#include "llvm/Intrinsics.h"
#include "llvm/IntrinsicInst.h"
#include "llvm/InlineAsm.h"
+#include "llvm/ADT/StringExtras.h"
+#include "llvm/ADT/SmallString.h"
+#include "llvm/ADT/STLExtras.h"
#include "llvm/Analysis/ConstantsScanner.h"
#include "llvm/Analysis/FindUsedTypes.h"
#include "llvm/Analysis/LoopInfo.h"
+#include "llvm/Analysis/ValueTracking.h"
#include "llvm/CodeGen/Passes.h"
#include "llvm/CodeGen/IntrinsicLowering.h"
+#include "llvm/Target/Mangler.h"
#include "llvm/Transforms/Scalar.h"
-#include "llvm/Target/TargetMachineRegistry.h"
-#include "llvm/Target/TargetAsmInfo.h"
+#include "llvm/MC/MCAsmInfo.h"
+#include "llvm/MC/MCContext.h"
+#include "llvm/MC/MCSymbol.h"
#include "llvm/Target/TargetData.h"
+#include "llvm/Target/TargetRegistry.h"
#include "llvm/Support/CallSite.h"
#include "llvm/Support/CFG.h"
+#include "llvm/Support/ErrorHandling.h"
+#include "llvm/Support/FormattedStream.h"
#include "llvm/Support/GetElementPtrTypeIterator.h"
#include "llvm/Support/InstVisitor.h"
-#include "llvm/Support/Mangler.h"
-#include "llvm/Support/MathExtras.h"
-#include "llvm/Support/raw_ostream.h"
-#include "llvm/ADT/StringExtras.h"
-#include "llvm/ADT/STLExtras.h"
#include "llvm/Support/MathExtras.h"
+#include "llvm/System/Host.h"
#include "llvm/Config/config.h"
#include <algorithm>
-#include <sstream>
+// Some ms header decided to define setjmp as _setjmp, undo this for this file.
+#ifdef _MSC_VER
+#undef setjmp
+#endif
using namespace llvm;
-/// CBackendTargetMachineModule - Note that this is used on hosts that
-/// cannot link in a library unless there are references into the
-/// library. In particular, it seems that it is not possible to get
-/// things to work on Win32 without this. Though it is unused, do not
-/// remove it.
-extern "C" int CBackendTargetMachineModule;
-int CBackendTargetMachineModule = 0;
-
-// Register the target.
-static RegisterTarget<CTargetMachine> X("c", "C backend");
+extern "C" void LLVMInitializeCBackendTarget() {
+ // Register the target.
+ RegisterTargetMachine<CTargetMachine> X(TheCBackendTarget);
+}
namespace {
+ class CBEMCAsmInfo : public MCAsmInfo {
+ public:
+ CBEMCAsmInfo() {
+ GlobalPrefix = "";
+ PrivateGlobalPrefix = "";
+ }
+ };
/// CBackendNameAllUsedStructsAndMergeFunctions - This pass inserts names for
/// any unnamed structure types that are used by the program, and merges
/// external functions with the same name.
class CBackendNameAllUsedStructsAndMergeFunctions : public ModulePass {
public:
static char ID;
- CBackendNameAllUsedStructsAndMergeFunctions()
- : ModulePass(&ID) {}
+ CBackendNameAllUsedStructsAndMergeFunctions()
+ : ModulePass(ID) {
+ initializeFindUsedTypesPass(*PassRegistry::getPassRegistry());
+ }
void getAnalysisUsage(AnalysisUsage &AU) const {
AU.addRequired<FindUsedTypes>();
}
/// CWriter - This class is the main chunk of code that converts an LLVM
/// module to a C translation unit.
class CWriter : public FunctionPass, public InstVisitor<CWriter> {
- raw_ostream &Out;
+ formatted_raw_ostream &Out;
IntrinsicLowering *IL;
Mangler *Mang;
LoopInfo *LI;
const Module *TheModule;
- const TargetAsmInfo* TAsm;
+ const MCAsmInfo* TAsm;
+ MCContext *TCtx;
const TargetData* TD;
std::map<const Type *, std::string> TypeNames;
std::map<const ConstantFP *, unsigned> FPConstantMap;
std::set<Function*> intrinsicPrototypesAlreadyGenerated;
std::set<const Argument*> ByValParams;
unsigned FPCounter;
+ unsigned OpaqueCounter;
+ DenseMap<const Value*, unsigned> AnonValueNumbers;
+ unsigned NextAnonValueNumber;
public:
static char ID;
- explicit CWriter(raw_ostream &o)
- : FunctionPass(&ID), Out(o), IL(0), Mang(0), LI(0),
- TheModule(0), TAsm(0), TD(0) {
+ explicit CWriter(formatted_raw_ostream &o)
+ : FunctionPass(ID), Out(o), IL(0), Mang(0), LI(0),
+ TheModule(0), TAsm(0), TCtx(0), TD(0), OpaqueCounter(0),
+ NextAnonValueNumber(0) {
+ initializeLoopInfoPass(*PassRegistry::getPassRegistry());
FPCounter = 0;
}
delete IL;
delete TD;
delete Mang;
+ delete TCtx;
+ delete TAsm;
FPConstantMap.clear();
TypeNames.clear();
ByValParams.clear();
return false;
}
- raw_ostream &printType(raw_ostream &Out, const Type *Ty,
- bool isSigned = false,
- const std::string &VariableName = "",
- bool IgnoreName = false,
- const AttrListPtr &PAL = AttrListPtr());
- std::ostream &printType(std::ostream &Out, const Type *Ty,
+ raw_ostream &printType(raw_ostream &Out, const Type *Ty,
bool isSigned = false,
const std::string &VariableName = "",
bool IgnoreName = false,
const AttrListPtr &PAL = AttrListPtr());
- raw_ostream &printSimpleType(raw_ostream &Out, const Type *Ty,
- bool isSigned,
- const std::string &NameSoFar = "");
- std::ostream &printSimpleType(std::ostream &Out, const Type *Ty,
- bool isSigned,
+ raw_ostream &printSimpleType(raw_ostream &Out, const Type *Ty,
+ bool isSigned,
const std::string &NameSoFar = "");
void printStructReturnPointerFunctionType(raw_ostream &Out,
Out << ")";
}
}
-
+
void writeOperand(Value *Operand, bool Static = false);
void writeInstComputationInline(Instruction &I);
void writeOperandInternal(Value *Operand, bool Static = false);
void lowerIntrinsics(Function &F);
- void printModule(Module *M);
void printModuleTypes(const TypeSymbolTable &ST);
void printContainedStructs(const Type *Ty, std::set<const Type *> &);
void printFloatingPointConstants(Function &F);
return ByValParams.count(A);
return isa<GlobalVariable>(V) || isDirectAlloca(V);
}
-
+
// isInlinableInst - Attempt to inline instructions into their uses to build
// trees as much as possible. To do this, we have to consistently decide
// what is acceptable to inline, so that variable declarations don't get
static bool isInlinableInst(const Instruction &I) {
// Always inline cmp instructions, even if they are shared by multiple
// expressions. GCC generates horrible code if we don't.
- if (isa<CmpInst>(I))
+ if (isa<CmpInst>(I))
return true;
// Must be an expression, must be used exactly once. If it is dead, we
// emit it inline where it would go.
- if (I.getType() == Type::VoidTy || !I.hasOneUse() ||
+ if (I.getType() == Type::getVoidTy(I.getContext()) || !I.hasOneUse() ||
isa<TerminatorInst>(I) || isa<CallInst>(I) || isa<PHINode>(I) ||
isa<LoadInst>(I) || isa<VAArgInst>(I) || isa<InsertElementInst>(I) ||
isa<InsertValueInst>(I))
//
static const AllocaInst *isDirectAlloca(const Value *V) {
const AllocaInst *AI = dyn_cast<AllocaInst>(V);
- if (!AI) return false;
+ if (!AI) return 0;
if (AI->isArrayAllocation())
return 0; // FIXME: we can also inline fixed size array allocas!
if (AI->getParent() != &AI->getParent()->getParent()->getEntryBlock())
return 0;
return AI;
}
-
+
// isInlineAsm - Check if the instruction is a call to an inline asm chunk
static bool isInlineAsm(const Instruction& I) {
- if (isa<CallInst>(&I) && isa<InlineAsm>(I.getOperand(0)))
- return true;
+ if (const CallInst *CI = dyn_cast<CallInst>(&I))
+ return isa<InlineAsm>(CI->getCalledValue());
return false;
}
-
+
// Instruction visitation functions
friend class InstVisitor<CWriter>;
void visitReturnInst(ReturnInst &I);
void visitBranchInst(BranchInst &I);
void visitSwitchInst(SwitchInst &I);
+ void visitIndirectBrInst(IndirectBrInst &I);
void visitInvokeInst(InvokeInst &I) {
- assert(0 && "Lowerinvoke pass didn't work!");
+ llvm_unreachable("Lowerinvoke pass didn't work!");
}
void visitUnwindInst(UnwindInst &I) {
- assert(0 && "Lowerinvoke pass didn't work!");
+ llvm_unreachable("Lowerinvoke pass didn't work!");
}
void visitUnreachableInst(UnreachableInst &I);
void visitInlineAsm(CallInst &I);
bool visitBuiltinCall(CallInst &I, Intrinsic::ID ID, bool &WroteCallee);
- void visitMallocInst(MallocInst &I);
void visitAllocaInst(AllocaInst &I);
- void visitFreeInst (FreeInst &I);
void visitLoadInst (LoadInst &I);
void visitStoreInst (StoreInst &I);
void visitGetElementPtrInst(GetElementPtrInst &I);
void visitVAArgInst (VAArgInst &I);
-
+
void visitInsertElementInst(InsertElementInst &I);
void visitExtractElementInst(ExtractElementInst &I);
void visitShuffleVectorInst(ShuffleVectorInst &SVI);
void visitExtractValueInst(ExtractValueInst &I);
void visitInstruction(Instruction &I) {
- cerr << "C Writer does not know about " << I;
- abort();
+#ifndef NDEBUG
+ errs() << "C Writer does not know about " << I;
+#endif
+ llvm_unreachable(0);
}
void outputLValue(Instruction *I) {
char CWriter::ID = 0;
+
+static std::string CBEMangle(const std::string &S) {
+ std::string Result;
+
+ for (unsigned i = 0, e = S.size(); i != e; ++i)
+ if (isalnum(S[i]) || S[i] == '_') {
+ Result += S[i];
+ } else {
+ Result += '_';
+ Result += 'A'+(S[i]&15);
+ Result += 'A'+((S[i]>>4)&15);
+ Result += '_';
+ }
+ return Result;
+}
+
+
/// This method inserts names for any unnamed structure types that are used by
/// the program, and removes names from structure types that are not used by the
/// program.
for (TypeSymbolTable::iterator TI = TST.begin(), TE = TST.end();
TI != TE; ) {
TypeSymbolTable::iterator I = TI++;
-
+
// If this isn't a struct or array type, remove it from our set of types
// to name. This simplifies emission later.
- if (!isa<StructType>(I->second) && !isa<OpaqueType>(I->second) &&
- !isa<ArrayType>(I->second)) {
+ if (!I->second->isStructTy() && !I->second->isOpaqueTy() &&
+ !I->second->isArrayTy()) {
TST.remove(I);
} else {
// If this is not used, remove it from the symbol table.
unsigned RenameCounter = 0;
for (std::set<const Type *>::const_iterator I = UT.begin(), E = UT.end();
I != E; ++I)
- if (isa<StructType>(*I) || isa<ArrayType>(*I)) {
+ if ((*I)->isStructTy() || (*I)->isArrayTy()) {
while (M.addTypeName("unnamed"+utostr(RenameCounter), *I))
++RenameCounter;
Changed = true;
}
-
-
+
+
// Loop over all external functions and globals. If we have two with
// identical names, merge them.
// FIXME: This code should disappear when we don't allow values with the same
}
}
}
-
+
return Changed;
}
const AttrListPtr &PAL,
const PointerType *TheTy) {
const FunctionType *FTy = cast<FunctionType>(TheTy->getElementType());
- std::stringstream FunctionInnards;
+ std::string tstr;
+ raw_string_ostream FunctionInnards(tstr);
FunctionInnards << " (*) (";
bool PrintedType = false;
FunctionInnards << ", ";
const Type *ArgTy = *I;
if (PAL.paramHasAttr(Idx, Attribute::ByVal)) {
- assert(isa<PointerType>(ArgTy));
+ assert(ArgTy->isPointerTy());
ArgTy = cast<PointerType>(ArgTy)->getElementType();
}
printType(FunctionInnards, ArgTy,
PrintedType = true;
}
if (FTy->isVarArg()) {
- if (PrintedType)
- FunctionInnards << ", ...";
+ if (!PrintedType)
+ FunctionInnards << " int"; //dummy argument for empty vararg functs
+ FunctionInnards << ", ...";
} else if (!PrintedType) {
FunctionInnards << "void";
}
FunctionInnards << ')';
- std::string tstr = FunctionInnards.str();
- printType(Out, RetTy,
- /*isSigned=*/PAL.paramHasAttr(0, Attribute::SExt), tstr);
+ printType(Out, RetTy,
+ /*isSigned=*/PAL.paramHasAttr(0, Attribute::SExt), FunctionInnards.str());
}
raw_ostream &
CWriter::printSimpleType(raw_ostream &Out, const Type *Ty, bool isSigned,
const std::string &NameSoFar) {
- assert((Ty->isPrimitiveType() || Ty->isInteger() || isa<VectorType>(Ty)) &&
+ assert((Ty->isPrimitiveType() || Ty->isIntegerTy() || Ty->isVectorTy()) &&
"Invalid type for printSimpleType");
switch (Ty->getTypeID()) {
case Type::VoidTyID: return Out << "void " << NameSoFar;
case Type::IntegerTyID: {
unsigned NumBits = cast<IntegerType>(Ty)->getBitWidth();
- if (NumBits == 1)
+ if (NumBits == 1)
return Out << "bool " << NameSoFar;
else if (NumBits <= 8)
return Out << (isSigned?"signed":"unsigned") << " char " << NameSoFar;
return Out << (isSigned?"signed":"unsigned") << " int " << NameSoFar;
else if (NumBits <= 64)
return Out << (isSigned?"signed":"unsigned") << " long long "<< NameSoFar;
- else {
+ else {
assert(NumBits <= 128 && "Bit widths > 128 not implemented yet");
return Out << (isSigned?"llvmInt128":"llvmUInt128") << " " << NameSoFar;
}
case Type::X86_FP80TyID:
case Type::PPC_FP128TyID:
case Type::FP128TyID: return Out << "long double " << NameSoFar;
-
- case Type::VectorTyID: {
- const VectorType *VTy = cast<VectorType>(Ty);
- return printSimpleType(Out, VTy->getElementType(), isSigned,
- " __attribute__((vector_size(" +
- utostr(TD->getTypeAllocSize(VTy)) + " ))) " + NameSoFar);
- }
-
- default:
- cerr << "Unknown primitive type: " << *Ty << "\n";
- abort();
- }
-}
-std::ostream &
-CWriter::printSimpleType(std::ostream &Out, const Type *Ty, bool isSigned,
- const std::string &NameSoFar) {
- assert((Ty->isPrimitiveType() || Ty->isInteger() || isa<VectorType>(Ty)) &&
- "Invalid type for printSimpleType");
- switch (Ty->getTypeID()) {
- case Type::VoidTyID: return Out << "void " << NameSoFar;
- case Type::IntegerTyID: {
- unsigned NumBits = cast<IntegerType>(Ty)->getBitWidth();
- if (NumBits == 1)
- return Out << "bool " << NameSoFar;
- else if (NumBits <= 8)
- return Out << (isSigned?"signed":"unsigned") << " char " << NameSoFar;
- else if (NumBits <= 16)
- return Out << (isSigned?"signed":"unsigned") << " short " << NameSoFar;
- else if (NumBits <= 32)
- return Out << (isSigned?"signed":"unsigned") << " int " << NameSoFar;
- else if (NumBits <= 64)
- return Out << (isSigned?"signed":"unsigned") << " long long "<< NameSoFar;
- else {
- assert(NumBits <= 128 && "Bit widths > 128 not implemented yet");
- return Out << (isSigned?"llvmInt128":"llvmUInt128") << " " << NameSoFar;
- }
- }
- case Type::FloatTyID: return Out << "float " << NameSoFar;
- case Type::DoubleTyID: return Out << "double " << NameSoFar;
- // Lacking emulation of FP80 on PPC, etc., we assume whichever of these is
- // present matches host 'long double'.
- case Type::X86_FP80TyID:
- case Type::PPC_FP128TyID:
- case Type::FP128TyID: return Out << "long double " << NameSoFar;
-
+ case Type::X86_MMXTyID:
+ return printSimpleType(Out, Type::getInt32Ty(Ty->getContext()), isSigned,
+ " __attribute__((vector_size(64))) " + NameSoFar);
+
case Type::VectorTyID: {
const VectorType *VTy = cast<VectorType>(Ty);
return printSimpleType(Out, VTy->getElementType(), isSigned,
" __attribute__((vector_size(" +
utostr(TD->getTypeAllocSize(VTy)) + " ))) " + NameSoFar);
}
-
- default:
- cerr << "Unknown primitive type: " << *Ty << "\n";
- abort();
- }
-}
-// Pass the Type* and the variable name and this prints out the variable
-// declaration.
-//
-raw_ostream &CWriter::printType(raw_ostream &Out, const Type *Ty,
- bool isSigned, const std::string &NameSoFar,
- bool IgnoreName, const AttrListPtr &PAL) {
- if (Ty->isPrimitiveType() || Ty->isInteger() || isa<VectorType>(Ty)) {
- printSimpleType(Out, Ty, isSigned, NameSoFar);
- return Out;
- }
-
- // Check to see if the type is named.
- if (!IgnoreName || isa<OpaqueType>(Ty)) {
- std::map<const Type *, std::string>::iterator I = TypeNames.find(Ty);
- if (I != TypeNames.end()) return Out << I->second << ' ' << NameSoFar;
- }
-
- switch (Ty->getTypeID()) {
- case Type::FunctionTyID: {
- const FunctionType *FTy = cast<FunctionType>(Ty);
- std::stringstream FunctionInnards;
- FunctionInnards << " (" << NameSoFar << ") (";
- unsigned Idx = 1;
- for (FunctionType::param_iterator I = FTy->param_begin(),
- E = FTy->param_end(); I != E; ++I) {
- const Type *ArgTy = *I;
- if (PAL.paramHasAttr(Idx, Attribute::ByVal)) {
- assert(isa<PointerType>(ArgTy));
- ArgTy = cast<PointerType>(ArgTy)->getElementType();
- }
- if (I != FTy->param_begin())
- FunctionInnards << ", ";
- printType(FunctionInnards, ArgTy,
- /*isSigned=*/PAL.paramHasAttr(Idx, Attribute::SExt), "");
- ++Idx;
- }
- if (FTy->isVarArg()) {
- if (FTy->getNumParams())
- FunctionInnards << ", ...";
- } else if (!FTy->getNumParams()) {
- FunctionInnards << "void";
- }
- FunctionInnards << ')';
- std::string tstr = FunctionInnards.str();
- printType(Out, FTy->getReturnType(),
- /*isSigned=*/PAL.paramHasAttr(0, Attribute::SExt), tstr);
- return Out;
- }
- case Type::StructTyID: {
- const StructType *STy = cast<StructType>(Ty);
- Out << NameSoFar + " {\n";
- unsigned Idx = 0;
- for (StructType::element_iterator I = STy->element_begin(),
- E = STy->element_end(); I != E; ++I) {
- Out << " ";
- printType(Out, *I, false, "field" + utostr(Idx++));
- Out << ";\n";
- }
- Out << '}';
- if (STy->isPacked())
- Out << " __attribute__ ((packed))";
- return Out;
- }
-
- case Type::PointerTyID: {
- const PointerType *PTy = cast<PointerType>(Ty);
- std::string ptrName = "*" + NameSoFar;
-
- if (isa<ArrayType>(PTy->getElementType()) ||
- isa<VectorType>(PTy->getElementType()))
- ptrName = "(" + ptrName + ")";
-
- if (!PAL.isEmpty())
- // Must be a function ptr cast!
- return printType(Out, PTy->getElementType(), false, ptrName, true, PAL);
- return printType(Out, PTy->getElementType(), false, ptrName);
- }
-
- case Type::ArrayTyID: {
- const ArrayType *ATy = cast<ArrayType>(Ty);
- unsigned NumElements = ATy->getNumElements();
- if (NumElements == 0) NumElements = 1;
- // Arrays are wrapped in structs to allow them to have normal
- // value semantics (avoiding the array "decay").
- Out << NameSoFar << " { ";
- printType(Out, ATy->getElementType(), false,
- "array[" + utostr(NumElements) + "]");
- return Out << "; }";
- }
-
- case Type::OpaqueTyID: {
- static int Count = 0;
- std::string TyName = "struct opaque_" + itostr(Count++);
- assert(TypeNames.find(Ty) == TypeNames.end());
- TypeNames[Ty] = TyName;
- return Out << TyName << ' ' << NameSoFar;
- }
default:
- assert(0 && "Unhandled case in getTypeProps!");
- abort();
+#ifndef NDEBUG
+ errs() << "Unknown primitive type: " << *Ty << "\n";
+#endif
+ llvm_unreachable(0);
}
-
- return Out;
}
// Pass the Type* and the variable name and this prints out the variable
// declaration.
//
-std::ostream &CWriter::printType(std::ostream &Out, const Type *Ty,
- bool isSigned, const std::string &NameSoFar,
- bool IgnoreName, const AttrListPtr &PAL) {
- if (Ty->isPrimitiveType() || Ty->isInteger() || isa<VectorType>(Ty)) {
+raw_ostream &CWriter::printType(raw_ostream &Out, const Type *Ty,
+ bool isSigned, const std::string &NameSoFar,
+ bool IgnoreName, const AttrListPtr &PAL) {
+ if (Ty->isPrimitiveType() || Ty->isIntegerTy() || Ty->isVectorTy()) {
printSimpleType(Out, Ty, isSigned, NameSoFar);
return Out;
}
// Check to see if the type is named.
- if (!IgnoreName || isa<OpaqueType>(Ty)) {
+ if (!IgnoreName || Ty->isOpaqueTy()) {
std::map<const Type *, std::string>::iterator I = TypeNames.find(Ty);
if (I != TypeNames.end()) return Out << I->second << ' ' << NameSoFar;
}
switch (Ty->getTypeID()) {
case Type::FunctionTyID: {
const FunctionType *FTy = cast<FunctionType>(Ty);
- std::stringstream FunctionInnards;
+ std::string tstr;
+ raw_string_ostream FunctionInnards(tstr);
FunctionInnards << " (" << NameSoFar << ") (";
unsigned Idx = 1;
for (FunctionType::param_iterator I = FTy->param_begin(),
E = FTy->param_end(); I != E; ++I) {
const Type *ArgTy = *I;
if (PAL.paramHasAttr(Idx, Attribute::ByVal)) {
- assert(isa<PointerType>(ArgTy));
+ assert(ArgTy->isPointerTy());
ArgTy = cast<PointerType>(ArgTy)->getElementType();
}
if (I != FTy->param_begin())
++Idx;
}
if (FTy->isVarArg()) {
- if (FTy->getNumParams())
- FunctionInnards << ", ...";
+ if (!FTy->getNumParams())
+ FunctionInnards << " int"; //dummy argument for empty vaarg functs
+ FunctionInnards << ", ...";
} else if (!FTy->getNumParams()) {
FunctionInnards << "void";
}
FunctionInnards << ')';
- std::string tstr = FunctionInnards.str();
- printType(Out, FTy->getReturnType(),
- /*isSigned=*/PAL.paramHasAttr(0, Attribute::SExt), tstr);
+ printType(Out, FTy->getReturnType(),
+ /*isSigned=*/PAL.paramHasAttr(0, Attribute::SExt), FunctionInnards.str());
return Out;
}
case Type::StructTyID: {
const PointerType *PTy = cast<PointerType>(Ty);
std::string ptrName = "*" + NameSoFar;
- if (isa<ArrayType>(PTy->getElementType()) ||
- isa<VectorType>(PTy->getElementType()))
+ if (PTy->getElementType()->isArrayTy() ||
+ PTy->getElementType()->isVectorTy())
ptrName = "(" + ptrName + ")";
if (!PAL.isEmpty())
}
case Type::OpaqueTyID: {
- static int Count = 0;
- std::string TyName = "struct opaque_" + itostr(Count++);
+ std::string TyName = "struct opaque_" + itostr(OpaqueCounter++);
assert(TypeNames.find(Ty) == TypeNames.end());
TypeNames[Ty] = TyName;
return Out << TyName << ' ' << NameSoFar;
}
default:
- assert(0 && "Unhandled case in getTypeProps!");
- abort();
+ llvm_unreachable("Unhandled case in getTypeProps!");
}
return Out;
// ubytes or an array of sbytes with positive values.
//
const Type *ETy = CPA->getType()->getElementType();
- bool isString = (ETy == Type::Int8Ty || ETy == Type::Int8Ty);
+ bool isString = (ETy == Type::getInt8Ty(CPA->getContext()) ||
+ ETy == Type::getInt8Ty(CPA->getContext()));
// Make sure the last character is a null char, as automatically added by C
if (isString && (CPA->getNumOperands() == 0 ||
static bool isFPCSafeToPrint(const ConstantFP *CFP) {
bool ignored;
// Do long doubles in hex for now.
- if (CFP->getType() != Type::FloatTy && CFP->getType() != Type::DoubleTy)
+ if (CFP->getType() != Type::getFloatTy(CFP->getContext()) &&
+ CFP->getType() != Type::getDoubleTy(CFP->getContext()))
return false;
APFloat APF = APFloat(CFP->getValueAPF()); // copy
- if (CFP->getType() == Type::FloatTy)
+ if (CFP->getType() == Type::getFloatTy(CFP->getContext()))
APF.convert(APFloat::IEEEdouble, APFloat::rmNearestTiesToEven, &ignored);
#if HAVE_PRINTF_A && ENABLE_CBE_PRINTF_A
char Buffer[100];
}
/// Print out the casting for a cast operation. This does the double casting
-/// necessary for conversion to the destination type, if necessary.
+/// necessary for conversion to the destination type, if necessary.
/// @brief Print a cast
void CWriter::printCast(unsigned opc, const Type *SrcTy, const Type *DstTy) {
// Print the destination type cast
printSimpleType(Out, DstTy, false);
Out << ')';
break;
- case Instruction::SExt:
+ case Instruction::SExt:
case Instruction::FPToSI: // For these, make sure we get a signed dest
Out << '(';
printSimpleType(Out, DstTy, true);
Out << ')';
break;
default:
- assert(0 && "Invalid cast opcode");
+ llvm_unreachable("Invalid cast opcode");
}
// Print the source type cast
case Instruction::SIToFP:
case Instruction::SExt:
Out << '(';
- printSimpleType(Out, SrcTy, true);
+ printSimpleType(Out, SrcTy, true);
Out << ')';
break;
case Instruction::IntToPtr:
case Instruction::FPToUI:
break; // These don't need a source cast.
default:
- assert(0 && "Invalid cast opcode");
+ llvm_unreachable("Invalid cast opcode");
break;
}
}
Out << "(";
printCast(CE->getOpcode(), CE->getOperand(0)->getType(), CE->getType());
if (CE->getOpcode() == Instruction::SExt &&
- CE->getOperand(0)->getType() == Type::Int1Ty) {
+ CE->getOperand(0)->getType() == Type::getInt1Ty(CPV->getContext())) {
// Make sure we really sext from bool here by subtracting from 0
Out << "0-";
}
printConstant(CE->getOperand(0), Static);
- if (CE->getType() == Type::Int1Ty &&
+ if (CE->getType() == Type::getInt1Ty(CPV->getContext()) &&
(CE->getOpcode() == Instruction::Trunc ||
CE->getOpcode() == Instruction::FPToUI ||
CE->getOpcode() == Instruction::FPToSI ||
Out << ')';
return;
case Instruction::Add:
+ case Instruction::FAdd:
case Instruction::Sub:
+ case Instruction::FSub:
case Instruction::Mul:
+ case Instruction::FMul:
case Instruction::SDiv:
case Instruction::UDiv:
case Instruction::FDiv:
case Instruction::AShr:
{
Out << '(';
- bool NeedsClosingParens = printConstExprCast(CE, Static);
+ bool NeedsClosingParens = printConstExprCast(CE, Static);
printConstantWithCast(CE->getOperand(0), CE->getOpcode());
switch (CE->getOpcode()) {
- case Instruction::Add: Out << " + "; break;
- case Instruction::Sub: Out << " - "; break;
- case Instruction::Mul: Out << " * "; break;
+ case Instruction::Add:
+ case Instruction::FAdd: Out << " + "; break;
+ case Instruction::Sub:
+ case Instruction::FSub: Out << " - "; break;
+ case Instruction::Mul:
+ case Instruction::FMul: Out << " * "; break;
case Instruction::URem:
- case Instruction::SRem:
+ case Instruction::SRem:
case Instruction::FRem: Out << " % "; break;
- case Instruction::UDiv:
- case Instruction::SDiv:
+ case Instruction::UDiv:
+ case Instruction::SDiv:
case Instruction::FDiv: Out << " / "; break;
case Instruction::And: Out << " & "; break;
case Instruction::Or: Out << " | "; break;
switch (CE->getPredicate()) {
case ICmpInst::ICMP_EQ: Out << " == "; break;
case ICmpInst::ICMP_NE: Out << " != "; break;
- case ICmpInst::ICMP_SLT:
+ case ICmpInst::ICMP_SLT:
case ICmpInst::ICMP_ULT: Out << " < "; break;
case ICmpInst::ICMP_SLE:
case ICmpInst::ICMP_ULE: Out << " <= "; break;
case ICmpInst::ICMP_UGT: Out << " > "; break;
case ICmpInst::ICMP_SGE:
case ICmpInst::ICMP_UGE: Out << " >= "; break;
- default: assert(0 && "Illegal ICmp predicate");
+ default: llvm_unreachable("Illegal ICmp predicate");
}
break;
- default: assert(0 && "Illegal opcode here!");
+ default: llvm_unreachable("Illegal opcode here!");
}
printConstantWithCast(CE->getOperand(1), CE->getOpcode());
if (NeedsClosingParens)
return;
}
case Instruction::FCmp: {
- Out << '(';
- bool NeedsClosingParens = printConstExprCast(CE, Static);
+ Out << '(';
+ bool NeedsClosingParens = printConstExprCast(CE, Static);
if (CE->getPredicate() == FCmpInst::FCMP_FALSE)
Out << "0";
else if (CE->getPredicate() == FCmpInst::FCMP_TRUE)
else {
const char* op = 0;
switch (CE->getPredicate()) {
- default: assert(0 && "Illegal FCmp predicate");
+ default: llvm_unreachable("Illegal FCmp predicate");
case FCmpInst::FCMP_ORD: op = "ord"; break;
case FCmpInst::FCMP_UNO: op = "uno"; break;
case FCmpInst::FCMP_UEQ: op = "ueq"; break;
return;
}
default:
- cerr << "CWriter Error: Unhandled constant expression: "
+#ifndef NDEBUG
+ errs() << "CWriter Error: Unhandled constant expression: "
<< *CE << "\n";
- abort();
+#endif
+ llvm_unreachable(0);
}
} else if (isa<UndefValue>(CPV) && CPV->getType()->isSingleValueType()) {
Out << "((";
printType(Out, CPV->getType()); // sign doesn't matter
Out << ")/*UNDEF*/";
- if (!isa<VectorType>(CPV->getType())) {
+ if (!CPV->getType()->isVectorTy()) {
Out << "0)";
} else {
Out << "{})";
if (ConstantInt *CI = dyn_cast<ConstantInt>(CPV)) {
const Type* Ty = CI->getType();
- if (Ty == Type::Int1Ty)
+ if (Ty == Type::getInt1Ty(CPV->getContext()))
Out << (CI->getZExtValue() ? '1' : '0');
- else if (Ty == Type::Int32Ty)
+ else if (Ty == Type::getInt32Ty(CPV->getContext()))
Out << CI->getZExtValue() << 'u';
else if (Ty->getPrimitiveSizeInBits() > 32)
Out << CI->getZExtValue() << "ull";
else {
Out << "((";
printSimpleType(Out, Ty, false) << ')';
- if (CI->isMinValue(true))
+ if (CI->isMinValue(true))
Out << CI->getZExtValue() << 'u';
else
Out << CI->getSExtValue();
Out << ')';
}
return;
- }
+ }
switch (CPV->getType()->getTypeID()) {
case Type::FloatTyID:
- case Type::DoubleTyID:
+ case Type::DoubleTyID:
case Type::X86_FP80TyID:
case Type::PPC_FP128TyID:
case Type::FP128TyID: {
if (I != FPConstantMap.end()) {
// Because of FP precision problems we must load from a stack allocated
// value that holds the value in hex.
- Out << "(*(" << (FPC->getType() == Type::FloatTy ? "float" :
- FPC->getType() == Type::DoubleTy ? "double" :
+ Out << "(*(" << (FPC->getType() == Type::getFloatTy(CPV->getContext()) ?
+ "float" :
+ FPC->getType() == Type::getDoubleTy(CPV->getContext()) ?
+ "double" :
"long double")
<< "*)&FPConstant" << I->second << ')';
} else {
double V;
- if (FPC->getType() == Type::FloatTy)
+ if (FPC->getType() == Type::getFloatTy(CPV->getContext()))
V = FPC->getValueAPF().convertToFloat();
- else if (FPC->getType() == Type::DoubleTy)
+ else if (FPC->getType() == Type::getDoubleTy(CPV->getContext()))
V = FPC->getValueAPF().convertToDouble();
else {
// Long double. Convert the number to double, discarding precision.
Tmp.convert(APFloat::IEEEdouble, APFloat::rmTowardZero, &LosesInfo);
V = Tmp.convertToDouble();
}
-
+
if (IsNAN(V)) {
// The value is NaN
std::string Num(&Buffer[0], &Buffer[6]);
unsigned long Val = strtoul(Num.c_str(), 0, 16);
- if (FPC->getType() == Type::FloatTy)
+ if (FPC->getType() == Type::getFloatTy(FPC->getContext()))
Out << "LLVM_NAN" << (Val == QuietNaN ? "" : "S") << "F(\""
<< Buffer << "\") /*nan*/ ";
else
} else if (IsInf(V)) {
// The value is Inf
if (V < 0) Out << '-';
- Out << "LLVM_INF" << (FPC->getType() == Type::FloatTy ? "F" : "")
+ Out << "LLVM_INF" <<
+ (FPC->getType() == Type::getFloatTy(FPC->getContext()) ? "F" : "")
<< " /*inf*/ ";
} else {
std::string Num;
}
// FALL THROUGH
default:
- cerr << "Unknown constant type: " << *CPV << "\n";
- abort();
+#ifndef NDEBUG
+ errs() << "Unknown constant type: " << *CPV << "\n";
+#endif
+ llvm_unreachable(0);
}
}
case Instruction::Mul:
// We need to cast integer arithmetic so that it is always performed
// as unsigned, to avoid undefined behavior on overflow.
- if (!Ty->isIntOrIntVector()) break;
- // FALL THROUGH
case Instruction::LShr:
- case Instruction::URem:
+ case Instruction::URem:
case Instruction::UDiv: NeedsExplicitCast = true; break;
case Instruction::AShr:
- case Instruction::SRem:
+ case Instruction::SRem:
case Instruction::SDiv: NeedsExplicitCast = true; TypeIsSigned = true; break;
case Instruction::SExt:
Ty = CE->getType();
}
if (NeedsExplicitCast) {
Out << "((";
- if (Ty->isInteger() && Ty != Type::Int1Ty)
+ if (Ty->isIntegerTy() && Ty != Type::getInt1Ty(Ty->getContext()))
printSimpleType(Out, Ty, TypeIsSigned);
else
printType(Out, Ty); // not integer, sign doesn't matter
switch (Opcode) {
default:
// for most instructions, it doesn't matter
- break;
+ break;
case Instruction::Add:
case Instruction::Sub:
case Instruction::Mul:
// We need to cast integer arithmetic so that it is always performed
// as unsigned, to avoid undefined behavior on overflow.
- if (!OpTy->isIntOrIntVector()) break;
- // FALL THROUGH
case Instruction::LShr:
case Instruction::UDiv:
case Instruction::URem:
Out << ")";
printConstant(CPV, false);
Out << ")";
- } else
+ } else
printConstant(CPV, false);
}
std::string CWriter::GetValueName(const Value *Operand) {
- std::string Name;
- if (!isa<GlobalValue>(Operand) && Operand->getName() != "") {
- std::string VarName;
+ // Resolve potential alias.
+ if (const GlobalAlias *GA = dyn_cast<GlobalAlias>(Operand)) {
+ if (const Value *V = GA->resolveAliasedGlobal(false))
+ Operand = V;
+ }
- Name = Operand->getName();
- VarName.reserve(Name.capacity());
+ // Mangle globals with the standard mangler interface for LLC compatibility.
+ if (const GlobalValue *GV = dyn_cast<GlobalValue>(Operand)) {
+ SmallString<128> Str;
+ Mang->getNameWithPrefix(Str, GV, false);
+ return CBEMangle(Str.str().str());
+ }
- for (std::string::iterator I = Name.begin(), E = Name.end();
- I != E; ++I) {
- char ch = *I;
+ std::string Name = Operand->getName();
- if (!((ch >= 'a' && ch <= 'z') || (ch >= 'A' && ch <= 'Z') ||
- (ch >= '0' && ch <= '9') || ch == '_')) {
- char buffer[5];
- sprintf(buffer, "_%x_", ch);
- VarName += buffer;
- } else
- VarName += ch;
- }
+ if (Name.empty()) { // Assign unique names to local temporaries.
+ unsigned &No = AnonValueNumbers[Operand];
+ if (No == 0)
+ No = ++NextAnonValueNumber;
+ Name = "tmp__" + utostr(No);
+ }
- Name = "llvm_cbe_" + VarName;
- } else {
- Name = Mang->getValueName(Operand);
+ std::string VarName;
+ VarName.reserve(Name.capacity());
+
+ for (std::string::iterator I = Name.begin(), E = Name.end();
+ I != E; ++I) {
+ char ch = *I;
+
+ if (!((ch >= 'a' && ch <= 'z') || (ch >= 'A' && ch <= 'Z') ||
+ (ch >= '0' && ch <= '9') || ch == '_')) {
+ char buffer[5];
+ sprintf(buffer, "_%x_", ch);
+ VarName += buffer;
+ } else
+ VarName += ch;
}
- return Name;
+ return "llvm_cbe_" + VarName;
}
/// writeInstComputationInline - Emit the computation for the specified
/// instruction inline, with no destination provided.
void CWriter::writeInstComputationInline(Instruction &I) {
+ // We can't currently support integer types other than 1, 8, 16, 32, 64.
+ // Validate this.
+ const Type *Ty = I.getType();
+ if (Ty->isIntegerTy() && (Ty!=Type::getInt1Ty(I.getContext()) &&
+ Ty!=Type::getInt8Ty(I.getContext()) &&
+ Ty!=Type::getInt16Ty(I.getContext()) &&
+ Ty!=Type::getInt32Ty(I.getContext()) &&
+ Ty!=Type::getInt64Ty(I.getContext()))) {
+ report_fatal_error("The C backend does not currently support integer "
+ "types of widths other than 1, 8, 16, 32, 64.\n"
+ "This is being tracked as PR 4158.");
+ }
+
// If this is a non-trivial bool computation, make sure to truncate down to
// a 1 bit value. This is important because we want "add i1 x, y" to return
// "0" when x and y are true, not "2" for example.
bool NeedBoolTrunc = false;
- if (I.getType() == Type::Int1Ty && !isa<ICmpInst>(I) && !isa<FCmpInst>(I))
+ if (I.getType() == Type::getInt1Ty(I.getContext()) &&
+ !isa<ICmpInst>(I) && !isa<FCmpInst>(I))
NeedBoolTrunc = true;
-
+
if (NeedBoolTrunc)
Out << "((";
-
+
visit(I);
-
+
if (NeedBoolTrunc)
Out << ")&1)";
}
Out << ')';
}
-// Some instructions need to have their result value casted back to the
-// original types because their operands were casted to the expected type.
-// This function takes care of detecting that case and printing the cast
+// Some instructions need to have their result value casted back to the
+// original types because their operands were casted to the expected type.
+// This function takes care of detecting that case and printing the cast
// for the Instruction.
bool CWriter::writeInstructionCast(const Instruction &I) {
const Type *Ty = I.getOperand(0)->getType();
case Instruction::Mul:
// We need to cast integer arithmetic so that it is always performed
// as unsigned, to avoid undefined behavior on overflow.
- if (!Ty->isIntOrIntVector()) break;
- // FALL THROUGH
case Instruction::LShr:
- case Instruction::URem:
- case Instruction::UDiv:
+ case Instruction::URem:
+ case Instruction::UDiv:
Out << "((";
printSimpleType(Out, Ty, false);
Out << ")(";
return true;
case Instruction::AShr:
- case Instruction::SRem:
- case Instruction::SDiv:
+ case Instruction::SRem:
+ case Instruction::SDiv:
Out << "((";
printSimpleType(Out, Ty, true);
Out << ")(";
// Write the operand with a cast to another type based on the Opcode being used.
// This will be used in cases where an instruction has specific type
-// requirements (usually signedness) for its operands.
+// requirements (usually signedness) for its operands.
void CWriter::writeOperandWithCast(Value* Operand, unsigned Opcode) {
// Extract the operand's type, we'll need it.
switch (Opcode) {
default:
// for most instructions, it doesn't matter
- break;
+ break;
case Instruction::Add:
case Instruction::Sub:
case Instruction::Mul:
// We need to cast integer arithmetic so that it is always performed
// as unsigned, to avoid undefined behavior on overflow.
- if (!OpTy->isIntOrIntVector()) break;
- // FALL THROUGH
case Instruction::LShr:
case Instruction::UDiv:
case Instruction::URem: // Cast to unsigned first
Out << ")";
writeOperand(Operand);
Out << ")";
- } else
+ } else
writeOperand(Operand);
}
-// Write the operand with a cast to another type based on the icmp predicate
-// being used.
+// Write the operand with a cast to another type based on the icmp predicate
+// being used.
void CWriter::writeOperandWithCast(Value* Operand, const ICmpInst &Cmp) {
- // This has to do a cast to ensure the operand has the right signedness.
+ // This has to do a cast to ensure the operand has the right signedness.
// Also, if the operand is a pointer, we make sure to cast to an integer when
// doing the comparison both for signedness and so that the C compiler doesn't
// optimize things like "p < NULL" to false (p may contain an integer value
writeOperand(Operand);
return;
}
-
+
// Should this be a signed comparison? If so, convert to signed.
- bool castIsSigned = Cmp.isSignedPredicate();
+ bool castIsSigned = Cmp.isSigned();
// If the operand was a pointer, convert to a large integer type.
const Type* OpTy = Operand->getType();
- if (isa<PointerType>(OpTy))
- OpTy = TD->getIntPtrType();
-
+ if (OpTy->isPointerTy())
+ OpTy = TD->getIntPtrType(Operand->getContext());
+
Out << "((";
printSimpleType(Out, OpTy, castIsSigned);
Out << ")";
// generateCompilerSpecificCode - This is where we add conditional compilation
// directives to cater to specific compilers as need be.
//
-static void generateCompilerSpecificCode(raw_ostream& Out,
+static void generateCompilerSpecificCode(formatted_raw_ostream& Out,
const TargetData *TD) {
// Alloca is hard to get, and we don't want to include stdlib.h here.
Out << "/* get a declaration for alloca */\n"
<< "#if defined(__CYGWIN__) || defined(__MINGW32__)\n"
<< "#define alloca(x) __builtin_alloca((x))\n"
- << "#define _alloca(x) __builtin_alloca((x))\n"
+ << "#define _alloca(x) __builtin_alloca((x))\n"
<< "#elif defined(__APPLE__)\n"
<< "extern void *__builtin_alloca(unsigned long);\n"
<< "#define alloca(x) __builtin_alloca(x)\n"
<< "extern void *__builtin_alloca(unsigned int);\n"
<< "#endif\n"
<< "#define alloca(x) __builtin_alloca(x)\n"
- << "#elif defined(__FreeBSD__) || defined(__NetBSD__) || defined(__OpenBSD__) || defined(__DragonFly__)\n"
+ << "#elif defined(__FreeBSD__) || defined(__NetBSD__) || defined(__OpenBSD__) || defined(__DragonFly__) || defined(__arm__)\n"
<< "#define alloca(x) __builtin_alloca(x)\n"
<< "#elif defined(_MSC_VER)\n"
<< "#define inline _inline\n"
Out << "#if defined(__GNUC__)\n"
<< "#define __HIDDEN__ __attribute__((visibility(\"hidden\")))\n"
<< "#endif\n\n";
-
+
// Define NaN and Inf as GCC builtins if using GCC, as 0 otherwise
// From the GCC documentation:
//
<< "#define __ATTRIBUTE_DTOR__\n"
<< "#define LLVM_ASM(X)\n"
<< "#endif\n\n";
-
+
Out << "#if __GNUC__ < 4 /* Old GCC's, or compilers not GCC */ \n"
<< "#define __builtin_stack_save() 0 /* not implemented */\n"
<< "#define __builtin_stack_restore(X) /* noop */\n"
static void FindStaticTors(GlobalVariable *GV, std::set<Function*> &StaticTors){
ConstantArray *InitList = dyn_cast<ConstantArray>(GV->getInitializer());
if (!InitList) return;
-
+
for (unsigned i = 0, e = InitList->getNumOperands(); i != e; ++i)
if (ConstantStruct *CS = dyn_cast<ConstantStruct>(InitList->getOperand(i))){
if (CS->getNumOperands() != 2) return; // Not array of 2-element structs.
-
+
if (CS->getOperand(1)->isNullValue())
return; // Found a null terminator, exit printing.
Constant *FP = CS->getOperand(1);
else if (GV->getName() == "llvm.global_dtors")
return GlobalDtors;
}
-
- // Otherwise, it it is other metadata, don't print it. This catches things
+
+ // Otherwise, if it is other metadata, don't print it. This catches things
// like debug information.
if (GV->getSection() == "llvm.metadata")
return NotPrinted;
-
+
return NotSpecial;
}
+// PrintEscapedString - Print each character of the specified string, escaping
+// it if it is not printable or if it is an escape char.
+static void PrintEscapedString(const char *Str, unsigned Length,
+ raw_ostream &Out) {
+ for (unsigned i = 0; i != Length; ++i) {
+ unsigned char C = Str[i];
+ if (isprint(C) && C != '\\' && C != '"')
+ Out << C;
+ else if (C == '\\')
+ Out << "\\\\";
+ else if (C == '\"')
+ Out << "\\\"";
+ else if (C == '\t')
+ Out << "\\t";
+ else
+ Out << "\\x" << hexdigit(C >> 4) << hexdigit(C & 0x0F);
+ }
+}
+
+// PrintEscapedString - Print each character of the specified string, escaping
+// it if it is not printable or if it is an escape char.
+static void PrintEscapedString(const std::string &Str, raw_ostream &Out) {
+ PrintEscapedString(Str.c_str(), Str.size(), Out);
+}
bool CWriter::doInitialization(Module &M) {
+ FunctionPass::doInitialization(M);
+
// Initialize
TheModule = &M;
IL = new IntrinsicLowering(*TD);
IL->AddPrototypes(M);
- // Ensure that all structure types have names...
- Mang = new Mangler(M);
- Mang->markCharUnacceptable('.');
+#if 0
+ std::string Triple = TheModule->getTargetTriple();
+ if (Triple.empty())
+ Triple = llvm::sys::getHostTriple();
+
+ std::string E;
+ if (const Target *Match = TargetRegistry::lookupTarget(Triple, E))
+ TAsm = Match->createAsmInfo(Triple);
+#endif
+ TAsm = new CBEMCAsmInfo();
+ TCtx = new MCContext(*TAsm);
+ Mang = new Mangler(*TCtx, *TD);
// Keep track of which functions are static ctors/dtors so they can have
// an attribute added to their prototypes.
break;
}
}
-
+
// get declaration for alloca
Out << "/* Provide Declarations */\n";
Out << "#include <stdarg.h>\n"; // Varargs support
// First output all the declarations for the program, because C requires
// Functions & globals to be declared before they are used.
//
+ if (!M.getModuleInlineAsm().empty()) {
+ Out << "/* Module asm statements */\n"
+ << "asm(";
+
+ // Split the string into lines, to make it easier to read the .ll file.
+ std::string Asm = M.getModuleInlineAsm();
+ size_t CurPos = 0;
+ size_t NewLine = Asm.find_first_of('\n', CurPos);
+ while (NewLine != std::string::npos) {
+ // We found a newline, print the portion of the asm string from the
+ // last newline up to this newline.
+ Out << "\"";
+ PrintEscapedString(std::string(Asm.begin()+CurPos, Asm.begin()+NewLine),
+ Out);
+ Out << "\\n\"\n";
+ CurPos = NewLine+1;
+ NewLine = Asm.find_first_of('\n', CurPos);
+ }
+ Out << "\"";
+ PrintEscapedString(std::string(Asm.begin()+CurPos, Asm.end()), Out);
+ Out << "\");\n"
+ << "/* End Module asm statements */\n";
+ }
// Loop over the symbol table, emitting all named constants...
printModuleTypes(M.getTypeSymbolTable());
for (Module::global_iterator I = M.global_begin(), E = M.global_end();
I != E; ++I) {
- if (I->hasExternalLinkage() || I->hasExternalWeakLinkage() ||
+ if (I->hasExternalLinkage() || I->hasExternalWeakLinkage() ||
I->hasCommonLinkage())
Out << "extern ";
else if (I->hasDLLImportLinkage())
Out << "double fmod(double, double);\n"; // Support for FP rem
Out << "float fmodf(float, float);\n";
Out << "long double fmodl(long double, long double);\n";
-
+
for (Module::iterator I = M.begin(), E = M.end(); I != E; ++I) {
// Don't print declarations for intrinsic functions.
if (!I->isIntrinsic() && I->getName() != "setjmp" &&
if (I->hasExternalWeakLinkage())
Out << "extern ";
printFunctionSignature(I, true);
- if (I->hasWeakLinkage() || I->hasLinkOnceLinkage())
+ if (I->hasWeakLinkage() || I->hasLinkOnceLinkage())
Out << " __ATTRIBUTE_WEAK__";
if (I->hasExternalWeakLinkage())
Out << " __EXTERNAL_WEAK__";
Out << " __ATTRIBUTE_DTOR__";
if (I->hasHiddenVisibility())
Out << " __HIDDEN__";
-
+
if (I->hasName() && I->getName()[0] == 1)
- Out << " LLVM_ASM(\"" << I->getName().c_str()+1 << "\")";
-
+ Out << " LLVM_ASM(\"" << I->getName().substr(1) << "\")";
+
Out << ";\n";
}
}
if (I->isThreadLocal())
Out << "__thread ";
- printType(Out, I->getType()->getElementType(), false,
+ printType(Out, I->getType()->getElementType(), false,
GetValueName(I));
if (I->hasLinkOnceLinkage())
// Output the global variable definitions and contents...
if (!M.global_empty()) {
Out << "\n\n/* Global Variable Definitions and Initialization */\n";
- for (Module::global_iterator I = M.global_begin(), E = M.global_end();
+ for (Module::global_iterator I = M.global_begin(), E = M.global_end();
I != E; ++I)
if (!I->isDeclaration()) {
// Ignore special globals, such as debug info.
if (I->isThreadLocal())
Out << "__thread ";
- printType(Out, I->getType()->getElementType(), false,
+ printType(Out, I->getType()->getElementType(), false,
GetValueName(I));
if (I->hasLinkOnceLinkage())
Out << " __attribute__((common))";
if (I->hasHiddenVisibility())
Out << " __HIDDEN__";
-
+
// If the initializer is not null, emit the initializer. If it is null,
// we try to avoid emitting large amounts of zeros. The problem with
// this, however, occurs when the variable has weak linkage. In this
// complete. If the value is an aggregate, print out { 0 }, and let
// the compiler figure out the rest of the zeros.
Out << " = " ;
- if (isa<StructType>(I->getInitializer()->getType()) ||
- isa<VectorType>(I->getInitializer()->getType())) {
+ if (I->getInitializer()->getType()->isStructTy() ||
+ I->getInitializer()->getType()->isVectorTy()) {
Out << "{ 0 }";
- } else if (isa<ArrayType>(I->getInitializer()->getType())) {
+ } else if (I->getInitializer()->getType()->isArrayTy()) {
// As with structs and vectors, but with an extra set of braces
// because arrays are wrapped in structs.
Out << "{ { 0 } }";
if (!M.empty())
Out << "\n\n/* Function Bodies */\n";
- // Emit some helper functions for dealing with FCMP instruction's
+ // Emit some helper functions for dealing with FCMP instruction's
// predicates
Out << "static inline int llvm_fcmp_ord(double X, double Y) { ";
Out << "return X == X && Y == Y; }\n";
printFloatingPointConstants(CE->getOperand(i));
return;
}
-
+
// Otherwise, check for a FP constant that we need to print.
const ConstantFP *FPC = dyn_cast<ConstantFP>(C);
if (FPC == 0 ||
return;
FPConstantMap[FPC] = FPCounter; // Number the FP constants
-
- if (FPC->getType() == Type::DoubleTy) {
+
+ if (FPC->getType() == Type::getDoubleTy(FPC->getContext())) {
double Val = FPC->getValueAPF().convertToDouble();
uint64_t i = FPC->getValueAPF().bitcastToAPInt().getZExtValue();
Out << "static const ConstantDoubleTy FPConstant" << FPCounter++
<< " = 0x" << utohexstr(i)
<< "ULL; /* " << Val << " */\n";
- } else if (FPC->getType() == Type::FloatTy) {
+ } else if (FPC->getType() == Type::getFloatTy(FPC->getContext())) {
float Val = FPC->getValueAPF().convertToFloat();
uint32_t i = (uint32_t)FPC->getValueAPF().bitcastToAPInt().
getZExtValue();
Out << "static const ConstantFloatTy FPConstant" << FPCounter++
<< " = 0x" << utohexstr(i)
<< "U; /* " << Val << " */\n";
- } else if (FPC->getType() == Type::X86_FP80Ty) {
+ } else if (FPC->getType() == Type::getX86_FP80Ty(FPC->getContext())) {
// api needed to prevent premature destruction
APInt api = FPC->getValueAPF().bitcastToAPInt();
const uint64_t *p = api.getRawData();
Out << "static const ConstantFP80Ty FPConstant" << FPCounter++
- << " = { 0x" << utohexstr(p[0])
+ << " = { 0x" << utohexstr(p[0])
<< "ULL, 0x" << utohexstr((uint16_t)p[1]) << ",{0,0,0}"
<< "}; /* Long double constant */\n";
- } else if (FPC->getType() == Type::PPC_FP128Ty) {
+ } else if (FPC->getType() == Type::getPPC_FP128Ty(FPC->getContext()) ||
+ FPC->getType() == Type::getFP128Ty(FPC->getContext())) {
APInt api = FPC->getValueAPF().bitcastToAPInt();
const uint64_t *p = api.getRawData();
Out << "static const ConstantFP128Ty FPConstant" << FPCounter++
<< " = { 0x"
<< utohexstr(p[0]) << ", 0x" << utohexstr(p[1])
<< "}; /* Long double constant */\n";
-
+
} else {
- assert(0 && "Unknown float type!");
+ llvm_unreachable("Unknown float type!");
}
}
// Print out forward declarations for structure types before anything else!
Out << "/* Structure forward decls */\n";
for (; I != End; ++I) {
- std::string Name = "struct l_" + Mang->makeNameProper(I->first);
+ std::string Name = "struct " + CBEMangle("l_"+I->first);
Out << Name << ";\n";
TypeNames.insert(std::make_pair(I->second, Name));
}
// for struct or opaque types.
Out << "/* Typedefs */\n";
for (I = TST.begin(); I != End; ++I) {
- std::string Name = "l_" + Mang->makeNameProper(I->first);
+ std::string Name = CBEMangle("l_"+I->first);
Out << "typedef ";
printType(Out, I->second, false, Name);
Out << ";\n";
//
Out << "/* Structure contents */\n";
for (I = TST.begin(); I != End; ++I)
- if (isa<StructType>(I->second) || isa<ArrayType>(I->second))
+ if (I->second->isStructTy() || I->second->isArrayTy())
// Only print out used types!
printContainedStructs(I->second, StructPrinted);
}
void CWriter::printContainedStructs(const Type *Ty,
std::set<const Type*> &StructPrinted) {
// Don't walk through pointers.
- if (isa<PointerType>(Ty) || Ty->isPrimitiveType() || Ty->isInteger()) return;
-
+ if (Ty->isPointerTy() || Ty->isPrimitiveType() || Ty->isIntegerTy())
+ return;
+
// Print all contained types first.
for (Type::subtype_iterator I = Ty->subtype_begin(),
E = Ty->subtype_end(); I != E; ++I)
printContainedStructs(*I, StructPrinted);
-
- if (isa<StructType>(Ty) || isa<ArrayType>(Ty)) {
+
+ if (Ty->isStructTy() || Ty->isArrayTy()) {
// Check to see if we have already printed this struct.
if (StructPrinted.insert(Ty).second) {
// Print structure type out.
void CWriter::printFunctionSignature(const Function *F, bool Prototype) {
/// isStructReturn - Should this function actually return a struct by-value?
bool isStructReturn = F->hasStructRetAttr();
-
+
if (F->hasLocalLinkage()) Out << "static ";
if (F->hasDLLImportLinkage()) Out << "__declspec(dllimport) ";
- if (F->hasDLLExportLinkage()) Out << "__declspec(dllexport) ";
+ if (F->hasDLLExportLinkage()) Out << "__declspec(dllexport) ";
switch (F->getCallingConv()) {
case CallingConv::X86_StdCall:
Out << "__attribute__((stdcall)) ";
case CallingConv::X86_FastCall:
Out << "__attribute__((fastcall)) ";
break;
+ case CallingConv::X86_ThisCall:
+ Out << "__attribute__((thiscall)) ";
+ break;
+ default:
+ break;
}
-
+
// Loop over the arguments, printing them...
const FunctionType *FT = cast<FunctionType>(F->getFunctionType());
const AttrListPtr &PAL = F->getAttributes();
- std::stringstream FunctionInnards;
+ std::string tstr;
+ raw_string_ostream FunctionInnards(tstr);
// Print out the name...
FunctionInnards << GetValueName(F) << '(';
if (!F->arg_empty()) {
Function::const_arg_iterator I = F->arg_begin(), E = F->arg_end();
unsigned Idx = 1;
-
+
// If this is a struct-return function, don't print the hidden
// struct-return argument.
if (isStructReturn) {
++I;
++Idx;
}
-
+
std::string ArgName;
for (; I != E; ++I) {
if (PrintedArg) FunctionInnards << ", ";
// Loop over the arguments, printing them.
FunctionType::param_iterator I = FT->param_begin(), E = FT->param_end();
unsigned Idx = 1;
-
+
// If this is a struct-return function, don't print the hidden
// struct-return argument.
if (isStructReturn) {
++I;
++Idx;
}
-
+
for (; I != E; ++I) {
if (PrintedArg) FunctionInnards << ", ";
const Type *ArgTy = *I;
if (PAL.paramHasAttr(Idx, Attribute::ByVal)) {
- assert(isa<PointerType>(ArgTy));
+ assert(ArgTy->isPointerTy());
ArgTy = cast<PointerType>(ArgTy)->getElementType();
}
printType(FunctionInnards, ArgTy,
}
}
+ if (!PrintedArg && FT->isVarArg()) {
+ FunctionInnards << "int vararg_dummy_arg";
+ PrintedArg = true;
+ }
+
// Finish printing arguments... if this is a vararg function, print the ...,
// unless there are no known types, in which case, we just emit ().
//
if (FT->isVarArg() && PrintedArg) {
- if (PrintedArg) FunctionInnards << ", ";
- FunctionInnards << "..."; // Output varargs portion of signature!
+ FunctionInnards << ",..."; // Output varargs portion of signature!
} else if (!FT->isVarArg() && !PrintedArg) {
FunctionInnards << "void"; // ret() -> ret(void) in C.
}
FunctionInnards << ')';
-
+
// Get the return tpe for the function.
const Type *RetTy;
if (!isStructReturn)
// If this is a struct-return function, print the struct-return type.
RetTy = cast<PointerType>(FT->getParamType(0))->getElementType();
}
-
+
// Print out the return type and the signature built above.
- printType(Out, RetTy,
+ printType(Out, RetTy,
/*isSigned=*/PAL.paramHasAttr(0, Attribute::SExt),
FunctionInnards.str());
}
return false;
const Type *SrcTy = I.getOperand(0)->getType();
const Type *DstTy = I.getType();
- return (SrcTy->isFloatingPoint() && DstTy->isInteger()) ||
- (DstTy->isFloatingPoint() && SrcTy->isInteger());
+ return (SrcTy->isFloatingPointTy() && DstTy->isIntegerTy()) ||
+ (DstTy->isFloatingPointTy() && SrcTy->isIntegerTy());
}
void CWriter::printFunction(Function &F) {
printFunctionSignature(&F, false);
Out << " {\n";
-
+
// If this is a struct return function, handle the result with magic.
if (isStructReturn) {
const Type *StructTy =
Out << "; /* Struct return temporary */\n";
Out << " ";
- printType(Out, F.arg_begin()->getType(), false,
+ printType(Out, F.arg_begin()->getType(), false,
GetValueName(F.arg_begin()));
Out << " = &StructReturn;\n";
}
bool PrintedVar = false;
-
+
// print local variable information for the function
for (inst_iterator I = inst_begin(&F), E = inst_end(&F); I != E; ++I) {
if (const AllocaInst *AI = isDirectAlloca(&*I)) {
printType(Out, AI->getAllocatedType(), false, GetValueName(AI));
Out << "; /* Address-exposed local */\n";
PrintedVar = true;
- } else if (I->getType() != Type::VoidTy && !isInlinableInst(*I)) {
+ } else if (I->getType() != Type::getVoidTy(F.getContext()) &&
+ !isInlinableInst(*I)) {
Out << " ";
printType(Out, I->getType(), false, GetValueName(&*I));
Out << ";\n";
}
// We need a temporary for the BitCast to use so it can pluck a value out
// of a union to do the BitCast. This is separate from the need for a
- // variable to hold the result of the BitCast.
+ // variable to hold the result of the BitCast.
if (isFPIntBitCast(*I)) {
Out << " llvmBitCastUnion " << GetValueName(&*I)
<< "__BITCAST_TEMPORARY;\n";
for (BasicBlock::iterator II = BB->begin(), E = --BB->end(); II != E;
++II) {
if (!isInlinableInst(*II) && !isDirectAlloca(II)) {
- if (II->getType() != Type::VoidTy && !isInlineAsm(*II))
+ if (II->getType() != Type::getVoidTy(BB->getContext()) &&
+ !isInlineAsm(*II))
outputLValue(II);
else
Out << " ";
Out << " return StructReturn;\n";
return;
}
-
+
// Don't output a void return if this is the last basic block in the function
if (I.getNumOperands() == 0 &&
&*--I.getParent()->getParent()->end() == I.getParent() &&
BasicBlock *Succ = cast<BasicBlock>(SI.getOperand(i+1));
printPHICopiesForSuccessor (SI.getParent(), Succ, 2);
printBranchToBlock(SI.getParent(), Succ, 2);
- if (Function::iterator(Succ) == next(Function::iterator(SI.getParent())))
+ if (Function::iterator(Succ) == llvm::next(Function::iterator(SI.getParent())))
Out << " break;\n";
}
Out << " }\n";
}
+void CWriter::visitIndirectBrInst(IndirectBrInst &IBI) {
+ Out << " goto *(void*)(";
+ writeOperand(IBI.getOperand(0));
+ Out << ");\n";
+}
+
void CWriter::visitUnreachableInst(UnreachableInst &I) {
Out << " /*UNREACHABLE*/;\n";
}
/// FIXME: This should be reenabled, but loop reordering safe!!
return true;
- if (next(Function::iterator(From)) != Function::iterator(To))
+ if (llvm::next(Function::iterator(From)) != Function::iterator(To))
return true; // Not the direct successor, we need a goto.
//isa<SwitchInst>(From->getTerminator())
void CWriter::visitBinaryOperator(Instruction &I) {
// binary instructions, shift instructions, setCond instructions.
- assert(!isa<PointerType>(I.getType()));
+ assert(!I.getType()->isPointerTy());
// We must cast the results of binary operations which might be promoted.
bool needsCast = false;
- if ((I.getType() == Type::Int8Ty) || (I.getType() == Type::Int16Ty)
- || (I.getType() == Type::FloatTy)) {
+ if ((I.getType() == Type::getInt8Ty(I.getContext())) ||
+ (I.getType() == Type::getInt16Ty(I.getContext()))
+ || (I.getType() == Type::getFloatTy(I.getContext()))) {
needsCast = true;
Out << "((";
printType(Out, I.getType(), false);
Out << "-(";
writeOperand(BinaryOperator::getNegArgument(cast<BinaryOperator>(&I)));
Out << ")";
+ } else if (BinaryOperator::isFNeg(&I)) {
+ Out << "-(";
+ writeOperand(BinaryOperator::getFNegArgument(cast<BinaryOperator>(&I)));
+ Out << ")";
} else if (I.getOpcode() == Instruction::FRem) {
// Output a call to fmod/fmodf instead of emitting a%b
- if (I.getType() == Type::FloatTy)
+ if (I.getType() == Type::getFloatTy(I.getContext()))
Out << "fmodf(";
- else if (I.getType() == Type::DoubleTy)
+ else if (I.getType() == Type::getDoubleTy(I.getContext()))
Out << "fmod(";
else // all 3 flavors of long double
Out << "fmodl(";
writeOperandWithCast(I.getOperand(0), I.getOpcode());
switch (I.getOpcode()) {
- case Instruction::Add: Out << " + "; break;
- case Instruction::Sub: Out << " - "; break;
- case Instruction::Mul: Out << " * "; break;
+ case Instruction::Add:
+ case Instruction::FAdd: Out << " + "; break;
+ case Instruction::Sub:
+ case Instruction::FSub: Out << " - "; break;
+ case Instruction::Mul:
+ case Instruction::FMul: Out << " * "; break;
case Instruction::URem:
case Instruction::SRem:
case Instruction::FRem: Out << " % "; break;
case Instruction::UDiv:
- case Instruction::SDiv:
+ case Instruction::SDiv:
case Instruction::FDiv: Out << " / "; break;
case Instruction::And: Out << " & "; break;
case Instruction::Or: Out << " | "; break;
case Instruction::Shl : Out << " << "; break;
case Instruction::LShr:
case Instruction::AShr: Out << " >> "; break;
- default: cerr << "Invalid operator type!" << I; abort();
+ default:
+#ifndef NDEBUG
+ errs() << "Invalid operator type!" << I;
+#endif
+ llvm_unreachable(0);
}
writeOperandWithCast(I.getOperand(1), I.getOpcode());
case ICmpInst::ICMP_SLT: Out << " < "; break;
case ICmpInst::ICMP_UGT:
case ICmpInst::ICMP_SGT: Out << " > "; break;
- default: cerr << "Invalid icmp predicate!" << I; abort();
+ default:
+#ifndef NDEBUG
+ errs() << "Invalid icmp predicate!" << I;
+#endif
+ llvm_unreachable(0);
}
writeOperandWithCast(I.getOperand(1), I);
const char* op = 0;
switch (I.getPredicate()) {
- default: assert(0 && "Illegal FCmp predicate");
+ default: llvm_unreachable("Illegal FCmp predicate");
case FCmpInst::FCMP_ORD: op = "ord"; break;
case FCmpInst::FCMP_UNO: op = "uno"; break;
case FCmpInst::FCMP_UEQ: op = "ueq"; break;
static const char * getFloatBitCastField(const Type *Ty) {
switch (Ty->getTypeID()) {
- default: assert(0 && "Invalid Type");
+ default: llvm_unreachable("Invalid Type");
case Type::FloatTyID: return "Float";
case Type::DoubleTyID: return "Double";
case Type::IntegerTyID: {
if (isFPIntBitCast(I)) {
Out << '(';
// These int<->float and long<->double casts need to be handled specially
- Out << GetValueName(&I) << "__BITCAST_TEMPORARY."
+ Out << GetValueName(&I) << "__BITCAST_TEMPORARY."
<< getFloatBitCastField(I.getOperand(0)->getType()) << " = ";
writeOperand(I.getOperand(0));
Out << ", " << GetValueName(&I) << "__BITCAST_TEMPORARY."
Out << ')';
return;
}
-
+
Out << '(';
printCast(I.getOpcode(), SrcTy, DstTy);
// Make a sext from i1 work by subtracting the i1 from 0 (an int).
- if (SrcTy == Type::Int1Ty && I.getOpcode() == Instruction::SExt)
+ if (SrcTy == Type::getInt1Ty(I.getContext()) &&
+ I.getOpcode() == Instruction::SExt)
Out << "0-";
-
+
writeOperand(I.getOperand(0));
-
- if (DstTy == Type::Int1Ty &&
+
+ if (DstTy == Type::getInt1Ty(I.getContext()) &&
(I.getOpcode() == Instruction::Trunc ||
I.getOpcode() == Instruction::FPToUI ||
I.getOpcode() == Instruction::FPToSI ||
I.getOpcode() == Instruction::PtrToInt)) {
- // Make sure we really get a trunc to bool by anding the operand with 1
+ // Make sure we really get a trunc to bool by anding the operand with 1
Out << "&1u";
}
Out << ')';
case Intrinsic::setjmp:
case Intrinsic::longjmp:
case Intrinsic::prefetch:
- case Intrinsic::dbg_stoppoint:
case Intrinsic::powi:
case Intrinsic::x86_sse_cmp_ss:
case Intrinsic::x86_sse_cmp_ps:
#undef GET_GCC_BUILTIN_NAME
// If we handle it, don't lower it.
if (BuiltinName[0]) break;
-
+
// All other intrinsic calls we must lower.
Instruction *Before = 0;
if (CI != &BB->front())
break;
}
- // We may have collected some prototypes to emit in the loop above.
+ // We may have collected some prototypes to emit in the loop above.
// Emit them now, before the function that uses them is emitted. But,
// be careful not to emit them twice.
std::vector<Function*>::iterator I = prototypesToGen.begin();
}
void CWriter::visitCallInst(CallInst &I) {
- if (isa<InlineAsm>(I.getOperand(0)))
+ if (isa<InlineAsm>(I.getCalledValue()))
return visitInlineAsm(I);
bool WroteCallee = false;
bool hasByVal = I.hasByValArgument();
bool isStructRet = I.hasStructRetAttr();
if (isStructRet) {
- writeOperandDeref(I.getOperand(1));
+ writeOperandDeref(I.getArgOperand(0));
Out << " = ";
}
-
+
if (I.isTailCall()) Out << " /*tail*/ ";
-
+
if (!WroteCallee) {
// If this is an indirect call to a struct return function, we need to cast
// the pointer. Ditto for indirect calls with byval arguments.
NeedsCast = true;
Callee = RF;
}
-
+
if (NeedsCast) {
// Ok, just cast the pointer type.
Out << "((";
Out << '(';
- unsigned NumDeclaredParams = FTy->getNumParams();
+ bool PrintedArg = false;
+ if(FTy->isVarArg() && !FTy->getNumParams()) {
+ Out << "0 /*dummy arg*/";
+ PrintedArg = true;
+ }
- CallSite::arg_iterator AI = I.op_begin()+1, AE = I.op_end();
+ unsigned NumDeclaredParams = FTy->getNumParams();
+ CallSite CS(&I);
+ CallSite::arg_iterator AI = CS.arg_begin(), AE = CS.arg_end();
unsigned ArgNo = 0;
if (isStructRet) { // Skip struct return argument.
++AI;
++ArgNo;
}
-
- bool PrintedArg = false;
+
+
for (; AI != AE; ++AI, ++ArgNo) {
if (PrintedArg) Out << ", ";
if (ArgNo < NumDeclaredParams &&
(*AI)->getType() != FTy->getParamType(ArgNo)) {
Out << '(';
- printType(Out, FTy->getParamType(ArgNo),
+ printType(Out, FTy->getParamType(ArgNo),
/*isSigned=*/PAL.paramHasAttr(ArgNo+1, Attribute::SExt));
Out << ')';
}
}
/// visitBuiltinCall - Handle the call to the specified builtin. Returns true
-/// if the entire call is handled, return false it it wasn't handled, and
+/// if the entire call is handled, return false if it wasn't handled, and
/// optionally set 'WroteCallee' if the callee has already been printed out.
bool CWriter::visitBuiltinCall(CallInst &I, Intrinsic::ID ID,
bool &WroteCallee) {
#include "llvm/Intrinsics.gen"
#undef GET_GCC_BUILTIN_NAME
assert(BuiltinName[0] && "Unknown LLVM intrinsic!");
-
+
Out << BuiltinName;
WroteCallee = true;
return false;
return true;
case Intrinsic::vastart:
Out << "0; ";
-
+
Out << "va_start(*(va_list*)";
- writeOperand(I.getOperand(1));
+ writeOperand(I.getArgOperand(0));
Out << ", ";
// Output the last argument to the enclosing function.
- if (I.getParent()->getParent()->arg_empty()) {
- cerr << "The C backend does not currently support zero "
- << "argument varargs functions, such as '"
- << I.getParent()->getParent()->getName() << "'!\n";
- abort();
- }
- writeOperand(--I.getParent()->getParent()->arg_end());
+ if (I.getParent()->getParent()->arg_empty())
+ Out << "vararg_dummy_arg";
+ else
+ writeOperand(--I.getParent()->getParent()->arg_end());
Out << ')';
return true;
case Intrinsic::vaend:
- if (!isa<ConstantPointerNull>(I.getOperand(1))) {
+ if (!isa<ConstantPointerNull>(I.getArgOperand(0))) {
Out << "0; va_end(*(va_list*)";
- writeOperand(I.getOperand(1));
+ writeOperand(I.getArgOperand(0));
Out << ')';
} else {
Out << "va_end(*(va_list*)0)";
case Intrinsic::vacopy:
Out << "0; ";
Out << "va_copy(*(va_list*)";
- writeOperand(I.getOperand(1));
+ writeOperand(I.getArgOperand(0));
Out << ", *(va_list*)";
- writeOperand(I.getOperand(2));
+ writeOperand(I.getArgOperand(1));
Out << ')';
return true;
case Intrinsic::returnaddress:
Out << "__builtin_return_address(";
- writeOperand(I.getOperand(1));
+ writeOperand(I.getArgOperand(0));
Out << ')';
return true;
case Intrinsic::frameaddress:
Out << "__builtin_frame_address(";
- writeOperand(I.getOperand(1));
+ writeOperand(I.getArgOperand(0));
Out << ')';
return true;
case Intrinsic::powi:
Out << "__builtin_powi(";
- writeOperand(I.getOperand(1));
+ writeOperand(I.getArgOperand(0));
Out << ", ";
- writeOperand(I.getOperand(2));
+ writeOperand(I.getArgOperand(1));
Out << ')';
return true;
case Intrinsic::setjmp:
Out << "setjmp(*(jmp_buf*)";
- writeOperand(I.getOperand(1));
+ writeOperand(I.getArgOperand(0));
Out << ')';
return true;
case Intrinsic::longjmp:
Out << "longjmp(*(jmp_buf*)";
- writeOperand(I.getOperand(1));
+ writeOperand(I.getArgOperand(0));
Out << ", ";
- writeOperand(I.getOperand(2));
+ writeOperand(I.getArgOperand(1));
Out << ')';
return true;
case Intrinsic::prefetch:
Out << "LLVM_PREFETCH((const void *)";
- writeOperand(I.getOperand(1));
+ writeOperand(I.getArgOperand(0));
Out << ", ";
- writeOperand(I.getOperand(2));
+ writeOperand(I.getArgOperand(1));
Out << ", ";
- writeOperand(I.getOperand(3));
+ writeOperand(I.getArgOperand(2));
Out << ")";
return true;
case Intrinsic::stacksave:
Out << "0; *((void**)&" << GetValueName(&I)
<< ") = __builtin_stack_save()";
return true;
- case Intrinsic::dbg_stoppoint: {
- // If we use writeOperand directly we get a "u" suffix which is rejected
- // by gcc.
- std::stringstream SPIStr;
- DbgStopPointInst &SPI = cast<DbgStopPointInst>(I);
- SPI.getDirectory()->print(SPIStr);
- Out << "\n#line "
- << SPI.getLine()
- << " \"";
- Out << SPIStr.str();
- SPIStr.clear();
- SPI.getFileName()->print(SPIStr);
- Out << SPIStr.str() << "\"\n";
- return true;
- }
case Intrinsic::x86_sse_cmp_ss:
case Intrinsic::x86_sse_cmp_ps:
case Intrinsic::x86_sse2_cmp_sd:
case Intrinsic::x86_sse2_cmp_pd:
Out << '(';
printType(Out, I.getType());
- Out << ')';
+ Out << ')';
// Multiple GCC builtins multiplex onto this intrinsic.
- switch (cast<ConstantInt>(I.getOperand(3))->getZExtValue()) {
- default: assert(0 && "Invalid llvm.x86.sse.cmp!");
+ switch (cast<ConstantInt>(I.getArgOperand(2))->getZExtValue()) {
+ default: llvm_unreachable("Invalid llvm.x86.sse.cmp!");
case 0: Out << "__builtin_ia32_cmpeq"; break;
case 1: Out << "__builtin_ia32_cmplt"; break;
case 2: Out << "__builtin_ia32_cmple"; break;
Out << 's';
else
Out << 'd';
-
+
Out << "(";
- writeOperand(I.getOperand(1));
+ writeOperand(I.getArgOperand(0));
Out << ", ";
- writeOperand(I.getOperand(2));
+ writeOperand(I.getArgOperand(1));
Out << ")";
return true;
case Intrinsic::ppc_altivec_lvsl:
Out << '(';
printType(Out, I.getType());
- Out << ')';
+ Out << ')';
Out << "__builtin_altivec_lvsl(0, (void*)";
- writeOperand(I.getOperand(1));
+ writeOperand(I.getArgOperand(0));
Out << ")";
return true;
}
// of the per target tables
// handle multiple constraint codes
std::string CWriter::InterpretASMConstraint(InlineAsm::ConstraintInfo& c) {
-
assert(c.Codes.size() == 1 && "Too many asm constraint codes to handle");
- const char *const *table = 0;
-
- //Grab the translation table from TargetAsmInfo if it exists
- if (!TAsm) {
- std::string E;
- const TargetMachineRegistry::entry* Match =
- TargetMachineRegistry::getClosestStaticTargetForModule(*TheModule, E);
- if (Match) {
- //Per platform Target Machines don't exist, so create it
- // this must be done only once
- const TargetMachine* TM = Match->CtorFn(*TheModule, "");
- TAsm = TM->getTargetAsmInfo();
- }
- }
- if (TAsm)
- table = TAsm->getAsmCBE();
+ // Grab the translation table from MCAsmInfo if it exists.
+ const MCAsmInfo *TargetAsm;
+ std::string Triple = TheModule->getTargetTriple();
+ if (Triple.empty())
+ Triple = llvm::sys::getHostTriple();
- //Search the translation table if it exists
+ std::string E;
+ if (const Target *Match = TargetRegistry::lookupTarget(Triple, E))
+ TargetAsm = Match->createAsmInfo(Triple);
+ else
+ return c.Codes[0];
+
+ const char *const *table = TargetAsm->getAsmCBE();
+
+ // Search the translation table if it exists.
for (int i = 0; table && table[i]; i += 2)
- if (c.Codes[0] == table[i])
+ if (c.Codes[0] == table[i]) {
+ delete TargetAsm;
return table[i+1];
+ }
- //default is identity
+ // Default is identity.
+ delete TargetAsm;
return c.Codes[0];
}
if (asmstr[i + 1] == '{') {
std::string::size_type a = asmstr.find_first_of(':', i + 1);
std::string::size_type b = asmstr.find_first_of('}', i + 1);
- std::string n = "%" +
+ std::string n = "%" +
asmstr.substr(a + 1, b - a - 1) +
asmstr.substr(i + 2, a - i - 2);
asmstr.replace(i, b - i + 1, n);
}
else if (asmstr[i] == '%')//grr
{ asmstr.replace(i, 1, "%%"); ++i;}
-
+
return asmstr;
}
//TODO: assumptions about what consume arguments from the call are likely wrong
// handle communitivity
void CWriter::visitInlineAsm(CallInst &CI) {
- InlineAsm* as = cast<InlineAsm>(CI.getOperand(0));
- std::vector<InlineAsm::ConstraintInfo> Constraints = as->ParseConstraints();
-
+ InlineAsm* as = cast<InlineAsm>(CI.getCalledValue());
+ InlineAsm::ConstraintInfoVector Constraints = as->ParseConstraints();
+
std::vector<std::pair<Value*, int> > ResultVals;
- if (CI.getType() == Type::VoidTy)
+ if (CI.getType() == Type::getVoidTy(CI.getContext()))
;
else if (const StructType *ST = dyn_cast<StructType>(CI.getType())) {
for (unsigned i = 0, e = ST->getNumElements(); i != e; ++i)
} else {
ResultVals.push_back(std::make_pair(&CI, -1));
}
-
+
// Fix up the asm string for gcc and emit it.
Out << "__asm__ volatile (\"" << gccifyAsm(as->getAsmString()) << "\"\n";
Out << " :";
unsigned ValueCount = 0;
bool IsFirst = true;
-
+
// Convert over all the output constraints.
- for (std::vector<InlineAsm::ConstraintInfo>::iterator I = Constraints.begin(),
+ for (InlineAsm::ConstraintInfoVector::iterator I = Constraints.begin(),
E = Constraints.end(); I != E; ++I) {
-
+
if (I->Type != InlineAsm::isOutput) {
++ValueCount;
continue; // Ignore non-output constraints.
}
-
+
assert(I->Codes.size() == 1 && "Too many asm constraint codes to handle");
std::string C = InterpretASMConstraint(*I);
if (C.empty()) continue;
-
+
if (!IsFirst) {
Out << ", ";
IsFirst = false;
// Unpack the dest.
Value *DestVal;
int DestValNo = -1;
-
+
if (ValueCount < ResultVals.size()) {
DestVal = ResultVals[ValueCount].first;
DestValNo = ResultVals[ValueCount].second;
} else
- DestVal = CI.getOperand(ValueCount-ResultVals.size()+1);
+ DestVal = CI.getArgOperand(ValueCount-ResultVals.size());
if (I->isEarlyClobber)
C = "&"+C;
-
+
Out << "\"=" << C << "\"(" << GetValueName(DestVal);
if (DestValNo != -1)
Out << ".field" << DestValNo; // Multiple retvals.
Out << ")";
++ValueCount;
}
-
-
+
+
// Convert over all the input constraints.
Out << "\n :";
IsFirst = true;
ValueCount = 0;
- for (std::vector<InlineAsm::ConstraintInfo>::iterator I = Constraints.begin(),
+ for (InlineAsm::ConstraintInfoVector::iterator I = Constraints.begin(),
E = Constraints.end(); I != E; ++I) {
if (I->Type != InlineAsm::isInput) {
++ValueCount;
continue; // Ignore non-input constraints.
}
-
+
assert(I->Codes.size() == 1 && "Too many asm constraint codes to handle");
std::string C = InterpretASMConstraint(*I);
if (C.empty()) continue;
-
+
if (!IsFirst) {
Out << ", ";
IsFirst = false;
}
-
+
assert(ValueCount >= ResultVals.size() && "Input can't refer to result");
- Value *SrcVal = CI.getOperand(ValueCount-ResultVals.size()+1);
-
+ Value *SrcVal = CI.getArgOperand(ValueCount-ResultVals.size());
+
Out << "\"" << C << "\"(";
if (!I->isIndirect)
writeOperand(SrcVal);
writeOperandDeref(SrcVal);
Out << ")";
}
-
+
// Convert over the clobber constraints.
IsFirst = true;
- ValueCount = 0;
- for (std::vector<InlineAsm::ConstraintInfo>::iterator I = Constraints.begin(),
+ for (InlineAsm::ConstraintInfoVector::iterator I = Constraints.begin(),
E = Constraints.end(); I != E; ++I) {
if (I->Type != InlineAsm::isClobber)
continue; // Ignore non-input constraints.
assert(I->Codes.size() == 1 && "Too many asm constraint codes to handle");
std::string C = InterpretASMConstraint(*I);
if (C.empty()) continue;
-
+
if (!IsFirst) {
Out << ", ";
IsFirst = false;
}
-
+
Out << '\"' << C << '"';
}
-
- Out << ")";
-}
-void CWriter::visitMallocInst(MallocInst &I) {
- assert(0 && "lowerallocations pass didn't work!");
+ Out << ")";
}
void CWriter::visitAllocaInst(AllocaInst &I) {
Out << ')';
}
-void CWriter::visitFreeInst(FreeInst &I) {
- assert(0 && "lowerallocations pass didn't work!");
-}
-
void CWriter::printGEPExpression(Value *Ptr, gep_type_iterator I,
gep_type_iterator E, bool Static) {
-
+
// If there are no indices, just print out the pointer.
if (I == E) {
writeOperand(Ptr);
return;
}
-
+
// Find out if the last index is into a vector. If so, we have to print this
// specially. Since vectors can't have elements of indexable type, only the
// last index could possibly be of a vector element.
for (gep_type_iterator TmpI = I; TmpI != E; ++TmpI)
LastIndexIsVector = dyn_cast<VectorType>(*TmpI);
}
-
+
Out << "(";
-
+
// If the last index is into a vector, we can't print it as &a[i][j] because
// we can't index into a vector with j in GCC. Instead, emit this as
// (((float*)&a[i])+j)
printType(Out, PointerType::getUnqual(LastIndexIsVector->getElementType()));
Out << ")(";
}
-
+
Out << '&';
// If the first index is 0 (very typical) we can do a number of
// exposed, like a global, avoid emitting (&foo)[0], just emit foo instead.
if (isAddressExposed(Ptr)) {
writeOperandInternal(Ptr, Static);
- } else if (I != E && isa<StructType>(*I)) {
+ } else if (I != E && (*I)->isStructTy()) {
// If we didn't already emit the first operand, see if we can print it as
// P->f instead of "P[0].f"
writeOperand(Ptr);
}
for (; I != E; ++I) {
- if (isa<StructType>(*I)) {
+ if ((*I)->isStructTy()) {
Out << ".field" << cast<ConstantInt>(I.getOperand())->getZExtValue();
- } else if (isa<ArrayType>(*I)) {
+ } else if ((*I)->isArrayTy()) {
Out << ".array[";
writeOperandWithCast(I.getOperand(), Instruction::GetElementPtr);
Out << ']';
- } else if (!isa<VectorType>(*I)) {
+ } else if (!(*I)->isVectorTy()) {
Out << '[';
writeOperandWithCast(I.getOperand(), Instruction::GetElementPtr);
Out << ']';
if (BitMask) {
Out << ") & ";
printConstant(BitMask, false);
- Out << ")";
+ Out << ")";
}
}
void CWriter::visitExtractElementInst(ExtractElementInst &I) {
// We know that our operand is not inlined.
Out << "((";
- const Type *EltTy =
+ const Type *EltTy =
cast<VectorType>(I.getOperand(0)->getType())->getElementType();
printType(Out, PointerType::getUnqual(EltTy));
Out << ")(&" << GetValueName(I.getOperand(0)) << "))[";
i != e; ++i) {
const Type *IndexedTy =
ExtractValueInst::getIndexedType(IVI.getOperand(0)->getType(), b, i+1);
- if (isa<ArrayType>(IndexedTy))
+ if (IndexedTy->isArrayTy())
Out << ".array[" << *i << "]";
else
Out << ".field" << *i;
i != e; ++i) {
const Type *IndexedTy =
ExtractValueInst::getIndexedType(EVI.getOperand(0)->getType(), b, i+1);
- if (isa<ArrayType>(IndexedTy))
+ if (IndexedTy->isArrayTy())
Out << ".array[" << *i << "]";
else
Out << ".field" << *i;
// External Interface declaration
//===----------------------------------------------------------------------===//
-bool CTargetMachine::addPassesToEmitWholeFile(PassManager &PM,
- raw_ostream &o,
- CodeGenFileType FileType,
- CodeGenOpt::Level OptLevel) {
- if (FileType != TargetMachine::AssemblyFile) return true;
+bool CTargetMachine::addPassesToEmitFile(PassManagerBase &PM,
+ formatted_raw_ostream &o,
+ CodeGenFileType FileType,
+ CodeGenOpt::Level OptLevel,
+ bool DisableVerify) {
+ if (FileType != TargetMachine::CGFT_AssemblyFile) return true;
PM.add(createGCLoweringPass());
- PM.add(createLowerAllocationsPass(true));
PM.add(createLowerInvokePass());
PM.add(createCFGSimplificationPass()); // clean up after lower invoke.
PM.add(new CBackendNameAllUsedStructsAndMergeFunctions());