Files
FEX-Emu--FEX/Source/Tools/CodeSizeValidation/Main.cpp
T
Ryan Houdek f6b4c76d76 InstcountCI: Adds tests for instructions discovered by #4597
Apparently I completely missed that cpuid, xgetbv, syscall,
l{u,}{div,rem} were failing to hit their optimized cases for inlining
and avoiding 128-bit software divide.

The divisions are a clear performance regression for 64-bit applications
since that is the only real way to do a 64-bit division on x86, I added
those specifically because it sped up games.

CPUID depends heavily on the game, since some games use that as a
serialization instruction fairly heavily.

XGETBV is trivial since it matches behaviour of CPUID (and is basically
an extension of it).

Syscall inlining can save a decent amount of time, again heavily depends
on game.

Adds multi-inst tests for all of these situations so that once it gets
fixed (Apparently broken once RCLSE got stripped out), we can see that
they keep working. Obviously tests couldn't have existed in instcountCI
before since we didn't support multi-instruction tests.
2025-06-02 12:10:39 -07:00

671 lines
24 KiB
C++

// SPDX-License-Identifier: MIT
#include "DummyHandlers.h"
#include "Common/HostFeatures.h"
#include "FEXCore/Core/Context.h"
#include "FEXCore/Debug/InternalThreadState.h"
#include <FEXCore/Config/Config.h>
#include <FEXCore/Utils/Allocator.h>
#include <FEXCore/Utils/File.h>
#include <FEXCore/Utils/FileLoading.h>
#include <FEXCore/Utils/LogManager.h>
#include <FEXCore/Utils/SignalScopeGuards.h>
#include <sys/stat.h>
namespace CodeSize {
class CodeSizeValidation final {
public:
CodeSizeValidation() {
constexpr uint64_t Code_start_page = 0x1'0000;
CodeStart = FEXCore::Allocator::mmap(reinterpret_cast<void*>(Code_start_page), MAX_CODE_SIZE, PROT_READ | PROT_WRITE,
MAP_PRIVATE | MAP_ANONYMOUS, -1, 0);
if (reinterpret_cast<uint64_t>(CodeStart) != Code_start_page) {
LogMan::Msg::AFmt("Couldn't allocate test region!");
FEXCore::Allocator::VirtualFree(CodeStart, MAX_CODE_SIZE);
CodeStart = nullptr;
return;
}
}
struct InstructionStats {
uint64_t GuestCodeInstructions {};
uint64_t HostCodeInstructions {};
uint64_t HeaderSize {};
uint64_t TailSize {};
};
using CodeLines = fextl::vector<fextl::string>;
struct InstructionData {
InstructionStats first;
CodeLines second;
};
bool ParseMessage(const char* Message);
InstructionData CompileAndGetStats(FEXCore::Context::Context* CTX, FEXCore::Core::InternalThreadState* Thread, const void* Data,
size_t SizeBytes, int32_t MaxInst = -1) {
if (SizeBytes > MAX_CODE_SIZE) {
LogMan::Msg::AFmt("x86 code too large!");
}
{
auto CodeInvalidationlk = FEXCore::GuardSignalDeferringSection(CTX->GetCodeInvalidationMutex(), Thread);
CTX->InvalidateGuestCodeRange(Thread, reinterpret_cast<uint64_t>(CodeStart), MAX_CODE_SIZE);
}
ClearStats();
memcpy(CodeStart, Data, SizeBytes);
if (MaxInst == -1) {
// Compile the NOP.
CTX->CompileRIP(Thread, reinterpret_cast<uint64_t>(CodeStart));
} else {
CTX->CompileRIPCount(Thread, reinterpret_cast<uint64_t>(CodeStart), MaxInst);
}
return CurrentStats;
}
bool InfoPrintingDisabled() const {
return SetupInfoDisabled;
}
void CalculateBaseStats(FEXCore::Context::Context* CTX, FEXCore::Core::InternalThreadState* Thread);
private:
void ClearStats() {
CurrentStats = {};
}
uint64_t CurrentRIPParse {};
bool ConsumingDisassembly {};
InstructionData CurrentStats {};
ssize_t HeaderSize {-1};
void* CodeStart {};
constexpr static size_t MAX_CODE_SIZE = 512 * 1024 * 1024;
bool SetupInfoDisabled {};
};
constexpr std::string_view RIPMessage = "RIP: 0x";
constexpr std::string_view GuestCodeMessage = "Guest Code instructions: ";
constexpr std::string_view DisassembleBeginMessage = "Disassemble Begin";
constexpr std::string_view DisassembleEndMessage = "Disassemble End";
constexpr std::string_view BlowUpMsg = "Blow-up Amt: ";
static std::string_view SanitizeDisassembly(std::string_view Message) {
auto it = Message.find(" (addr");
// If it contains an address calculation, strip it out.
Message = Message.substr(0, it);
if (Message.find("adrp ") != std::string_view::npos || Message.find("adr ") != std::string_view::npos) {
Message = Message.substr(0, Message.find(" #"));
}
return Message;
}
bool CodeSizeValidation::ParseMessage(const char* Message) {
// std::string_view doesn't have contains until c++23.
std::string_view MessageView {Message};
if (MessageView.find(RIPMessage) != MessageView.npos) {
// New RIP found
std::string_view RIPView = std::string_view {Message + RIPMessage.size()};
std::from_chars(RIPView.data(), RIPView.end(), CurrentRIPParse, 16);
ClearStats();
return false;
}
if (MessageView.find(GuestCodeMessage) != MessageView.npos) {
std::string_view CodeSizeView = std::string_view {Message + GuestCodeMessage.size()};
std::from_chars(CodeSizeView.data(), CodeSizeView.end(), CurrentStats.first.GuestCodeInstructions);
return false;
}
if (MessageView.find(DisassembleBeginMessage) != MessageView.npos) {
ConsumingDisassembly = true;
// Just so the output isn't a mess.
return false;
}
if (MessageView.find(DisassembleEndMessage) != MessageView.npos) {
ConsumingDisassembly = false;
// Just so the output isn't a mess.
// Remove the header and tails.
if (HeaderSize != -1) {
CurrentStats.second.erase(CurrentStats.second.begin(), CurrentStats.second.begin() + HeaderSize);
}
// Find the first `udf #0x420f` and remove everything from that point onward.
auto EraseBegin = std::find(CurrentStats.second.begin(), CurrentStats.second.end(), "udf #0x420f");
CurrentStats.second.erase(EraseBegin, CurrentStats.second.end());
CurrentStats.first.HostCodeInstructions = CurrentStats.second.size();
return false;
}
if (MessageView.find(BlowUpMsg) != MessageView.npos) {
return false;
}
if (ConsumingDisassembly) {
// Currently consuming disassembly. Each line will be a single line of disassembly.
CurrentStats.second.push_back(fextl::string(SanitizeDisassembly(Message)));
return false;
}
return true;
}
void CodeSizeValidation::CalculateBaseStats(FEXCore::Context::Context* CTX, FEXCore::Core::InternalThreadState* Thread) {
SetupInfoDisabled = true;
// Known hardcoded instructions that will generate blocks of particular sizes.
// NOP will never generate any instructions.
constexpr static uint8_t NOP[] = {
0x90,
};
// Compile the NOP.
auto NOPStats = CompileAndGetStats(CTX, Thread, NOP, sizeof(NOP), 1);
// Expected format.
// adr x0, #-0x4 (addr 0x7fffe9880054)
// str x0, [x28, #184]
// udf #0x420f
// ldr x0, pc+8 (addr 0x7fffe988006c)
// blr x0
// unallocated (Unallocated)
// udf #0x7fff
// unallocated (Unallocated)
// udf #0x0
//
// First two lines are the header.
// Next comes the implementation (0 instruction size for nop).
// Then comes the `udf #0x420f` which signifies the end of the function.
// After that is the tail.
HeaderSize = NOPStats.second.size();
SetupInfoDisabled = false;
}
static CodeSizeValidation Validation {};
} // namespace CodeSize
void MsgHandler(LogMan::DebugLevels Level, const char* Message) {
const char* CharLevel {LogMan::DebugLevelStr(Level)};
if (Level == LogMan::INFO) {
// Disassemble information is sent through the Info log level.
if (!CodeSize::Validation.ParseMessage(Message)) {
return;
}
if (CodeSize::Validation.InfoPrintingDisabled()) {
return;
}
}
fextl::fmt::print("[{}] {}\n", CharLevel, Message);
}
void AssertHandler(const char* Message) {
fextl::fmt::print("[ASSERT] {}\n", Message);
// make sure buffers are flushed
fflush(nullptr);
}
struct TestInfo {
char TestInst[128];
int64_t ExpectedInstructionCount;
uint64_t CodeSize;
uint64_t x86InstCount;
uint32_t Cookie;
uint8_t Code[];
};
struct TestHeader {
uint64_t Bitness;
uint64_t NumTests {};
uint64_t EnabledHostFeatures;
uint64_t DisabledHostFeatures;
uint64_t EnvironmentVariableCount;
uint8_t Data[];
};
static void* TestData;
static size_t TestDataSize;
static const TestHeader* TestHeaderData {};
static const TestInfo* TestsStart {};
static fextl::vector<std::pair<std::string_view, std::string_view>> EnvironmentVariables {};
static bool TestInstructions(FEXCore::Context::Context* CTX, FEXCore::Core::InternalThreadState* Thread, const char* UpdatedInstructionCountsPath) {
LogMan::Msg::IFmt("Compiling code");
// Tell FEXCore to compile all the instructions upfront.
const TestInfo* CurrentTest = TestsStart;
fextl::vector<CodeSize::CodeSizeValidation::InstructionData> TestData {};
TestData.resize(TestHeaderData->NumTests);
for (size_t i = 0; i < TestHeaderData->NumTests; ++i) {
uint64_t CodeRIP = (uint64_t)&CurrentTest->Code[0];
LogMan::Msg::IFmt("Compiling instruction '{}'", CurrentTest->TestInst);
TestData[i] =
CodeSize::Validation.CompileAndGetStats(CTX, Thread, reinterpret_cast<void*>(CodeRIP), CurrentTest->CodeSize, CurrentTest->x86InstCount);
// Go to the next test.
CurrentTest = reinterpret_cast<const TestInfo*>(&CurrentTest->Code[CurrentTest->CodeSize]);
}
bool TestsPassed {true};
// Get all the data for the instructions compiled.
CurrentTest = TestsStart;
for (size_t i = 0; i < TestHeaderData->NumTests; ++i) {
// Get the instruction stats.
const auto INSTStats = &TestData[i];
LogMan::Msg::IFmt("Testing instruction '{}': {} host instructions", CurrentTest->TestInst, INSTStats->first.HostCodeInstructions);
// Show the code if the count of instructions changed to something we didn't expect.
bool ShouldShowCode = INSTStats->first.HostCodeInstructions != CurrentTest->ExpectedInstructionCount;
if (ShouldShowCode) {
for (const auto& Line : INSTStats->second) {
LogMan::Msg::EFmt("\t{}", Line);
}
}
if (INSTStats->first.HostCodeInstructions != CurrentTest->ExpectedInstructionCount) {
LogMan::Msg::EFmt("Fail: '{}': {} host instructions", CurrentTest->TestInst, INSTStats->first.HostCodeInstructions);
LogMan::Msg::EFmt("Fail: Test took {} instructions but we expected {} instructions!", INSTStats->first.HostCodeInstructions,
CurrentTest->ExpectedInstructionCount);
// Fail the test if the instruction count has changed at all.
TestsPassed = false;
}
// Go to the next test.
CurrentTest = reinterpret_cast<const TestInfo*>(&CurrentTest->Code[CurrentTest->CodeSize]);
}
if (UpdatedInstructionCountsPath) {
// Unlink the file.
unlink(UpdatedInstructionCountsPath);
FEXCore::File::File FD(UpdatedInstructionCountsPath,
FEXCore::File::FileModes::WRITE | FEXCore::File::FileModes::CREATE | FEXCore::File::FileModes::TRUNCATE);
if (!FD.IsValid()) {
// If we couldn't open the file then early exit this.
LogMan::Msg::EFmt("Couldn't open {} for updating instruction counts", UpdatedInstructionCountsPath);
return TestsPassed;
}
FD.Write("{\n", 2);
CurrentTest = TestsStart;
for (size_t i = 0; i < TestHeaderData->NumTests; ++i) {
// Get the instruction stats.
const auto INSTStats = &TestData[i];
FD.Write(fextl::fmt::format("\t\"{}\": {{\n", CurrentTest->TestInst));
if (INSTStats->first.HostCodeInstructions != CurrentTest->ExpectedInstructionCount) {
FD.Write(fextl::fmt::format("\t\t\"ExpectedInstructionCount\": {},\n", INSTStats->first.HostCodeInstructions));
}
FD.Write(fextl::fmt::format("\t\t\"ExpectedArm64ASM\": [\n", INSTStats->first.HostCodeInstructions));
for (auto it = INSTStats->second.begin(); it != INSTStats->second.end(); ++it) {
const auto& Line = *it;
const auto NextIt = it + 1;
FD.Write(fextl::fmt::format("\t\t\t\"{}\"{}\n", Line, NextIt != INSTStats->second.end() ? "," : ""));
}
FD.Write(fextl::fmt::format("\t\t]\n", INSTStats->first.HostCodeInstructions));
FD.Write(fextl::fmt::format("\t}},\n", CurrentTest->TestInst));
// Go to the next test.
CurrentTest = reinterpret_cast<const TestInfo*>(&CurrentTest->Code[CurrentTest->CodeSize]);
}
// Print a null member
FD.Write(fextl::fmt::format("\t\"\": \"\""));
FD.Write("}\n", 2);
}
return TestsPassed;
}
bool LoadTests(const char* Path) {
int FD = open(Path, O_RDONLY | O_CLOEXEC);
if (FD == -1) {
return false;
}
struct stat buf;
if (fstat(FD, &buf) == -1) {
close(FD);
return false;
}
TestDataSize = buf.st_size;
TestData = FEXCore::Allocator::mmap(nullptr, TestDataSize, PROT_READ, MAP_PRIVATE, FD, 0);
if (reinterpret_cast<uint64_t>(TestData) == ~0ULL) {
close(FD);
return false;
}
close(FD);
TestHeaderData = reinterpret_cast<const TestHeader*>(TestData);
// Need to walk past the environment variables to get to the actual tests.
const uint8_t* Data = TestHeaderData->Data;
for (size_t i = 0; i < TestHeaderData->EnvironmentVariableCount; ++i) {
// Environment variables are a pair of null terminated strings.
Data += strlen(reinterpret_cast<const char*>(Data)) + 1;
Data += strlen(reinterpret_cast<const char*>(Data)) + 1;
}
TestsStart = reinterpret_cast<const TestInfo*>(Data);
return true;
}
namespace {
static const fextl::vector<std::pair<const char*, FEXCore::Config::ConfigOption>> EnvConfigLookup = {{
#define OPT_BASE(type, group, enum, json, default) {"FEX_" #enum, FEXCore::Config::ConfigOption::CONFIG_##enum},
#include <FEXCore/Config/ConfigValues.inl>
}};
// Claims to be a local application config layer
class TestEnvLoader final : public FEXCore::Config::Layer {
public:
explicit TestEnvLoader()
: FEXCore::Config::Layer(FEXCore::Config::LayerType::LAYER_LOCAL_APP) {
Load();
}
void Load() override {
fextl::unordered_map<std::string_view, std::string> EnvMap;
const uint8_t* Data = TestHeaderData->Data;
for (size_t i = 0; i < TestHeaderData->EnvironmentVariableCount; ++i) {
// Environment variables are a pair of null terminated strings.
const std::string_view Key = reinterpret_cast<const char*>(Data);
Data += strlen(reinterpret_cast<const char*>(Data)) + 1;
const std::string_view Value_View = reinterpret_cast<const char*>(Data);
Data += strlen(reinterpret_cast<const char*>(Data)) + 1;
std::optional<fextl::string> Value;
#define ENVLOADER
#include <FEXCore/Config/ConfigOptions.inl>
if (Value) {
EnvMap.insert_or_assign(Key, *Value);
} else {
EnvMap.insert_or_assign(Key, Value_View);
}
}
auto GetVar = [&](const std::string_view id) -> std::optional<std::string_view> {
const auto it = EnvMap.find(id);
if (it == EnvMap.end()) {
return std::nullopt;
}
return it->second;
};
for (auto& it : EnvConfigLookup) {
if (auto Value = GetVar(it.first); Value) {
#define OPT_BASE(type, group, enum, json, default) // Nothing
#define OPT_STRARRAY(group, enum, json, default) \
else if (it.second == FEXCore::Config::ConfigOption::CONFIG_##enum) { \
AppendStrArrayValue(it.second, *Value); \
}
if (false) {
}
#include <FEXCore/Config/ConfigValues.inl>
else {
Set(it.second, *Value);
}
}
}
}
private:
fextl::vector<std::pair<std::string_view, std::string_view>> Env;
};
class SimpleSyscallHandler : public FEXCore::HLE::SyscallHandler, public FEXCore::Allocator::FEXAllocOperators {
public:
SimpleSyscallHandler() {
// Just claim to be linux 64-bit for simplicity.
OSABI = FEXCore::HLE::SyscallOSABI::OS_LINUX64;
}
uint64_t HandleSyscall(FEXCore::Core::CpuStateFrame* Frame, FEXCore::HLE::SyscallArguments* Args) override {
// Don't do anything
return 0;
}
FEXCore::HLE::SyscallABI GetSyscallABI(uint64_t Syscall) override {
if (Syscall == 0) {
// Claim syscall 0 is simple for instcountci inline tests.
return FEXCore::HLE::SyscallABI {
.NumArgs = 0,
.HasReturn = true,
.HostSyscallNumber = 0, // Just map to host syscall zero, it isn't going to get called.
};
}
return {0, false, -1};
}
// These are no-ops implementations of the SyscallHandler API
FEXCore::HLE::AOTIRCacheEntryLookupResult LookupAOTIRCacheEntry(FEXCore::Core::InternalThreadState* Thread, uint64_t GuestAddr) override {
return {0, 0};
}
};
} // namespace
int main(int argc, char** argv, char** const envp) {
FEXCore::Allocator::GLIBCScopedFault GLIBFaultScope;
LogMan::Throw::InstallHandler(AssertHandler);
LogMan::Msg::InstallHandler(MsgHandler);
FEXCore::Config::Initialize();
FEXCore::Config::Load();
if (argc < 2) {
LogMan::Msg::EFmt("Usage: {} <Test binary> [Changed instruction count.json]", argv[0]);
return 1;
}
if (!LoadTests(argv[1])) {
LogMan::Msg::EFmt("Couldn't load tests from {}", argv[1]);
return 1;
}
FEXCore::Config::AddLayer(fextl::make_unique<TestEnvLoader>());
FEXCore::Config::ReloadMetaLayer();
// Setup configurations that this tool needs
// Maximum one instruction.
FEXCore::Config::Set(FEXCore::Config::CONFIG_MAXINST, "1");
// Enable block disassembly.
FEXCore::Config::Set(
FEXCore::Config::CONFIG_DISASSEMBLE,
fextl::fmt::format("{}", static_cast<uint64_t>(FEXCore::Config::Disassemble::BLOCKS | FEXCore::Config::Disassemble::STATS)));
// Choose bitness.
FEXCore::Config::Set(FEXCore::Config::CONFIG_IS64BIT_MODE, TestHeaderData->Bitness == 64 ? "1" : "0");
// Disable telemetry, it can affect instruction counts.
FEXCore::Config::Set(FEXCore::Config::CONFIG_DISABLETELEMETRY, "1");
// Disable vixl simulator indirect calls as it can affect instruction counts.
FEXCore::Config::Set(FEXCore::Config::CONFIG_DISABLE_VIXL_INDIRECT_RUNTIME_CALLS, "1");
// Host feature override. Only supports overriding SVE width.
enum HostFeatures {
FEATURE_SVE128 = (1U << 0),
FEATURE_SVE256 = (1U << 1),
FEATURE_CLZERO = (1U << 2),
FEATURE_RNG = (1U << 3),
FEATURE_FCMA = (1U << 4),
FEATURE_CSSC = (1U << 5),
FEATURE_AFP = (1U << 6),
FEATURE_RPRES = (1U << 7),
FEATURE_FLAGM = (1U << 8),
FEATURE_FLAGM2 = (1U << 9),
FEATURE_CRYPTO = (1U << 10),
FEATURE_AES256 = (1U << 11),
FEATURE_SVEBITPERM = (1U << 12),
FEATURE_TSO = (1U << 13),
FEATURE_LRCPC = (1U << 14),
FEATURE_LRCPC2 = (1U << 15),
FEATURE_FRINTTS = (1U << 16),
};
uint64_t SVEWidth = 0;
uint64_t HostFeatureControl {};
if (TestHeaderData->EnabledHostFeatures & FEATURE_SVE128) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLESVE);
SVEWidth = 128;
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_SVE256) {
SVEWidth = 256;
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_CLZERO) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLECLZERO);
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_RNG) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLERNG);
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_FCMA) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLEFCMA);
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_CSSC) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLECSSC);
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_AFP) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLEAFP);
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_RPRES) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLERPRES);
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_FLAGM) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLEFLAGM);
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_FLAGM2) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLEFLAGM2);
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_CRYPTO) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLECRYPTO);
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_SVEBITPERM) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLESVEBITPERM);
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_LRCPC) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLELRCPC);
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_LRCPC2) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLELRCPC2);
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_FRINTTS) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLEFRINTTS);
}
if (TestHeaderData->EnabledHostFeatures & FEATURE_TSO) {
// Always disable auto migration.
FEXCore::Config::Set(FEXCore::Config::ConfigOption::CONFIG_TSOAUTOMIGRATION, "0");
FEXCore::Config::Set(FEXCore::Config::ConfigOption::CONFIG_TSOENABLED, "1");
FEXCore::Config::Set(FEXCore::Config::ConfigOption::CONFIG_VECTORTSOENABLED, "1");
FEXCore::Config::Set(FEXCore::Config::ConfigOption::CONFIG_MEMCPYSETTSOENABLED, "1");
}
// Always enable ARMv8.1 LSE atomics.
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLEATOMICS);
if (TestHeaderData->DisabledHostFeatures & FEATURE_SVE128) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::DISABLESVE);
}
if (TestHeaderData->DisabledHostFeatures & FEATURE_CLZERO) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::DISABLECLZERO);
}
if (TestHeaderData->DisabledHostFeatures & FEATURE_RNG) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::DISABLERNG);
}
if (TestHeaderData->DisabledHostFeatures & FEATURE_FCMA) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::DISABLEFCMA);
}
if (TestHeaderData->DisabledHostFeatures & FEATURE_CSSC) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::DISABLECSSC);
}
if (TestHeaderData->DisabledHostFeatures & FEATURE_AFP) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::DISABLEAFP);
}
if (TestHeaderData->DisabledHostFeatures & FEATURE_RPRES) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::DISABLERPRES);
}
if (TestHeaderData->DisabledHostFeatures & FEATURE_FLAGM) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::DISABLEFLAGM);
}
if (TestHeaderData->DisabledHostFeatures & FEATURE_FLAGM2) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::DISABLEFLAGM2);
}
if (TestHeaderData->DisabledHostFeatures & FEATURE_CRYPTO) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::DISABLECRYPTO);
}
if (TestHeaderData->DisabledHostFeatures & FEATURE_SVEBITPERM) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::DISABLESVEBITPERM);
}
if (TestHeaderData->DisabledHostFeatures & FEATURE_LRCPC) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::DISABLELRCPC);
}
if (TestHeaderData->DisabledHostFeatures & FEATURE_LRCPC2) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::DISABLELRCPC2);
}
if (TestHeaderData->DisabledHostFeatures & FEATURE_FRINTTS) {
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::DISABLEFRINTTS);
}
if (TestHeaderData->DisabledHostFeatures & FEATURE_TSO) {
// Always disable auto migration.
FEXCore::Config::Set(FEXCore::Config::ConfigOption::CONFIG_TSOAUTOMIGRATION, "0");
FEXCore::Config::Set(FEXCore::Config::ConfigOption::CONFIG_TSOENABLED, "0");
FEXCore::Config::Set(FEXCore::Config::ConfigOption::CONFIG_VECTORTSOENABLED, "0");
FEXCore::Config::Set(FEXCore::Config::ConfigOption::CONFIG_MEMCPYSETTSOENABLED, "0");
}
// Always enable preserve_all abi.
HostFeatureControl |= static_cast<uint64_t>(FEXCore::Config::HostFeatures::ENABLEPRESERVEALLABI);
FEXCore::Config::Set(FEXCore::Config::CONFIG_HOSTFEATURES, fextl::fmt::format("{}", HostFeatureControl));
FEXCore::Config::Set(FEXCore::Config::CONFIG_FORCESVEWIDTH, fextl::fmt::format("{}", SVEWidth));
// Initialize static tables.
FEXCore::Context::InitializeStaticTables(TestHeaderData->Bitness == 64 ? FEXCore::Context::MODE_64BIT : FEXCore::Context::MODE_32BIT);
// Create FEXCore context.
fextl::unique_ptr<FEXCore::Context::Context> CTX;
{
auto HostFeatures = FEX::FetchHostFeatures();
HostFeatures.IsInstCountCI = true;
CTX = FEXCore::Context::Context::CreateNewContext(HostFeatures);
}
auto SignalDelegation = FEX::DummyHandlers::CreateSignalDelegator();
auto SyscallHandler = fextl::make_unique<SimpleSyscallHandler>();
CTX->SetSignalDelegator(SignalDelegation.get());
CTX->SetSyscallHandler(SyscallHandler.get());
if (!CTX->InitCore()) {
return -1;
}
auto ParentThread = CTX->CreateThread(0, 0);
// Calculate the base stats for instruction testing.
CodeSize::Validation.CalculateBaseStats(CTX.get(), ParentThread);
// Test all the instructions.
auto Result = TestInstructions(CTX.get(), ParentThread, argc >= 2 ? argv[2] : nullptr) ? 0 : 1;
CTX->DestroyThread(ParentThread);
FEXCore::Allocator::VirtualFree(TestData, TestDataSize);
return Result;
}