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//===- SPIRVBuiltins.cpp - SPIR-V Built-in Functions ------------*- C++ -*-===//
//
// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
// See https://llvm.org/LICENSE.txt for license information.
// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
//
//===----------------------------------------------------------------------===//
//
// This file implements lowering builtin function calls and types using their
// demangled names and TableGen records.
//
//===----------------------------------------------------------------------===//
#include "SPIRVBuiltins.h"
#include "SPIRV.h"
#include "SPIRVSubtarget.h"
#include "SPIRVUtils.h"
#include "llvm/ADT/StringExtras.h"
#include "llvm/Analysis/ValueTracking.h"
#include "llvm/IR/IntrinsicsSPIRV.h"
#include <regex>
#include <string>
#include <tuple>
#define DEBUG_TYPE "spirv-builtins"
namespace llvm {
namespace SPIRV {
#define GET_BuiltinGroup_DECL
#include "SPIRVGenTables.inc"
struct DemangledBuiltin {
StringRef Name;
InstructionSet::InstructionSet Set;
BuiltinGroup Group;
uint8_t MinNumArgs;
uint8_t MaxNumArgs;
};
#define GET_DemangledBuiltins_DECL
#define GET_DemangledBuiltins_IMPL
struct IncomingCall {
const std::string BuiltinName;
const DemangledBuiltin *Builtin;
const Register ReturnRegister;
const SPIRVType *ReturnType;
const SmallVectorImpl<Register> &Arguments;
IncomingCall(const std::string BuiltinName, const DemangledBuiltin *Builtin,
const Register ReturnRegister, const SPIRVType *ReturnType,
const SmallVectorImpl<Register> &Arguments)
: BuiltinName(std::move(BuiltinName)), Builtin(Builtin),
ReturnRegister(ReturnRegister), ReturnType(ReturnType),
Arguments(Arguments) {}
bool isSpirvOp() const { return BuiltinName.rfind("__spirv_", 0) == 0; }
};
struct NativeBuiltin {
StringRef Name;
InstructionSet::InstructionSet Set;
uint32_t Opcode;
};
#define GET_NativeBuiltins_DECL
#define GET_NativeBuiltins_IMPL
struct GroupBuiltin {
StringRef Name;
uint32_t Opcode;
uint32_t GroupOperation;
bool IsElect;
bool IsAllOrAny;
bool IsAllEqual;
bool IsBallot;
bool IsInverseBallot;
bool IsBallotBitExtract;
bool IsBallotFindBit;
bool IsLogical;
bool NoGroupOperation;
bool HasBoolArg;
};
#define GET_GroupBuiltins_DECL
#define GET_GroupBuiltins_IMPL
struct IntelSubgroupsBuiltin {
StringRef Name;
uint32_t Opcode;
bool IsBlock;
bool IsWrite;
bool IsMedia;
};
#define GET_IntelSubgroupsBuiltins_DECL
#define GET_IntelSubgroupsBuiltins_IMPL
struct AtomicFloatingBuiltin {
StringRef Name;
uint32_t Opcode;
};
#define GET_AtomicFloatingBuiltins_DECL
#define GET_AtomicFloatingBuiltins_IMPL
struct GroupUniformBuiltin {
StringRef Name;
uint32_t Opcode;
bool IsLogical;
};
#define GET_GroupUniformBuiltins_DECL
#define GET_GroupUniformBuiltins_IMPL
struct GetBuiltin {
StringRef Name;
InstructionSet::InstructionSet Set;
BuiltIn::BuiltIn Value;
};
using namespace BuiltIn;
#define GET_GetBuiltins_DECL
#define GET_GetBuiltins_IMPL
struct ImageQueryBuiltin {
StringRef Name;
InstructionSet::InstructionSet Set;
uint32_t Component;
};
#define GET_ImageQueryBuiltins_DECL
#define GET_ImageQueryBuiltins_IMPL
struct IntegerDotProductBuiltin {
StringRef Name;
uint32_t Opcode;
bool IsSwapReq;
};
#define GET_IntegerDotProductBuiltins_DECL
#define GET_IntegerDotProductBuiltins_IMPL
struct ConvertBuiltin {
StringRef Name;
InstructionSet::InstructionSet Set;
bool IsDestinationSigned;
bool IsSaturated;
bool IsRounded;
bool IsBfloat16;
bool IsTF32;
FPRoundingMode::FPRoundingMode RoundingMode;
};
struct VectorLoadStoreBuiltin {
StringRef Name;
InstructionSet::InstructionSet Set;
uint32_t Number;
uint32_t ElementCount;
bool IsRounded;
FPRoundingMode::FPRoundingMode RoundingMode;
};
using namespace FPRoundingMode;
#define GET_ConvertBuiltins_DECL
#define GET_ConvertBuiltins_IMPL
using namespace InstructionSet;
#define GET_VectorLoadStoreBuiltins_DECL
#define GET_VectorLoadStoreBuiltins_IMPL
#define GET_CLMemoryScope_DECL
#define GET_CLSamplerAddressingMode_DECL
#define GET_CLMemoryFenceFlags_DECL
#define GET_ExtendedBuiltins_DECL
#include "SPIRVGenTables.inc"
} // namespace SPIRV
//===----------------------------------------------------------------------===//
// Misc functions for looking up builtins and veryfying requirements using
// TableGen records
//===----------------------------------------------------------------------===//
namespace SPIRV {
/// Parses the name part of the demangled builtin call.
std::string lookupBuiltinNameHelper(StringRef DemangledCall,
FPDecorationId *DecorationId) {
StringRef PassPrefix = "(anonymous namespace)::";
std::string BuiltinName;
// Itanium Demangler result may have "(anonymous namespace)::" prefix
if (DemangledCall.starts_with(PassPrefix))
BuiltinName = DemangledCall.substr(PassPrefix.size());
else
BuiltinName = DemangledCall;
// Extract the builtin function name and types of arguments from the call
// skeleton.
BuiltinName = BuiltinName.substr(0, BuiltinName.find('('));
// Account for possible "__spirv_ocl_" prefix in SPIR-V friendly LLVM IR
if (BuiltinName.rfind("__spirv_ocl_", 0) == 0)
BuiltinName = BuiltinName.substr(12);
// Check if the extracted name contains type information between angle
// brackets. If so, the builtin is an instantiated template - needs to have
// the information after angle brackets and return type removed.
std::size_t Pos1 = BuiltinName.rfind('<');
if (Pos1 != std::string::npos && BuiltinName.back() == '>') {
std::size_t Pos2 = BuiltinName.rfind(' ', Pos1);
if (Pos2 == std::string::npos)
Pos2 = 0;
else
++Pos2;
BuiltinName = BuiltinName.substr(Pos2, Pos1 - Pos2);
BuiltinName = BuiltinName.substr(BuiltinName.find_last_of(' ') + 1);
}
// Check if the extracted name begins with:
// - "__spirv_ImageSampleExplicitLod"
// - "__spirv_ImageRead"
// - "__spirv_ImageWrite"
// - "__spirv_ImageQuerySizeLod"
// - "__spirv_UDotKHR"
// - "__spirv_SDotKHR"
// - "__spirv_SUDotKHR"
// - "__spirv_SDotAccSatKHR"
// - "__spirv_UDotAccSatKHR"
// - "__spirv_SUDotAccSatKHR"
// - "__spirv_ReadClockKHR"
// - "__spirv_SubgroupBlockReadINTEL"
// - "__spirv_SubgroupImageBlockReadINTEL"
// - "__spirv_SubgroupImageMediaBlockReadINTEL"
// - "__spirv_SubgroupImageMediaBlockWriteINTEL"
// - "__spirv_Convert"
// - "__spirv_Round"
// - "__spirv_UConvert"
// - "__spirv_SConvert"
// - "__spirv_FConvert"
// - "__spirv_SatConvert"
// and maybe contains return type information at the end "_R<type>".
// If so, extract the plain builtin name without the type information.
static const std::regex SpvWithR(
"(__spirv_(ImageSampleExplicitLod|ImageRead|ImageWrite|ImageQuerySizeLod|"
"UDotKHR|"
"SDotKHR|SUDotKHR|SDotAccSatKHR|UDotAccSatKHR|SUDotAccSatKHR|"
"ReadClockKHR|SubgroupBlockReadINTEL|SubgroupImageBlockReadINTEL|"
"SubgroupImageMediaBlockReadINTEL|SubgroupImageMediaBlockWriteINTEL|"
"Convert|Round|"
"UConvert|SConvert|FConvert|SatConvert)[^_]*)(_R[^_]*_?(\\w+)?.*)?");
std::smatch Match;
if (std::regex_match(BuiltinName, Match, SpvWithR) && Match.size() > 1) {
std::ssub_match SubMatch;
if (DecorationId && Match.size() > 3) {
SubMatch = Match[4];
*DecorationId = demangledPostfixToDecorationId(SubMatch.str());
}
SubMatch = Match[1];
BuiltinName = SubMatch.str();
}
return BuiltinName;
}
} // namespace SPIRV
/// Looks up the demangled builtin call in the SPIRVBuiltins.td records using
/// the provided \p DemangledCall and specified \p Set.
///
/// The lookup follows the following algorithm, returning the first successful
/// match:
/// 1. Search with the plain demangled name (expecting a 1:1 match).
/// 2. Search with the prefix before or suffix after the demangled name
/// signyfying the type of the first argument.
///
/// \returns Wrapper around the demangled call and found builtin definition.
static std::unique_ptr<const SPIRV::IncomingCall>
lookupBuiltin(StringRef DemangledCall,
SPIRV::InstructionSet::InstructionSet Set,
Register ReturnRegister, const SPIRVType *ReturnType,
const SmallVectorImpl<Register> &Arguments) {
std::string BuiltinName = SPIRV::lookupBuiltinNameHelper(DemangledCall);
SmallVector<StringRef, 10> BuiltinArgumentTypes;
StringRef BuiltinArgs =
DemangledCall.slice(DemangledCall.find('(') + 1, DemangledCall.find(')'));
BuiltinArgs.split(BuiltinArgumentTypes, ',', -1, false);
// Look up the builtin in the defined set. Start with the plain demangled
// name, expecting a 1:1 match in the defined builtin set.
const SPIRV::DemangledBuiltin *Builtin;
if ((Builtin = SPIRV::lookupBuiltin(BuiltinName, Set)))
return std::make_unique<SPIRV::IncomingCall>(
BuiltinName, Builtin, ReturnRegister, ReturnType, Arguments);
// If the initial look up was unsuccessful and the demangled call takes at
// least 1 argument, add a prefix or suffix signifying the type of the first
// argument and repeat the search.
if (BuiltinArgumentTypes.size() >= 1) {
char FirstArgumentType = BuiltinArgumentTypes[0][0];
// Prefix to be added to the builtin's name for lookup.
// For example, OpenCL "abs" taking an unsigned value has a prefix "u_".
std::string Prefix;
switch (FirstArgumentType) {
// Unsigned:
case 'u':
if (Set == SPIRV::InstructionSet::OpenCL_std)
Prefix = "u_";
else if (Set == SPIRV::InstructionSet::GLSL_std_450)
Prefix = "u";
break;
// Signed:
case 'c':
case 's':
case 'i':
case 'l':
if (Set == SPIRV::InstructionSet::OpenCL_std)
Prefix = "s_";
else if (Set == SPIRV::InstructionSet::GLSL_std_450)
Prefix = "s";
break;
// Floating-point:
case 'f':
case 'd':
case 'h':
if (Set == SPIRV::InstructionSet::OpenCL_std ||
Set == SPIRV::InstructionSet::GLSL_std_450)
Prefix = "f";
break;
}
// If argument-type name prefix was added, look up the builtin again.
if (!Prefix.empty() &&
(Builtin = SPIRV::lookupBuiltin(Prefix + BuiltinName, Set)))
return std::make_unique<SPIRV::IncomingCall>(
BuiltinName, Builtin, ReturnRegister, ReturnType, Arguments);
// If lookup with a prefix failed, find a suffix to be added to the
// builtin's name for lookup. For example, OpenCL "group_reduce_max" taking
// an unsigned value has a suffix "u".
std::string Suffix;
switch (FirstArgumentType) {
// Unsigned:
case 'u':
Suffix = "u";
break;
// Signed:
case 'c':
case 's':
case 'i':
case 'l':
Suffix = "s";
break;
// Floating-point:
case 'f':
case 'd':
case 'h':
Suffix = "f";
break;
}
// If argument-type name suffix was added, look up the builtin again.
if (!Suffix.empty() &&
(Builtin = SPIRV::lookupBuiltin(BuiltinName + Suffix, Set)))
return std::make_unique<SPIRV::IncomingCall>(
BuiltinName, Builtin, ReturnRegister, ReturnType, Arguments);
}
// No builtin with such name was found in the set.
return nullptr;
}
static MachineInstr *getBlockStructInstr(Register ParamReg,
MachineRegisterInfo *MRI) {
// We expect the following sequence of instructions:
// %0:_(pN) = G_INTRINSIC_W_SIDE_EFFECTS intrinsic(@llvm.spv.alloca)
// or = G_GLOBAL_VALUE @block_literal_global
// %1:_(pN) = G_INTRINSIC_W_SIDE_EFFECTS intrinsic(@llvm.spv.bitcast), %0
// %2:_(p4) = G_ADDRSPACE_CAST %1:_(pN)
MachineInstr *MI = MRI->getUniqueVRegDef(ParamReg);
assert(MI->getOpcode() == TargetOpcode::G_ADDRSPACE_CAST &&
MI->getOperand(1).isReg());
Register BitcastReg = MI->getOperand(1).getReg();
MachineInstr *BitcastMI = MRI->getUniqueVRegDef(BitcastReg);
assert(isSpvIntrinsic(*BitcastMI, Intrinsic::spv_bitcast) &&
BitcastMI->getOperand(2).isReg());
Register ValueReg = BitcastMI->getOperand(2).getReg();
MachineInstr *ValueMI = MRI->getUniqueVRegDef(ValueReg);
return ValueMI;
}
// Return an integer constant corresponding to the given register and
// defined in spv_track_constant.
// TODO: maybe unify with prelegalizer pass.
static unsigned getConstFromIntrinsic(Register Reg, MachineRegisterInfo *MRI) {
MachineInstr *DefMI = MRI->getUniqueVRegDef(Reg);
assert(DefMI->getOpcode() == TargetOpcode::G_CONSTANT &&
DefMI->getOperand(1).isCImm());
return DefMI->getOperand(1).getCImm()->getValue().getZExtValue();
}
// Return type of the instruction result from spv_assign_type intrinsic.
// TODO: maybe unify with prelegalizer pass.
static const Type *getMachineInstrType(MachineInstr *MI) {
MachineInstr *NextMI = MI->getNextNode();
if (!NextMI)
return nullptr;
if (isSpvIntrinsic(*NextMI, Intrinsic::spv_assign_name))
if ((NextMI = NextMI->getNextNode()) == nullptr)
return nullptr;
Register ValueReg = MI->getOperand(0).getReg();
if ((!isSpvIntrinsic(*NextMI, Intrinsic::spv_assign_type) &&
!isSpvIntrinsic(*NextMI, Intrinsic::spv_assign_ptr_type)) ||
NextMI->getOperand(1).getReg() != ValueReg)
return nullptr;
Type *Ty = getMDOperandAsType(NextMI->getOperand(2).getMetadata(), 0);
assert(Ty && "Type is expected");
return Ty;
}
static const Type *getBlockStructType(Register ParamReg,
MachineRegisterInfo *MRI) {
// In principle, this information should be passed to us from Clang via
// an elementtype attribute. However, said attribute requires that
// the function call be an intrinsic, which is not. Instead, we rely on being
// able to trace this to the declaration of a variable: OpenCL C specification
// section 6.12.5 should guarantee that we can do this.
MachineInstr *MI = getBlockStructInstr(ParamReg, MRI);
if (MI->getOpcode() == TargetOpcode::G_GLOBAL_VALUE)
return MI->getOperand(1).getGlobal()->getType();
assert(isSpvIntrinsic(*MI, Intrinsic::spv_alloca) &&
"Blocks in OpenCL C must be traceable to allocation site");
return getMachineInstrType(MI);
}
//===----------------------------------------------------------------------===//
// Helper functions for building misc instructions
//===----------------------------------------------------------------------===//
/// Helper function building either a resulting scalar or vector bool register
/// depending on the expected \p ResultType.
///
/// \returns Tuple of the resulting register and its type.
static std::tuple<Register, SPIRVType *>
buildBoolRegister(MachineIRBuilder &MIRBuilder, const SPIRVType *ResultType,
SPIRVGlobalRegistry *GR) {
LLT Type;
SPIRVType *BoolType = GR->getOrCreateSPIRVBoolType(MIRBuilder, true);
if (ResultType->getOpcode() == SPIRV::OpTypeVector) {
unsigned VectorElements = ResultType->getOperand(2).getImm();
BoolType = GR->getOrCreateSPIRVVectorType(BoolType, VectorElements,
MIRBuilder, true);
const FixedVectorType *LLVMVectorType =
cast<FixedVectorType>(GR->getTypeForSPIRVType(BoolType));
Type = LLT::vector(LLVMVectorType->getElementCount(), 1);
} else {
Type = LLT::scalar(1);
}
Register ResultRegister =
MIRBuilder.getMRI()->createGenericVirtualRegister(Type);
MIRBuilder.getMRI()->setRegClass(ResultRegister, GR->getRegClass(ResultType));
GR->assignSPIRVTypeToVReg(BoolType, ResultRegister, MIRBuilder.getMF());
return std::make_tuple(ResultRegister, BoolType);
}
/// Helper function for building either a vector or scalar select instruction
/// depending on the expected \p ResultType.
static bool buildSelectInst(MachineIRBuilder &MIRBuilder,
Register ReturnRegister, Register SourceRegister,
const SPIRVType *ReturnType,
SPIRVGlobalRegistry *GR) {
Register TrueConst, FalseConst;
if (ReturnType->getOpcode() == SPIRV::OpTypeVector) {
unsigned Bits = GR->getScalarOrVectorBitWidth(ReturnType);
uint64_t AllOnes = APInt::getAllOnes(Bits).getZExtValue();
TrueConst =
GR->getOrCreateConsIntVector(AllOnes, MIRBuilder, ReturnType, true);
FalseConst = GR->getOrCreateConsIntVector(0, MIRBuilder, ReturnType, true);
} else {
TrueConst = GR->buildConstantInt(1, MIRBuilder, ReturnType, true);
FalseConst = GR->buildConstantInt(0, MIRBuilder, ReturnType, true);
}
return MIRBuilder.buildSelect(ReturnRegister, SourceRegister, TrueConst,
FalseConst);
}
/// Helper function for building a load instruction loading into the
/// \p DestinationReg.
static Register buildLoadInst(SPIRVType *BaseType, Register PtrRegister,
MachineIRBuilder &MIRBuilder,
SPIRVGlobalRegistry *GR, LLT LowLevelType,
Register DestinationReg = Register(0)) {
if (!DestinationReg.isValid())
DestinationReg = createVirtualRegister(BaseType, GR, MIRBuilder);
// TODO: consider using correct address space and alignment (p0 is canonical
// type for selection though).
MachinePointerInfo PtrInfo = MachinePointerInfo();
MIRBuilder.buildLoad(DestinationReg, PtrRegister, PtrInfo, Align());
return DestinationReg;
}
/// Helper function for building a load instruction for loading a builtin global
/// variable of \p BuiltinValue value.
static Register buildBuiltinVariableLoad(
MachineIRBuilder &MIRBuilder, SPIRVType *VariableType,
SPIRVGlobalRegistry *GR, SPIRV::BuiltIn::BuiltIn BuiltinValue, LLT LLType,
Register Reg = Register(0), bool isConst = true, bool hasLinkageTy = true) {
Register NewRegister =
MIRBuilder.getMRI()->createVirtualRegister(&SPIRV::pIDRegClass);
MIRBuilder.getMRI()->setType(
NewRegister,
LLT::pointer(storageClassToAddressSpace(SPIRV::StorageClass::Function),
GR->getPointerSize()));
SPIRVType *PtrType = GR->getOrCreateSPIRVPointerType(
VariableType, MIRBuilder, SPIRV::StorageClass::Input);
GR->assignSPIRVTypeToVReg(PtrType, NewRegister, MIRBuilder.getMF());
// Set up the global OpVariable with the necessary builtin decorations.
Register Variable = GR->buildGlobalVariable(
NewRegister, PtrType, getLinkStringForBuiltIn(BuiltinValue), nullptr,
SPIRV::StorageClass::Input, nullptr, /* isConst= */ isConst,
/* HasLinkageTy */ hasLinkageTy, SPIRV::LinkageType::Import, MIRBuilder,
false);
// Load the value from the global variable.
Register LoadedRegister =
buildLoadInst(VariableType, Variable, MIRBuilder, GR, LLType, Reg);
MIRBuilder.getMRI()->setType(LoadedRegister, LLType);
return LoadedRegister;
}
/// Helper external function for inserting ASSIGN_TYPE instuction between \p Reg
/// and its definition, set the new register as a destination of the definition,
/// assign SPIRVType to both registers. If SpirvTy is provided, use it as
/// SPIRVType in ASSIGN_TYPE, otherwise create it from \p Ty. Defined in
/// SPIRVPreLegalizer.cpp.
extern void insertAssignInstr(Register Reg, Type *Ty, SPIRVType *SpirvTy,
SPIRVGlobalRegistry *GR, MachineIRBuilder &MIB,
MachineRegisterInfo &MRI);
// TODO: Move to TableGen.
static SPIRV::MemorySemantics::MemorySemantics
getSPIRVMemSemantics(std::memory_order MemOrder) {
switch (MemOrder) {
case std::memory_order_relaxed:
return SPIRV::MemorySemantics::None;
case std::memory_order_acquire:
return SPIRV::MemorySemantics::Acquire;
case std::memory_order_release:
return SPIRV::MemorySemantics::Release;
case std::memory_order_acq_rel:
return SPIRV::MemorySemantics::AcquireRelease;
case std::memory_order_seq_cst:
return SPIRV::MemorySemantics::SequentiallyConsistent;
default:
report_fatal_error("Unknown CL memory scope");
}
}
static SPIRV::Scope::Scope getSPIRVScope(SPIRV::CLMemoryScope ClScope) {
switch (ClScope) {
case SPIRV::CLMemoryScope::memory_scope_work_item:
return SPIRV::Scope::Invocation;
case SPIRV::CLMemoryScope::memory_scope_work_group:
return SPIRV::Scope::Workgroup;
case SPIRV::CLMemoryScope::memory_scope_device:
return SPIRV::Scope::Device;
case SPIRV::CLMemoryScope::memory_scope_all_svm_devices:
return SPIRV::Scope::CrossDevice;
case SPIRV::CLMemoryScope::memory_scope_sub_group:
return SPIRV::Scope::Subgroup;
}
report_fatal_error("Unknown CL memory scope");
}
static Register buildConstantIntReg32(uint64_t Val,
MachineIRBuilder &MIRBuilder,
SPIRVGlobalRegistry *GR) {
return GR->buildConstantInt(
Val, MIRBuilder, GR->getOrCreateSPIRVIntegerType(32, MIRBuilder), true);
}
static Register buildScopeReg(Register CLScopeRegister,
SPIRV::Scope::Scope Scope,
MachineIRBuilder &MIRBuilder,
SPIRVGlobalRegistry *GR,
MachineRegisterInfo *MRI) {
if (CLScopeRegister.isValid()) {
auto CLScope =
static_cast<SPIRV::CLMemoryScope>(getIConstVal(CLScopeRegister, MRI));
Scope = getSPIRVScope(CLScope);
if (CLScope == static_cast<unsigned>(Scope)) {
MRI->setRegClass(CLScopeRegister, &SPIRV::iIDRegClass);
return CLScopeRegister;
}
}
return buildConstantIntReg32(Scope, MIRBuilder, GR);
}
static void setRegClassIfNull(Register Reg, MachineRegisterInfo *MRI,
SPIRVGlobalRegistry *GR) {
if (MRI->getRegClassOrNull(Reg))
return;
SPIRVType *SpvType = GR->getSPIRVTypeForVReg(Reg);
MRI->setRegClass(Reg,
SpvType ? GR->getRegClass(SpvType) : &SPIRV::iIDRegClass);
}
static Register buildMemSemanticsReg(Register SemanticsRegister,
Register PtrRegister, unsigned &Semantics,
MachineIRBuilder &MIRBuilder,
SPIRVGlobalRegistry *GR) {
if (SemanticsRegister.isValid()) {
MachineRegisterInfo *MRI = MIRBuilder.getMRI();
std::memory_order Order =
static_cast<std::memory_order>(getIConstVal(SemanticsRegister, MRI));
Semantics =
getSPIRVMemSemantics(Order) |
getMemSemanticsForStorageClass(GR->getPointerStorageClass(PtrRegister));
if (static_cast<unsigned>(Order) == Semantics) {
MRI->setRegClass(SemanticsRegister, &SPIRV::iIDRegClass);
return SemanticsRegister;
}
}
return buildConstantIntReg32(Semantics, MIRBuilder, GR);
}
static bool buildOpFromWrapper(MachineIRBuilder &MIRBuilder, unsigned Opcode,
const SPIRV::IncomingCall *Call,
Register TypeReg,
ArrayRef<uint32_t> ImmArgs = {}) {
auto MIB = MIRBuilder.buildInstr(Opcode);
if (TypeReg.isValid())
MIB.addDef(Call->ReturnRegister).addUse(TypeReg);
unsigned Sz = Call->Arguments.size() - ImmArgs.size();
for (unsigned i = 0; i < Sz; ++i)
MIB.addUse(Call->Arguments[i]);
for (uint32_t ImmArg : ImmArgs)
MIB.addImm(ImmArg);
return true;
}
/// Helper function for translating atomic init to OpStore.
static bool buildAtomicInitInst(const SPIRV::IncomingCall *Call,
MachineIRBuilder &MIRBuilder) {
if (Call->isSpirvOp())
return buildOpFromWrapper(MIRBuilder, SPIRV::OpStore, Call, Register(0));
assert(Call->Arguments.size() == 2 &&
"Need 2 arguments for atomic init translation");
MIRBuilder.buildInstr(SPIRV::OpStore)
.addUse(Call->Arguments[0])
.addUse(Call->Arguments[1]);
return true;
}
/// Helper function for building an atomic load instruction.
static bool buildAtomicLoadInst(const SPIRV::IncomingCall *Call,
MachineIRBuilder &MIRBuilder,
SPIRVGlobalRegistry *GR) {
Register TypeReg = GR->getSPIRVTypeID(Call->ReturnType);
if (Call->isSpirvOp())
return buildOpFromWrapper(MIRBuilder, SPIRV::OpAtomicLoad, Call, TypeReg);
Register PtrRegister = Call->Arguments[0];
// TODO: if true insert call to __translate_ocl_memory_sccope before
// OpAtomicLoad and the function implementation. We can use Translator's
// output for transcoding/atomic_explicit_arguments.cl as an example.
Register ScopeRegister =
Call->Arguments.size() > 1
? Call->Arguments[1]
: buildConstantIntReg32(SPIRV::Scope::Device, MIRBuilder, GR);
Register MemSemanticsReg;
if (Call->Arguments.size() > 2) {
// TODO: Insert call to __translate_ocl_memory_order before OpAtomicLoad.
MemSemanticsReg = Call->Arguments[2];
} else {
int Semantics =
SPIRV::MemorySemantics::SequentiallyConsistent |
getMemSemanticsForStorageClass(GR->getPointerStorageClass(PtrRegister));
MemSemanticsReg = buildConstantIntReg32(Semantics, MIRBuilder, GR);
}
MIRBuilder.buildInstr(SPIRV::OpAtomicLoad)
.addDef(Call->ReturnRegister)
.addUse(TypeReg)
.addUse(PtrRegister)
.addUse(ScopeRegister)
.addUse(MemSemanticsReg);
return true;
}
/// Helper function for building an atomic store instruction.
static bool buildAtomicStoreInst(const SPIRV::IncomingCall *Call,
MachineIRBuilder &MIRBuilder,
SPIRVGlobalRegistry *GR) {
if (Call->isSpirvOp())
return buildOpFromWrapper(MIRBuilder, SPIRV::OpAtomicStore, Call,
Register(0));
Register ScopeRegister =
buildConstantIntReg32(SPIRV::Scope::Device, MIRBuilder, GR);
Register PtrRegister = Call->Arguments[0];
int Semantics =
SPIRV::MemorySemantics::SequentiallyConsistent |
getMemSemanticsForStorageClass(GR->getPointerStorageClass(PtrRegister));
Register MemSemanticsReg = buildConstantIntReg32(Semantics, MIRBuilder, GR);
MIRBuilder.buildInstr(SPIRV::OpAtomicStore)
.addUse(PtrRegister)
.addUse(ScopeRegister)
.addUse(MemSemanticsReg)
.addUse(Call->Arguments[1]);
return true;
}
/// Helper function for building an atomic compare-exchange instruction.
static bool buildAtomicCompareExchangeInst(
const SPIRV::IncomingCall *Call, const SPIRV::DemangledBuiltin *Builtin,
unsigned Opcode, MachineIRBuilder &MIRBuilder, SPIRVGlobalRegistry *GR) {
if (Call->isSpirvOp())
return buildOpFromWrapper(MIRBuilder, Opcode, Call,
GR->getSPIRVTypeID(Call->ReturnType));
bool IsCmpxchg = Call->Builtin->Name.contains("cmpxchg");
MachineRegisterInfo *MRI = MIRBuilder.getMRI();
Register ObjectPtr = Call->Arguments[0]; // Pointer (volatile A *object.)
Register ExpectedArg = Call->Arguments[1]; // Comparator (C* expected).
Register Desired = Call->Arguments[2]; // Value (C Desired).
SPIRVType *SpvDesiredTy = GR->getSPIRVTypeForVReg(Desired);
LLT DesiredLLT = MRI->getType(Desired);
assert(GR->getSPIRVTypeForVReg(ObjectPtr)->getOpcode() ==
SPIRV::OpTypePointer);
unsigned ExpectedType = GR->getSPIRVTypeForVReg(ExpectedArg)->getOpcode();
(void)ExpectedType;
assert(IsCmpxchg ? ExpectedType == SPIRV::OpTypeInt
: ExpectedType == SPIRV::OpTypePointer);
assert(GR->isScalarOfType(Desired, SPIRV::OpTypeInt));
SPIRVType *SpvObjectPtrTy = GR->getSPIRVTypeForVReg(ObjectPtr);
assert(SpvObjectPtrTy->getOperand(2).isReg() && "SPIRV type is expected");
auto StorageClass = static_cast<SPIRV::StorageClass::StorageClass>(
SpvObjectPtrTy->getOperand(1).getImm());
auto MemSemStorage = getMemSemanticsForStorageClass(StorageClass);
Register MemSemEqualReg;
Register MemSemUnequalReg;
uint64_t MemSemEqual =
IsCmpxchg
? SPIRV::MemorySemantics::None
: SPIRV::MemorySemantics::SequentiallyConsistent | MemSemStorage;
uint64_t MemSemUnequal =
IsCmpxchg
? SPIRV::MemorySemantics::None
: SPIRV::MemorySemantics::SequentiallyConsistent | MemSemStorage;
if (Call->Arguments.size() >= 4) {
assert(Call->Arguments.size() >= 5 &&
"Need 5+ args for explicit atomic cmpxchg");
auto MemOrdEq =
static_cast<std::memory_order>(getIConstVal(Call->Arguments[3], MRI));
auto MemOrdNeq =
static_cast<std::memory_order>(getIConstVal(Call->Arguments[4], MRI));
MemSemEqual = getSPIRVMemSemantics(MemOrdEq) | MemSemStorage;
MemSemUnequal = getSPIRVMemSemantics(MemOrdNeq) | MemSemStorage;
if (static_cast<unsigned>(MemOrdEq) == MemSemEqual)
MemSemEqualReg = Call->Arguments[3];
if (static_cast<unsigned>(MemOrdNeq) == MemSemEqual)
MemSemUnequalReg = Call->Arguments[4];
}
if (!MemSemEqualReg.isValid())
MemSemEqualReg = buildConstantIntReg32(MemSemEqual, MIRBuilder, GR);
if (!MemSemUnequalReg.isValid())
MemSemUnequalReg = buildConstantIntReg32(MemSemUnequal, MIRBuilder, GR);
Register ScopeReg;
auto Scope = IsCmpxchg ? SPIRV::Scope::Workgroup : SPIRV::Scope::Device;
if (Call->Arguments.size() >= 6) {
assert(Call->Arguments.size() == 6 &&
"Extra args for explicit atomic cmpxchg");
auto ClScope = static_cast<SPIRV::CLMemoryScope>(
getIConstVal(Call->Arguments[5], MRI));
Scope = getSPIRVScope(ClScope);
if (ClScope == static_cast<unsigned>(Scope))
ScopeReg = Call->Arguments[5];
}
if (!ScopeReg.isValid())
ScopeReg = buildConstantIntReg32(Scope, MIRBuilder, GR);
Register Expected = IsCmpxchg
? ExpectedArg
: buildLoadInst(SpvDesiredTy, ExpectedArg, MIRBuilder,
GR, LLT::scalar(64));
MRI->setType(Expected, DesiredLLT);
Register Tmp = !IsCmpxchg ? MRI->createGenericVirtualRegister(DesiredLLT)
: Call->ReturnRegister;
if (!MRI->getRegClassOrNull(Tmp))
MRI->setRegClass(Tmp, GR->getRegClass(SpvDesiredTy));
GR->assignSPIRVTypeToVReg(SpvDesiredTy, Tmp, MIRBuilder.getMF());
MIRBuilder.buildInstr(Opcode)
.addDef(Tmp)
.addUse(GR->getSPIRVTypeID(SpvDesiredTy))
.addUse(ObjectPtr)
.addUse(ScopeReg)
.addUse(MemSemEqualReg)
.addUse(MemSemUnequalReg)
.addUse(Desired)
.addUse(Expected);
if (!IsCmpxchg) {
MIRBuilder.buildInstr(SPIRV::OpStore).addUse(ExpectedArg).addUse(Tmp);
MIRBuilder.buildICmp(CmpInst::ICMP_EQ, Call->ReturnRegister, Tmp, Expected);
}
return true;
}
/// Helper function for building atomic instructions.
static bool buildAtomicRMWInst(const SPIRV::IncomingCall *Call, unsigned Opcode,
MachineIRBuilder &MIRBuilder,
SPIRVGlobalRegistry *GR) {
if (Call->isSpirvOp())
return buildOpFromWrapper(MIRBuilder, Opcode, Call,
GR->getSPIRVTypeID(Call->ReturnType));
MachineRegisterInfo *MRI = MIRBuilder.getMRI();
Register ScopeRegister =
Call->Arguments.size() >= 4 ? Call->Arguments[3] : Register();
assert(Call->Arguments.size() <= 4 &&
"Too many args for explicit atomic RMW");
ScopeRegister = buildScopeReg(ScopeRegister, SPIRV::Scope::Workgroup,
MIRBuilder, GR, MRI);
Register PtrRegister = Call->Arguments[0];
unsigned Semantics = SPIRV::MemorySemantics::None;
Register MemSemanticsReg =
Call->Arguments.size() >= 3 ? Call->Arguments[2] : Register();
MemSemanticsReg = buildMemSemanticsReg(MemSemanticsReg, PtrRegister,
Semantics, MIRBuilder, GR);
Register ValueReg = Call->Arguments[1];
Register ValueTypeReg = GR->getSPIRVTypeID(Call->ReturnType);
// support cl_ext_float_atomics
if (Call->ReturnType->getOpcode() == SPIRV::OpTypeFloat) {
if (Opcode == SPIRV::OpAtomicIAdd) {
Opcode = SPIRV::OpAtomicFAddEXT;
} else if (Opcode == SPIRV::OpAtomicISub) {
// Translate OpAtomicISub applied to a floating type argument to
// OpAtomicFAddEXT with the negative value operand
Opcode = SPIRV::OpAtomicFAddEXT;
Register NegValueReg =
MRI->createGenericVirtualRegister(MRI->getType(ValueReg));
MRI->setRegClass(NegValueReg, GR->getRegClass(Call->ReturnType));
GR->assignSPIRVTypeToVReg(Call->ReturnType, NegValueReg,
MIRBuilder.getMF());
MIRBuilder.buildInstr(TargetOpcode::G_FNEG)
.addDef(NegValueReg)
.addUse(ValueReg);
insertAssignInstr(NegValueReg, nullptr, Call->ReturnType, GR, MIRBuilder,
MIRBuilder.getMF().getRegInfo());
ValueReg = NegValueReg;
}
}
MIRBuilder.buildInstr(Opcode)
.addDef(Call->ReturnRegister)
.addUse(ValueTypeReg)
.addUse(PtrRegister)
.addUse(ScopeRegister)
.addUse(MemSemanticsReg)
.addUse(ValueReg);
return true;
}
/// Helper function for building an atomic floating-type instruction.
static bool buildAtomicFloatingRMWInst(const SPIRV::IncomingCall *Call,
unsigned Opcode,
MachineIRBuilder &MIRBuilder,
SPIRVGlobalRegistry *GR) {
assert(Call->Arguments.size() == 4 &&
"Wrong number of atomic floating-type builtin");
Register PtrReg = Call->Arguments[0];
Register ScopeReg = Call->Arguments[1];
Register MemSemanticsReg = Call->Arguments[2];
Register ValueReg = Call->Arguments[3];
MIRBuilder.buildInstr(Opcode)
.addDef(Call->ReturnRegister)
.addUse(GR->getSPIRVTypeID(Call->ReturnType))
.addUse(PtrReg)
.addUse(ScopeReg)
.addUse(MemSemanticsReg)
.addUse(ValueReg);
return true;
}
/// Helper function for building atomic flag instructions (e.g.
/// OpAtomicFlagTestAndSet).
static bool buildAtomicFlagInst(const SPIRV::IncomingCall *Call,
unsigned Opcode, MachineIRBuilder &MIRBuilder,
SPIRVGlobalRegistry *GR) {
bool IsSet = Opcode == SPIRV::OpAtomicFlagTestAndSet;
Register TypeReg = GR->getSPIRVTypeID(Call->ReturnType);
if (Call->isSpirvOp())
return buildOpFromWrapper(MIRBuilder, Opcode, Call,
IsSet ? TypeReg : Register(0));
MachineRegisterInfo *MRI = MIRBuilder.getMRI();
Register PtrRegister = Call->Arguments[0];
unsigned Semantics = SPIRV::MemorySemantics::SequentiallyConsistent;
Register MemSemanticsReg =
Call->Arguments.size() >= 2 ? Call->Arguments[1] : Register();
MemSemanticsReg = buildMemSemanticsReg(MemSemanticsReg, PtrRegister,
Semantics, MIRBuilder, GR);
assert((Opcode != SPIRV::OpAtomicFlagClear ||
(Semantics != SPIRV::MemorySemantics::Acquire &&
Semantics != SPIRV::MemorySemantics::AcquireRelease)) &&
"Invalid memory order argument!");
Register ScopeRegister =
Call->Arguments.size() >= 3 ? Call->Arguments[2] : Register();
ScopeRegister =
buildScopeReg(ScopeRegister, SPIRV::Scope::Device, MIRBuilder, GR, MRI);
auto MIB = MIRBuilder.buildInstr(Opcode);
if (IsSet)
MIB.addDef(Call->ReturnRegister).addUse(TypeReg);
MIB.addUse(PtrRegister).addUse(ScopeRegister).addUse(MemSemanticsReg);
return true;
}
/// Helper function for building barriers, i.e., memory/control ordering
/// operations.
static bool buildBarrierInst(const SPIRV::IncomingCall *Call, unsigned Opcode,
MachineIRBuilder &MIRBuilder,
SPIRVGlobalRegistry *GR) {
const SPIRV::DemangledBuiltin *Builtin = Call->Builtin;
const auto *ST =
static_cast<const SPIRVSubtarget *>(&MIRBuilder.getMF().getSubtarget());
if ((Opcode == SPIRV::OpControlBarrierArriveINTEL ||
Opcode == SPIRV::OpControlBarrierWaitINTEL) &&
!ST->canUseExtension(SPIRV::Extension::SPV_INTEL_split_barrier)) {
std::string DiagMsg = std::string(Builtin->Name) +
": the builtin requires the following SPIR-V "
"extension: SPV_INTEL_split_barrier";
report_fatal_error(DiagMsg.c_str(), false);
}
if (Call->isSpirvOp())
return buildOpFromWrapper(MIRBuilder, Opcode, Call, Register(0));
MachineRegisterInfo *MRI = MIRBuilder.getMRI();
unsigned MemFlags = getIConstVal(Call->Arguments[0], MRI);
unsigned MemSemantics = SPIRV::MemorySemantics::None;
if (MemFlags & SPIRV::CLK_LOCAL_MEM_FENCE)
MemSemantics |= SPIRV::MemorySemantics::WorkgroupMemory;
if (MemFlags & SPIRV::CLK_GLOBAL_MEM_FENCE)
MemSemantics |= SPIRV::MemorySemantics::CrossWorkgroupMemory;
if (MemFlags & SPIRV::CLK_IMAGE_MEM_FENCE)
MemSemantics |= SPIRV::MemorySemantics::ImageMemory;
if (Opcode == SPIRV::OpMemoryBarrier)
MemSemantics = getSPIRVMemSemantics(static_cast<std::memory_order>(
getIConstVal(Call->Arguments[1], MRI))) |
MemSemantics;
else if (Opcode == SPIRV::OpControlBarrierArriveINTEL)
MemSemantics |= SPIRV::MemorySemantics::Release;
else if (Opcode == SPIRV::OpControlBarrierWaitINTEL)
MemSemantics |= SPIRV::MemorySemantics::Acquire;
else
MemSemantics |= SPIRV::MemorySemantics::SequentiallyConsistent;
Register MemSemanticsReg =
MemFlags == MemSemantics
? Call->Arguments[0]
: buildConstantIntReg32(MemSemantics, MIRBuilder, GR);
Register ScopeReg;
SPIRV::Scope::Scope Scope = SPIRV::Scope::Workgroup;
SPIRV::Scope::Scope MemScope = Scope;
if (Call->Arguments.size() >= 2) {
assert(
((Opcode != SPIRV::OpMemoryBarrier && Call->Arguments.size() == 2) ||
(Opcode == SPIRV::OpMemoryBarrier && Call->Arguments.size() == 3)) &&
"Extra args for explicitly scoped barrier");
Register ScopeArg = (Opcode == SPIRV::OpMemoryBarrier) ? Call->Arguments[2]
: Call->Arguments[1];
SPIRV::CLMemoryScope CLScope =
static_cast<SPIRV::CLMemoryScope>(getIConstVal(ScopeArg, MRI));
MemScope = getSPIRVScope(CLScope);
if (!(MemFlags & SPIRV::CLK_LOCAL_MEM_FENCE) ||
(Opcode == SPIRV::OpMemoryBarrier))
Scope = MemScope;
if (CLScope == static_cast<unsigned>(Scope))
ScopeReg = Call->Arguments[1];