Files
FEX-Emu--FEX/Source/Common/HostFeatures.cpp
T
Ryan Houdek 0ec724cf1f HostFeatures: Moves MIDR querying to the frontend
The MIDR querying is inherently OS specific and needs a bit of special
casing. Instead let the frontend inform FEXCore how many CPU cores there
are and their MIDRs instead.

This lets us keep the Linux specific code in the frontend.
2024-08-23 00:53:53 -07:00

636 lines
21 KiB
C++

// SPDX-License-Identifier: MIT
#include "Common/HostFeatures.h"
#include <FEXCore/Config/Config.h>
#include <FEXCore/Core/HostFeatures.h>
#include <FEXCore/Utils/CPUInfo.h>
#include <FEXCore/Utils/FileLoading.h>
#include <FEXCore/Utils/StringUtils.h>
#ifdef _M_X86_64
#define XBYAK64
#define XBYAK_NO_EXCEPTION
#include <FEXCore/fextl/list.h>
#include <FEXCore/fextl/unordered_map.h>
#include <FEXCore/fextl/unordered_set.h>
#include <xbyak/xbyak.h>
#include <xbyak/xbyak_util.h>
#endif
namespace FEX {
void FillMIDRInformationViaLinux(FEXCore::HostFeatures* Features) {
auto Cores = FEXCore::CPUInfo::CalculateNumberOfCPUs();
Features->CPUMIDRs.resize(Cores);
#ifdef _M_ARM_64
for (size_t i = 0; i < Cores; ++i) {
std::error_code ec {};
fextl::string MIDRPath = fextl::fmt::format("/sys/devices/system/cpu/cpu{}/regs/identification/midr_el1", i);
std::array<char, 18> Data;
// Needs to be a fixed size since depending on kernel it will try to read a full page of data and fail
// Only read 18 bytes for a 64bit value prefixed with 0x
if (FEXCore::FileLoading::LoadFileToBuffer(MIDRPath, Data) == sizeof(Data)) {
uint64_t MIDR {};
auto Results = std::from_chars(Data.data() + 2, Data.data() + sizeof(Data), MIDR, 16);
if (Results.ec == std::errc()) {
// Truncate to 32-bits, top 32-bits are all reserved in MIDR
Features->CPUMIDRs[i] = static_cast<uint32_t>(MIDR);
}
}
}
#endif
}
#ifdef _M_ARM_64
#define GetSysReg(name, reg) \
static uint64_t Get_##name() { \
uint64_t Result {}; \
__asm("mrs %[Res], " #reg : [Res] "=r"(Result)); \
return Result; \
}
GetSysReg(ISAR0_EL1, ID_AA64ISAR0_EL1);
GetSysReg(PFR0_EL1, ID_AA64PFR0_EL1);
GetSysReg(PFR1_EL1, ID_AA64PFR1_EL1);
GetSysReg(MIDR_EL1, MIDR_EL1);
GetSysReg(ISAR1_EL1, ID_AA64ISAR1_EL1);
GetSysReg(MMFR0_EL1, ID_AA64MMFR0_EL1);
GetSysReg(MMFR2_EL1, ID_AA64MMFR2_EL1);
GetSysReg(ZFR0_EL1, s3_0_c0_c4_4); // Can't request by name
GetSysReg(MMFR1_EL1, ID_AA64MMFR1_EL1);
GetSysReg(ISAR2_EL1, ID_AA64ISAR2_EL1);
class CPUFeaturesFromID final : public FEX::CPUFeatures {
public:
CPUFeaturesFromID() {
ISAR0.SetReg(Get_ISAR0_EL1());
PFR0.SetReg(Get_PFR0_EL1());
PFR1.SetReg(Get_PFR1_EL1());
MIDR.SetReg(Get_MIDR_EL1());
ISAR1.SetReg(Get_ISAR1_EL1());
MMFR0.SetReg(Get_MMFR0_EL1());
MMFR2.SetReg(Get_MMFR2_EL1());
MMFR1.SetReg(Get_MMFR1_EL1());
ISAR2.SetReg(Get_ISAR2_EL1());
if (PFR0.SupportsSVE()) {
// Can only query if SVE is supported.
ZFR0.SetReg(Get_ZFR0_EL1());
}
FillFeatureFlags();
}
};
FEX::CPUFeatures GetCPUFeaturesFromIDRegisters() {
return CPUFeaturesFromID {};
}
#endif
class CPUFeaturesAll final : public FEX::CPUFeatures {
public:
CPUFeaturesAll() {
// Special case, just set all feature flags
for (uint32_t i = 0; i < FEXCore::ToUnderlying(FEX::CPUFeatures::Feature::MAX); ++i) {
SetFeature(FEX::CPUFeatures::Feature {i});
}
}
};
void FEX::CPUFeatures::FillFeatureFlags() {
// ISAR0
if (ISAR0.SupportsAES()) {
SetFeature(Feature::AES);
}
if (ISAR0.SupportsPMULL()) {
SetFeature(Feature::PMULL);
}
if (ISAR0.SupportsSHA1()) {
SetFeature(Feature::SHA1);
}
if (ISAR0.SupportsSHA2()) {
SetFeature(Feature::SHA2);
}
if (ISAR0.SupportsSHA512()) {
SetFeature(Feature::SHA512);
}
if (ISAR0.SupportsCRC32()) {
SetFeature(Feature::CRC32);
}
if (ISAR0.SupportsLSE()) {
SetFeature(Feature::LSE);
}
if (ISAR0.SupportsLSE128()) {
SetFeature(Feature::LSE128);
}
if (ISAR0.SupportsTME()) {
SetFeature(Feature::TME);
}
if (ISAR0.SupportsRDM()) {
SetFeature(Feature::RDM);
}
if (ISAR0.SupportsSHA3()) {
SetFeature(Feature::SHA3);
}
if (ISAR0.SupportsSM3()) {
SetFeature(Feature::SM3);
}
if (ISAR0.SupportsSM4()) {
SetFeature(Feature::SM4);
}
if (ISAR0.SupportsDotProd()) {
SetFeature(Feature::DotProd);
}
if (ISAR0.SupportsFlagM()) {
SetFeature(Feature::FlagM);
}
if (ISAR0.SupportsFlagM2()) {
SetFeature(Feature::FlagM2);
}
if (ISAR0.SupportsRNDR()) {
SetFeature(Feature::RNDR);
}
// PFR0
if (PFR0.SupportsFP()) {
SetFeature(Feature::FP);
}
if (PFR0.SupportsHP()) {
SetFeature(Feature::FP16);
}
if (PFR0.SupportsAdvSIMD()) {
SetFeature(Feature::ASIMD);
}
if (PFR0.SupportsASIMDHP()) {
SetFeature(Feature::ASIMD16);
}
if (PFR0.SupportsRAS()) {
SetFeature(Feature::RAS);
}
if (PFR0.SupportsSVE()) {
SetFeature(Feature::SVE);
}
if (PFR0.SupportsDIT()) {
SetFeature(Feature::DIT);
}
if (PFR0.SupportsCSV2()) {
SetFeature(Feature::CSV2);
}
if (PFR0.SupportsCSV3()) {
SetFeature(Feature::CSV3);
}
// PFR1
if (PFR1.SupportsBTI()) {
SetFeature(Feature::BTI);
}
if (PFR1.SupportsSSBS()) {
SetFeature(Feature::SSBS);
}
if (PFR1.SupportsSSBS()) {
SetFeature(Feature::SSBS2);
}
if (PFR1.SupportsMTE()) {
SetFeature(Feature::MTE);
}
if (PFR1.SupportsMTE2()) {
SetFeature(Feature::MTE2);
}
if (PFR1.SupportsMTE3()) {
SetFeature(Feature::MTE3);
}
if (PFR1.SupportsSME()) {
SetFeature(Feature::SME);
}
if (PFR1.SupportsSME2()) {
SetFeature(Feature::SME2);
}
// ISAR1
if (ISAR1.SupportsDPB()) {
SetFeature(Feature::DPB);
}
if (ISAR1.SupportsDPB2()) {
SetFeature(Feature::DPB2);
}
if (ISAR1.SupportsJSCVT()) {
SetFeature(Feature::JSCVT);
}
if (ISAR1.SupportsFCMA()) {
SetFeature(Feature::FCMA);
}
if (ISAR1.SupportsLRCPC()) {
SetFeature(Feature::LRCPC);
}
if (ISAR1.SupportsLRCPC2()) {
SetFeature(Feature::LRCPC2);
}
if (ISAR1.SupportsLRCPC3()) {
SetFeature(Feature::LRCPC3);
}
if (ISAR1.SupportsFRINTTS()) {
SetFeature(Feature::FRINTTS);
}
if (ISAR1.SupportsSB()) {
SetFeature(Feature::SB);
}
if (ISAR1.SupportsSPECRES()) {
SetFeature(Feature::SPECRES);
}
if (ISAR1.SupportsSPECRES2()) {
SetFeature(Feature::SPECRES2);
}
if (ISAR1.SupportsBF16()) {
SetFeature(Feature::BF16);
}
if (ISAR1.SupportsSME_F64F64()) {
SetFeature(Feature::SME_F64F64);
}
if (ISAR1.SupportsI8MM()) {
SetFeature(Feature::I8MM);
}
if (ISAR1.SupportsXS()) {
SetFeature(Feature::XS);
}
if (ISAR1.SupportsLS64()) {
SetFeature(Feature::LS64);
}
if (ISAR1.SupportsLS64_V()) {
SetFeature(Feature::LS64_V);
}
if (ISAR1.SupportsLS64_ACCDATA()) {
SetFeature(Feature::LS64_ACCDATA);
}
// MMFR0
if (MMFR0.SupportsECV()) {
SetFeature(Feature::ECV);
}
// MMFR2
if (MMFR2.SupportsLSE2()) {
SetFeature(Feature::LSE2);
}
// ZFR0
if (Supports(Feature::SVE)) {
if (ZFR0.SupportsSVE2()) {
SetFeature(Feature::SVE2);
}
if (ZFR0.SupportsSVE2_1()) {
SetFeature(Feature::SVE2_1);
}
if (ZFR0.SupportsSVE_AES()) {
SetFeature(Feature::SVE_AES);
}
if (ZFR0.SupportsSVE_PMULL128()) {
SetFeature(Feature::SVE_PMULL128);
}
if (ZFR0.SupportsSVE_BitPerm()) {
SetFeature(Feature::SVE_BitPerm);
}
if (ZFR0.SupportsSVE_BF16()) {
SetFeature(Feature::SVE_BF16);
}
if (ZFR0.SupportsSVE_B16B16()) {
SetFeature(Feature::SVE_B16B16);
}
if (ZFR0.SupportsSVE_SHA3()) {
SetFeature(Feature::SVE_SHA3);
}
if (ZFR0.SupportsSVE_SM4()) {
SetFeature(Feature::SVE_SM4);
}
if (ZFR0.SupportsSVE_I8MM()) {
SetFeature(Feature::SVE_I8MM);
}
if (ZFR0.SupportsSVE_F32MM()) {
SetFeature(Feature::SVE_F32MM);
}
if (ZFR0.SupportsSVE_F64MM()) {
SetFeature(Feature::SVE_F64MM);
}
}
// MMFR1
if (MMFR1.SupportsAFP()) {
SetFeature(Feature::AFP);
}
// ISAR2
if (ISAR2.SupportsWFxt()) {
SetFeature(Feature::WFxt);
}
if (ISAR2.SupportsRPRES()) {
SetFeature(Feature::RPRES);
}
if (ISAR2.SupportsPACQARMA3()) {
SetFeature(Feature::PACQARMA3);
}
if (ISAR2.SupportsMOPS()) {
SetFeature(Feature::MOPS);
}
if (ISAR2.SupportsHBC()) {
SetFeature(Feature::HBC);
}
if (ISAR2.SupportsCLRBHB()) {
SetFeature(Feature::CLRBHB);
}
if (ISAR2.SupportsSYSREG128()) {
SetFeature(Feature::SYSREG128);
}
if (ISAR2.SupportsSYSINSTR128()) {
SetFeature(Feature::SYSINSTR128);
}
if (ISAR2.SupportsPRFMSLC()) {
SetFeature(Feature::PRFMSLC);
}
if (ISAR2.SupportsRPRFM()) {
SetFeature(Feature::RPRFM);
}
if (ISAR2.SupportsCSSC()) {
SetFeature(Feature::CSSC);
}
}
// Data Zero Prohibited flag
// 0b0 = ZVA/GVA/GZVA permitted
// 0b1 = ZVA/GVA/GZVA prohibited
[[maybe_unused]] constexpr uint32_t DCZID_DZP_MASK = 0b1'0000;
// Log2 of the blocksize in 32-bit words
[[maybe_unused]] constexpr uint32_t DCZID_BS_MASK = 0b0'1111;
#ifdef _M_ARM_64
[[maybe_unused]]
static uint32_t GetDCZID() {
uint64_t Result {};
__asm("mrs %[Res], DCZID_EL0" : [Res] "=r"(Result));
return Result;
}
static uint32_t GetFPCR() {
uint64_t Result {};
__asm("mrs %[Res], FPCR" : [Res] "=r"(Result));
return Result;
}
static void SetFPCR(uint64_t Value) {
__asm("msr FPCR, %[Value]" ::[Value] "r"(Value));
}
__attribute__((naked)) static uint64_t ReadSVEVectorLengthInBits() {
///< Can't use rdvl instruction directly because compilers will complain that sve/sme is required.
__asm(R"(
.word 0x04bf5100 // rdvl x0, #8
ret;
)");
}
#else
[[maybe_unused]]
static uint32_t GetDCZID() {
// Return unsupported
return DCZID_DZP_MASK;
}
[[maybe_unused]]
static int ReadSVEVectorLengthInBits() {
// Return unsupported
return 0;
}
#endif
static void OverrideFeatures(FEXCore::HostFeatures* Features, uint64_t ForceSVEWidth) {
// Override features if the user has specifically called for it.
FEX_CONFIG_OPT(HostFeatures, HOSTFEATURES);
if (!HostFeatures()) {
// Early exit if no features are overriden.
return;
}
#define ENABLE_DISABLE_OPTION(FeatureName, name, enum_name) \
do { \
const bool Disable##name = (HostFeatures() & FEXCore::Config::HostFeatures::DISABLE##enum_name) != 0; \
const bool Enable##name = (HostFeatures() & FEXCore::Config::HostFeatures::ENABLE##enum_name) != 0; \
LogMan::Throw::AFmt(!(Disable##name && Enable##name), "Disabling and Enabling CPU feature (" #name ") is mutually exclusive"); \
const bool AlreadyEnabled = Features->FeatureName; \
const bool Result = (AlreadyEnabled | Enable##name) & !Disable##name; \
Features->FeatureName = Result; \
} while (0)
#define GET_SINGLE_OPTION(name, enum_name) \
const bool Disable##name = (HostFeatures() & FEXCore::Config::HostFeatures::DISABLE##enum_name) != 0; \
const bool Enable##name = (HostFeatures() & FEXCore::Config::HostFeatures::ENABLE##enum_name) != 0; \
LogMan::Throw::AFmt(!(Disable##name && Enable##name), "Disabling and Enabling CPU feature (" #name ") is mutually exclusive");
ENABLE_DISABLE_OPTION(SupportsAVX, AVX, AVX);
ENABLE_DISABLE_OPTION(SupportsSVE128, SVE, SVE);
ENABLE_DISABLE_OPTION(SupportsAFP, AFP, AFP);
ENABLE_DISABLE_OPTION(SupportsRCPC, LRCPC, LRCPC);
ENABLE_DISABLE_OPTION(SupportsTSOImm9, LRCPC2, LRCPC2);
ENABLE_DISABLE_OPTION(SupportsCSSC, CSSC, CSSC);
ENABLE_DISABLE_OPTION(SupportsPMULL_128Bit, PMULL128, PMULL128);
ENABLE_DISABLE_OPTION(SupportsRAND, RNG, RNG);
ENABLE_DISABLE_OPTION(SupportsCLZERO, CLZERO, CLZERO);
ENABLE_DISABLE_OPTION(SupportsAtomics, Atomics, ATOMICS);
ENABLE_DISABLE_OPTION(SupportsFCMA, FCMA, FCMA);
ENABLE_DISABLE_OPTION(SupportsFlagM, FlagM, FLAGM);
ENABLE_DISABLE_OPTION(SupportsFlagM2, FlagM2, FLAGM2);
ENABLE_DISABLE_OPTION(SupportsRPRES, RPRES, RPRES);
ENABLE_DISABLE_OPTION(SupportsSVEBitPerm, SVEBITPERM, SVEBITPERM);
ENABLE_DISABLE_OPTION(SupportsPreserveAllABI, PRESERVEALLABI, PRESERVEALLABI);
GET_SINGLE_OPTION(Crypto, CRYPTO);
#undef ENABLE_DISABLE_OPTION
#undef GET_SINGLE_OPTION
if (EnableCrypto) {
Features->SupportsAES = true;
Features->SupportsCRC = true;
Features->SupportsSHA = true;
Features->SupportsPMULL_128Bit = true;
Features->SupportsAES256 = true;
} else if (DisableCrypto) {
Features->SupportsAES = false;
Features->SupportsCRC = false;
Features->SupportsSHA = false;
Features->SupportsPMULL_128Bit = false;
Features->SupportsAES256 = false;
}
///< Only force enable SVE256 if SVE is already enabled and ForceSVEWidth is set to >= 256.
Features->SupportsSVE256 = ForceSVEWidth && ForceSVEWidth >= 256;
}
FEXCore::HostFeatures FetchHostFeatures(FEX::CPUFeatures& Features, bool SupportsCacheMaintenanceOps, uint64_t CTR, uint64_t MIDR) {
FEXCore::HostFeatures HostFeatures;
FEX_CONFIG_OPT(ForceSVEWidth, FORCESVEWIDTH);
FEX_CONFIG_OPT(Is64BitMode, IS64BIT_MODE);
HostFeatures.SupportsCacheMaintenanceOps = SupportsCacheMaintenanceOps;
HostFeatures.SupportsAES = Features.Supports(CPUFeatures::Feature::AES);
HostFeatures.SupportsCRC = Features.Supports(CPUFeatures::Feature::CRC32);
HostFeatures.SupportsSHA = Features.Supports(CPUFeatures::Feature::SHA1) && Features.Supports(CPUFeatures::Feature::SHA2);
HostFeatures.SupportsAtomics = Features.Supports(CPUFeatures::Feature::LSE);
HostFeatures.SupportsRAND = Features.Supports(CPUFeatures::Feature::RNDR);
// Only supported when FEAT_AFP is supported
HostFeatures.SupportsAFP = Features.Supports(CPUFeatures::Feature::AFP);
HostFeatures.SupportsRCPC = Features.Supports(CPUFeatures::Feature::LRCPC);
HostFeatures.SupportsTSOImm9 = Features.Supports(CPUFeatures::Feature::LRCPC2);
HostFeatures.SupportsPMULL_128Bit = Features.Supports(CPUFeatures::Feature::PMULL);
HostFeatures.SupportsCSSC = Features.Supports(CPUFeatures::Feature::CSSC);
HostFeatures.SupportsFCMA = Features.Supports(CPUFeatures::Feature::FCMA);
HostFeatures.SupportsFlagM = Features.Supports(CPUFeatures::Feature::FlagM);
HostFeatures.SupportsFlagM2 = Features.Supports(CPUFeatures::Feature::FlagM2);
HostFeatures.SupportsRPRES = Features.Supports(CPUFeatures::Feature::RPRES);
HostFeatures.SupportsSVEBitPerm = Features.Supports(CPUFeatures::Feature::SVE_BitPerm);
#ifdef VIXL_SIMULATOR
// Hardcode enable SVE with 256-bit wide registers.
HostFeatures.SupportsSVE128 = ForceSVEWidth() ? ForceSVEWidth() >= 128 : true;
HostFeatures.SupportsSVE256 = ForceSVEWidth() ? ForceSVEWidth() >= 256 : true;
#else
HostFeatures.SupportsSVE128 = Features.Supports(CPUFeatures::Feature::SVE2);
HostFeatures.SupportsSVE256 = Features.Supports(CPUFeatures::Feature::SVE2) && ReadSVEVectorLengthInBits() >= 256;
#endif
HostFeatures.SupportsAVX = true;
HostFeatures.SupportsAES256 = HostFeatures.SupportsAVX && HostFeatures.SupportsAES;
if (!HostFeatures.SupportsAtomics) {
WARN_ONCE_FMT("Host CPU doesn't support atomics. Expect bad performance");
}
#ifdef _M_ARM_64
// Test if this CPU supports float exception trapping by attempting to enable
// On unsupported these bits are architecturally defined as RAZ/WI
constexpr uint32_t ExceptionEnableTraps = (1U << 8) | // Invalid Operation float exception trap enable
(1U << 9) | // Divide by zero float exception trap enable
(1U << 10) | // Overflow float exception trap enable
(1U << 11) | // Underflow float exception trap enable
(1U << 12) | // Inexact float exception trap enable
(1U << 15); // Input Denormal float exception trap enable
uint32_t OriginalFPCR = GetFPCR();
uint32_t FPCR = OriginalFPCR | ExceptionEnableTraps;
SetFPCR(FPCR);
FPCR = GetFPCR();
HostFeatures.SupportsFloatExceptions = (FPCR & ExceptionEnableTraps) == ExceptionEnableTraps;
// Set FPCR back to original just in case anything changed
SetFPCR(OriginalFPCR);
if (HostFeatures.SupportsRAND) {
constexpr uint32_t Implementer_QCOM = 0x51;
constexpr uint32_t PartNum_Oryon1 = 0x001;
const uint32_t MIDR_Implementer = (MIDR >> 24) & 0xFF;
const uint32_t MIDR_PartNum = (MIDR >> 4) & 0xFFF;
if (MIDR_Implementer == Implementer_QCOM && MIDR_PartNum == PartNum_Oryon1) {
// Work around an errata in Qualcomm's Oryon.
// While this CPU implements the RAND extension:
// - The RNDR register works.
// - The RNDRRS register will never read a random number. (Always return failure)
// This is contrary to x86 RNG behaviour where it allows spurious failure with RDSEED, but guarantees eventual success.
// This manifested itself on Linux when an x86 processor failed to guarantee forward progress and boot of services would infinite
// loop. Just disable this extension if this CPU is detected.
HostFeatures.SupportsRAND = false;
}
}
#endif
#ifdef VIXL_SIMULATOR
// simulator doesn't support dc(ZVA)
HostFeatures.SupportsCLZERO = false;
// Simulator doesn't support SHA
HostFeatures.SupportsSHA = false;
#else
// Check if we can support cacheline clears
uint32_t DCZID = GetDCZID();
if ((DCZID & DCZID_DZP_MASK) == 0) {
uint32_t DCZID_Log2 = DCZID & DCZID_BS_MASK;
uint32_t DCZID_Bytes = (1 << DCZID_Log2) * sizeof(uint32_t);
// If the DC ZVA size matches the emulated cache line size
// This means we can use the instruction
constexpr static uint64_t CACHELINE_SIZE = 64;
HostFeatures.SupportsCLZERO = DCZID_Bytes == CACHELINE_SIZE;
}
#endif
if (CTR) {
HostFeatures.DCacheLineSize = 4 << ((CTR >> 16) & 0xF);
HostFeatures.ICacheLineSize = 4 << (CTR & 0xF);
} else {
HostFeatures.DCacheLineSize = HostFeatures.ICacheLineSize = 64;
}
#if defined(_M_X86_64) && !defined(VIXL_SIMULATOR)
Xbyak::util::Cpu X86Features {};
HostFeatures.SupportsAES = X86Features.has(Xbyak::util::Cpu::tAESNI);
HostFeatures.SupportsCRC = X86Features.has(Xbyak::util::Cpu::tSSE42);
HostFeatures.SupportsRAND = X86Features.has(Xbyak::util::Cpu::tRDRAND) && X86Features.has(Xbyak::util::Cpu::tRDSEED);
HostFeatures.SupportsRCPC = true;
HostFeatures.SupportsTSOImm9 = true;
HostFeatures.SupportsAVX = true;
HostFeatures.SupportsSHA = X86Features.has(Xbyak::util::Cpu::tSHA);
HostFeatures.SupportsPMULL_128Bit = X86Features.has(Xbyak::util::Cpu::tPCLMULQDQ);
HostFeatures.SupportsAES256 = HostFeatures.SupportsAES && X86Features.has(Xbyak::util::Cpu::tVAES);
// xbyak doesn't know how to check for CLZero
// First ensure we support a new enough extended CPUID function range
uint32_t data[4];
Xbyak::util::Cpu::getCpuid(0x8000'0000, data);
if (data[0] >= 0x8000'0008U) {
// CLZero defined in 8000_00008_EBX[bit 0]
Xbyak::util::Cpu::getCpuid(0x8000'0008, data);
HostFeatures.SupportsCLZERO = data[1] & 1;
}
HostFeatures.SupportsAFP = true;
HostFeatures.SupportsFloatExceptions = true;
#endif
HostFeatures.SupportsPreserveAllABI = FEX_HAS_PRESERVE_ALL_ATTR;
if (!Is64BitMode()) {
///< Always disable AVX and AVX2 in 32-bit mode.
// When AVX256 is enabled, signal frames start using significantly more stack space.
// - 16bytes * 16 registers = 256 bytes for XMM registers.
// - 32bytes * 16 registers = 512 bytes for YMM registers.
// There are known game failures on real x86 hardware where a 32-bit game is running up against the wall on stack space on non-AVX
// hardware and then explodes when run on AVX hardware. This is to guard against that.
HostFeatures.SupportsAVX = false;
}
OverrideFeatures(&HostFeatures, ForceSVEWidth());
return HostFeatures;
}
FEXCore::HostFeatures FetchHostFeatures() {
#ifdef _M_X86_64
CPUFeatures Features = CPUFeaturesAll {};
// Vixl simulator doesn't support AFP.
Features.RemoveFeature(CPUFeatures::Feature::AFP);
// Vixl simulator doesn't support RPRES.
Features.RemoveFeature(CPUFeatures::Feature::RPRES);
#else
CPUFeatures Features = GetCPUFeaturesFromIDRegisters();
#endif
uint64_t CTR = 0;
uint64_t MIDR = 0;
#ifdef _M_ARM_64
// We need to get the CPU's cache line size
// We expect sane targets that have correct cacheline sizes across clusters
__asm volatile("mrs %[ctr], ctr_el0" : [ctr] "=r"(CTR));
__asm volatile("mrs %[midr], midr_el1" : [midr] "=r"(MIDR));
#endif
auto HostFeatures = FetchHostFeatures(Features, true, CTR, MIDR);
FillMIDRInformationViaLinux(&HostFeatures);
return HostFeatures;
}
} // namespace FEX