializer syntax.
Dan Gohmanad831302008-07-24 17:57:48 +00001222 if (!Static) {
1223 Out << "(";
1224 printType(Out, CPV->getType());
1225 Out << ")";
1226 }
Dan Gohman5d995b02008-06-02 21:30:49 +00001227 Out << "{ "; // Arrays are wrapped in struct types.
Chris Lattner8673e322008-03-02 05:46:57 +00001228 if (ConstantArray *CA = dyn_cast<ConstantArray>(CPV)) {
Dan Gohmanad831302008-07-24 17:57:48 +00001229 printConstantArray(CA, Static);
Chris Lattner63fb1f02008-03-02 03:16:38 +00001230 } else {
1231 assert(isa<ConstantAggregateZero>(CPV) || isa<UndefValue>(CPV));
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001232 const ArrayType *AT = cast<ArrayType>(CPV->getType());
1233 Out << '{';
1234 if (AT->getNumElements()) {
1235 Out << ' ';
1236 Constant *CZ = Constant::getNullValue(AT->getElementType());
Dan Gohmanad831302008-07-24 17:57:48 +00001237 printConstant(CZ, Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001238 for (unsigned i = 1, e = AT->getNumElements(); i != e; ++i) {
1239 Out << ", ";
Dan Gohmanad831302008-07-24 17:57:48 +00001240 printConstant(CZ, Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001241 }
1242 }
1243 Out << " }";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001244 }
Dan Gohman5d995b02008-06-02 21:30:49 +00001245 Out << " }"; // Arrays are wrapped in struct types.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001246 break;
1247
1248 case Type::VectorTyID:
Chris Lattner70f0f672008-03-02 03:29:50 +00001249 // Use C99 compound expression literal initializer syntax.
Dan Gohmanad831302008-07-24 17:57:48 +00001250 if (!Static) {
1251 Out << "(";
1252 printType(Out, CPV->getType());
1253 Out << ")";
1254 }
Chris Lattner8673e322008-03-02 05:46:57 +00001255 if (ConstantVector *CV = dyn_cast<ConstantVector>(CPV)) {
Dan Gohmanad831302008-07-24 17:57:48 +00001256 printConstantVector(CV, Static);
Chris Lattner63fb1f02008-03-02 03:16:38 +00001257 } else {
1258 assert(isa<ConstantAggregateZero>(CPV) || isa<UndefValue>(CPV));
1259 const VectorType *VT = cast<VectorType>(CPV->getType());
1260 Out << "{ ";
1261 Constant *CZ = Constant::getNullValue(VT->getElementType());
Dan Gohmanad831302008-07-24 17:57:48 +00001262 printConstant(CZ, Static);
Chris Lattner6d4cd9b2008-03-02 03:18:46 +00001263 for (unsigned i = 1, e = VT->getNumElements(); i != e; ++i) {
Chris Lattner63fb1f02008-03-02 03:16:38 +00001264 Out << ", ";
Dan Gohmanad831302008-07-24 17:57:48 +00001265 printConstant(CZ, Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001266 }
1267 Out << " }";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001268 }
1269 break;
1270
1271 case Type::StructTyID:
Dan Gohman29b19472008-07-23 18:41:03 +00001272 // Use C99 compound expression literal initializer syntax.
Dan Gohmanad831302008-07-24 17:57:48 +00001273 if (!Static) {
1274 Out << "(";
1275 printType(Out, CPV->getType());
1276 Out << ")";
1277 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001278 if (isa<ConstantAggregateZero>(CPV) || isa<UndefValue>(CPV)) {
1279 const StructType *ST = cast<StructType>(CPV->getType());
1280 Out << '{';
1281 if (ST->getNumElements()) {
1282 Out << ' ';
Dan Gohmanad831302008-07-24 17:57:48 +00001283 printConstant(Constant::getNullValue(ST->getElementType(0)), Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001284 for (unsigned i = 1, e = ST->getNumElements(); i != e; ++i) {
1285 Out << ", ";
Dan Gohmanad831302008-07-24 17:57:48 +00001286 printConstant(Constant::getNullValue(ST->getElementType(i)), Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001287 }
1288 }
1289 Out << " }";
1290 } else {
1291 Out << '{';
1292 if (CPV->getNumOperands()) {
1293 Out << ' ';
Dan Gohmanad831302008-07-24 17:57:48 +00001294 printConstant(cast<Constant>(CPV->getOperand(0)), Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001295 for (unsigned i = 1, e = CPV->getNumOperands(); i != e; ++i) {
1296 Out << ", ";
Dan Gohmanad831302008-07-24 17:57:48 +00001297 printConstant(cast<Constant>(CPV->getOperand(i)), Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001298 }
1299 }
1300 Out << " }";
1301 }
1302 break;
1303
1304 case Type::PointerTyID:
1305 if (isa<ConstantPointerNull>(CPV)) {
1306 Out << "((";
1307 printType(Out, CPV->getType()); // sign doesn't matter
1308 Out << ")/*NULL*/0)";
1309 break;
1310 } else if (GlobalValue *GV = dyn_cast<GlobalValue>(CPV)) {
Dan Gohmanad831302008-07-24 17:57:48 +00001311 writeOperand(GV, Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001312 break;
1313 }
1314 // FALL THROUGH
1315 default:
1316 cerr << "Unknown constant type: " << *CPV << "\n";
1317 abort();
1318 }
1319}
1320
1321// Some constant expressions need to be casted back to the original types
1322// because their operands were casted to the expected type. This function takes
1323// care of detecting that case and printing the cast for the ConstantExpr.
Dan Gohmanad831302008-07-24 17:57:48 +00001324bool CWriter::printConstExprCast(const ConstantExpr* CE, bool Static) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001325 bool NeedsExplicitCast = false;
1326 const Type *Ty = CE->getOperand(0)->getType();
1327 bool TypeIsSigned = false;
1328 switch (CE->getOpcode()) {
Dan Gohmane1790de2008-07-18 18:43:12 +00001329 case Instruction::Add:
1330 case Instruction::Sub:
1331 case Instruction::Mul:
1332 // We need to cast integer arithmetic so that it is always performed
1333 // as unsigned, to avoid undefined behavior on overflow.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001334 case Instruction::LShr:
1335 case Instruction::URem:
1336 case Instruction::UDiv: NeedsExplicitCast = true; break;
1337 case Instruction::AShr:
1338 case Instruction::SRem:
1339 case Instruction::SDiv: NeedsExplicitCast = true; TypeIsSigned = true; break;
1340 case Instruction::SExt:
1341 Ty = CE->getType();
1342 NeedsExplicitCast = true;
1343 TypeIsSigned = true;
1344 break;
1345 case Instruction::ZExt:
1346 case Instruction::Trunc:
1347 case Instruction::FPTrunc:
1348 case Instruction::FPExt:
1349 case Instruction::UIToFP:
1350 case Instruction::SIToFP:
1351 case Instruction::FPToUI:
1352 case Instruction::FPToSI:
1353 case Instruction::PtrToInt:
1354 case Instruction::IntToPtr:
1355 case Instruction::BitCast:
1356 Ty = CE->getType();
1357 NeedsExplicitCast = true;
1358 break;
1359 default: break;
1360 }
1361 if (NeedsExplicitCast) {
1362 Out << "((";
1363 if (Ty->isInteger() && Ty != Type::Int1Ty)
1364 printSimpleType(Out, Ty, TypeIsSigned);
1365 else
1366 printType(Out, Ty); // not integer, sign doesn't matter
1367 Out << ")(";
1368 }
1369 return NeedsExplicitCast;
1370}
1371
1372// Print a constant assuming that it is the operand for a given Opcode. The
1373// opcodes that care about sign need to cast their operands to the expected
1374// type before the operation proceeds. This function does the casting.
1375void CWriter::printConstantWithCast(Constant* CPV, unsigned Opcode) {
1376
1377 // Extract the operand's type, we'll need it.
1378 const Type* OpTy = CPV->getType();
1379
1380 // Indicate whether to do the cast or not.
1381 bool shouldCast = false;
1382 bool typeIsSigned = false;
1383
1384 // Based on the Opcode for which this Constant is being written, determine
1385 // the new type to which the operand should be casted by setting the value
1386 // of OpTy. If we change OpTy, also set shouldCast to true so it gets
1387 // casted below.
1388 switch (Opcode) {
1389 default:
1390 // for most instructions, it doesn't matter
1391 break;
Dan Gohmane1790de2008-07-18 18:43:12 +00001392 case Instruction::Add:
1393 case Instruction::Sub:
1394 case Instruction::Mul:
1395 // We need to cast integer arithmetic so that it is always performed
1396 // as unsigned, to avoid undefined behavior on overflow.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001397 case Instruction::LShr:
1398 case Instruction::UDiv:
1399 case Instruction::URem:
1400 shouldCast = true;
1401 break;
1402 case Instruction::AShr:
1403 case Instruction::SDiv:
1404 case Instruction::SRem:
1405 shouldCast = true;
1406 typeIsSigned = true;
1407 break;
1408 }
1409
1410 // Write out the casted constant if we should, otherwise just write the
1411 // operand.
1412 if (shouldCast) {
1413 Out << "((";
1414 printSimpleType(Out, OpTy, typeIsSigned);
1415 Out << ")";
Dan Gohmanad831302008-07-24 17:57:48 +00001416 printConstant(CPV, false);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001417 Out << ")";
1418 } else
Dan Gohmanad831302008-07-24 17:57:48 +00001419 printConstant(CPV, false);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001420}
1421
1422std::string CWriter::GetValueName(const Value *Operand) {
1423 std::string Name;
1424
1425 if (!isa<GlobalValue>(Operand) && Operand->getName() != "") {
1426 std::string VarName;
1427
1428 Name = Operand->getName();
1429 VarName.reserve(Name.capacity());
1430
1431 for (std::string::iterator I = Name.begin(), E = Name.end();
1432 I != E; ++I) {
1433 char ch = *I;
1434
1435 if (!((ch >= 'a' && ch <= 'z') || (ch >= 'A' && ch <= 'Z') ||
Lauro Ramos Venancio66842ee2008-02-28 20:26:04 +00001436 (ch >= '0' && ch <= '9') || ch == '_')) {
1437 char buffer[5];
1438 sprintf(buffer, "_%x_", ch);
1439 VarName += buffer;
1440 } else
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001441 VarName += ch;
1442 }
1443
1444 Name = "llvm_cbe_" + VarName;
1445 } else {
1446 Name = Mang->getValueName(Operand);
1447 }
1448
1449 return Name;
1450}
1451
Chris Lattnerd70f5a82008-05-31 09:23:55 +00001452/// writeInstComputationInline - Emit the computation for the specified
1453/// instruction inline, with no destination provided.
1454void CWriter::writeInstComputationInline(Instruction &I) {
Dale Johannesen787881e2009-06-18 01:07:23 +00001455 // We can't currently support integer types other than 1, 8, 16, 32, 64.
1456 // Validate this.
1457 const Type *Ty = I.getType();
1458 if (Ty->isInteger() && (Ty!=Type::Int1Ty && Ty!=Type::Int8Ty &&
1459 Ty!=Type::Int16Ty && Ty!=Type::Int32Ty && Ty!=Type::Int64Ty)) {
1460 cerr << "The C backend does not currently support integer "
1461 << "types of widths other than 1, 8, 16, 32, 64.\n";
1462 cerr << "This is being tracked as PR 4158.\n";
1463 abort();
1464 }
1465
Chris Lattnerd70f5a82008-05-31 09:23:55 +00001466 // If this is a non-trivial bool computation, make sure to truncate down to
1467 // a 1 bit value. This is important because we want "add i1 x, y" to return
1468 // "0" when x and y are true, not "2" for example.
1469 bool NeedBoolTrunc = false;
1470 if (I.getType() == Type::Int1Ty && !isa<ICmpInst>(I) && !isa<FCmpInst>(I))
1471 NeedBoolTrunc = true;
1472
1473 if (NeedBoolTrunc)
1474 Out << "((";
1475
1476 visit(I);
1477
1478 if (NeedBoolTrunc)
1479 Out << ")&1)";
1480}
1481
1482
Dan Gohmanad831302008-07-24 17:57:48 +00001483void CWriter::writeOperandInternal(Value *Operand, bool Static) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001484 if (Instruction *I = dyn_cast<Instruction>(Operand))
Chris Lattnerd70f5a82008-05-31 09:23:55 +00001485 // Should we inline this instruction to build a tree?
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001486 if (isInlinableInst(*I) && !isDirectAlloca(I)) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001487 Out << '(';
Chris Lattnerd70f5a82008-05-31 09:23:55 +00001488 writeInstComputationInline(*I);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001489 Out << ')';
1490 return;
1491 }
1492
1493 Constant* CPV = dyn_cast<Constant>(Operand);
1494
1495 if (CPV && !isa<GlobalValue>(CPV))
Dan Gohmanad831302008-07-24 17:57:48 +00001496 printConstant(CPV, Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001497 else
1498 Out << GetValueName(Operand);
1499}
1500
Dan Gohmanad831302008-07-24 17:57:48 +00001501void CWriter::writeOperand(Value *Operand, bool Static) {
Chris Lattner8bbc8592008-03-02 08:07:24 +00001502 bool isAddressImplicit = isAddressExposed(Operand);
1503 if (isAddressImplicit)
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001504 Out << "(&"; // Global variables are referenced as their addresses by llvm
1505
Dan Gohmanad831302008-07-24 17:57:48 +00001506 writeOperandInternal(Operand, Static);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001507
Chris Lattner8bbc8592008-03-02 08:07:24 +00001508 if (isAddressImplicit)
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001509 Out << ')';
1510}
1511
1512// Some instructions need to have their result value casted back to the
1513// original types because their operands were casted to the expected type.
1514// This function takes care of detecting that case and printing the cast
1515// for the Instruction.
1516bool CWriter::writeInstructionCast(const Instruction &I) {
1517 const Type *Ty = I.getOperand(0)->getType();
1518 switch (I.getOpcode()) {
Dan Gohmane1790de2008-07-18 18:43:12 +00001519 case Instruction::Add:
1520 case Instruction::Sub:
1521 case Instruction::Mul:
1522 // We need to cast integer arithmetic so that it is always performed
1523 // as unsigned, to avoid undefined behavior on overflow.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001524 case Instruction::LShr:
1525 case Instruction::URem:
1526 case Instruction::UDiv:
1527 Out << "((";
1528 printSimpleType(Out, Ty, false);
1529 Out << ")(";
1530 return true;
1531 case Instruction::AShr:
1532 case Instruction::SRem:
1533 case Instruction::SDiv:
1534 Out << "((";
1535 printSimpleType(Out, Ty, true);
1536 Out << ")(";
1537 return true;
1538 default: break;
1539 }
1540 return false;
1541}
1542
1543// Write the operand with a cast to another type based on the Opcode being used.
1544// This will be used in cases where an instruction has specific type
1545// requirements (usually signedness) for its operands.
1546void CWriter::writeOperandWithCast(Value* Operand, unsigned Opcode) {
1547
1548 // Extract the operand's type, we'll need it.
1549 const Type* OpTy = Operand->getType();
1550
1551 // Indicate whether to do the cast or not.
1552 bool shouldCast = false;
1553
1554 // Indicate whether the cast should be to a signed type or not.
1555 bool castIsSigned = false;
1556
1557 // Based on the Opcode for which this Operand is being written, determine
1558 // the new type to which the operand should be casted by setting the value
1559 // of OpTy. If we change OpTy, also set shouldCast to true.
1560 switch (Opcode) {
1561 default:
1562 // for most instructions, it doesn't matter
1563 break;
Dan Gohmane1790de2008-07-18 18:43:12 +00001564 case Instruction::Add:
1565 case Instruction::Sub:
1566 case Instruction::Mul:
1567 // We need to cast integer arithmetic so that it is always performed
1568 // as unsigned, to avoid undefined behavior on overflow.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001569 case Instruction::LShr:
1570 case Instruction::UDiv:
1571 case Instruction::URem: // Cast to unsigned first
1572 shouldCast = true;
1573 castIsSigned = false;
1574 break;
Chris Lattner7ce1ee42007-09-22 20:16:48 +00001575 case Instruction::GetElementPtr:
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001576 case Instruction::AShr:
1577 case Instruction::SDiv:
1578 case Instruction::SRem: // Cast to signed first
1579 shouldCast = true;
1580 castIsSigned = true;
1581 break;
1582 }
1583
1584 // Write out the casted operand if we should, otherwise just write the
1585 // operand.
1586 if (shouldCast) {
1587 Out << "((";
1588 printSimpleType(Out, OpTy, castIsSigned);
1589 Out << ")";
1590 writeOperand(Operand);
1591 Out << ")";
1592 } else
1593 writeOperand(Operand);
1594}
1595
1596// Write the operand with a cast to another type based on the icmp predicate
1597// being used.
Chris Lattner389c9142007-09-15 06:51:03 +00001598void CWriter::writeOperandWithCast(Value* Operand, const ICmpInst &Cmp) {
1599 // This has to do a cast to ensure the operand has the right signedness.
1600 // Also, if the operand is a pointer, we make sure to cast to an integer when
1601 // doing the comparison both for signedness and so that the C compiler doesn't
1602 // optimize things like "p < NULL" to false (p may contain an integer value
1603 // f.e.).
1604 bool shouldCast = Cmp.isRelational();
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001605
1606 // Write out the casted operand if we should, otherwise just write the
1607 // operand.
Chris Lattner389c9142007-09-15 06:51:03 +00001608 if (!shouldCast) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001609 writeOperand(Operand);
Chris Lattner389c9142007-09-15 06:51:03 +00001610 return;
1611 }
1612
1613 // Should this be a signed comparison? If so, convert to signed.
1614 bool castIsSigned = Cmp.isSignedPredicate();
1615
1616 // If the operand was a pointer, convert to a large integer type.
1617 const Type* OpTy = Operand->getType();
1618 if (isa<PointerType>(OpTy))
1619 OpTy = TD->getIntPtrType();
1620
1621 Out << "((";
1622 printSimpleType(Out, OpTy, castIsSigned);
1623 Out << ")";
1624 writeOperand(Operand);
1625 Out << ")";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001626}
1627
1628// generateCompilerSpecificCode - This is where we add conditional compilation
1629// directives to cater to specific compilers as need be.
1630//
Owen Anderson847b99b2008-08-21 00:14:44 +00001631static void generateCompilerSpecificCode(raw_ostream& Out,
Dan Gohman3f795232008-04-02 23:52:49 +00001632 const TargetData *TD) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001633 // Alloca is hard to get, and we don't want to include stdlib.h here.
1634 Out << "/* get a declaration for alloca */\n"
1635 << "#if defined(__CYGWIN__) || defined(__MINGW32__)\n"
1636 << "#define alloca(x) __builtin_alloca((x))\n"
1637 << "#define _alloca(x) __builtin_alloca((x))\n"
1638 << "#elif defined(__APPLE__)\n"
1639 << "extern void *__builtin_alloca(unsigned long);\n"
1640 << "#define alloca(x) __builtin_alloca(x)\n"
1641 << "#define longjmp _longjmp\n"
1642 << "#define setjmp _setjmp\n"
1643 << "#elif defined(__sun__)\n"
1644 << "#if defined(__sparcv9)\n"
1645 << "extern void *__builtin_alloca(unsigned long);\n"
1646 << "#else\n"
1647 << "extern void *__builtin_alloca(unsigned int);\n"
1648 << "#endif\n"
1649 << "#define alloca(x) __builtin_alloca(x)\n"
Matthijs Kooijman331217d2008-06-26 10:36:58 +00001650 << "#elif defined(__FreeBSD__) || defined(__NetBSD__) || defined(__OpenBSD__) || defined(__DragonFly__)\n"
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001651 << "#define alloca(x) __builtin_alloca(x)\n"
1652 << "#elif defined(_MSC_VER)\n"
1653 << "#define inline _inline\n"
1654 << "#define alloca(x) _alloca(x)\n"
1655 << "#else\n"
1656 << "#include <alloca.h>\n"
1657 << "#endif\n\n";
1658
1659 // We output GCC specific attributes to preserve 'linkonce'ness on globals.
1660 // If we aren't being compiled with GCC, just drop these attributes.
1661 Out << "#ifndef __GNUC__ /* Can only support \"linkonce\" vars with GCC */\n"
1662 << "#define __attribute__(X)\n"
1663 << "#endif\n\n";
1664
1665 // On Mac OS X, "external weak" is spelled "__attribute__((weak_import))".
1666 Out << "#if defined(__GNUC__) && defined(__APPLE_CC__)\n"
1667 << "#define __EXTERNAL_WEAK__ __attribute__((weak_import))\n"
1668 << "#elif defined(__GNUC__)\n"
1669 << "#define __EXTERNAL_WEAK__ __attribute__((weak))\n"
1670 << "#else\n"
1671 << "#define __EXTERNAL_WEAK__\n"
1672 << "#endif\n\n";
1673
1674 // For now, turn off the weak linkage attribute on Mac OS X. (See above.)
1675 Out << "#if defined(__GNUC__) && defined(__APPLE_CC__)\n"
1676 << "#define __ATTRIBUTE_WEAK__\n"
1677 << "#elif defined(__GNUC__)\n"
1678 << "#define __ATTRIBUTE_WEAK__ __attribute__((weak))\n"
1679 << "#else\n"
1680 << "#define __ATTRIBUTE_WEAK__\n"
1681 << "#endif\n\n";
1682
1683 // Add hidden visibility support. FIXME: APPLE_CC?
1684 Out << "#if defined(__GNUC__)\n"
1685 << "#define __HIDDEN__ __attribute__((visibility(\"hidden\")))\n"
1686 << "#endif\n\n";
1687
1688 // Define NaN and Inf as GCC builtins if using GCC, as 0 otherwise
1689 // From the GCC documentation:
1690 //
1691 // double __builtin_nan (const char *str)
1692 //
1693 // This is an implementation of the ISO C99 function nan.
1694 //
1695 // Since ISO C99 defines this function in terms of strtod, which we do
1696 // not implement, a description of the parsing is in order. The string is
1697 // parsed as by strtol; that is, the base is recognized by leading 0 or
1698 // 0x prefixes. The number parsed is placed in the significand such that
1699 // the least significant bit of the number is at the least significant
1700 // bit of the significand. The number is truncated to fit the significand
1701 // field provided. The significand is forced to be a quiet NaN.
1702 //
1703 // This function, if given a string literal, is evaluated early enough
1704 // that it is considered a compile-time constant.
1705 //
1706 // float __builtin_nanf (const char *str)
1707 //
1708 // Similar to __builtin_nan, except the return type is float.
1709 //
1710 // double __builtin_inf (void)
1711 //
1712 // Similar to __builtin_huge_val, except a warning is generated if the
1713 // target floating-point format does not support infinities. This
1714 // function is suitable for implementing the ISO C99 macro INFINITY.
1715 //
1716 // float __builtin_inff (void)
1717 //
1718 // Similar to __builtin_inf, except the return type is float.
1719 Out << "#ifdef __GNUC__\n"
1720 << "#define LLVM_NAN(NanStr) __builtin_nan(NanStr) /* Double */\n"
1721 << "#define LLVM_NANF(NanStr) __builtin_nanf(NanStr) /* Float */\n"
1722 << "#define LLVM_NANS(NanStr) __builtin_nans(NanStr) /* Double */\n"
1723 << "#define LLVM_NANSF(NanStr) __builtin_nansf(NanStr) /* Float */\n"
1724 << "#define LLVM_INF __builtin_inf() /* Double */\n"
1725 << "#define LLVM_INFF __builtin_inff() /* Float */\n"
1726 << "#define LLVM_PREFETCH(addr,rw,locality) "
1727 "__builtin_prefetch(addr,rw,locality)\n"
1728 << "#define __ATTRIBUTE_CTOR__ __attribute__((constructor))\n"
1729 << "#define __ATTRIBUTE_DTOR__ __attribute__((destructor))\n"
1730 << "#define LLVM_ASM __asm__\n"
1731 << "#else\n"
1732 << "#define LLVM_NAN(NanStr) ((double)0.0) /* Double */\n"
1733 << "#define LLVM_NANF(NanStr) 0.0F /* Float */\n"
1734 << "#define LLVM_NANS(NanStr) ((double)0.0) /* Double */\n"
1735 << "#define LLVM_NANSF(NanStr) 0.0F /* Float */\n"
1736 << "#define LLVM_INF ((double)0.0) /* Double */\n"
1737 << "#define LLVM_INFF 0.0F /* Float */\n"
1738 << "#define LLVM_PREFETCH(addr,rw,locality) /* PREFETCH */\n"
1739 << "#define __ATTRIBUTE_CTOR__\n"
1740 << "#define __ATTRIBUTE_DTOR__\n"
1741 << "#define LLVM_ASM(X)\n"
1742 << "#endif\n\n";
1743
1744 Out << "#if __GNUC__ < 4 /* Old GCC's, or compilers not GCC */ \n"
1745 << "#define __builtin_stack_save() 0 /* not implemented */\n"
1746 << "#define __builtin_stack_restore(X) /* noop */\n"
1747 << "#endif\n\n";
1748
Dan Gohman3f795232008-04-02 23:52:49 +00001749 // Output typedefs for 128-bit integers. If these are needed with a
1750 // 32-bit target or with a C compiler that doesn't support mode(TI),
1751 // more drastic measures will be needed.
Chris Lattnerab6d3382008-06-16 04:25:29 +00001752 Out << "#if __GNUC__ && __LP64__ /* 128-bit integer types */\n"
1753 << "typedef int __attribute__((mode(TI))) llvmInt128;\n"
1754 << "typedef unsigned __attribute__((mode(TI))) llvmUInt128;\n"
1755 << "#endif\n\n";
Dan Gohmana2245af2008-04-02 19:40:14 +00001756
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001757 // Output target-specific code that should be inserted into main.
1758 Out << "#define CODE_FOR_MAIN() /* Any target-specific code for main()*/\n";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001759}
1760
1761/// FindStaticTors - Given a static ctor/dtor list, unpack its contents into
1762/// the StaticTors set.
1763static void FindStaticTors(GlobalVariable *GV, std::set<Function*> &StaticTors){
1764 ConstantArray *InitList = dyn_cast<ConstantArray>(GV->getInitializer());
1765 if (!InitList) return;
1766
1767 for (unsigned i = 0, e = InitList->getNumOperands(); i != e; ++i)
1768 if (ConstantStruct *CS = dyn_cast<ConstantStruct>(InitList->getOperand(i))){
1769 if (CS->getNumOperands() != 2) return; // Not array of 2-element structs.
1770
1771 if (CS->getOperand(1)->isNullValue())
1772 return; // Found a null terminator, exit printing.
1773 Constant *FP = CS->getOperand(1);
1774 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(FP))
1775 if (CE->isCast())
1776 FP = CE->getOperand(0);
1777 if (Function *F = dyn_cast<Function>(FP))
1778 StaticTors.insert(F);
1779 }
1780}
1781
1782enum SpecialGlobalClass {
1783 NotSpecial = 0,
1784 GlobalCtors, GlobalDtors,
1785 NotPrinted
1786};
1787
1788/// getGlobalVariableClass - If this is a global that is specially recognized
1789/// by LLVM, return a code that indicates how we should handle it.
1790static SpecialGlobalClass getGlobalVariableClass(const GlobalVariable *GV) {
1791 // If this is a global ctors/dtors list, handle it now.
1792 if (GV->hasAppendingLinkage() && GV->use_empty()) {
1793 if (GV->getName() == "llvm.global_ctors")
1794 return GlobalCtors;
1795 else if (GV->getName() == "llvm.global_dtors")
1796 return GlobalDtors;
1797 }
1798
1799 // Otherwise, it it is other metadata, don't print it. This catches things
1800 // like debug information.
1801 if (GV->getSection() == "llvm.metadata")
1802 return NotPrinted;
1803
1804 return NotSpecial;
1805}
1806
1807
1808bool CWriter::doInitialization(Module &M) {
1809 // Initialize
1810 TheModule = &M;
1811
1812 TD = new TargetData(&M);
1813 IL = new IntrinsicLowering(*TD);
1814 IL->AddPrototypes(M);
1815
1816 // Ensure that all structure types have names...
1817 Mang = new Mangler(M);
1818 Mang->markCharUnacceptable('.');
1819
1820 // Keep track of which functions are static ctors/dtors so they can have
1821 // an attribute added to their prototypes.
1822 std::set<Function*> StaticCtors, StaticDtors;
1823 for (Module::global_iterator I = M.global_begin(), E = M.global_end();
1824 I != E; ++I) {
1825 switch (getGlobalVariableClass(I)) {
1826 default: break;
1827 case GlobalCtors:
1828 FindStaticTors(I, StaticCtors);
1829 break;
1830 case GlobalDtors:
1831 FindStaticTors(I, StaticDtors);
1832 break;
1833 }
1834 }
1835
1836 // get declaration for alloca
1837 Out << "/* Provide Declarations */\n";
1838 Out << "#include <stdarg.h>\n"; // Varargs support
1839 Out << "#include <setjmp.h>\n"; // Unwind support
Dan Gohman3f795232008-04-02 23:52:49 +00001840 generateCompilerSpecificCode(Out, TD);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001841
1842 // Provide a definition for `bool' if not compiling with a C++ compiler.
1843 Out << "\n"
1844 << "#ifndef __cplusplus\ntypedef unsigned char bool;\n#endif\n"
1845
1846 << "\n\n/* Support for floating point constants */\n"
1847 << "typedef unsigned long long ConstantDoubleTy;\n"
1848 << "typedef unsigned int ConstantFloatTy;\n"
Dale Johannesen137cef62007-09-17 00:38:27 +00001849 << "typedef struct { unsigned long long f1; unsigned short f2; "
1850 "unsigned short pad[3]; } ConstantFP80Ty;\n"
Dale Johannesen091dcfd2007-10-15 01:05:37 +00001851 // This is used for both kinds of 128-bit long double; meaning differs.
Dale Johannesen137cef62007-09-17 00:38:27 +00001852 << "typedef struct { unsigned long long f1; unsigned long long f2; }"
1853 " ConstantFP128Ty;\n"
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001854 << "\n\n/* Global Declarations */\n";
1855
1856 // First output all the declarations for the program, because C requires
1857 // Functions & globals to be declared before they are used.
1858 //
1859
1860 // Loop over the symbol table, emitting all named constants...
1861 printModuleTypes(M.getTypeSymbolTable());
1862
1863 // Global variable declarations...
1864 if (!M.global_empty()) {
1865 Out << "\n/* External Global Variable Declarations */\n";
1866 for (Module::global_iterator I = M.global_begin(), E = M.global_end();
1867 I != E; ++I) {
1868
Dale Johannesen49c44122008-05-14 20:12:51 +00001869 if (I->hasExternalLinkage() || I->hasExternalWeakLinkage() ||
1870 I->hasCommonLinkage())
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001871 Out << "extern ";
1872 else if (I->hasDLLImportLinkage())
1873 Out << "__declspec(dllimport) ";
1874 else
1875 continue; // Internal Global
1876
1877 // Thread Local Storage
1878 if (I->isThreadLocal())
1879 Out << "__thread ";
1880
1881 printType(Out, I->getType()->getElementType(), false, GetValueName(I));
1882
1883 if (I->hasExternalWeakLinkage())
1884 Out << " __EXTERNAL_WEAK__";
1885 Out << ";\n";
1886 }
1887 }
1888
1889 // Function declarations
1890 Out << "\n/* Function Declarations */\n";
1891 Out << "double fmod(double, double);\n"; // Support for FP rem
1892 Out << "float fmodf(float, float);\n";
Dale Johannesen137cef62007-09-17 00:38:27 +00001893 Out << "long double fmodl(long double, long double);\n";
Evan Chengd2d22fe2008-06-07 07:50:29 +00001894
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001895 for (Module::iterator I = M.begin(), E = M.end(); I != E; ++I) {
1896 // Don't print declarations for intrinsic functions.
Duncan Sands79d28872007-12-03 20:06:50 +00001897 if (!I->isIntrinsic() && I->getName() != "setjmp" &&
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001898 I->getName() != "longjmp" && I->getName() != "_setjmp") {
1899 if (I->hasExternalWeakLinkage())
1900 Out << "extern ";
1901 printFunctionSignature(I, true);
Evan Chengd2d22fe2008-06-07 07:50:29 +00001902 if (I->hasWeakLinkage() || I->hasLinkOnceLinkage())
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001903 Out << " __ATTRIBUTE_WEAK__";
1904 if (I->hasExternalWeakLinkage())
1905 Out << " __EXTERNAL_WEAK__";
1906 if (StaticCtors.count(I))
1907 Out << " __ATTRIBUTE_CTOR__";
1908 if (StaticDtors.count(I))
1909 Out << " __ATTRIBUTE_DTOR__";
1910 if (I->hasHiddenVisibility())
1911 Out << " __HIDDEN__";
Evan Chengd2d22fe2008-06-07 07:50:29 +00001912
1913 if (I->hasName() && I->getName()[0] == 1)
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001914 Out << " LLVM_ASM(\"" << I->getName().c_str()+1 << "\")";
Evan Chengd2d22fe2008-06-07 07:50:29 +00001915
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001916 Out << ";\n";
1917 }
1918 }
1919
1920 // Output the global variable declarations
1921 if (!M.global_empty()) {
1922 Out << "\n\n/* Global Variable Declarations */\n";
1923 for (Module::global_iterator I = M.global_begin(), E = M.global_end();
1924 I != E; ++I)
1925 if (!I->isDeclaration()) {
1926 // Ignore special globals, such as debug info.
1927 if (getGlobalVariableClass(I))
1928 continue;
1929
Rafael Espindolaa168fc92009-01-15 20:18:42 +00001930 if (I->hasLocalLinkage())
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001931 Out << "static ";
1932 else
1933 Out << "extern ";
1934
1935 // Thread Local Storage
1936 if (I->isThreadLocal())
1937 Out << "__thread ";
1938
1939 printType(Out, I->getType()->getElementType(), false,
1940 GetValueName(I));
1941
1942 if (I->hasLinkOnceLinkage())
1943 Out << " __attribute__((common))";
Dale Johannesen49c44122008-05-14 20:12:51 +00001944 else if (I->hasCommonLinkage()) // FIXME is this right?
1945 Out << " __ATTRIBUTE_WEAK__";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001946 else if (I->hasWeakLinkage())
1947 Out << " __ATTRIBUTE_WEAK__";
1948 else if (I->hasExternalWeakLinkage())
1949 Out << " __EXTERNAL_WEAK__";
1950 if (I->hasHiddenVisibility())
1951 Out << " __HIDDEN__";
1952 Out << ";\n";
1953 }
1954 }
1955
1956 // Output the global variable definitions and contents...
1957 if (!M.global_empty()) {
1958 Out << "\n\n/* Global Variable Definitions and Initialization */\n";
Evan Chengd2d22fe2008-06-07 07:50:29 +00001959 for (Module::global_iterator I = M.global_begin(), E = M.global_end();
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001960 I != E; ++I)
1961 if (!I->isDeclaration()) {
1962 // Ignore special globals, such as debug info.
1963 if (getGlobalVariableClass(I))
1964 continue;
1965
Rafael Espindolaa168fc92009-01-15 20:18:42 +00001966 if (I->hasLocalLinkage())
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001967 Out << "static ";
1968 else if (I->hasDLLImportLinkage())
1969 Out << "__declspec(dllimport) ";
1970 else if (I->hasDLLExportLinkage())
1971 Out << "__declspec(dllexport) ";
1972
1973 // Thread Local Storage
1974 if (I->isThreadLocal())
1975 Out << "__thread ";
1976
1977 printType(Out, I->getType()->getElementType(), false,
1978 GetValueName(I));
1979 if (I->hasLinkOnceLinkage())
1980 Out << " __attribute__((common))";
1981 else if (I->hasWeakLinkage())
1982 Out << " __ATTRIBUTE_WEAK__";
Dale Johannesen49c44122008-05-14 20:12:51 +00001983 else if (I->hasCommonLinkage())
1984 Out << " __ATTRIBUTE_WEAK__";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001985
1986 if (I->hasHiddenVisibility())
1987 Out << " __HIDDEN__";
1988
1989 // If the initializer is not null, emit the initializer. If it is null,
1990 // we try to avoid emitting large amounts of zeros. The problem with
1991 // this, however, occurs when the variable has weak linkage. In this
1992 // case, the assembler will complain about the variable being both weak
1993 // and common, so we disable this optimization.
Dale Johannesen49c44122008-05-14 20:12:51 +00001994 // FIXME common linkage should avoid this problem.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001995 if (!I->getInitializer()->isNullValue()) {
1996 Out << " = " ;
Dan Gohmanad831302008-07-24 17:57:48 +00001997 writeOperand(I->getInitializer(), true);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00001998 } else if (I->hasWeakLinkage()) {
1999 // We have to specify an initializer, but it doesn't have to be
2000 // complete. If the value is an aggregate, print out { 0 }, and let
2001 // the compiler figure out the rest of the zeros.
2002 Out << " = " ;
2003 if (isa<StructType>(I->getInitializer()->getType()) ||
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002004 isa<VectorType>(I->getInitializer()->getType())) {
2005 Out << "{ 0 }";
Dan Gohman5d995b02008-06-02 21:30:49 +00002006 } else if (isa<ArrayType>(I->getInitializer()->getType())) {
2007 // As with structs and vectors, but with an extra set of braces
2008 // because arrays are wrapped in structs.
2009 Out << "{ { 0 } }";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002010 } else {
2011 // Just print it out normally.
Dan Gohmanad831302008-07-24 17:57:48 +00002012 writeOperand(I->getInitializer(), true);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002013 }
2014 }
2015 Out << ";\n";
2016 }
2017 }
2018
2019 if (!M.empty())
2020 Out << "\n\n/* Function Bodies */\n";
2021
2022 // Emit some helper functions for dealing with FCMP instruction's
2023 // predicates
2024 Out << "static inline int llvm_fcmp_ord(double X, double Y) { ";
2025 Out << "return X == X && Y == Y; }\n";
2026 Out << "static inline int llvm_fcmp_uno(double X, double Y) { ";
2027 Out << "return X != X || Y != Y; }\n";
2028 Out << "static inline int llvm_fcmp_ueq(double X, double Y) { ";
2029 Out << "return X == Y || llvm_fcmp_uno(X, Y); }\n";
2030 Out << "static inline int llvm_fcmp_une(double X, double Y) { ";
2031 Out << "return X != Y; }\n";
2032 Out << "static inline int llvm_fcmp_ult(double X, double Y) { ";
2033 Out << "return X < Y || llvm_fcmp_uno(X, Y); }\n";
2034 Out << "static inline int llvm_fcmp_ugt(double X, double Y) { ";
2035 Out << "return X > Y || llvm_fcmp_uno(X, Y); }\n";
2036 Out << "static inline int llvm_fcmp_ule(double X, double Y) { ";
2037 Out << "return X <= Y || llvm_fcmp_uno(X, Y); }\n";
2038 Out << "static inline int llvm_fcmp_uge(double X, double Y) { ";
2039 Out << "return X >= Y || llvm_fcmp_uno(X, Y); }\n";
2040 Out << "static inline int llvm_fcmp_oeq(double X, double Y) { ";
2041 Out << "return X == Y ; }\n";
2042 Out << "static inline int llvm_fcmp_one(double X, double Y) { ";
2043 Out << "return X != Y && llvm_fcmp_ord(X, Y); }\n";
2044 Out << "static inline int llvm_fcmp_olt(double X, double Y) { ";
2045 Out << "return X < Y ; }\n";
2046 Out << "static inline int llvm_fcmp_ogt(double X, double Y) { ";
2047 Out << "return X > Y ; }\n";
2048 Out << "static inline int llvm_fcmp_ole(double X, double Y) { ";
2049 Out << "return X <= Y ; }\n";
2050 Out << "static inline int llvm_fcmp_oge(double X, double Y) { ";
2051 Out << "return X >= Y ; }\n";
2052 return false;
2053}
2054
2055
2056/// Output all floating point constants that cannot be printed accurately...
2057void CWriter::printFloatingPointConstants(Function &F) {
2058 // Scan the module for floating point constants. If any FP constant is used
2059 // in the function, we want to redirect it here so that we do not depend on
2060 // the precision of the printed form, unless the printed form preserves
2061 // precision.
2062 //
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002063 for (constant_iterator I = constant_begin(&F), E = constant_end(&F);
2064 I != E; ++I)
Chris Lattnerf6e12012008-10-22 04:53:16 +00002065 printFloatingPointConstants(*I);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002066
2067 Out << '\n';
2068}
2069
Chris Lattnerf6e12012008-10-22 04:53:16 +00002070void CWriter::printFloatingPointConstants(const Constant *C) {
2071 // If this is a constant expression, recursively check for constant fp values.
2072 if (const ConstantExpr *CE = dyn_cast<ConstantExpr>(C)) {
2073 for (unsigned i = 0, e = CE->getNumOperands(); i != e; ++i)
2074 printFloatingPointConstants(CE->getOperand(i));
2075 return;
2076 }
2077
2078 // Otherwise, check for a FP constant that we need to print.
2079 const ConstantFP *FPC = dyn_cast<ConstantFP>(C);
2080 if (FPC == 0 ||
2081 // Do not put in FPConstantMap if safe.
2082 isFPCSafeToPrint(FPC) ||
2083 // Already printed this constant?
2084 FPConstantMap.count(FPC))
2085 return;
2086
2087 FPConstantMap[FPC] = FPCounter; // Number the FP constants
2088
2089 if (FPC->getType() == Type::DoubleTy) {
2090 double Val = FPC->getValueAPF().convertToDouble();
2091 uint64_t i = FPC->getValueAPF().bitcastToAPInt().getZExtValue();
2092 Out << "static const ConstantDoubleTy FPConstant" << FPCounter++
2093 << " = 0x" << utohexstr(i)
2094 << "ULL; /* " << Val << " */\n";
2095 } else if (FPC->getType() == Type::FloatTy) {
2096 float Val = FPC->getValueAPF().convertToFloat();
2097 uint32_t i = (uint32_t)FPC->getValueAPF().bitcastToAPInt().
2098 getZExtValue();
2099 Out << "static const ConstantFloatTy FPConstant" << FPCounter++
2100 << " = 0x" << utohexstr(i)
2101 << "U; /* " << Val << " */\n";
2102 } else if (FPC->getType() == Type::X86_FP80Ty) {
2103 // api needed to prevent premature destruction
2104 APInt api = FPC->getValueAPF().bitcastToAPInt();
2105 const uint64_t *p = api.getRawData();
2106 Out << "static const ConstantFP80Ty FPConstant" << FPCounter++
Dale Johannesen0a92eac2009-03-23 21:16:53 +00002107 << " = { 0x" << utohexstr(p[0])
2108 << "ULL, 0x" << utohexstr((uint16_t)p[1]) << ",{0,0,0}"
Chris Lattnerf6e12012008-10-22 04:53:16 +00002109 << "}; /* Long double constant */\n";
2110 } else if (FPC->getType() == Type::PPC_FP128Ty) {
2111 APInt api = FPC->getValueAPF().bitcastToAPInt();
2112 const uint64_t *p = api.getRawData();
2113 Out << "static const ConstantFP128Ty FPConstant" << FPCounter++
2114 << " = { 0x"
2115 << utohexstr(p[0]) << ", 0x" << utohexstr(p[1])
2116 << "}; /* Long double constant */\n";
2117
2118 } else {
2119 assert(0 && "Unknown float type!");
2120 }
2121}
2122
2123
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002124
2125/// printSymbolTable - Run through symbol table looking for type names. If a
2126/// type name is found, emit its declaration...
2127///
2128void CWriter::printModuleTypes(const TypeSymbolTable &TST) {
2129 Out << "/* Helper union for bitcasts */\n";
2130 Out << "typedef union {\n";
2131 Out << " unsigned int Int32;\n";
2132 Out << " unsigned long long Int64;\n";
2133 Out << " float Float;\n";
2134 Out << " double Double;\n";
2135 Out << "} llvmBitCastUnion;\n";
2136
2137 // We are only interested in the type plane of the symbol table.
2138 TypeSymbolTable::const_iterator I = TST.begin();
2139 TypeSymbolTable::const_iterator End = TST.end();
2140
2141 // If there are no type names, exit early.
2142 if (I == End) return;
2143
2144 // Print out forward declarations for structure types before anything else!
2145 Out << "/* Structure forward decls */\n";
2146 for (; I != End; ++I) {
2147 std::string Name = "struct l_" + Mang->makeNameProper(I->first);
2148 Out << Name << ";\n";
2149 TypeNames.insert(std::make_pair(I->second, Name));
2150 }
2151
2152 Out << '\n';
2153
2154 // Now we can print out typedefs. Above, we guaranteed that this can only be
2155 // for struct or opaque types.
2156 Out << "/* Typedefs */\n";
2157 for (I = TST.begin(); I != End; ++I) {
2158 std::string Name = "l_" + Mang->makeNameProper(I->first);
2159 Out << "typedef ";
2160 printType(Out, I->second, false, Name);
2161 Out << ";\n";
2162 }
2163
2164 Out << '\n';
2165
2166 // Keep track of which structures have been printed so far...
Dan Gohman5d995b02008-06-02 21:30:49 +00002167 std::set<const Type *> StructPrinted;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002168
2169 // Loop over all structures then push them into the stack so they are
2170 // printed in the correct order.
2171 //
2172 Out << "/* Structure contents */\n";
2173 for (I = TST.begin(); I != End; ++I)
Dan Gohman5d995b02008-06-02 21:30:49 +00002174 if (isa<StructType>(I->second) || isa<ArrayType>(I->second))
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002175 // Only print out used types!
Dan Gohman5d995b02008-06-02 21:30:49 +00002176 printContainedStructs(I->second, StructPrinted);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002177}
2178
2179// Push the struct onto the stack and recursively push all structs
2180// this one depends on.
2181//
2182// TODO: Make this work properly with vector types
2183//
2184void CWriter::printContainedStructs(const Type *Ty,
Dan Gohman5d995b02008-06-02 21:30:49 +00002185 std::set<const Type*> &StructPrinted) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002186 // Don't walk through pointers.
2187 if (isa<PointerType>(Ty) || Ty->isPrimitiveType() || Ty->isInteger()) return;
2188
2189 // Print all contained types first.
2190 for (Type::subtype_iterator I = Ty->subtype_begin(),
2191 E = Ty->subtype_end(); I != E; ++I)
2192 printContainedStructs(*I, StructPrinted);
2193
Dan Gohman5d995b02008-06-02 21:30:49 +00002194 if (isa<StructType>(Ty) || isa<ArrayType>(Ty)) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002195 // Check to see if we have already printed this struct.
Dan Gohman5d995b02008-06-02 21:30:49 +00002196 if (StructPrinted.insert(Ty).second) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002197 // Print structure type out.
Dan Gohman5d995b02008-06-02 21:30:49 +00002198 std::string Name = TypeNames[Ty];
2199 printType(Out, Ty, false, Name, true);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002200 Out << ";\n\n";
2201 }
2202 }
2203}
2204
2205void CWriter::printFunctionSignature(const Function *F, bool Prototype) {
2206 /// isStructReturn - Should this function actually return a struct by-value?
Devang Patel949a4b72008-03-03 21:46:28 +00002207 bool isStructReturn = F->hasStructRetAttr();
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002208
Rafael Espindolaa168fc92009-01-15 20:18:42 +00002209 if (F->hasLocalLinkage()) Out << "static ";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002210 if (F->hasDLLImportLinkage()) Out << "__declspec(dllimport) ";
2211 if (F->hasDLLExportLinkage()) Out << "__declspec(dllexport) ";
2212 switch (F->getCallingConv()) {
2213 case CallingConv::X86_StdCall:
Nick Lewyckyc0b01ea2008-11-26 03:17:27 +00002214 Out << "__attribute__((stdcall)) ";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002215 break;
2216 case CallingConv::X86_FastCall:
Nick Lewyckyc0b01ea2008-11-26 03:17:27 +00002217 Out << "__attribute__((fastcall)) ";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002218 break;
2219 }
2220
2221 // Loop over the arguments, printing them...
2222 const FunctionType *FT = cast<FunctionType>(F->getFunctionType());
Devang Pateld222f862008-09-25 21:00:45 +00002223 const AttrListPtr &PAL = F->getAttributes();
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002224
2225 std::stringstream FunctionInnards;
2226
2227 // Print out the name...
2228 FunctionInnards << GetValueName(F) << '(';
2229
2230 bool PrintedArg = false;
2231 if (!F->isDeclaration()) {
2232 if (!F->arg_empty()) {
2233 Function::const_arg_iterator I = F->arg_begin(), E = F->arg_end();
Evan Cheng2054cb02008-01-11 03:07:46 +00002234 unsigned Idx = 1;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002235
2236 // If this is a struct-return function, don't print the hidden
2237 // struct-return argument.
2238 if (isStructReturn) {
2239 assert(I != E && "Invalid struct return function!");
2240 ++I;
Evan Cheng2054cb02008-01-11 03:07:46 +00002241 ++Idx;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002242 }
2243
2244 std::string ArgName;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002245 for (; I != E; ++I) {
2246 if (PrintedArg) FunctionInnards << ", ";
2247 if (I->hasName() || !Prototype)
2248 ArgName = GetValueName(I);
2249 else
2250 ArgName = "";
Evan Cheng2054cb02008-01-11 03:07:46 +00002251 const Type *ArgTy = I->getType();
Devang Pateld222f862008-09-25 21:00:45 +00002252 if (PAL.paramHasAttr(Idx, Attribute::ByVal)) {
Evan Cheng17254e62008-01-11 09:12:49 +00002253 ArgTy = cast<PointerType>(ArgTy)->getElementType();
Chris Lattner8bbc8592008-03-02 08:07:24 +00002254 ByValParams.insert(I);
Evan Cheng17254e62008-01-11 09:12:49 +00002255 }
Evan Cheng2054cb02008-01-11 03:07:46 +00002256 printType(FunctionInnards, ArgTy,
Devang Pateld222f862008-09-25 21:00:45 +00002257 /*isSigned=*/PAL.paramHasAttr(Idx, Attribute::SExt),
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002258 ArgName);
2259 PrintedArg = true;
2260 ++Idx;
2261 }
2262 }
2263 } else {
2264 // Loop over the arguments, printing them.
2265 FunctionType::param_iterator I = FT->param_begin(), E = FT->param_end();
Evan Chengf8956382008-01-11 23:10:11 +00002266 unsigned Idx = 1;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002267
2268 // If this is a struct-return function, don't print the hidden
2269 // struct-return argument.
2270 if (isStructReturn) {
2271 assert(I != E && "Invalid struct return function!");
2272 ++I;
Evan Chengf8956382008-01-11 23:10:11 +00002273 ++Idx;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002274 }
2275
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002276 for (; I != E; ++I) {
2277 if (PrintedArg) FunctionInnards << ", ";
Evan Chengf8956382008-01-11 23:10:11 +00002278 const Type *ArgTy = *I;
Devang Pateld222f862008-09-25 21:00:45 +00002279 if (PAL.paramHasAttr(Idx, Attribute::ByVal)) {
Evan Chengf8956382008-01-11 23:10:11 +00002280 assert(isa<PointerType>(ArgTy));
2281 ArgTy = cast<PointerType>(ArgTy)->getElementType();
2282 }
2283 printType(FunctionInnards, ArgTy,
Devang Pateld222f862008-09-25 21:00:45 +00002284 /*isSigned=*/PAL.paramHasAttr(Idx, Attribute::SExt));
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002285 PrintedArg = true;
2286 ++Idx;
2287 }
2288 }
2289
2290 // Finish printing arguments... if this is a vararg function, print the ...,
2291 // unless there are no known types, in which case, we just emit ().
2292 //
2293 if (FT->isVarArg() && PrintedArg) {
2294 if (PrintedArg) FunctionInnards << ", ";
2295 FunctionInnards << "..."; // Output varargs portion of signature!
2296 } else if (!FT->isVarArg() && !PrintedArg) {
2297 FunctionInnards << "void"; // ret() -> ret(void) in C.
2298 }
2299 FunctionInnards << ')';
2300
2301 // Get the return tpe for the function.
2302 const Type *RetTy;
2303 if (!isStructReturn)
2304 RetTy = F->getReturnType();
2305 else {
2306 // If this is a struct-return function, print the struct-return type.
2307 RetTy = cast<PointerType>(FT->getParamType(0))->getElementType();
2308 }
2309
2310 // Print out the return type and the signature built above.
2311 printType(Out, RetTy,
Devang Pateld222f862008-09-25 21:00:45 +00002312 /*isSigned=*/PAL.paramHasAttr(0, Attribute::SExt),
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002313 FunctionInnards.str());
2314}
2315
2316static inline bool isFPIntBitCast(const Instruction &I) {
2317 if (!isa<BitCastInst>(I))
2318 return false;
2319 const Type *SrcTy = I.getOperand(0)->getType();
2320 const Type *DstTy = I.getType();
2321 return (SrcTy->isFloatingPoint() && DstTy->isInteger()) ||
2322 (DstTy->isFloatingPoint() && SrcTy->isInteger());
2323}
2324
2325void CWriter::printFunction(Function &F) {
2326 /// isStructReturn - Should this function actually return a struct by-value?
Devang Patel949a4b72008-03-03 21:46:28 +00002327 bool isStructReturn = F.hasStructRetAttr();
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002328
2329 printFunctionSignature(&F, false);
2330 Out << " {\n";
2331
2332 // If this is a struct return function, handle the result with magic.
2333 if (isStructReturn) {
2334 const Type *StructTy =
2335 cast<PointerType>(F.arg_begin()->getType())->getElementType();
2336 Out << " ";
2337 printType(Out, StructTy, false, "StructReturn");
2338 Out << "; /* Struct return temporary */\n";
2339
2340 Out << " ";
2341 printType(Out, F.arg_begin()->getType(), false,
2342 GetValueName(F.arg_begin()));
2343 Out << " = &StructReturn;\n";
2344 }
2345
2346 bool PrintedVar = false;
2347
2348 // print local variable information for the function
2349 for (inst_iterator I = inst_begin(&F), E = inst_end(&F); I != E; ++I) {
2350 if (const AllocaInst *AI = isDirectAlloca(&*I)) {
2351 Out << " ";
2352 printType(Out, AI->getAllocatedType(), false, GetValueName(AI));
2353 Out << "; /* Address-exposed local */\n";
2354 PrintedVar = true;
2355 } else if (I->getType() != Type::VoidTy && !isInlinableInst(*I)) {
2356 Out << " ";
2357 printType(Out, I->getType(), false, GetValueName(&*I));
2358 Out << ";\n";
2359
2360 if (isa<PHINode>(*I)) { // Print out PHI node temporaries as well...
2361 Out << " ";
2362 printType(Out, I->getType(), false,
2363 GetValueName(&*I)+"__PHI_TEMPORARY");
2364 Out << ";\n";
2365 }
2366 PrintedVar = true;
2367 }
2368 // We need a temporary for the BitCast to use so it can pluck a value out
2369 // of a union to do the BitCast. This is separate from the need for a
2370 // variable to hold the result of the BitCast.
2371 if (isFPIntBitCast(*I)) {
2372 Out << " llvmBitCastUnion " << GetValueName(&*I)
2373 << "__BITCAST_TEMPORARY;\n";
2374 PrintedVar = true;
2375 }
2376 }
2377
2378 if (PrintedVar)
2379 Out << '\n';
2380
2381 if (F.hasExternalLinkage() && F.getName() == "main")
2382 Out << " CODE_FOR_MAIN();\n";
2383
2384 // print the basic blocks
2385 for (Function::iterator BB = F.begin(), E = F.end(); BB != E; ++BB) {
2386 if (Loop *L = LI->getLoopFor(BB)) {
2387 if (L->getHeader() == BB && L->getParentLoop() == 0)
2388 printLoop(L);
2389 } else {
2390 printBasicBlock(BB);
2391 }
2392 }
2393
2394 Out << "}\n\n";
2395}
2396
2397void CWriter::printLoop(Loop *L) {
2398 Out << " do { /* Syntactic loop '" << L->getHeader()->getName()
2399 << "' to make GCC happy */\n";
2400 for (unsigned i = 0, e = L->getBlocks().size(); i != e; ++i) {
2401 BasicBlock *BB = L->getBlocks()[i];
2402 Loop *BBLoop = LI->getLoopFor(BB);
2403 if (BBLoop == L)
2404 printBasicBlock(BB);
2405 else if (BB == BBLoop->getHeader() && BBLoop->getParentLoop() == L)
2406 printLoop(BBLoop);
2407 }
2408 Out << " } while (1); /* end of syntactic loop '"
2409 << L->getHeader()->getName() << "' */\n";
2410}
2411
2412void CWriter::printBasicBlock(BasicBlock *BB) {
2413
2414 // Don't print the label for the basic block if there are no uses, or if
2415 // the only terminator use is the predecessor basic block's terminator.
2416 // We have to scan the use list because PHI nodes use basic blocks too but
2417 // do not require a label to be generated.
2418 //
2419 bool NeedsLabel = false;
2420 for (pred_iterator PI = pred_begin(BB), E = pred_end(BB); PI != E; ++PI)
2421 if (isGotoCodeNecessary(*PI, BB)) {
2422 NeedsLabel = true;
2423 break;
2424 }
2425
2426 if (NeedsLabel) Out << GetValueName(BB) << ":\n";
2427
2428 // Output all of the instructions in the basic block...
2429 for (BasicBlock::iterator II = BB->begin(), E = --BB->end(); II != E;
2430 ++II) {
2431 if (!isInlinableInst(*II) && !isDirectAlloca(II)) {
2432 if (II->getType() != Type::VoidTy && !isInlineAsm(*II))
2433 outputLValue(II);
2434 else
2435 Out << " ";
Chris Lattnerd70f5a82008-05-31 09:23:55 +00002436 writeInstComputationInline(*II);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002437 Out << ";\n";
2438 }
2439 }
2440
Chris Lattnerd70f5a82008-05-31 09:23:55 +00002441 // Don't emit prefix or suffix for the terminator.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002442 visit(*BB->getTerminator());
2443}
2444
2445
2446// Specific Instruction type classes... note that all of the casts are
2447// necessary because we use the instruction classes as opaque types...
2448//
2449void CWriter::visitReturnInst(ReturnInst &I) {
2450 // If this is a struct return function, return the temporary struct.
Devang Patel949a4b72008-03-03 21:46:28 +00002451 bool isStructReturn = I.getParent()->getParent()->hasStructRetAttr();
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002452
2453 if (isStructReturn) {
2454 Out << " return StructReturn;\n";
2455 return;
2456 }
2457
2458 // Don't output a void return if this is the last basic block in the function
2459 if (I.getNumOperands() == 0 &&
2460 &*--I.getParent()->getParent()->end() == I.getParent() &&
2461 !I.getParent()->size() == 1) {
2462 return;
2463 }
2464
Dan Gohman93d04582008-04-23 21:49:29 +00002465 if (I.getNumOperands() > 1) {
2466 Out << " {\n";
2467 Out << " ";
2468 printType(Out, I.getParent()->getParent()->getReturnType());
2469 Out << " llvm_cbe_mrv_temp = {\n";
2470 for (unsigned i = 0, e = I.getNumOperands(); i != e; ++i) {
2471 Out << " ";
2472 writeOperand(I.getOperand(i));
2473 if (i != e - 1)
2474 Out << ",";
2475 Out << "\n";
2476 }
2477 Out << " };\n";
2478 Out << " return llvm_cbe_mrv_temp;\n";
2479 Out << " }\n";
2480 return;
2481 }
2482
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002483 Out << " return";
2484 if (I.getNumOperands()) {
2485 Out << ' ';
2486 writeOperand(I.getOperand(0));
2487 }
2488 Out << ";\n";
2489}
2490
2491void CWriter::visitSwitchInst(SwitchInst &SI) {
2492
2493 Out << " switch (";
2494 writeOperand(SI.getOperand(0));
2495 Out << ") {\n default:\n";
2496 printPHICopiesForSuccessor (SI.getParent(), SI.getDefaultDest(), 2);
2497 printBranchToBlock(SI.getParent(), SI.getDefaultDest(), 2);
2498 Out << ";\n";
2499 for (unsigned i = 2, e = SI.getNumOperands(); i != e; i += 2) {
2500 Out << " case ";
2501 writeOperand(SI.getOperand(i));
2502 Out << ":\n";
2503 BasicBlock *Succ = cast<BasicBlock>(SI.getOperand(i+1));
2504 printPHICopiesForSuccessor (SI.getParent(), Succ, 2);
2505 printBranchToBlock(SI.getParent(), Succ, 2);
2506 if (Function::iterator(Succ) == next(Function::iterator(SI.getParent())))
2507 Out << " break;\n";
2508 }
2509 Out << " }\n";
2510}
2511
2512void CWriter::visitUnreachableInst(UnreachableInst &I) {
2513 Out << " /*UNREACHABLE*/;\n";
2514}
2515
2516bool CWriter::isGotoCodeNecessary(BasicBlock *From, BasicBlock *To) {
2517 /// FIXME: This should be reenabled, but loop reordering safe!!
2518 return true;
2519
2520 if (next(Function::iterator(From)) != Function::iterator(To))
2521 return true; // Not the direct successor, we need a goto.
2522
2523 //isa<SwitchInst>(From->getTerminator())
2524
2525 if (LI->getLoopFor(From) != LI->getLoopFor(To))
2526 return true;
2527 return false;
2528}
2529
2530void CWriter::printPHICopiesForSuccessor (BasicBlock *CurBlock,
2531 BasicBlock *Successor,
2532 unsigned Indent) {
2533 for (BasicBlock::iterator I = Successor->begin(); isa<PHINode>(I); ++I) {
2534 PHINode *PN = cast<PHINode>(I);
2535 // Now we have to do the printing.
2536 Value *IV = PN->getIncomingValueForBlock(CurBlock);
2537 if (!isa<UndefValue>(IV)) {
2538 Out << std::string(Indent, ' ');
2539 Out << " " << GetValueName(I) << "__PHI_TEMPORARY = ";
2540 writeOperand(IV);
2541 Out << "; /* for PHI node */\n";
2542 }
2543 }
2544}
2545
2546void CWriter::printBranchToBlock(BasicBlock *CurBB, BasicBlock *Succ,
2547 unsigned Indent) {
2548 if (isGotoCodeNecessary(CurBB, Succ)) {
2549 Out << std::string(Indent, ' ') << " goto ";
2550 writeOperand(Succ);
2551 Out << ";\n";
2552 }
2553}
2554
2555// Branch instruction printing - Avoid printing out a branch to a basic block
2556// that immediately succeeds the current one.
2557//
2558void CWriter::visitBranchInst(BranchInst &I) {
2559
2560 if (I.isConditional()) {
2561 if (isGotoCodeNecessary(I.getParent(), I.getSuccessor(0))) {
2562 Out << " if (";
2563 writeOperand(I.getCondition());
2564 Out << ") {\n";
2565
2566 printPHICopiesForSuccessor (I.getParent(), I.getSuccessor(0), 2);
2567 printBranchToBlock(I.getParent(), I.getSuccessor(0), 2);
2568
2569 if (isGotoCodeNecessary(I.getParent(), I.getSuccessor(1))) {
2570 Out << " } else {\n";
2571 printPHICopiesForSuccessor (I.getParent(), I.getSuccessor(1), 2);
2572 printBranchToBlock(I.getParent(), I.getSuccessor(1), 2);
2573 }
2574 } else {
2575 // First goto not necessary, assume second one is...
2576 Out << " if (!";
2577 writeOperand(I.getCondition());
2578 Out << ") {\n";
2579
2580 printPHICopiesForSuccessor (I.getParent(), I.getSuccessor(1), 2);
2581 printBranchToBlock(I.getParent(), I.getSuccessor(1), 2);
2582 }
2583
2584 Out << " }\n";
2585 } else {
2586 printPHICopiesForSuccessor (I.getParent(), I.getSuccessor(0), 0);
2587 printBranchToBlock(I.getParent(), I.getSuccessor(0), 0);
2588 }
2589 Out << "\n";
2590}
2591
2592// PHI nodes get copied into temporary values at the end of predecessor basic
2593// blocks. We now need to copy these temporary values into the REAL value for
2594// the PHI.
2595void CWriter::visitPHINode(PHINode &I) {
2596 writeOperand(&I);
2597 Out << "__PHI_TEMPORARY";
2598}
2599
2600
2601void CWriter::visitBinaryOperator(Instruction &I) {
2602 // binary instructions, shift instructions, setCond instructions.
2603 assert(!isa<PointerType>(I.getType()));
2604
2605 // We must cast the results of binary operations which might be promoted.
2606 bool needsCast = false;
2607 if ((I.getType() == Type::Int8Ty) || (I.getType() == Type::Int16Ty)
2608 || (I.getType() == Type::FloatTy)) {
2609 needsCast = true;
2610 Out << "((";
2611 printType(Out, I.getType(), false);
2612 Out << ")(";
2613 }
2614
2615 // If this is a negation operation, print it out as such. For FP, we don't
2616 // want to print "-0.0 - X".
Dan Gohman1875d1e2009-06-04 23:43:29 +00002617 if (BinaryOperator::isNeg(&I)) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002618 Out << "-(";
2619 writeOperand(BinaryOperator::getNegArgument(cast<BinaryOperator>(&I)));
2620 Out << ")";
Dan Gohman7ce405e2009-06-04 22:49:04 +00002621 } else if (BinaryOperator::isFNeg(&I)) {
2622 Out << "-(";
2623 writeOperand(BinaryOperator::getFNegArgument(cast<BinaryOperator>(&I)));
2624 Out << ")";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002625 } else if (I.getOpcode() == Instruction::FRem) {
2626 // Output a call to fmod/fmodf instead of emitting a%b
2627 if (I.getType() == Type::FloatTy)
2628 Out << "fmodf(";
Dale Johannesen137cef62007-09-17 00:38:27 +00002629 else if (I.getType() == Type::DoubleTy)
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002630 Out << "fmod(";
Dale Johannesen137cef62007-09-17 00:38:27 +00002631 else // all 3 flavors of long double
2632 Out << "fmodl(";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002633 writeOperand(I.getOperand(0));
2634 Out << ", ";
2635 writeOperand(I.getOperand(1));
2636 Out << ")";
2637 } else {
2638
2639 // Write out the cast of the instruction's value back to the proper type
2640 // if necessary.
2641 bool NeedsClosingParens = writeInstructionCast(I);
2642
2643 // Certain instructions require the operand to be forced to a specific type
2644 // so we use writeOperandWithCast here instead of writeOperand. Similarly
2645 // below for operand 1
2646 writeOperandWithCast(I.getOperand(0), I.getOpcode());
2647
2648 switch (I.getOpcode()) {
Dan Gohman7ce405e2009-06-04 22:49:04 +00002649 case Instruction::Add:
2650 case Instruction::FAdd: Out << " + "; break;
2651 case Instruction::Sub:
2652 case Instruction::FSub: Out << " - "; break;
2653 case Instruction::Mul:
2654 case Instruction::FMul: Out << " * "; break;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002655 case Instruction::URem:
2656 case Instruction::SRem:
2657 case Instruction::FRem: Out << " % "; break;
2658 case Instruction::UDiv:
2659 case Instruction::SDiv:
2660 case Instruction::FDiv: Out << " / "; break;
2661 case Instruction::And: Out << " & "; break;
2662 case Instruction::Or: Out << " | "; break;
2663 case Instruction::Xor: Out << " ^ "; break;
2664 case Instruction::Shl : Out << " << "; break;
2665 case Instruction::LShr:
2666 case Instruction::AShr: Out << " >> "; break;
2667 default: cerr << "Invalid operator type!" << I; abort();
2668 }
2669
2670 writeOperandWithCast(I.getOperand(1), I.getOpcode());
2671 if (NeedsClosingParens)
2672 Out << "))";
2673 }
2674
2675 if (needsCast) {
2676 Out << "))";
2677 }
2678}
2679
2680void CWriter::visitICmpInst(ICmpInst &I) {
2681 // We must cast the results of icmp which might be promoted.
2682 bool needsCast = false;
2683
2684 // Write out the cast of the instruction's value back to the proper type
2685 // if necessary.
2686 bool NeedsClosingParens = writeInstructionCast(I);
2687
2688 // Certain icmp predicate require the operand to be forced to a specific type
2689 // so we use writeOperandWithCast here instead of writeOperand. Similarly
2690 // below for operand 1
Chris Lattner389c9142007-09-15 06:51:03 +00002691 writeOperandWithCast(I.getOperand(0), I);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002692
2693 switch (I.getPredicate()) {
2694 case ICmpInst::ICMP_EQ: Out << " == "; break;
2695 case ICmpInst::ICMP_NE: Out << " != "; break;
2696 case ICmpInst::ICMP_ULE:
2697 case ICmpInst::ICMP_SLE: Out << " <= "; break;
2698 case ICmpInst::ICMP_UGE:
2699 case ICmpInst::ICMP_SGE: Out << " >= "; break;
2700 case ICmpInst::ICMP_ULT:
2701 case ICmpInst::ICMP_SLT: Out << " < "; break;
2702 case ICmpInst::ICMP_UGT:
2703 case ICmpInst::ICMP_SGT: Out << " > "; break;
2704 default: cerr << "Invalid icmp predicate!" << I; abort();
2705 }
2706
Chris Lattner389c9142007-09-15 06:51:03 +00002707 writeOperandWithCast(I.getOperand(1), I);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002708 if (NeedsClosingParens)
2709 Out << "))";
2710
2711 if (needsCast) {
2712 Out << "))";
2713 }
2714}
2715
2716void CWriter::visitFCmpInst(FCmpInst &I) {
2717 if (I.getPredicate() == FCmpInst::FCMP_FALSE) {
2718 Out << "0";
2719 return;
2720 }
2721 if (I.getPredicate() == FCmpInst::FCMP_TRUE) {
2722 Out << "1";
2723 return;
2724 }
2725
2726 const char* op = 0;
2727 switch (I.getPredicate()) {
2728 default: assert(0 && "Illegal FCmp predicate");
2729 case FCmpInst::FCMP_ORD: op = "ord"; break;
2730 case FCmpInst::FCMP_UNO: op = "uno"; break;
2731 case FCmpInst::FCMP_UEQ: op = "ueq"; break;
2732 case FCmpInst::FCMP_UNE: op = "une"; break;
2733 case FCmpInst::FCMP_ULT: op = "ult"; break;
2734 case FCmpInst::FCMP_ULE: op = "ule"; break;
2735 case FCmpInst::FCMP_UGT: op = "ugt"; break;
2736 case FCmpInst::FCMP_UGE: op = "uge"; break;
2737 case FCmpInst::FCMP_OEQ: op = "oeq"; break;
2738 case FCmpInst::FCMP_ONE: op = "one"; break;
2739 case FCmpInst::FCMP_OLT: op = "olt"; break;
2740 case FCmpInst::FCMP_OLE: op = "ole"; break;
2741 case FCmpInst::FCMP_OGT: op = "ogt"; break;
2742 case FCmpInst::FCMP_OGE: op = "oge"; break;
2743 }
2744
2745 Out << "llvm_fcmp_" << op << "(";
2746 // Write the first operand
2747 writeOperand(I.getOperand(0));
2748 Out << ", ";
2749 // Write the second operand
2750 writeOperand(I.getOperand(1));
2751 Out << ")";
2752}
2753
2754static const char * getFloatBitCastField(const Type *Ty) {
2755 switch (Ty->getTypeID()) {
2756 default: assert(0 && "Invalid Type");
2757 case Type::FloatTyID: return "Float";
2758 case Type::DoubleTyID: return "Double";
2759 case Type::IntegerTyID: {
2760 unsigned NumBits = cast<IntegerType>(Ty)->getBitWidth();
2761 if (NumBits <= 32)
2762 return "Int32";
2763 else
2764 return "Int64";
2765 }
2766 }
2767}
2768
2769void CWriter::visitCastInst(CastInst &I) {
2770 const Type *DstTy = I.getType();
2771 const Type *SrcTy = I.getOperand(0)->getType();
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002772 if (isFPIntBitCast(I)) {
Chris Lattnerd70f5a82008-05-31 09:23:55 +00002773 Out << '(';
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002774 // These int<->float and long<->double casts need to be handled specially
2775 Out << GetValueName(&I) << "__BITCAST_TEMPORARY."
2776 << getFloatBitCastField(I.getOperand(0)->getType()) << " = ";
2777 writeOperand(I.getOperand(0));
2778 Out << ", " << GetValueName(&I) << "__BITCAST_TEMPORARY."
2779 << getFloatBitCastField(I.getType());
Chris Lattnerd70f5a82008-05-31 09:23:55 +00002780 Out << ')';
2781 return;
2782 }
2783
2784 Out << '(';
2785 printCast(I.getOpcode(), SrcTy, DstTy);
2786
2787 // Make a sext from i1 work by subtracting the i1 from 0 (an int).
2788 if (SrcTy == Type::Int1Ty && I.getOpcode() == Instruction::SExt)
2789 Out << "0-";
2790
2791 writeOperand(I.getOperand(0));
2792
2793 if (DstTy == Type::Int1Ty &&
2794 (I.getOpcode() == Instruction::Trunc ||
2795 I.getOpcode() == Instruction::FPToUI ||
2796 I.getOpcode() == Instruction::FPToSI ||
2797 I.getOpcode() == Instruction::PtrToInt)) {
2798 // Make sure we really get a trunc to bool by anding the operand with 1
2799 Out << "&1u";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002800 }
2801 Out << ')';
2802}
2803
2804void CWriter::visitSelectInst(SelectInst &I) {
2805 Out << "((";
2806 writeOperand(I.getCondition());
2807 Out << ") ? (";
2808 writeOperand(I.getTrueValue());
2809 Out << ") : (";
2810 writeOperand(I.getFalseValue());
2811 Out << "))";
2812}
2813
2814
2815void CWriter::lowerIntrinsics(Function &F) {
2816 // This is used to keep track of intrinsics that get generated to a lowered
2817 // function. We must generate the prototypes before the function body which
2818 // will only be expanded on first use (by the loop below).
2819 std::vector<Function*> prototypesToGen;
2820
2821 // Examine all the instructions in this function to find the intrinsics that
2822 // need to be lowered.
2823 for (Function::iterator BB = F.begin(), EE = F.end(); BB != EE; ++BB)
2824 for (BasicBlock::iterator I = BB->begin(), E = BB->end(); I != E; )
2825 if (CallInst *CI = dyn_cast<CallInst>(I++))
2826 if (Function *F = CI->getCalledFunction())
2827 switch (F->getIntrinsicID()) {
2828 case Intrinsic::not_intrinsic:
Andrew Lenharth0531ec52008-02-16 14:46:26 +00002829 case Intrinsic::memory_barrier:
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002830 case Intrinsic::vastart:
2831 case Intrinsic::vacopy:
2832 case Intrinsic::vaend:
2833 case Intrinsic::returnaddress:
2834 case Intrinsic::frameaddress:
2835 case Intrinsic::setjmp:
2836 case Intrinsic::longjmp:
2837 case Intrinsic::prefetch:
2838 case Intrinsic::dbg_stoppoint:
Dale Johannesenc339d8e2007-10-02 17:43:59 +00002839 case Intrinsic::powi:
Chris Lattner6a947cb2008-03-02 08:47:13 +00002840 case Intrinsic::x86_sse_cmp_ss:
2841 case Intrinsic::x86_sse_cmp_ps:
2842 case Intrinsic::x86_sse2_cmp_sd:
2843 case Intrinsic::x86_sse2_cmp_pd:
Chris Lattner709df322008-03-02 08:54:27 +00002844 case Intrinsic::ppc_altivec_lvsl:
Chris Lattner6a947cb2008-03-02 08:47:13 +00002845 // We directly implement these intrinsics
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002846 break;
2847 default:
2848 // If this is an intrinsic that directly corresponds to a GCC
2849 // builtin, we handle it.
2850 const char *BuiltinName = "";
2851#define GET_GCC_BUILTIN_NAME
2852#include "llvm/Intrinsics.gen"
2853#undef GET_GCC_BUILTIN_NAME
2854 // If we handle it, don't lower it.
2855 if (BuiltinName[0]) break;
2856
2857 // All other intrinsic calls we must lower.
2858 Instruction *Before = 0;
2859 if (CI != &BB->front())
2860 Before = prior(BasicBlock::iterator(CI));
2861
2862 IL->LowerIntrinsicCall(CI);
2863 if (Before) { // Move iterator to instruction after call
2864 I = Before; ++I;
2865 } else {
2866 I = BB->begin();
2867 }
2868 // If the intrinsic got lowered to another call, and that call has
2869 // a definition then we need to make sure its prototype is emitted
2870 // before any calls to it.
2871 if (CallInst *Call = dyn_cast<CallInst>(I))
2872 if (Function *NewF = Call->getCalledFunction())
2873 if (!NewF->isDeclaration())
2874 prototypesToGen.push_back(NewF);
2875
2876 break;
2877 }
2878
2879 // We may have collected some prototypes to emit in the loop above.
2880 // Emit them now, before the function that uses them is emitted. But,
2881 // be careful not to emit them twice.
2882 std::vector<Function*>::iterator I = prototypesToGen.begin();
2883 std::vector<Function*>::iterator E = prototypesToGen.end();
2884 for ( ; I != E; ++I) {
2885 if (intrinsicPrototypesAlreadyGenerated.insert(*I).second) {
2886 Out << '\n';
2887 printFunctionSignature(*I, true);
2888 Out << ";\n";
2889 }
2890 }
2891}
2892
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002893void CWriter::visitCallInst(CallInst &I) {
Chris Lattner8a3b6e42008-05-22 06:19:37 +00002894 if (isa<InlineAsm>(I.getOperand(0)))
2895 return visitInlineAsm(I);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002896
2897 bool WroteCallee = false;
2898
2899 // Handle intrinsic function calls first...
2900 if (Function *F = I.getCalledFunction())
Chris Lattnera74b9182008-03-02 08:29:41 +00002901 if (Intrinsic::ID ID = (Intrinsic::ID)F->getIntrinsicID())
2902 if (visitBuiltinCall(I, ID, WroteCallee))
Andrew Lenharth0531ec52008-02-16 14:46:26 +00002903 return;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002904
2905 Value *Callee = I.getCalledValue();
2906
2907 const PointerType *PTy = cast<PointerType>(Callee->getType());
2908 const FunctionType *FTy = cast<FunctionType>(PTy->getElementType());
2909
2910 // If this is a call to a struct-return function, assign to the first
2911 // parameter instead of passing it to the call.
Devang Pateld222f862008-09-25 21:00:45 +00002912 const AttrListPtr &PAL = I.getAttributes();
Evan Chengb8a072c2008-01-12 18:53:07 +00002913 bool hasByVal = I.hasByValArgument();
Devang Patel949a4b72008-03-03 21:46:28 +00002914 bool isStructRet = I.hasStructRetAttr();
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002915 if (isStructRet) {
Chris Lattner8bbc8592008-03-02 08:07:24 +00002916 writeOperandDeref(I.getOperand(1));
Evan Chengf8956382008-01-11 23:10:11 +00002917 Out << " = ";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002918 }
2919
2920 if (I.isTailCall()) Out << " /*tail*/ ";
2921
2922 if (!WroteCallee) {
2923 // If this is an indirect call to a struct return function, we need to cast
Evan Chengb8a072c2008-01-12 18:53:07 +00002924 // the pointer. Ditto for indirect calls with byval arguments.
2925 bool NeedsCast = (hasByVal || isStructRet) && !isa<Function>(Callee);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002926
2927 // GCC is a real PITA. It does not permit codegening casts of functions to
2928 // function pointers if they are in a call (it generates a trap instruction
2929 // instead!). We work around this by inserting a cast to void* in between
2930 // the function and the function pointer cast. Unfortunately, we can't just
2931 // form the constant expression here, because the folder will immediately
2932 // nuke it.
2933 //
2934 // Note finally, that this is completely unsafe. ANSI C does not guarantee
2935 // that void* and function pointers have the same size. :( To deal with this
2936 // in the common case, we handle casts where the number of arguments passed
2937 // match exactly.
2938 //
2939 if (ConstantExpr *CE = dyn_cast<ConstantExpr>(Callee))
2940 if (CE->isCast())
2941 if (Function *RF = dyn_cast<Function>(CE->getOperand(0))) {
2942 NeedsCast = true;
2943 Callee = RF;
2944 }
2945
2946 if (NeedsCast) {
2947 // Ok, just cast the pointer type.
2948 Out << "((";
Evan Chengb8a072c2008-01-12 18:53:07 +00002949 if (isStructRet)
Duncan Sandsf5588dc2007-11-27 13:23:08 +00002950 printStructReturnPointerFunctionType(Out, PAL,
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002951 cast<PointerType>(I.getCalledValue()->getType()));
Evan Chengb8a072c2008-01-12 18:53:07 +00002952 else if (hasByVal)
2953 printType(Out, I.getCalledValue()->getType(), false, "", true, PAL);
2954 else
2955 printType(Out, I.getCalledValue()->getType());
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002956 Out << ")(void*)";
2957 }
2958 writeOperand(Callee);
2959 if (NeedsCast) Out << ')';
2960 }
2961
2962 Out << '(';
2963
2964 unsigned NumDeclaredParams = FTy->getNumParams();
2965
2966 CallSite::arg_iterator AI = I.op_begin()+1, AE = I.op_end();
2967 unsigned ArgNo = 0;
2968 if (isStructRet) { // Skip struct return argument.
2969 ++AI;
2970 ++ArgNo;
2971 }
2972
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002973 bool PrintedArg = false;
Evan Chengf8956382008-01-11 23:10:11 +00002974 for (; AI != AE; ++AI, ++ArgNo) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002975 if (PrintedArg) Out << ", ";
2976 if (ArgNo < NumDeclaredParams &&
2977 (*AI)->getType() != FTy->getParamType(ArgNo)) {
2978 Out << '(';
2979 printType(Out, FTy->getParamType(ArgNo),
Devang Pateld222f862008-09-25 21:00:45 +00002980 /*isSigned=*/PAL.paramHasAttr(ArgNo+1, Attribute::SExt));
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002981 Out << ')';
2982 }
Evan Chengf8956382008-01-11 23:10:11 +00002983 // Check if the argument is expected to be passed by value.
Devang Pateld222f862008-09-25 21:00:45 +00002984 if (I.paramHasAttr(ArgNo+1, Attribute::ByVal))
Chris Lattner8bbc8592008-03-02 08:07:24 +00002985 writeOperandDeref(*AI);
2986 else
2987 writeOperand(*AI);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00002988 PrintedArg = true;
2989 }
2990 Out << ')';
2991}
2992
Chris Lattnera74b9182008-03-02 08:29:41 +00002993/// visitBuiltinCall - Handle the call to the specified builtin. Returns true
2994/// if the entire call is handled, return false it it wasn't handled, and
2995/// optionally set 'WroteCallee' if the callee has already been printed out.
2996bool CWriter::visitBuiltinCall(CallInst &I, Intrinsic::ID ID,
2997 bool &WroteCallee) {
2998 switch (ID) {
2999 default: {
3000 // If this is an intrinsic that directly corresponds to a GCC
3001 // builtin, we emit it here.
3002 const char *BuiltinName = "";
3003 Function *F = I.getCalledFunction();
3004#define GET_GCC_BUILTIN_NAME
3005#include "llvm/Intrinsics.gen"
3006#undef GET_GCC_BUILTIN_NAME
3007 assert(BuiltinName[0] && "Unknown LLVM intrinsic!");
3008
3009 Out << BuiltinName;
3010 WroteCallee = true;
3011 return false;
3012 }
3013 case Intrinsic::memory_barrier:
Andrew Lenharth5c976182008-03-05 23:41:37 +00003014 Out << "__sync_synchronize()";
Chris Lattnera74b9182008-03-02 08:29:41 +00003015 return true;
3016 case Intrinsic::vastart:
3017 Out << "0; ";
3018
3019 Out << "va_start(*(va_list*)";
3020 writeOperand(I.getOperand(1));
3021 Out << ", ";
3022 // Output the last argument to the enclosing function.
3023 if (I.getParent()->getParent()->arg_empty()) {
3024 cerr << "The C backend does not currently support zero "
3025 << "argument varargs functions, such as '"
3026 << I.getParent()->getParent()->getName() << "'!\n";
3027 abort();
3028 }
3029 writeOperand(--I.getParent()->getParent()->arg_end());
3030 Out << ')';
3031 return true;
3032 case Intrinsic::vaend:
3033 if (!isa<ConstantPointerNull>(I.getOperand(1))) {
3034 Out << "0; va_end(*(va_list*)";
3035 writeOperand(I.getOperand(1));
3036 Out << ')';
3037 } else {
3038 Out << "va_end(*(va_list*)0)";
3039 }
3040 return true;
3041 case Intrinsic::vacopy:
3042 Out << "0; ";
3043 Out << "va_copy(*(va_list*)";
3044 writeOperand(I.getOperand(1));
3045 Out << ", *(va_list*)";
3046 writeOperand(I.getOperand(2));
3047 Out << ')';
3048 return true;
3049 case Intrinsic::returnaddress:
3050 Out << "__builtin_return_address(";
3051 writeOperand(I.getOperand(1));
3052 Out << ')';
3053 return true;
3054 case Intrinsic::frameaddress:
3055 Out << "__builtin_frame_address(";
3056 writeOperand(I.getOperand(1));
3057 Out << ')';
3058 return true;
3059 case Intrinsic::powi:
3060 Out << "__builtin_powi(";
3061 writeOperand(I.getOperand(1));
3062 Out << ", ";
3063 writeOperand(I.getOperand(2));
3064 Out << ')';
3065 return true;
3066 case Intrinsic::setjmp:
3067 Out << "setjmp(*(jmp_buf*)";
3068 writeOperand(I.getOperand(1));
3069 Out << ')';
3070 return true;
3071 case Intrinsic::longjmp:
3072 Out << "longjmp(*(jmp_buf*)";
3073 writeOperand(I.getOperand(1));
3074 Out << ", ";
3075 writeOperand(I.getOperand(2));
3076 Out << ')';
3077 return true;
3078 case Intrinsic::prefetch:
3079 Out << "LLVM_PREFETCH((const void *)";
3080 writeOperand(I.getOperand(1));
3081 Out << ", ";
3082 writeOperand(I.getOperand(2));
3083 Out << ", ";
3084 writeOperand(I.getOperand(3));
3085 Out << ")";
3086 return true;
3087 case Intrinsic::stacksave:
3088 // Emit this as: Val = 0; *((void**)&Val) = __builtin_stack_save()
3089 // to work around GCC bugs (see PR1809).
3090 Out << "0; *((void**)&" << GetValueName(&I)
3091 << ") = __builtin_stack_save()";
3092 return true;
3093 case Intrinsic::dbg_stoppoint: {
3094 // If we use writeOperand directly we get a "u" suffix which is rejected
3095 // by gcc.
Owen Anderson847b99b2008-08-21 00:14:44 +00003096 std::stringstream SPIStr;
Chris Lattnera74b9182008-03-02 08:29:41 +00003097 DbgStopPointInst &SPI = cast<DbgStopPointInst>(I);
Owen Anderson847b99b2008-08-21 00:14:44 +00003098 SPI.getDirectory()->print(SPIStr);
Chris Lattnera74b9182008-03-02 08:29:41 +00003099 Out << "\n#line "
3100 << SPI.getLine()
Owen Anderson847b99b2008-08-21 00:14:44 +00003101 << " \"";
3102 Out << SPIStr.str();
3103 SPIStr.clear();
3104 SPI.getFileName()->print(SPIStr);
3105 Out << SPIStr.str() << "\"\n";
Chris Lattnera74b9182008-03-02 08:29:41 +00003106 return true;
3107 }
Chris Lattner6a947cb2008-03-02 08:47:13 +00003108 case Intrinsic::x86_sse_cmp_ss:
3109 case Intrinsic::x86_sse_cmp_ps:
3110 case Intrinsic::x86_sse2_cmp_sd:
3111 case Intrinsic::x86_sse2_cmp_pd:
3112 Out << '(';
3113 printType(Out, I.getType());
3114 Out << ')';
3115 // Multiple GCC builtins multiplex onto this intrinsic.
3116 switch (cast<ConstantInt>(I.getOperand(3))->getZExtValue()) {
3117 default: assert(0 && "Invalid llvm.x86.sse.cmp!");
3118 case 0: Out << "__builtin_ia32_cmpeq"; break;
3119 case 1: Out << "__builtin_ia32_cmplt"; break;
3120 case 2: Out << "__builtin_ia32_cmple"; break;
3121 case 3: Out << "__builtin_ia32_cmpunord"; break;
3122 case 4: Out << "__builtin_ia32_cmpneq"; break;
3123 case 5: Out << "__builtin_ia32_cmpnlt"; break;
3124 case 6: Out << "__builtin_ia32_cmpnle"; break;
3125 case 7: Out << "__builtin_ia32_cmpord"; break;
3126 }
3127 if (ID == Intrinsic::x86_sse_cmp_ps || ID == Intrinsic::x86_sse2_cmp_pd)
3128 Out << 'p';
3129 else
3130 Out << 's';
3131 if (ID == Intrinsic::x86_sse_cmp_ss || ID == Intrinsic::x86_sse_cmp_ps)
3132 Out << 's';
3133 else
3134 Out << 'd';
3135
3136 Out << "(";
3137 writeOperand(I.getOperand(1));
3138 Out << ", ";
3139 writeOperand(I.getOperand(2));
3140 Out << ")";
3141 return true;
Chris Lattner709df322008-03-02 08:54:27 +00003142 case Intrinsic::ppc_altivec_lvsl:
3143 Out << '(';
3144 printType(Out, I.getType());
3145 Out << ')';
3146 Out << "__builtin_altivec_lvsl(0, (void*)";
3147 writeOperand(I.getOperand(1));
3148 Out << ")";
3149 return true;
Chris Lattnera74b9182008-03-02 08:29:41 +00003150 }
3151}
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003152
3153//This converts the llvm constraint string to something gcc is expecting.
3154//TODO: work out platform independent constraints and factor those out
3155// of the per target tables
3156// handle multiple constraint codes
3157std::string CWriter::InterpretASMConstraint(InlineAsm::ConstraintInfo& c) {
3158
3159 assert(c.Codes.size() == 1 && "Too many asm constraint codes to handle");
3160
Dan Gohman12300e12008-03-25 21:45:14 +00003161 const char *const *table = 0;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003162
3163 //Grab the translation table from TargetAsmInfo if it exists
3164 if (!TAsm) {
3165 std::string E;
Gordon Henriksen99e34ab2007-10-17 21:28:48 +00003166 const TargetMachineRegistry::entry* Match =
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003167 TargetMachineRegistry::getClosestStaticTargetForModule(*TheModule, E);
3168 if (Match) {
3169 //Per platform Target Machines don't exist, so create it
3170 // this must be done only once
3171 const TargetMachine* TM = Match->CtorFn(*TheModule, "");
3172 TAsm = TM->getTargetAsmInfo();
3173 }
3174 }
3175 if (TAsm)
3176 table = TAsm->getAsmCBE();
3177
3178 //Search the translation table if it exists
3179 for (int i = 0; table && table[i]; i += 2)
3180 if (c.Codes[0] == table[i])
3181 return table[i+1];
3182
3183 //default is identity
3184 return c.Codes[0];
3185}
3186
3187//TODO: import logic from AsmPrinter.cpp
3188static std::string gccifyAsm(std::string asmstr) {
3189 for (std::string::size_type i = 0; i != asmstr.size(); ++i)
3190 if (asmstr[i] == '\n')
3191 asmstr.replace(i, 1, "\\n");
3192 else if (asmstr[i] == '\t')
3193 asmstr.replace(i, 1, "\\t");
3194 else if (asmstr[i] == '$') {
3195 if (asmstr[i + 1] == '{') {
3196 std::string::size_type a = asmstr.find_first_of(':', i + 1);
3197 std::string::size_type b = asmstr.find_first_of('}', i + 1);
3198 std::string n = "%" +
3199 asmstr.substr(a + 1, b - a - 1) +
3200 asmstr.substr(i + 2, a - i - 2);
3201 asmstr.replace(i, b - i + 1, n);
3202 i += n.size() - 1;
3203 } else
3204 asmstr.replace(i, 1, "%");
3205 }
3206 else if (asmstr[i] == '%')//grr
3207 { asmstr.replace(i, 1, "%%"); ++i;}
3208
3209 return asmstr;
3210}
3211
3212//TODO: assumptions about what consume arguments from the call are likely wrong
3213// handle communitivity
3214void CWriter::visitInlineAsm(CallInst &CI) {
3215 InlineAsm* as = cast<InlineAsm>(CI.getOperand(0));
3216 std::vector<InlineAsm::ConstraintInfo> Constraints = as->ParseConstraints();
Chris Lattner8a3b6e42008-05-22 06:19:37 +00003217
3218 std::vector<std::pair<Value*, int> > ResultVals;
3219 if (CI.getType() == Type::VoidTy)
3220 ;
3221 else if (const StructType *ST = dyn_cast<StructType>(CI.getType())) {
3222 for (unsigned i = 0, e = ST->getNumElements(); i != e; ++i)
3223 ResultVals.push_back(std::make_pair(&CI, (int)i));
3224 } else {
3225 ResultVals.push_back(std::make_pair(&CI, -1));
3226 }
3227
Chris Lattnera605a9c2008-06-04 18:03:28 +00003228 // Fix up the asm string for gcc and emit it.
3229 Out << "__asm__ volatile (\"" << gccifyAsm(as->getAsmString()) << "\"\n";
3230 Out << " :";
3231
3232 unsigned ValueCount = 0;
3233 bool IsFirst = true;
3234
3235 // Convert over all the output constraints.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003236 for (std::vector<InlineAsm::ConstraintInfo>::iterator I = Constraints.begin(),
Chris Lattnera605a9c2008-06-04 18:03:28 +00003237 E = Constraints.end(); I != E; ++I) {
3238
3239 if (I->Type != InlineAsm::isOutput) {
3240 ++ValueCount;
3241 continue; // Ignore non-output constraints.
3242 }
3243
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003244 assert(I->Codes.size() == 1 && "Too many asm constraint codes to handle");
Chris Lattner8a3b6e42008-05-22 06:19:37 +00003245 std::string C = InterpretASMConstraint(*I);
3246 if (C.empty()) continue;
3247
Chris Lattnera605a9c2008-06-04 18:03:28 +00003248 if (!IsFirst) {
Chris Lattner8a3b6e42008-05-22 06:19:37 +00003249 Out << ", ";
Chris Lattnera605a9c2008-06-04 18:03:28 +00003250 IsFirst = false;
3251 }
3252
3253 // Unpack the dest.
3254 Value *DestVal;
3255 int DestValNo = -1;
3256
3257 if (ValueCount < ResultVals.size()) {
3258 DestVal = ResultVals[ValueCount].first;
3259 DestValNo = ResultVals[ValueCount].second;
3260 } else
3261 DestVal = CI.getOperand(ValueCount-ResultVals.size()+1);
3262
3263 if (I->isEarlyClobber)
3264 C = "&"+C;
3265
3266 Out << "\"=" << C << "\"(" << GetValueName(DestVal);
3267 if (DestValNo != -1)
3268 Out << ".field" << DestValNo; // Multiple retvals.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003269 Out << ")";
Chris Lattnera605a9c2008-06-04 18:03:28 +00003270 ++ValueCount;
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003271 }
Chris Lattnera605a9c2008-06-04 18:03:28 +00003272
3273
3274 // Convert over all the input constraints.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003275 Out << "\n :";
Chris Lattnera605a9c2008-06-04 18:03:28 +00003276 IsFirst = true;
3277 ValueCount = 0;
3278 for (std::vector<InlineAsm::ConstraintInfo>::iterator I = Constraints.begin(),
3279 E = Constraints.end(); I != E; ++I) {
3280 if (I->Type != InlineAsm::isInput) {
3281 ++ValueCount;
3282 continue; // Ignore non-input constraints.
3283 }
3284
3285 assert(I->Codes.size() == 1 && "Too many asm constraint codes to handle");
3286 std::string C = InterpretASMConstraint(*I);
3287 if (C.empty()) continue;
3288
3289 if (!IsFirst) {
Chris Lattner5fee1202008-05-22 06:29:38 +00003290 Out << ", ";
Chris Lattnera605a9c2008-06-04 18:03:28 +00003291 IsFirst = false;
3292 }
3293
3294 assert(ValueCount >= ResultVals.size() && "Input can't refer to result");
3295 Value *SrcVal = CI.getOperand(ValueCount-ResultVals.size()+1);
3296
3297 Out << "\"" << C << "\"(";
3298 if (!I->isIndirect)
3299 writeOperand(SrcVal);
3300 else
3301 writeOperandDeref(SrcVal);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003302 Out << ")";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003303 }
Chris Lattnera605a9c2008-06-04 18:03:28 +00003304
3305 // Convert over the clobber constraints.
3306 IsFirst = true;
3307 ValueCount = 0;
3308 for (std::vector<InlineAsm::ConstraintInfo>::iterator I = Constraints.begin(),
3309 E = Constraints.end(); I != E; ++I) {
3310 if (I->Type != InlineAsm::isClobber)
3311 continue; // Ignore non-input constraints.
3312
3313 assert(I->Codes.size() == 1 && "Too many asm constraint codes to handle");
3314 std::string C = InterpretASMConstraint(*I);
3315 if (C.empty()) continue;
3316
3317 if (!IsFirst) {
3318 Out << ", ";
3319 IsFirst = false;
3320 }
3321
3322 Out << '\"' << C << '"';
3323 }
3324
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003325 Out << ")";
3326}
3327
3328void CWriter::visitMallocInst(MallocInst &I) {
3329 assert(0 && "lowerallocations pass didn't work!");
3330}
3331
3332void CWriter::visitAllocaInst(AllocaInst &I) {
3333 Out << '(';
3334 printType(Out, I.getType());
3335 Out << ") alloca(sizeof(";
3336 printType(Out, I.getType()->getElementType());
3337 Out << ')';
3338 if (I.isArrayAllocation()) {
3339 Out << " * " ;
3340 writeOperand(I.getOperand(0));
3341 }
3342 Out << ')';
3343}
3344
3345void CWriter::visitFreeInst(FreeInst &I) {
3346 assert(0 && "lowerallocations pass didn't work!");
3347}
3348
Chris Lattner8bbc8592008-03-02 08:07:24 +00003349void CWriter::printGEPExpression(Value *Ptr, gep_type_iterator I,
Dan Gohmanad831302008-07-24 17:57:48 +00003350 gep_type_iterator E, bool Static) {
Chris Lattner8bbc8592008-03-02 08:07:24 +00003351
3352 // If there are no indices, just print out the pointer.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003353 if (I == E) {
Chris Lattner8bbc8592008-03-02 08:07:24 +00003354 writeOperand(Ptr);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003355 return;
3356 }
Chris Lattner8bbc8592008-03-02 08:07:24 +00003357
3358 // Find out if the last index is into a vector. If so, we have to print this
3359 // specially. Since vectors can't have elements of indexable type, only the
3360 // last index could possibly be of a vector element.
3361 const VectorType *LastIndexIsVector = 0;
3362 {
3363 for (gep_type_iterator TmpI = I; TmpI != E; ++TmpI)
3364 LastIndexIsVector = dyn_cast<VectorType>(*TmpI);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003365 }
Chris Lattner8bbc8592008-03-02 08:07:24 +00003366
3367 Out << "(";
3368
3369 // If the last index is into a vector, we can't print it as &a[i][j] because
3370 // we can't index into a vector with j in GCC. Instead, emit this as
3371 // (((float*)&a[i])+j)
3372 if (LastIndexIsVector) {
3373 Out << "((";
3374 printType(Out, PointerType::getUnqual(LastIndexIsVector->getElementType()));
3375 Out << ")(";
3376 }
3377
3378 Out << '&';
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003379
Chris Lattner8bbc8592008-03-02 08:07:24 +00003380 // If the first index is 0 (very typical) we can do a number of
3381 // simplifications to clean up the code.
3382 Value *FirstOp = I.getOperand();
3383 if (!isa<Constant>(FirstOp) || !cast<Constant>(FirstOp)->isNullValue()) {
3384 // First index isn't simple, print it the hard way.
3385 writeOperand(Ptr);
3386 } else {
3387 ++I; // Skip the zero index.
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003388
Chris Lattner8bbc8592008-03-02 08:07:24 +00003389 // Okay, emit the first operand. If Ptr is something that is already address
3390 // exposed, like a global, avoid emitting (&foo)[0], just emit foo instead.
3391 if (isAddressExposed(Ptr)) {
Dan Gohmanad831302008-07-24 17:57:48 +00003392 writeOperandInternal(Ptr, Static);
Chris Lattner8bbc8592008-03-02 08:07:24 +00003393 } else if (I != E && isa<StructType>(*I)) {
3394 // If we didn't already emit the first operand, see if we can print it as
3395 // P->f instead of "P[0].f"
3396 writeOperand(Ptr);
3397 Out << "->field" << cast<ConstantInt>(I.getOperand())->getZExtValue();
3398 ++I; // eat the struct index as well.
3399 } else {
3400 // Instead of emitting P[0][1], emit (*P)[1], which is more idiomatic.
3401 Out << "(*";
3402 writeOperand(Ptr);
3403 Out << ")";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003404 }
3405 }
3406
Chris Lattner8bbc8592008-03-02 08:07:24 +00003407 for (; I != E; ++I) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003408 if (isa<StructType>(*I)) {
3409 Out << ".field" << cast<ConstantInt>(I.getOperand())->getZExtValue();
Dan Gohman5d995b02008-06-02 21:30:49 +00003410 } else if (isa<ArrayType>(*I)) {
3411 Out << ".array[";
3412 writeOperandWithCast(I.getOperand(), Instruction::GetElementPtr);
3413 Out << ']';
Chris Lattner8bbc8592008-03-02 08:07:24 +00003414 } else if (!isa<VectorType>(*I)) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003415 Out << '[';
Chris Lattner7ce1ee42007-09-22 20:16:48 +00003416 writeOperandWithCast(I.getOperand(), Instruction::GetElementPtr);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003417 Out << ']';
Chris Lattner8bbc8592008-03-02 08:07:24 +00003418 } else {
3419 // If the last index is into a vector, then print it out as "+j)". This
3420 // works with the 'LastIndexIsVector' code above.
3421 if (isa<Constant>(I.getOperand()) &&
3422 cast<Constant>(I.getOperand())->isNullValue()) {
3423 Out << "))"; // avoid "+0".
3424 } else {
3425 Out << ")+(";
3426 writeOperandWithCast(I.getOperand(), Instruction::GetElementPtr);
3427 Out << "))";
3428 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003429 }
Chris Lattner8bbc8592008-03-02 08:07:24 +00003430 }
3431 Out << ")";
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003432}
3433
Lauro Ramos Venancio11048c12008-02-01 21:25:59 +00003434void CWriter::writeMemoryAccess(Value *Operand, const Type *OperandType,
3435 bool IsVolatile, unsigned Alignment) {
3436
3437 bool IsUnaligned = Alignment &&
3438 Alignment < TD->getABITypeAlignment(OperandType);
3439
3440 if (!IsUnaligned)
3441 Out << '*';
3442 if (IsVolatile || IsUnaligned) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003443 Out << "((";
Lauro Ramos Venancio11048c12008-02-01 21:25:59 +00003444 if (IsUnaligned)
3445 Out << "struct __attribute__ ((packed, aligned(" << Alignment << "))) {";
3446 printType(Out, OperandType, false, IsUnaligned ? "data" : "volatile*");
3447 if (IsUnaligned) {
3448 Out << "; } ";
3449 if (IsVolatile) Out << "volatile ";
3450 Out << "*";
3451 }
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003452 Out << ")";
3453 }
3454
Lauro Ramos Venancio11048c12008-02-01 21:25:59 +00003455 writeOperand(Operand);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003456
Lauro Ramos Venancio11048c12008-02-01 21:25:59 +00003457 if (IsVolatile || IsUnaligned) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003458 Out << ')';
Lauro Ramos Venancio11048c12008-02-01 21:25:59 +00003459 if (IsUnaligned)
3460 Out << "->data";
3461 }
3462}
3463
3464void CWriter::visitLoadInst(LoadInst &I) {
Lauro Ramos Venancio11048c12008-02-01 21:25:59 +00003465 writeMemoryAccess(I.getOperand(0), I.getType(), I.isVolatile(),
3466 I.getAlignment());
3467
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003468}
3469
3470void CWriter::visitStoreInst(StoreInst &I) {
Lauro Ramos Venancio11048c12008-02-01 21:25:59 +00003471 writeMemoryAccess(I.getPointerOperand(), I.getOperand(0)->getType(),
3472 I.isVolatile(), I.getAlignment());
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003473 Out << " = ";
3474 Value *Operand = I.getOperand(0);
3475 Constant *BitMask = 0;
3476 if (const IntegerType* ITy = dyn_cast<IntegerType>(Operand->getType()))
3477 if (!ITy->isPowerOf2ByteWidth())
3478 // We have a bit width that doesn't match an even power-of-2 byte
3479 // size. Consequently we must & the value with the type's bit mask
3480 BitMask = ConstantInt::get(ITy, ITy->getBitMask());
3481 if (BitMask)
3482 Out << "((";
3483 writeOperand(Operand);
3484 if (BitMask) {
3485 Out << ") & ";
Dan Gohmanad831302008-07-24 17:57:48 +00003486 printConstant(BitMask, false);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003487 Out << ")";
3488 }
3489}
3490
3491void CWriter::visitGetElementPtrInst(GetElementPtrInst &I) {
Chris Lattner8bbc8592008-03-02 08:07:24 +00003492 printGEPExpression(I.getPointerOperand(), gep_type_begin(I),
Dan Gohmanad831302008-07-24 17:57:48 +00003493 gep_type_end(I), false);
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003494}
3495
3496void CWriter::visitVAArgInst(VAArgInst &I) {
3497 Out << "va_arg(*(va_list*)";
3498 writeOperand(I.getOperand(0));
3499 Out << ", ";
3500 printType(Out, I.getType());
3501 Out << ");\n ";
3502}
3503
Chris Lattnerf41a7942008-03-02 03:52:39 +00003504void CWriter::visitInsertElementInst(InsertElementInst &I) {
3505 const Type *EltTy = I.getType()->getElementType();
3506 writeOperand(I.getOperand(0));
3507 Out << ";\n ";
3508 Out << "((";
3509 printType(Out, PointerType::getUnqual(EltTy));
3510 Out << ")(&" << GetValueName(&I) << "))[";
Chris Lattnerf41a7942008-03-02 03:52:39 +00003511 writeOperand(I.getOperand(2));
Chris Lattner09418362008-03-02 08:10:16 +00003512 Out << "] = (";
3513 writeOperand(I.getOperand(1));
Chris Lattnerf41a7942008-03-02 03:52:39 +00003514 Out << ")";
3515}
3516
Chris Lattnera5f0bc02008-03-02 03:57:08 +00003517void CWriter::visitExtractElementInst(ExtractElementInst &I) {
3518 // We know that our operand is not inlined.
3519 Out << "((";
3520 const Type *EltTy =
3521 cast<VectorType>(I.getOperand(0)->getType())->getElementType();
3522 printType(Out, PointerType::getUnqual(EltTy));
3523 Out << ")(&" << GetValueName(I.getOperand(0)) << "))[";
3524 writeOperand(I.getOperand(1));
3525 Out << "]";
3526}
3527
Chris Lattnerf858a042008-03-02 05:41:07 +00003528void CWriter::visitShuffleVectorInst(ShuffleVectorInst &SVI) {
3529 Out << "(";
3530 printType(Out, SVI.getType());
3531 Out << "){ ";
3532 const VectorType *VT = SVI.getType();
3533 unsigned NumElts = VT->getNumElements();
3534 const Type *EltTy = VT->getElementType();
3535
3536 for (unsigned i = 0; i != NumElts; ++i) {
3537 if (i) Out << ", ";
3538 int SrcVal = SVI.getMaskValue(i);
3539 if ((unsigned)SrcVal >= NumElts*2) {
3540 Out << " 0/*undef*/ ";
3541 } else {
3542 Value *Op = SVI.getOperand((unsigned)SrcVal >= NumElts);
3543 if (isa<Instruction>(Op)) {
3544 // Do an extractelement of this value from the appropriate input.
3545 Out << "((";
3546 printType(Out, PointerType::getUnqual(EltTy));
3547 Out << ")(&" << GetValueName(Op)
Duncan Sandsf6890712008-05-27 11:50:51 +00003548 << "))[" << (SrcVal & (NumElts-1)) << "]";
Chris Lattnerf858a042008-03-02 05:41:07 +00003549 } else if (isa<ConstantAggregateZero>(Op) || isa<UndefValue>(Op)) {
3550 Out << "0";
3551 } else {
Duncan Sandsf6890712008-05-27 11:50:51 +00003552 printConstant(cast<ConstantVector>(Op)->getOperand(SrcVal &
Dan Gohmanad831302008-07-24 17:57:48 +00003553 (NumElts-1)),
3554 false);
Chris Lattnerf858a042008-03-02 05:41:07 +00003555 }
3556 }
3557 }
3558 Out << "}";
3559}
Chris Lattnera5f0bc02008-03-02 03:57:08 +00003560
Dan Gohman5d995b02008-06-02 21:30:49 +00003561void CWriter::visitInsertValueInst(InsertValueInst &IVI) {
3562 // Start by copying the entire aggregate value into the result variable.
3563 writeOperand(IVI.getOperand(0));
3564 Out << ";\n ";
3565
3566 // Then do the insert to update the field.
3567 Out << GetValueName(&IVI);
3568 for (const unsigned *b = IVI.idx_begin(), *i = b, *e = IVI.idx_end();
3569 i != e; ++i) {
3570 const Type *IndexedTy =
3571 ExtractValueInst::getIndexedType(IVI.getOperand(0)->getType(), b, i+1);
3572 if (isa<ArrayType>(IndexedTy))
3573 Out << ".array[" << *i << "]";
3574 else
3575 Out << ".field" << *i;
3576 }
3577 Out << " = ";
3578 writeOperand(IVI.getOperand(1));
3579}
3580
3581void CWriter::visitExtractValueInst(ExtractValueInst &EVI) {
3582 Out << "(";
3583 if (isa<UndefValue>(EVI.getOperand(0))) {
3584 Out << "(";
3585 printType(Out, EVI.getType());
3586 Out << ") 0/*UNDEF*/";
3587 } else {
3588 Out << GetValueName(EVI.getOperand(0));
3589 for (const unsigned *b = EVI.idx_begin(), *i = b, *e = EVI.idx_end();
3590 i != e; ++i) {
3591 const Type *IndexedTy =
3592 ExtractValueInst::getIndexedType(EVI.getOperand(0)->getType(), b, i+1);
3593 if (isa<ArrayType>(IndexedTy))
3594 Out << ".array[" << *i << "]";
3595 else
3596 Out << ".field" << *i;
3597 }
3598 }
3599 Out << ")";
3600}
3601
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003602//===----------------------------------------------------------------------===//
3603// External Interface declaration
3604//===----------------------------------------------------------------------===//
3605
3606bool CTargetMachine::addPassesToEmitWholeFile(PassManager &PM,
Owen Anderson847b99b2008-08-21 00:14:44 +00003607 raw_ostream &o,
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003608 CodeGenFileType FileType,
Bill Wendling5ed22ac2009-04-29 23:29:43 +00003609 CodeGenOpt::Level OptLevel) {
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003610 if (FileType != TargetMachine::AssemblyFile) return true;
3611
Gordon Henriksendf87fdc2008-01-07 01:30:38 +00003612 PM.add(createGCLoweringPass());
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003613 PM.add(createLowerAllocationsPass(true));
3614 PM.add(createLowerInvokePass());
3615 PM.add(createCFGSimplificationPass()); // clean up after lower invoke.
3616 PM.add(new CBackendNameAllUsedStructsAndMergeFunctions());
3617 PM.add(new CWriter(o));
Gordon Henriksen1aed5992008-08-17 18:44:35 +00003618 PM.add(createGCInfoDeleter());
Dan Gohmanf17a25c2007-07-18 16:29:46 +00003619 return false;
3620}