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SPIRVWriter.cpp
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SPIRVWriter.cpp
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//===- SPIRVWriter.cpp - Converts LLVM to SPIR-V ----------------*- C++ -*-===//
//
// The LLVM/SPIR-V Translator
//
// This file is distributed under the University of Illinois Open Source
// License. See LICENSE.TXT for details.
//
// Copyright (c) 2014 Advanced Micro Devices, Inc. All rights reserved.
//
// Permission is hereby granted, free of charge, to any person obtaining a
// copy of this software and associated documentation files (the "Software"),
// to deal with the Software without restriction, including without limitation
// the rights to use, copy, modify, merge, publish, distribute, sublicense,
// and/or sell copies of the Software, and to permit persons to whom the
// Software is furnished to do so, subject to the following conditions:
//
// Redistributions of source code must retain the above copyright notice,
// this list of conditions and the following disclaimers.
// Redistributions in binary form must reproduce the above copyright notice,
// this list of conditions and the following disclaimers in the documentation
// and/or other materials provided with the distribution.
// Neither the names of Advanced Micro Devices, Inc., nor the names of its
// contributors may be used to endorse or promote products derived from this
// Software without specific prior written permission.
// THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
// IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
// FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
// CONTRIBUTORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
// LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
// OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS WITH
// THE SOFTWARE.
//
//===----------------------------------------------------------------------===//
/// \file
///
/// This file implements conversion of LLVM intermediate language to SPIR-V
/// binary.
///
//===----------------------------------------------------------------------===//
#include "SPIRVWriter.h"
#include "LLVMToSPIRVDbgTran.h"
#include "OCLToSPIRV.h"
#include "PreprocessMetadata.h"
#include "SPIRVAsm.h"
#include "SPIRVBasicBlock.h"
#include "SPIRVEntry.h"
#include "SPIRVEnum.h"
#include "SPIRVExtInst.h"
#include "SPIRVFunction.h"
#include "SPIRVInstruction.h"
#include "SPIRVInternal.h"
#include "SPIRVLLVMUtil.h"
#include "SPIRVLowerBitCastToNonStandardType.h"
#include "SPIRVLowerBool.h"
#include "SPIRVLowerConstExpr.h"
#include "SPIRVLowerMemmove.h"
#include "SPIRVLowerOCLBlocks.h"
#include "SPIRVLowerSaddWithOverflow.h"
#include "SPIRVMDWalker.h"
#include "SPIRVMemAliasingINTEL.h"
#include "SPIRVModule.h"
#include "SPIRVRegularizeLLVM.h"
#include "SPIRVType.h"
#include "SPIRVUtil.h"
#include "SPIRVValue.h"
#include "VectorComputeUtil.h"
#include "llvm/ADT/DenseMap.h"
#include "llvm/ADT/StringSwitch.h"
#include "llvm/Analysis/LoopAnalysisManager.h"
#include "llvm/Analysis/LoopInfo.h"
#include "llvm/Analysis/ValueTracking.h"
#include "llvm/IR/Constants.h"
#include "llvm/IR/DerivedTypes.h"
#include "llvm/IR/Dominators.h"
#include "llvm/IR/Function.h"
#include "llvm/IR/InlineAsm.h"
#include "llvm/IR/InstrTypes.h"
#include "llvm/IR/Instructions.h"
#include "llvm/IR/IntrinsicInst.h"
#include "llvm/IR/Module.h"
#include "llvm/IR/Operator.h"
#include "llvm/IR/TypedPointerType.h"
#include "llvm/Pass.h"
#include "llvm/Passes/PassBuilder.h"
#include "llvm/Support/Casting.h"
#include "llvm/Support/CommandLine.h"
#include "llvm/Support/Debug.h"
#include "llvm/TargetParser/Triple.h"
#include "llvm/Transforms/Utils/LoopSimplify.h"
#include "llvm/Transforms/Utils/Mem2Reg.h"
#include <cstdlib>
#include <functional>
#include <iostream>
#include <memory>
#include <queue>
#include <regex>
#include <set>
#include <vector>
#define DEBUG_TYPE "spirv"
using namespace llvm;
using namespace SPIRV;
using namespace OCLUtil;
namespace {
static SPIRVWord convertFloatToSPIRVWord(float F) {
union {
float F;
SPIRVWord Spir;
} FPMaxError;
FPMaxError.F = F;
return FPMaxError.Spir;
}
} // namespace
namespace SPIRV {
static void foreachKernelArgMD(
MDNode *MD, SPIRVFunction *BF,
std::function<void(const std::string &Str, SPIRVFunctionParameter *BA)>
Func) {
assert(BF->getNumArguments() == MD->getNumOperands() &&
"Invalid kernel metadata: Number of metadata operands and kernel "
"arguments do not match");
for (unsigned I = 0, E = MD->getNumOperands(); I != E; ++I) {
SPIRVFunctionParameter *BA = BF->getArgument(I);
Func(getMDOperandAsString(MD, I).str(), BA);
}
}
static void foreachKernelArgMD(
MDNode *MD, SPIRVFunction *BF,
std::function<void(Metadata *MDOp, SPIRVFunctionParameter *BA)> Func) {
assert(BF->getNumArguments() == MD->getNumOperands() &&
"Invalid kernel metadata: Number of metadata operands and kernel "
"arguments do not match");
for (unsigned I = 0, E = MD->getNumOperands(); I != E; ++I) {
SPIRVFunctionParameter *BA = BF->getArgument(I);
Func(MD->getOperand(I), BA);
}
}
static SPIRVMemoryModelKind getMemoryModel(Module &M) {
auto *MemoryModelMD = M.getNamedMetadata(kSPIRVMD::MemoryModel);
if (MemoryModelMD && (MemoryModelMD->getNumOperands() > 0)) {
auto *Ref0 = MemoryModelMD->getOperand(0);
if (Ref0 && Ref0->getNumOperands() > 1) {
auto &&ModelOp = Ref0->getOperand(1);
auto *ModelCI = mdconst::dyn_extract<ConstantInt>(ModelOp);
if (ModelCI && (ModelCI->getValue().getActiveBits() <= 64)) {
auto Model = static_cast<SPIRVMemoryModelKind>(ModelCI->getZExtValue());
return Model;
}
}
}
return SPIRVMemoryModelKind::MemoryModelMax;
}
static void translateSEVDecoration(Attribute Sev, SPIRVValue *Val) {
assert(Sev.isStringAttribute() &&
Sev.getKindAsString() == kVCMetadata::VCSingleElementVector);
auto *Ty = Val->getType();
assert((Ty->isTypeBool() || Ty->isTypeFloat() || Ty->isTypeInt() ||
Ty->isTypePointer()) &&
"This decoration is valid only for Scalar or Pointer types");
if (Ty->isTypePointer()) {
SPIRVWord IndirectLevelsOnElement = 0;
Sev.getValueAsString().getAsInteger(0, IndirectLevelsOnElement);
Val->addDecorate(DecorationSingleElementVectorINTEL,
IndirectLevelsOnElement);
} else
Val->addDecorate(DecorationSingleElementVectorINTEL);
}
LLVMToSPIRVBase::LLVMToSPIRVBase(SPIRVModule *SMod)
: BuiltinCallHelper(ManglingRules::None), M(nullptr), Ctx(nullptr),
BM(SMod), SrcLang(0), SrcLangVer(0) {
DbgTran = std::make_unique<LLVMToSPIRVDbgTran>(nullptr, SMod, this);
}
LLVMToSPIRVBase::~LLVMToSPIRVBase() {
for (auto *I : UnboundInst)
I->deleteValue();
}
bool LLVMToSPIRVBase::runLLVMToSPIRV(Module &Mod) {
M = &Mod;
initialize(Mod);
CG = std::make_unique<CallGraph>(Mod);
Ctx = &M->getContext();
DbgTran->setModule(M);
assert(BM && "SPIR-V module not initialized");
translate();
return true;
}
SPIRVValue *LLVMToSPIRVBase::getTranslatedValue(const Value *V) const {
auto Loc = ValueMap.find(V);
if (Loc != ValueMap.end())
return Loc->second;
return nullptr;
}
bool LLVMToSPIRVBase::isKernel(Function *F) {
if (F->getCallingConv() == CallingConv::SPIR_KERNEL)
return true;
return false;
}
bool LLVMToSPIRVBase::isBuiltinTransToInst(Function *F) {
StringRef DemangledName;
if (!oclIsBuiltin(F->getName(), DemangledName) &&
!isDecoratedSPIRVFunc(F, DemangledName))
return false;
SPIRVDBG(spvdbgs() << "CallInst: demangled name: " << DemangledName.str()
<< '\n');
return getSPIRVFuncOC(DemangledName) != OpNop;
}
bool LLVMToSPIRVBase::isBuiltinTransToExtInst(
Function *F, SPIRVExtInstSetKind *ExtSet, SPIRVWord *ExtOp,
SmallVectorImpl<std::string> *Dec) {
StringRef DemangledName;
if (!oclIsBuiltin(F->getName(), DemangledName))
return false;
LLVM_DEBUG(dbgs() << "[oclIsBuiltinTransToExtInst] CallInst: demangled name: "
<< DemangledName << '\n');
StringRef S = DemangledName;
if (!S.starts_with(kSPIRVName::Prefix))
return false;
S = S.drop_front(strlen(kSPIRVName::Prefix));
auto Loc = S.find(kSPIRVPostfix::Divider);
auto ExtSetName = S.substr(0, Loc);
SPIRVExtInstSetKind Set = SPIRVEIS_Count;
if (!SPIRVExtSetShortNameMap::rfind(ExtSetName.str(), &Set))
return false;
assert((Set == SPIRVEIS_OpenCL || Set == BM->getDebugInfoEIS()) &&
"Unsupported extended instruction set");
auto ExtOpName = S.substr(Loc + 1);
auto Splited = ExtOpName.split(kSPIRVPostfix::ExtDivider);
OCLExtOpKind EOC;
if (!OCLExtOpMap::rfind(Splited.first.str(), &EOC))
return false;
if (ExtSet)
*ExtSet = Set;
if (ExtOp)
*ExtOp = EOC;
if (Dec) {
SmallVector<StringRef, 2> P;
Splited.second.split(P, kSPIRVPostfix::Divider);
for (auto &I : P)
Dec->push_back(I.str());
}
return true;
}
bool isUniformGroupOperation(Function *F) {
auto Name = F->getName();
if (Name.contains("GroupIMulKHR") || Name.contains("GroupFMulKHR") ||
Name.contains("GroupBitwiseAndKHR") ||
Name.contains("GroupBitwiseOrKHR") ||
Name.contains("GroupBitwiseXorKHR") ||
Name.contains("GroupLogicalAndKHR") ||
Name.contains("GroupLogicalOrKHR") || Name.contains("GroupLogicalXorKHR"))
return true;
return false;
}
static bool recursiveType(const StructType *ST, const Type *Ty) {
SmallPtrSet<const StructType *, 4> Seen;
std::function<bool(const Type *Ty)> Run = [&](const Type *Ty) {
if (auto *StructTy = dyn_cast<StructType>(Ty)) {
if (StructTy == ST)
return true;
if (Seen.count(StructTy))
return false;
Seen.insert(StructTy);
return find_if(StructTy->element_begin(), StructTy->element_end(), Run) !=
StructTy->element_end();
}
if (auto *ArrayTy = dyn_cast<ArrayType>(Ty))
return Run(ArrayTy->getArrayElementType());
return false;
};
return Run(Ty);
}
// Add decoration if needed
void addFPBuiltinDecoration(SPIRVModule *BM, Instruction *Inst,
SPIRVInstruction *I) {
bool AllowFPMaxError =
BM->isAllowedToUseExtension(ExtensionID::SPV_INTEL_fp_max_error);
auto *II = dyn_cast_or_null<IntrinsicInst>(Inst);
if (II && II->getCalledFunction()->getName().starts_with("llvm.fpbuiltin")) {
// Add a new decoration for llvm.builtin intrinsics, if needed
if (II->getAttributes().hasFnAttr("fpbuiltin-max-error")) {
BM->getErrorLog().checkError(AllowFPMaxError, SPIRVEC_RequiresExtension,
"SPV_INTEL_fp_max_error\n");
double F = 0.0;
II->getAttributes()
.getFnAttr("fpbuiltin-max-error")
.getValueAsString()
.getAsDouble(F);
I->addDecorate(DecorationFPMaxErrorDecorationINTEL,
convertFloatToSPIRVWord(F));
}
} else if (auto *MD = Inst->getMetadata("fpmath")) {
if (!AllowFPMaxError)
return;
auto *MDVal = mdconst::dyn_extract<ConstantFP>(MD->getOperand(0));
double ValAsDouble = MDVal->getValue().convertToFloat();
I->addDecorate(DecorationFPMaxErrorDecorationINTEL,
convertFloatToSPIRVWord(ValAsDouble));
}
}
SPIRVType *LLVMToSPIRVBase::transType(Type *T) {
LLVMToSPIRVTypeMap::iterator Loc = TypeMap.find(T);
if (Loc != TypeMap.end())
return Loc->second;
SPIRVDBG(dbgs() << "[transType] " << *T << '\n');
if (T->isVoidTy())
return mapType(T, BM->addVoidType());
if (T->isIntegerTy(1))
return mapType(T, BM->addBoolType());
if (T->isIntegerTy()) {
unsigned BitWidth = T->getIntegerBitWidth();
// SPIR-V 2.16.1. Universal Validation Rules: Scalar integer types can be
// parameterized only as 32 bit, plus any additional sizes enabled by
// capabilities.
if (BM->isAllowedToUseExtension(
ExtensionID::SPV_INTEL_arbitrary_precision_integers) ||
BM->getErrorLog().checkError(
BitWidth == 8 || BitWidth == 16 || BitWidth == 32 || BitWidth == 64,
SPIRVEC_InvalidBitWidth, std::to_string(BitWidth))) {
return mapType(T, BM->addIntegerType(T->getIntegerBitWidth()));
}
}
if (T->isFloatingPointTy())
return mapType(T, BM->addFloatType(T->getPrimitiveSizeInBits()));
if (T->isTokenTy()) {
BM->getErrorLog().checkError(
BM->isAllowedToUseExtension(ExtensionID::SPV_INTEL_token_type),
SPIRVEC_RequiresExtension,
"SPV_INTEL_token_type\n"
"NOTE: LLVM module contains token type, which doesn't have analogs in "
"SPIR-V without extensions");
return mapType(T, BM->addTokenTypeINTEL());
}
// A pointer to image or pipe type in LLVM is translated to a SPIRV
// (non-pointer) image or pipe type.
if (T->isPointerTy()) {
auto *ET = Type::getInt8Ty(T->getContext());
auto AddrSpc = T->getPointerAddressSpace();
return transPointerType(ET, AddrSpc);
}
if (auto *TPT = dyn_cast<TypedPointerType>(T)) {
return transPointerType(TPT->getElementType(), TPT->getAddressSpace());
}
if (auto *VecTy = dyn_cast<FixedVectorType>(T)) {
if (VecTy->getElementType()->isPointerTy() ||
isa<TypedPointerType>(VecTy->getElementType())) {
// SPV_INTEL_masked_gather_scatter extension changes 2.16.1. Universal
// Validation Rules:
// Vector types must be parameterized only with numerical types,
// [Physical Pointer Type] types or the [OpTypeBool] type.
// Without it vector of pointers is not allowed in SPIR-V.
if (!BM->isAllowedToUseExtension(
ExtensionID::SPV_INTEL_masked_gather_scatter)) {
BM->getErrorLog().checkError(
false, SPIRVEC_RequiresExtension,
"SPV_INTEL_masked_gather_scatter\n"
"NOTE: LLVM module contains vector of pointers, translation "
"of which requires this extension");
return nullptr;
}
BM->addExtension(ExtensionID::SPV_INTEL_masked_gather_scatter);
BM->addCapability(internal::CapabilityMaskedGatherScatterINTEL);
}
return mapType(T, BM->addVectorType(transType(VecTy->getElementType()),
VecTy->getNumElements()));
}
if (T->isArrayTy()) {
// SPIR-V 1.3 s3.32.6: Length is the number of elements in the array.
// It must be at least 1.
if (T->getArrayNumElements() < 1) {
std::string Str;
llvm::raw_string_ostream OS(Str);
OS << *T;
SPIRVCK(T->getArrayNumElements() >= 1, InvalidArraySize, OS.str());
}
Type *ElTy = T->getArrayElementType();
SPIRVType *TransType = BM->addArrayType(
transType(ElTy),
static_cast<SPIRVConstant *>(transValue(
ConstantInt::get(getSizetType(), T->getArrayNumElements(), false),
nullptr)));
mapType(T, TransType);
if (ElTy->isPointerTy()) {
mapType(
ArrayType::get(TypedPointerType::get(Type::getInt8Ty(*Ctx),
ElTy->getPointerAddressSpace()),
T->getArrayNumElements()),
TransType);
}
return TransType;
}
if (T->isStructTy() && !T->isSized()) {
auto *ST = dyn_cast<StructType>(T);
(void)ST; // Silence warning
assert(!ST->getName().starts_with(kSPR2TypeName::PipeRO));
assert(!ST->getName().starts_with(kSPR2TypeName::PipeWO));
assert(!ST->getName().starts_with(kSPR2TypeName::ImagePrefix));
return mapType(T, BM->addOpaqueType(T->getStructName().str()));
}
if (auto *ST = dyn_cast<StructType>(T)) {
assert(ST->isSized());
StringRef Name;
if (ST->hasName())
Name = ST->getName();
if (Name == getSPIRVTypeName(kSPIRVTypeName::ConstantSampler))
return transSPIRVOpaqueType("spirv.Sampler", SPIRAS_Constant);
if (Name == getSPIRVTypeName(kSPIRVTypeName::ConstantPipeStorage))
return transSPIRVOpaqueType("spirv.PipeStorage", SPIRAS_Constant);
constexpr size_t MaxNumElements = MaxWordCount - SPIRVTypeStruct::FixedWC;
const size_t NumElements = ST->getNumElements();
size_t SPIRVStructNumElements = NumElements;
// In case number of elements is greater than maximum WordCount and
// SPV_INTEL_long_constant_composite is not enabled, the error will be
// emitted by validate functionality of SPIRVTypeStruct class.
if (NumElements > MaxNumElements &&
BM->isAllowedToUseExtension(
ExtensionID::SPV_INTEL_long_constant_composite)) {
SPIRVStructNumElements = MaxNumElements;
}
auto *Struct = BM->openStructType(SPIRVStructNumElements, Name.str());
mapType(T, Struct);
if (NumElements > MaxNumElements &&
BM->isAllowedToUseExtension(
ExtensionID::SPV_INTEL_long_constant_composite)) {
uint64_t NumOfContinuedInstructions = NumElements / MaxNumElements - 1;
for (uint64_t J = 0; J < NumOfContinuedInstructions; J++) {
auto *Continued = BM->addTypeStructContinuedINTEL(MaxNumElements);
Struct->addContinuedInstruction(
static_cast<SPIRVTypeStruct::ContinuedInstType>(Continued));
}
uint64_t Remains = NumElements % MaxNumElements;
if (Remains) {
auto *Continued = BM->addTypeStructContinuedINTEL(Remains);
Struct->addContinuedInstruction(
static_cast<SPIRVTypeStruct::ContinuedInstType>(Continued));
}
}
SmallVector<unsigned, 4> ForwardRefs;
for (unsigned I = 0, E = T->getStructNumElements(); I != E; ++I) {
auto *ElemTy = ST->getElementType(I);
if ((isa<StructType>(ElemTy) || isa<ArrayType>(ElemTy) ||
isa<VectorType>(ElemTy) || isa<PointerType>(ElemTy)) &&
recursiveType(ST, ElemTy))
ForwardRefs.push_back(I);
else
Struct->setMemberType(I, transType(ST->getElementType(I)));
}
BM->closeStructType(Struct, ST->isPacked());
for (auto I : ForwardRefs)
Struct->setMemberType(I, transType(ST->getElementType(I)));
return Struct;
}
if (FunctionType *FT = dyn_cast<FunctionType>(T)) {
SPIRVType *RT = transType(FT->getReturnType());
std::vector<SPIRVType *> PT;
for (FunctionType::param_iterator I = FT->param_begin(),
E = FT->param_end();
I != E; ++I)
PT.push_back(transType(*I));
return mapType(T, getSPIRVFunctionType(RT, PT));
}
if (auto *TargetTy = dyn_cast<TargetExtType>(T)) {
StringRef Name = TargetTy->getName();
if (Name.consume_front(kSPIRVTypeName::PrefixAndDelim)) {
auto Opcode = SPIRVOpaqueTypeOpCodeMap::map(Name.str());
auto CastAccess = [](unsigned Val) {
return static_cast<SPIRVAccessQualifierKind>(Val);
};
switch (static_cast<size_t>(Opcode)) {
case OpTypePipe: {
auto *PipeT = BM->addPipeType();
PipeT->setPipeAcessQualifier(CastAccess(TargetTy->getIntParameter(0)));
return mapType(T, PipeT);
}
case OpTypeImage: {
auto *SampledTy = transType(TargetTy->getTypeParameter(0));
ArrayRef<unsigned> Ops = TargetTy->int_params();
SPIRVTypeImageDescriptor Desc(static_cast<SPIRVImageDimKind>(Ops[0]),
Ops[1], Ops[2], Ops[3], Ops[4], Ops[5]);
return mapType(T,
BM->addImageType(SampledTy, Desc, CastAccess(Ops[6])));
}
case OpTypeSampledImage: {
auto *ImageTy = static_cast<SPIRVTypeImage *>(transType(adjustImageType(
T, kSPIRVTypeName::SampledImg, kSPIRVTypeName::Image)));
return mapType(T, BM->addSampledImageType(ImageTy));
}
case OpTypeVmeImageINTEL: {
auto *ImageTy = static_cast<SPIRVTypeImage *>(transType(adjustImageType(
T, kSPIRVTypeName::VmeImageINTEL, kSPIRVTypeName::Image)));
return mapType(T, BM->addVmeImageINTELType(ImageTy));
}
case OpTypeQueue:
return mapType(T, BM->addQueueType());
case OpTypeDeviceEvent:
return mapType(T, BM->addDeviceEventType());
case OpTypeBufferSurfaceINTEL: {
ArrayRef<unsigned> Ops = TargetTy->int_params();
return mapType(T, BM->addBufferSurfaceINTELType(CastAccess(Ops[0])));
}
case internal::OpTypeJointMatrixINTEL: {
// The expected representation is:
// target("spirv.JointMatrixINTEL", %element_type, %rows%, %cols%,
// %layout%, %scope%, %use%,
// (optional) %element_type_interpretation%)
auto *ElemTy = transType(TargetTy->getTypeParameter(0));
ArrayRef<unsigned> Ops = TargetTy->int_params();
std::vector<SPIRVValue *> Args;
for (const auto &Op : Ops)
Args.emplace_back(transConstant(getUInt32(M, Op)));
return mapType(T, BM->addJointMatrixINTELType(ElemTy, Args));
}
case OpTypeCooperativeMatrixKHR: {
// The expected representation is:
// target("spirv.CooperativeMatrixKHR", %element_type, %scope%, %rows%,
// %cols%, %use%)
auto *ElemTy = transType(TargetTy->getTypeParameter(0));
ArrayRef<unsigned> Ops = TargetTy->int_params();
std::vector<SPIRVValue *> Args;
for (const auto &Op : Ops)
Args.emplace_back(transConstant(getUInt32(M, Op)));
return mapType(T, BM->addCooperativeMatrixKHRType(ElemTy, Args));
}
default:
if (isSubgroupAvcINTELTypeOpCode(Opcode))
return mapType(T, BM->addSubgroupAvcINTELType(Opcode));
return mapType(T, BM->addOpaqueGenericType(Opcode));
}
}
}
llvm_unreachable("Not implemented!");
return 0;
}
SPIRVType *LLVMToSPIRVBase::transPointerType(Type *ET, unsigned AddrSpc) {
Type *T = PointerType::get(ET, AddrSpc);
if (ET->isFunctionTy() &&
!BM->checkExtension(ExtensionID::SPV_INTEL_function_pointers,
SPIRVEC_FunctionPointers, toString(T)))
return nullptr;
std::string TypeKey = (Twine((uintptr_t)ET) + Twine(AddrSpc)).str();
auto Loc = PointeeTypeMap.find(TypeKey);
if (Loc != PointeeTypeMap.end())
return Loc->second;
// A pointer to image or pipe type in LLVM is translated to a SPIRV
// (non-pointer) image or pipe type.
auto *ST = dyn_cast<StructType>(ET);
// Lower global_device and global_host address spaces that were added in
// SYCL as part of SYCL_INTEL_usm_address_spaces extension to just global
// address space if device doesn't support SPV_INTEL_usm_storage_classes
// extension
if (!BM->isAllowedToUseExtension(
ExtensionID::SPV_INTEL_usm_storage_classes) &&
((AddrSpc == SPIRAS_GlobalDevice) || (AddrSpc == SPIRAS_GlobalHost))) {
return transPointerType(ET, SPIRAS_Global);
}
if (ST && !ST->isSized()) {
Op OpCode;
StringRef STName = ST->getName();
// Workaround for non-conformant SPIR binary
if (STName == "struct._event_t") {
STName = kSPR2TypeName::Event;
ST->setName(STName);
}
std::pair<StringRef, unsigned> Key = {STName, AddrSpc};
if (auto *MappedTy = OpaqueStructMap.lookup(Key))
return MappedTy;
auto SaveType = [&](SPIRVType *MappedTy) {
OpaqueStructMap[Key] = MappedTy;
PointeeTypeMap[TypeKey] = MappedTy;
return MappedTy;
};
if (STName.starts_with(kSPR2TypeName::PipeRO) ||
STName.starts_with(kSPR2TypeName::PipeWO)) {
auto *PipeT = BM->addPipeType();
PipeT->setPipeAcessQualifier(STName.starts_with(kSPR2TypeName::PipeRO)
? AccessQualifierReadOnly
: AccessQualifierWriteOnly);
return SaveType(PipeT);
}
if (STName.starts_with(kSPR2TypeName::ImagePrefix)) {
assert(AddrSpc == SPIRAS_Global);
Type *ImageTy =
adjustImageType(TypedPointerType::get(ST, AddrSpc),
kSPIRVTypeName::Image, kSPIRVTypeName::Image);
return SaveType(transType(ImageTy));
}
if (STName == kSPR2TypeName::Sampler)
return SaveType(transType(getSPIRVType(OpTypeSampler)));
if (STName.starts_with(kSPIRVTypeName::PrefixAndDelim))
return transSPIRVOpaqueType(STName, AddrSpc);
if (STName.starts_with(kOCLSubgroupsAVCIntel::TypePrefix))
return SaveType(BM->addSubgroupAvcINTELType(
OCLSubgroupINTELTypeOpCodeMap::map(ST->getName().str())));
if (OCLOpaqueTypeOpCodeMap::find(STName.str(), &OpCode)) {
Type *RealType = getSPIRVType(OpCode);
return SaveType(transType(RealType));
}
if (BM->isAllowedToUseExtension(ExtensionID::SPV_INTEL_vector_compute)) {
if (STName.starts_with(kVCType::VCBufferSurface)) {
// VCBufferSurface always have Access Qualifier
auto Access = getAccessQualifier(STName);
return SaveType(BM->addBufferSurfaceINTELType(Access));
}
}
if (ST->isOpaque()) {
return SaveType(BM->addPointerType(
SPIRSPIRVAddrSpaceMap::map(static_cast<SPIRAddressSpace>(AddrSpc)),
transType(ET)));
}
} else {
SPIRVType *ElementType = transType(ET);
// ET, as a recursive type, may contain exactly the same pointer T, so it
// may happen that after translation of ET we already have translated T,
// added the translated pointer to the SPIR-V module and mapped T to this
// pointer. Now we have to check PointeeTypeMap again.
auto Loc = PointeeTypeMap.find(TypeKey);
if (Loc != PointeeTypeMap.end()) {
return Loc->second;
}
SPIRVType *TranslatedTy = transPointerType(ElementType, AddrSpc);
PointeeTypeMap[TypeKey] = TranslatedTy;
return TranslatedTy;
}
llvm_unreachable("Not implemented!");
return nullptr;
}
SPIRVType *LLVMToSPIRVBase::transPointerType(SPIRVType *ET, unsigned AddrSpc) {
std::string TypeKey = (Twine((uintptr_t)ET) + Twine(AddrSpc)).str();
auto Loc = PointeeTypeMap.find(TypeKey);
if (Loc != PointeeTypeMap.end())
return Loc->second;
SPIRVType *TranslatedTy = BM->addPointerType(
SPIRSPIRVAddrSpaceMap::map(static_cast<SPIRAddressSpace>(AddrSpc)), ET);
PointeeTypeMap[TypeKey] = TranslatedTy;
return TranslatedTy;
}
SPIRVType *LLVMToSPIRVBase::transSPIRVOpaqueType(StringRef STName,
unsigned AddrSpace) {
std::pair<StringRef, unsigned> Key = {STName, AddrSpace};
if (auto *MappedTy = OpaqueStructMap.lookup(Key))
return MappedTy;
auto SaveType = [&](SPIRVType *MappedTy) {
OpaqueStructMap[Key] = MappedTy;
return MappedTy;
};
StructType *ST = StructType::getTypeByName(M->getContext(), STName);
assert(STName.starts_with(kSPIRVTypeName::PrefixAndDelim) &&
"Invalid SPIR-V opaque type name");
SmallVector<std::string, 8> Postfixes;
auto TN = decodeSPIRVTypeName(STName, Postfixes);
if (TN == kSPIRVTypeName::Pipe) {
assert(AddrSpace == SPIRAS_Global);
assert(Postfixes.size() == 1 && "Invalid pipe type ops");
auto *PipeT = BM->addPipeType();
PipeT->setPipeAcessQualifier(
static_cast<spv::AccessQualifier>(atoi(Postfixes[0].c_str())));
return SaveType(PipeT);
} else if (TN == kSPIRVTypeName::Image) {
assert(AddrSpace == SPIRAS_Global);
// The sampled type needs to be translated through LLVM type to guarantee
// uniqueness.
auto *SampledT = transType(
getLLVMTypeForSPIRVImageSampledTypePostfix(Postfixes[0], *Ctx));
SmallVector<int, 7> Ops;
for (unsigned I = 1; I < 8; ++I)
Ops.push_back(atoi(Postfixes[I].c_str()));
SPIRVTypeImageDescriptor Desc(static_cast<SPIRVImageDimKind>(Ops[0]),
Ops[1], Ops[2], Ops[3], Ops[4], Ops[5]);
return SaveType(BM->addImageType(
SampledT, Desc, static_cast<spv::AccessQualifier>(Ops[6])));
} else if (TN == kSPIRVTypeName::SampledImg) {
return SaveType(BM->addSampledImageType(static_cast<SPIRVTypeImage *>(
transType(adjustImageType(TypedPointerType::get(ST, SPIRAS_Global),
kSPIRVTypeName::SampledImg,
kSPIRVTypeName::Image)))));
} else if (TN == kSPIRVTypeName::VmeImageINTEL) {
// This type is the same as SampledImageType, but consumed by Subgroup AVC
// Intel extension instructions.
return SaveType(BM->addVmeImageINTELType(static_cast<SPIRVTypeImage *>(
transType(adjustImageType(TypedPointerType::get(ST, SPIRAS_Global),
kSPIRVTypeName::VmeImageINTEL,
kSPIRVTypeName::Image)))));
} else if (TN == kSPIRVTypeName::Sampler)
return SaveType(BM->addSamplerType());
else if (TN == kSPIRVTypeName::DeviceEvent)
return SaveType(BM->addDeviceEventType());
else if (TN == kSPIRVTypeName::Queue)
return SaveType(BM->addQueueType());
else if (TN == kSPIRVTypeName::PipeStorage)
return SaveType(BM->addPipeStorageType());
else if (BM->isAllowedToUseExtension(ExtensionID::SPV_INTEL_vector_compute) &&
TN == kSPIRVTypeName::BufferSurfaceINTEL) {
auto Access = getAccessQualifier(STName);
return SaveType(BM->addBufferSurfaceINTELType(Access));
} else
return SaveType(
BM->addOpaqueGenericType(SPIRVOpaqueTypeOpCodeMap::map(TN)));
}
SPIRVType *LLVMToSPIRVBase::transScavengedType(Value *V) {
if (auto *F = dyn_cast<Function>(V)) {
FunctionType *FnTy = Scavenger->getFunctionType(F);
SPIRVType *RT = transType(FnTy->getReturnType());
std::vector<SPIRVType *> PT;
for (Argument &Arg : F->args()) {
assert(OCLTypeToSPIRVPtr);
Type *Ty = OCLTypeToSPIRVPtr->getAdaptedArgumentType(F, Arg.getArgNo());
if (!Ty) {
Ty = FnTy->getParamType(Arg.getArgNo());
}
PT.push_back(transType(Ty));
}
return getSPIRVFunctionType(RT, PT);
}
return transType(Scavenger->getScavengedType(V));
}
SPIRVType *
LLVMToSPIRVBase::getSPIRVFunctionType(SPIRVType *RT,
const std::vector<SPIRVType *> &Args) {
// Come up with a unique string identifier for the arguments. This is a hacky
// way of doing so, but it works.
std::string TypeKey;
llvm::raw_string_ostream TKS(TypeKey);
TKS << (uintptr_t)RT << ",";
for (SPIRVType *ArgTy : Args) {
TKS << (uintptr_t)ArgTy << ",";
}
// Create a SPIRVType for the function type. Since SPIRVModule doesn't do
// any type uniquing for SPIRVType, we have to do it ourself.
TKS.flush();
auto It = PointeeTypeMap.find(TypeKey);
if (It == PointeeTypeMap.end())
It = PointeeTypeMap.insert({TypeKey, BM->addFunctionType(RT, Args)}).first;
return It->second;
}
SPIRVFunction *LLVMToSPIRVBase::transFunctionDecl(Function *F) {
if (auto *BF = getTranslatedValue(F))
return static_cast<SPIRVFunction *>(BF);
if (F->isIntrinsic() && (!BM->isSPIRVAllowUnknownIntrinsicsEnabled() ||
isKnownIntrinsic(F->getIntrinsicID()))) {
// We should not translate LLVM intrinsics as a function
assert(none_of(F->users(),
[this](User *U) { return getTranslatedValue(U); }) &&
"LLVM intrinsics shouldn't be called in SPIRV");
return nullptr;
}
SPIRVTypeFunction *BFT =
static_cast<SPIRVTypeFunction *>(transScavengedType(F));
SPIRVFunction *BF =
static_cast<SPIRVFunction *>(mapValue(F, BM->addFunction(BFT)));
BF->setFunctionControlMask(transFunctionControlMask(F));
if (F->hasName()) {
if (isKernel(F)) {
// If found, strip the entry point wrapper prefix as the runtime will
// be looking for this name
StringRef Name = F->getName();
(void) Name.consume_front(kSPIRVName::EntrypointPrefix);
BM->setName(BF, Name.str());
} else {
if (isUniformGroupOperation(F))
BM->getErrorLog().checkError(
BM->isAllowedToUseExtension(
ExtensionID::SPV_KHR_uniform_group_instructions),
SPIRVEC_RequiresExtension, "SPV_KHR_uniform_group_instructions\n");
BM->setName(BF, F->getName().str());
}
}
if (!isKernel(F) && F->getLinkage() != GlobalValue::InternalLinkage)
BF->setLinkageType(transLinkageType(F));
// Translate OpenCL/SYCL buffer_location metadata if it's attached to the
// translated function declaration
MDNode *BufferLocation = nullptr;
if (BM->isAllowedToUseExtension(ExtensionID::SPV_INTEL_fpga_buffer_location))
BufferLocation = F->getMetadata("kernel_arg_buffer_location");
// Translate runtime_aligned metadata if it's attached to the translated
// function declaration
MDNode *RuntimeAligned = nullptr;
if (BM->isAllowedToUseExtension(ExtensionID::SPV_INTEL_runtime_aligned))
RuntimeAligned = F->getMetadata("kernel_arg_runtime_aligned");
auto Attrs = F->getAttributes();
for (Function::arg_iterator I = F->arg_begin(), E = F->arg_end(); I != E;
++I) {
auto ArgNo = I->getArgNo();
SPIRVFunctionParameter *BA = BF->getArgument(ArgNo);
if (I->hasName())
BM->setName(BA, I->getName().str());
if (I->hasByValAttr())
BA->addAttr(FunctionParameterAttributeByVal);
if (I->hasNoAliasAttr())
BA->addAttr(FunctionParameterAttributeNoAlias);
if (I->hasNoCaptureAttr())
BA->addAttr(FunctionParameterAttributeNoCapture);
if (I->hasStructRetAttr())
BA->addAttr(FunctionParameterAttributeSret);
if (Attrs.hasParamAttr(ArgNo, Attribute::ReadOnly))
BA->addAttr(FunctionParameterAttributeNoWrite);
if (Attrs.hasParamAttr(ArgNo, Attribute::ReadNone))
BA->addAttr(FunctionParameterAttributeNoReadWrite);
if (Attrs.hasParamAttr(ArgNo, Attribute::ZExt))
BA->addAttr(FunctionParameterAttributeZext);
if (Attrs.hasParamAttr(ArgNo, Attribute::SExt))
BA->addAttr(FunctionParameterAttributeSext);
if (Attrs.hasParamAttr(ArgNo, Attribute::Alignment)) {
SPIRVWord AlignmentBytes = Attrs.getParamAttr(ArgNo, Attribute::Alignment)
.getAlignment()
.valueOrOne()
.value();
BA->setAlignment(AlignmentBytes);
}
if (BM->isAllowedToUseVersion(VersionNumber::SPIRV_1_1) &&
Attrs.hasParamAttr(ArgNo, Attribute::Dereferenceable))
BA->addDecorate(DecorationMaxByteOffset,
Attrs.getParamAttr(ArgNo, Attribute::Dereferenceable)
.getDereferenceableBytes());
if (BufferLocation && I->getType()->isPointerTy()) {
// Order of integer numbers in MD node follows the order of function
// parameters on which we shall attach the appropriate decoration. Add
// decoration only if MD value is not negative.
int LocID = -1;
if (!isa<MDString>(BufferLocation->getOperand(ArgNo)) &&
!isa<MDNode>(BufferLocation->getOperand(ArgNo)))
LocID = getMDOperandAsInt(BufferLocation, ArgNo);
if (LocID >= 0)
BA->addDecorate(DecorationBufferLocationINTEL, LocID);
}
if (RuntimeAligned && I->getType()->isPointerTy()) {
// Order of integer numbers in MD node follows the order of function
// parameters on which we shall attach the appropriate decoration. Add
// decoration only if MD value is 1.
int LocID = 0;
if (!isa<MDString>(RuntimeAligned->getOperand(ArgNo)) &&
!isa<MDNode>(RuntimeAligned->getOperand(ArgNo)))
LocID = getMDOperandAsInt(RuntimeAligned, ArgNo);
if (LocID == 1)
BA->addDecorate(internal::DecorationRuntimeAlignedINTEL, LocID);
}
}
if (Attrs.hasRetAttr(Attribute::ZExt))
BF->addDecorate(DecorationFuncParamAttr, FunctionParameterAttributeZext);
if (Attrs.hasRetAttr(Attribute::SExt))
BF->addDecorate(DecorationFuncParamAttr, FunctionParameterAttributeSext);
if (Attrs.hasFnAttr("referenced-indirectly")) {
assert(!isKernel(F) &&
"kernel function was marked as referenced-indirectly");
BF->addDecorate(DecorationReferencedIndirectlyINTEL);
}
if (Attrs.hasFnAttr(kVCMetadata::VCCallable) &&
BM->isAllowedToUseExtension(ExtensionID::SPV_INTEL_fast_composite)) {
BF->addDecorate(internal::DecorationCallableFunctionINTEL);
}
if (BM->isAllowedToUseExtension(ExtensionID::SPV_INTEL_vector_compute))
transVectorComputeMetadata(F);
transFPGAFunctionMetadata(BF, F);
transFunctionMetadataAsUserSemanticDecoration(BF, F);
transAuxDataInst(BF, F);
SPIRVDBG(dbgs() << "[transFunction] " << *F << " => ";
spvdbgs() << *BF << '\n';)
return BF;
}
void LLVMToSPIRVBase::transVectorComputeMetadata(Function *F) {
using namespace VectorComputeUtil;
if (!BM->isAllowedToUseExtension(ExtensionID::SPV_INTEL_vector_compute))
return;
auto *BF = static_cast<SPIRVFunction *>(getTranslatedValue(F));
assert(BF && "The SPIRVFunction pointer shouldn't be nullptr");
auto Attrs = F->getAttributes();
if (Attrs.hasFnAttr(kVCMetadata::VCStackCall))
BF->addDecorate(DecorationStackCallINTEL);
if (Attrs.hasFnAttr(kVCMetadata::VCFunction))
BF->addDecorate(DecorationVectorComputeFunctionINTEL);
if (Attrs.hasFnAttr(kVCMetadata::VCSIMTCall)) {
SPIRVWord SIMTMode = 0;
Attrs.getFnAttr(kVCMetadata::VCSIMTCall)
.getValueAsString()
.getAsInteger(0, SIMTMode);
BF->addDecorate(DecorationSIMTCallINTEL, SIMTMode);
}
if (Attrs.hasRetAttr(kVCMetadata::VCSingleElementVector))
translateSEVDecoration(
Attrs.getAttributeAtIndex(AttributeList::ReturnIndex,
kVCMetadata::VCSingleElementVector),
BF);
for (Function::arg_iterator I = F->arg_begin(), E = F->arg_end(); I != E;
++I) {
auto ArgNo = I->getArgNo();
SPIRVFunctionParameter *BA = BF->getArgument(ArgNo);
if (Attrs.hasParamAttr(ArgNo, kVCMetadata::VCArgumentIOKind)) {
SPIRVWord Kind = {};
Attrs.getParamAttr(ArgNo, kVCMetadata::VCArgumentIOKind)
.getValueAsString()
.getAsInteger(0, Kind);
BA->addDecorate(DecorationFuncParamIOKindINTEL, Kind);
}
if (Attrs.hasParamAttr(ArgNo, kVCMetadata::VCSingleElementVector))
translateSEVDecoration(
Attrs.getParamAttr(ArgNo, kVCMetadata::VCSingleElementVector), BA);
if (Attrs.hasParamAttr(ArgNo, kVCMetadata::VCMediaBlockIO)) {
assert(BA->getType()->isTypeImage() &&
"VCMediaBlockIO attribute valid only on image parameters");
BA->addDecorate(DecorationMediaBlockIOINTEL);
}
}
if (!isKernel(F) &&
BM->isAllowedToUseExtension(ExtensionID::SPV_INTEL_float_controls2) &&
Attrs.hasFnAttr(kVCMetadata::VCFloatControl)) {