SDValue ARM64SelectionDAGInfo::EmitTargetCodeForMemset( SelectionDAG &DAG, SDLoc dl, SDValue Chain, SDValue Dst, SDValue Src, SDValue Size, unsigned Align, bool isVolatile, MachinePointerInfo DstPtrInfo) const { // Check to see if there is a specialized entry-point for memory zeroing. ConstantSDNode *V = dyn_cast<ConstantSDNode>(Src); ConstantSDNode *SizeValue = dyn_cast<ConstantSDNode>(Size); const char *bzeroEntry = (V && V->isNullValue()) ? Subtarget->getBZeroEntry() : 0; // For small size (< 256), it is not beneficial to use bzero // instead of memset. if (bzeroEntry && (!SizeValue || SizeValue->getZExtValue() > 256)) { const ARM64TargetLowering &TLI = *static_cast<const ARM64TargetLowering *>( DAG.getTarget().getTargetLowering()); EVT IntPtr = TLI.getPointerTy(); Type *IntPtrTy = getDataLayout()->getIntPtrType(*DAG.getContext()); TargetLowering::ArgListTy Args; TargetLowering::ArgListEntry Entry; Entry.Node = Dst; Entry.Ty = IntPtrTy; Args.push_back(Entry); Entry.Node = Size; Args.push_back(Entry); TargetLowering::CallLoweringInfo CLI( Chain, Type::getVoidTy(*DAG.getContext()), false, false, false, false, 0, CallingConv::C, /*isTailCall=*/false, /*doesNotRet=*/false, /*isReturnValueUsed=*/false, DAG.getExternalSymbol(bzeroEntry, IntPtr), Args, DAG, dl); std::pair<SDValue, SDValue> CallResult = TLI.LowerCallTo(CLI); return CallResult.second; } return SDValue(); }
SDValue XCoreSelectionDAGInfo:: EmitTargetCodeForMemcpy(SelectionDAG &DAG, SDLoc dl, SDValue Chain, SDValue Dst, SDValue Src, SDValue Size, unsigned Align, bool isVolatile, bool AlwaysInline, MachinePointerInfo DstPtrInfo, MachinePointerInfo SrcPtrInfo) const { unsigned SizeBitWidth = Size.getValueType().getSizeInBits(); // Call __memcpy_4 if the src, dst and size are all 4 byte aligned. if (!AlwaysInline && (Align & 3) == 0 && DAG.MaskedValueIsZero(Size, APInt(SizeBitWidth, 3))) { const TargetLowering &TLI = *DAG.getTarget().getTargetLowering(); TargetLowering::ArgListTy Args; TargetLowering::ArgListEntry Entry; Entry.Ty = TLI.getDataLayout()->getIntPtrType(*DAG.getContext()); Entry.Node = Dst; Args.push_back(Entry); Entry.Node = Src; Args.push_back(Entry); Entry.Node = Size; Args.push_back(Entry); TargetLowering::CallLoweringInfo CLI(DAG); CLI.setDebugLoc(dl).setChain(Chain) .setCallee(TLI.getLibcallCallingConv(RTLIB::MEMCPY), Type::getVoidTy(*DAG.getContext()), DAG.getExternalSymbol("__memcpy_4", TLI.getPointerTy()), &Args, 0) .setDiscardResult(); std::pair<SDValue,SDValue> CallResult = TLI.LowerCallTo(CLI); return CallResult.second; } // Otherwise have the target-independent code call memcpy. return SDValue(); }
// Adjust parameters for memset, EABI uses format (ptr, size, value), // GNU library uses (ptr, value, size) // See RTABI section 4.3.4 SDValue ARMSelectionDAGInfo:: EmitTargetCodeForMemset(SelectionDAG &DAG, SDLoc dl, SDValue Chain, SDValue Dst, SDValue Src, SDValue Size, unsigned Align, bool isVolatile, MachinePointerInfo DstPtrInfo) const { // Use default for non AAPCS (or Darwin) subtargets if (!Subtarget->isAAPCS_ABI() || Subtarget->isTargetDarwin()) return SDValue(); const ARMTargetLowering &TLI = *static_cast<const ARMTargetLowering*>(DAG.getTarget().getTargetLowering()); TargetLowering::ArgListTy Args; TargetLowering::ArgListEntry Entry; // First argument: data pointer Type *IntPtrTy = TLI.getDataLayout()->getIntPtrType(*DAG.getContext()); Entry.Node = Dst; Entry.Ty = IntPtrTy; Args.push_back(Entry); // Second argument: buffer size Entry.Node = Size; Entry.Ty = IntPtrTy; Entry.isSExt = false; Args.push_back(Entry); // Extend or truncate the argument to be an i32 value for the call. if (Src.getValueType().bitsGT(MVT::i32)) Src = DAG.getNode(ISD::TRUNCATE, dl, MVT::i32, Src); else Src = DAG.getNode(ISD::ZERO_EXTEND, dl, MVT::i32, Src); // Third argument: value to fill Entry.Node = Src; Entry.Ty = Type::getInt32Ty(*DAG.getContext()); Entry.isSExt = true; Args.push_back(Entry); // Emit __eabi_memset call TargetLowering::CallLoweringInfo CLI(Chain, Type::getVoidTy(*DAG.getContext()), // return type false, // return sign ext false, // return zero ext false, // is var arg false, // is in regs 0, // number of fixed arguments TLI.getLibcallCallingConv(RTLIB::MEMSET), // call conv false, // is tail call false, // does not return false, // is return val used DAG.getExternalSymbol(TLI.getLibcallName(RTLIB::MEMSET), TLI.getPointerTy()), // callee Args, DAG, dl); std::pair<SDValue,SDValue> CallResult = TLI.LowerCallTo(CLI); return CallResult.second; }
SDValue HexagonSelectionDAGInfo::EmitTargetCodeForMemcpy( SelectionDAG &DAG, const SDLoc &dl, SDValue Chain, SDValue Dst, SDValue Src, SDValue Size, unsigned Align, bool isVolatile, bool AlwaysInline, MachinePointerInfo DstPtrInfo, MachinePointerInfo SrcPtrInfo) const { ConstantSDNode *ConstantSize = dyn_cast<ConstantSDNode>(Size); if (AlwaysInline || (Align & 0x3) != 0 || !ConstantSize) return SDValue(); uint64_t SizeVal = ConstantSize->getZExtValue(); if (SizeVal < 32 || (SizeVal % 8) != 0) return SDValue(); // Special case aligned memcpys with size >= 32 bytes and a multiple of 8. // const TargetLowering &TLI = *DAG.getSubtarget().getTargetLowering(); TargetLowering::ArgListTy Args; TargetLowering::ArgListEntry Entry; Entry.Ty = DAG.getDataLayout().getIntPtrType(*DAG.getContext()); Entry.Node = Dst; Args.push_back(Entry); Entry.Node = Src; Args.push_back(Entry); Entry.Node = Size; Args.push_back(Entry); const char *SpecialMemcpyName = "__hexagon_memcpy_likely_aligned_min32bytes_mult8bytes"; TargetLowering::CallLoweringInfo CLI(DAG); CLI.setDebugLoc(dl) .setChain(Chain) .setCallee(TLI.getLibcallCallingConv(RTLIB::MEMCPY), Type::getVoidTy(*DAG.getContext()), DAG.getTargetExternalSymbol( SpecialMemcpyName, TLI.getPointerTy(DAG.getDataLayout())), std::move(Args)) .setDiscardResult(); std::pair<SDValue, SDValue> CallResult = TLI.LowerCallTo(CLI); return CallResult.second; }
// Emit, if possible, a specialized version of the given Libcall. Typically this // means selecting the appropriately aligned version, but we also convert memset // of 0 into memclr. SDValue ARMSelectionDAGInfo::EmitSpecializedLibcall( SelectionDAG &DAG, const SDLoc &dl, SDValue Chain, SDValue Dst, SDValue Src, SDValue Size, unsigned Align, RTLIB::Libcall LC) const { const ARMSubtarget &Subtarget = DAG.getMachineFunction().getSubtarget<ARMSubtarget>(); const ARMTargetLowering *TLI = Subtarget.getTargetLowering(); // Only use a specialized AEABI function if the default version of this // Libcall is an AEABI function. if (std::strncmp(TLI->getLibcallName(LC), "__aeabi", 7) != 0) return SDValue(); // Translate RTLIB::Libcall to AEABILibcall. We only do this in order to be // able to translate memset to memclr and use the value to index the function // name array. enum { AEABI_MEMCPY = 0, AEABI_MEMMOVE, AEABI_MEMSET, AEABI_MEMCLR } AEABILibcall; switch (LC) { case RTLIB::MEMCPY: AEABILibcall = AEABI_MEMCPY; break; case RTLIB::MEMMOVE: AEABILibcall = AEABI_MEMMOVE; break; case RTLIB::MEMSET: AEABILibcall = AEABI_MEMSET; if (ConstantSDNode *ConstantSrc = dyn_cast<ConstantSDNode>(Src)) if (ConstantSrc->getZExtValue() == 0) AEABILibcall = AEABI_MEMCLR; break; default: return SDValue(); } // Choose the most-aligned libcall variant that we can enum { ALIGN1 = 0, ALIGN4, ALIGN8 } AlignVariant; if ((Align & 7) == 0) AlignVariant = ALIGN8; else if ((Align & 3) == 0) AlignVariant = ALIGN4; else AlignVariant = ALIGN1; TargetLowering::ArgListTy Args; TargetLowering::ArgListEntry Entry; Entry.Ty = DAG.getDataLayout().getIntPtrType(*DAG.getContext()); Entry.Node = Dst; Args.push_back(Entry); if (AEABILibcall == AEABI_MEMCLR) { Entry.Node = Size; Args.push_back(Entry); } else if (AEABILibcall == AEABI_MEMSET) { // Adjust parameters for memset, EABI uses format (ptr, size, value), // GNU library uses (ptr, value, size) // See RTABI section 4.3.4 Entry.Node = Size; Args.push_back(Entry); // Extend or truncate the argument to be an i32 value for the call. if (Src.getValueType().bitsGT(MVT::i32)) Src = DAG.getNode(ISD::TRUNCATE, dl, MVT::i32, Src); else if (Src.getValueType().bitsLT(MVT::i32)) Src = DAG.getNode(ISD::ZERO_EXTEND, dl, MVT::i32, Src); Entry.Node = Src; Entry.Ty = Type::getInt32Ty(*DAG.getContext()); Entry.IsSExt = false; Args.push_back(Entry); } else { Entry.Node = Src; Args.push_back(Entry); Entry.Node = Size; Args.push_back(Entry); } char const *FunctionNames[4][3] = { { "__aeabi_memcpy", "__aeabi_memcpy4", "__aeabi_memcpy8" }, { "__aeabi_memmove", "__aeabi_memmove4", "__aeabi_memmove8" }, { "__aeabi_memset", "__aeabi_memset4", "__aeabi_memset8" }, { "__aeabi_memclr", "__aeabi_memclr4", "__aeabi_memclr8" } }; TargetLowering::CallLoweringInfo CLI(DAG); CLI.setDebugLoc(dl) .setChain(Chain) .setLibCallee( TLI->getLibcallCallingConv(LC), Type::getVoidTy(*DAG.getContext()), DAG.getExternalSymbol(FunctionNames[AEABILibcall][AlignVariant], TLI->getPointerTy(DAG.getDataLayout())), std::move(Args)) .setDiscardResult(); std::pair<SDValue,SDValue> CallResult = TLI->LowerCallTo(CLI); return CallResult.second; }
SDValue X86SelectionDAGInfo::EmitTargetCodeForMemset(SelectionDAG &DAG, SDLoc dl, SDValue Chain, SDValue Dst, SDValue Src, SDValue Size, unsigned Align, bool isVolatile, MachinePointerInfo DstPtrInfo) const { ConstantSDNode *ConstantSize = dyn_cast<ConstantSDNode>(Size); // If to a segment-relative address space, use the default lowering. if (DstPtrInfo.getAddrSpace() >= 256) return SDValue(); // If not DWORD aligned or size is more than the threshold, call the library. // The libc version is likely to be faster for these cases. It can use the // address value and run time information about the CPU. if ((Align & 3) != 0 || !ConstantSize || ConstantSize->getZExtValue() > Subtarget->getMaxInlineSizeThreshold()) { // Check to see if there is a specialized entry-point for memory zeroing. ConstantSDNode *V = dyn_cast<ConstantSDNode>(Src); if (const char *bzeroEntry = V && V->isNullValue() ? Subtarget->getBZeroEntry() : nullptr) { EVT IntPtr = TLI.getPointerTy(); Type *IntPtrTy = getDataLayout()->getIntPtrType(*DAG.getContext()); TargetLowering::ArgListTy Args; TargetLowering::ArgListEntry Entry; Entry.Node = Dst; Entry.Ty = IntPtrTy; Args.push_back(Entry); Entry.Node = Size; Args.push_back(Entry); TargetLowering::CallLoweringInfo CLI(DAG); CLI.setDebugLoc(dl).setChain(Chain) .setCallee(CallingConv::C, Type::getVoidTy(*DAG.getContext()), DAG.getExternalSymbol(bzeroEntry, IntPtr), &Args, 0) .setDiscardResult(); std::pair<SDValue,SDValue> CallResult = TLI.LowerCallTo(CLI); return CallResult.second; } // Otherwise have the target-independent code call memset. return SDValue(); } uint64_t SizeVal = ConstantSize->getZExtValue(); SDValue InFlag; EVT AVT; SDValue Count; ConstantSDNode *ValC = dyn_cast<ConstantSDNode>(Src); unsigned BytesLeft = 0; bool TwoRepStos = false; if (ValC) { unsigned ValReg; uint64_t Val = ValC->getZExtValue() & 255; // If the value is a constant, then we can potentially use larger sets. switch (Align & 3) { case 2: // WORD aligned AVT = MVT::i16; ValReg = X86::AX; Val = (Val << 8) | Val; break; case 0: // DWORD aligned AVT = MVT::i32; ValReg = X86::EAX; Val = (Val << 8) | Val; Val = (Val << 16) | Val; if (Subtarget->is64Bit() && ((Align & 0x7) == 0)) { // QWORD aligned AVT = MVT::i64; ValReg = X86::RAX; Val = (Val << 32) | Val; } break; default: // Byte aligned AVT = MVT::i8; ValReg = X86::AL; Count = DAG.getIntPtrConstant(SizeVal); break; } if (AVT.bitsGT(MVT::i8)) { unsigned UBytes = AVT.getSizeInBits() / 8; Count = DAG.getIntPtrConstant(SizeVal / UBytes); BytesLeft = SizeVal % UBytes; } Chain = DAG.getCopyToReg(Chain, dl, ValReg, DAG.getConstant(Val, AVT), InFlag); InFlag = Chain.getValue(1); } else { AVT = MVT::i8; Count = DAG.getIntPtrConstant(SizeVal); Chain = DAG.getCopyToReg(Chain, dl, X86::AL, Src, InFlag); InFlag = Chain.getValue(1); } Chain = DAG.getCopyToReg(Chain, dl, Subtarget->is64Bit() ? X86::RCX : X86::ECX, Count, InFlag); InFlag = Chain.getValue(1); Chain = DAG.getCopyToReg(Chain, dl, Subtarget->is64Bit() ? X86::RDI : X86::EDI, Dst, InFlag); InFlag = Chain.getValue(1); SDVTList Tys = DAG.getVTList(MVT::Other, MVT::Glue); SDValue Ops[] = { Chain, DAG.getValueType(AVT), InFlag }; Chain = DAG.getNode(X86ISD::REP_STOS, dl, Tys, Ops); if (TwoRepStos) { InFlag = Chain.getValue(1); Count = Size; EVT CVT = Count.getValueType(); SDValue Left = DAG.getNode(ISD::AND, dl, CVT, Count, DAG.getConstant((AVT == MVT::i64) ? 7 : 3, CVT)); Chain = DAG.getCopyToReg(Chain, dl, (CVT == MVT::i64) ? X86::RCX : X86::ECX, Left, InFlag); InFlag = Chain.getValue(1); Tys = DAG.getVTList(MVT::Other, MVT::Glue); SDValue Ops[] = { Chain, DAG.getValueType(MVT::i8), InFlag }; Chain = DAG.getNode(X86ISD::REP_STOS, dl, Tys, Ops); } else if (BytesLeft) { // Handle the last 1 - 7 bytes. unsigned Offset = SizeVal - BytesLeft; EVT AddrVT = Dst.getValueType(); EVT SizeVT = Size.getValueType(); Chain = DAG.getMemset(Chain, dl, DAG.getNode(ISD::ADD, dl, AddrVT, Dst, DAG.getConstant(Offset, AddrVT)), Src, DAG.getConstant(BytesLeft, SizeVT), Align, isVolatile, DstPtrInfo.getWithOffset(Offset)); } // TODO: Use a Tokenfactor, as in memcpy, instead of a single chain. return Chain; }
SDValue X86SelectionDAGInfo::EmitTargetCodeForMemset( SelectionDAG &DAG, const SDLoc &dl, SDValue Chain, SDValue Dst, SDValue Val, SDValue Size, unsigned Align, bool isVolatile, MachinePointerInfo DstPtrInfo) const { ConstantSDNode *ConstantSize = dyn_cast<ConstantSDNode>(Size); const X86Subtarget &Subtarget = DAG.getMachineFunction().getSubtarget<X86Subtarget>(); #ifndef NDEBUG // If the base register might conflict with our physical registers, bail out. const MCPhysReg ClobberSet[] = {X86::RCX, X86::RAX, X86::RDI, X86::ECX, X86::EAX, X86::EDI}; assert(!isBaseRegConflictPossible(DAG, ClobberSet)); #endif // If to a segment-relative address space, use the default lowering. if (DstPtrInfo.getAddrSpace() >= 256) return SDValue(); // If not DWORD aligned or size is more than the threshold, call the library. // The libc version is likely to be faster for these cases. It can use the // address value and run time information about the CPU. if ((Align & 3) != 0 || !ConstantSize || ConstantSize->getZExtValue() > Subtarget.getMaxInlineSizeThreshold()) { // Check to see if there is a specialized entry-point for memory zeroing. ConstantSDNode *ValC = dyn_cast<ConstantSDNode>(Val); if (const char *bzeroName = (ValC && ValC->isNullValue()) ? DAG.getTargetLoweringInfo().getLibcallName(RTLIB::BZERO) : nullptr) { const TargetLowering &TLI = DAG.getTargetLoweringInfo(); EVT IntPtr = TLI.getPointerTy(DAG.getDataLayout()); Type *IntPtrTy = DAG.getDataLayout().getIntPtrType(*DAG.getContext()); TargetLowering::ArgListTy Args; TargetLowering::ArgListEntry Entry; Entry.Node = Dst; Entry.Ty = IntPtrTy; Args.push_back(Entry); Entry.Node = Size; Args.push_back(Entry); TargetLowering::CallLoweringInfo CLI(DAG); CLI.setDebugLoc(dl) .setChain(Chain) .setLibCallee(CallingConv::C, Type::getVoidTy(*DAG.getContext()), DAG.getExternalSymbol(bzeroName, IntPtr), std::move(Args)) .setDiscardResult(); std::pair<SDValue,SDValue> CallResult = TLI.LowerCallTo(CLI); return CallResult.second; } // Otherwise have the target-independent code call memset. return SDValue(); } uint64_t SizeVal = ConstantSize->getZExtValue(); SDValue InFlag; EVT AVT; SDValue Count; ConstantSDNode *ValC = dyn_cast<ConstantSDNode>(Val); unsigned BytesLeft = 0; if (ValC) { unsigned ValReg; uint64_t Val = ValC->getZExtValue() & 255; // If the value is a constant, then we can potentially use larger sets. switch (Align & 3) { case 2: // WORD aligned AVT = MVT::i16; ValReg = X86::AX; Val = (Val << 8) | Val; break; case 0: // DWORD aligned AVT = MVT::i32; ValReg = X86::EAX; Val = (Val << 8) | Val; Val = (Val << 16) | Val; if (Subtarget.is64Bit() && ((Align & 0x7) == 0)) { // QWORD aligned AVT = MVT::i64; ValReg = X86::RAX; Val = (Val << 32) | Val; } break; default: // Byte aligned AVT = MVT::i8; ValReg = X86::AL; Count = DAG.getIntPtrConstant(SizeVal, dl); break; } if (AVT.bitsGT(MVT::i8)) { unsigned UBytes = AVT.getSizeInBits() / 8; Count = DAG.getIntPtrConstant(SizeVal / UBytes, dl); BytesLeft = SizeVal % UBytes; } Chain = DAG.getCopyToReg(Chain, dl, ValReg, DAG.getConstant(Val, dl, AVT), InFlag); InFlag = Chain.getValue(1); } else { AVT = MVT::i8; Count = DAG.getIntPtrConstant(SizeVal, dl); Chain = DAG.getCopyToReg(Chain, dl, X86::AL, Val, InFlag); InFlag = Chain.getValue(1); } bool Use64BitRegs = Subtarget.isTarget64BitLP64(); Chain = DAG.getCopyToReg(Chain, dl, Use64BitRegs ? X86::RCX : X86::ECX, Count, InFlag); InFlag = Chain.getValue(1); Chain = DAG.getCopyToReg(Chain, dl, Use64BitRegs ? X86::RDI : X86::EDI, Dst, InFlag); InFlag = Chain.getValue(1); SDVTList Tys = DAG.getVTList(MVT::Other, MVT::Glue); SDValue Ops[] = { Chain, DAG.getValueType(AVT), InFlag }; Chain = DAG.getNode(X86ISD::REP_STOS, dl, Tys, Ops); if (BytesLeft) { // Handle the last 1 - 7 bytes. unsigned Offset = SizeVal - BytesLeft; EVT AddrVT = Dst.getValueType(); EVT SizeVT = Size.getValueType(); Chain = DAG.getMemset(Chain, dl, DAG.getNode(ISD::ADD, dl, AddrVT, Dst, DAG.getConstant(Offset, dl, AddrVT)), Val, DAG.getConstant(BytesLeft, dl, SizeVT), Align, isVolatile, false, DstPtrInfo.getWithOffset(Offset)); } // TODO: Use a Tokenfactor, as in memcpy, instead of a single chain. return Chain; }