Files
FEX-Emu--FEX/Source/Tests/FEXLoader.cpp
T
Ryan Houdek df2f1ad074 Allocator: Reserve upper 128TB of VA on 64-bit process
Only a partial fix for #1330, still needs preemption disabled to work.

On x86-64 hosts the Linux kernel resides in the top bit of VA which
isn't mapped in to userspace.
This means that userspace will never receive pointers living with that
top bit set unless you're running a 57bit VA host.

This results in userspace pointers never needing to do the sign
extending pointer canonicalization. But additionally some applications
actually don't understand the pointer canonicalization.
This results in bugs like: https://github.com/golang/go/issues/49405
Now if you're running on a 57bit VA host, this will end up behaving like
FEX but it seems like no one in golang land has really messed with 57bit
VA yet.

In AArch64, when configured with a 48bit VA, the userspace gets the full
48bit VA space and on EL mode switch has the full address range change
to the kernel's 48bit VA.
This means that we will /very/ likely allocate pointers in the high
48bit space since Linux currently allocates top-down.

So behave more like x86-64, hide the top 128TB of memory space from the
guest before boot.

Testing: Took the M1Max 15ms to 21ms allocate the top 128TB.
2021-11-06 01:10:00 -07:00

636 lines
20 KiB
C++

/*
$info$
tags: Bin|FEXLoader
desc: Glues the ELF loader, FEXCore and LinuxSyscalls to launch an elf under fex
$end_info$
*/
#include "Common/ArgumentLoader.h"
#include "Common/RootFSSetup.h"
#include "ELFCodeLoader2.h"
#include "Tests/LinuxSyscalls/Syscalls.h"
#include "Tests/LinuxSyscalls/x32/Syscalls.h"
#include "Tests/LinuxSyscalls/x64/Syscalls.h"
#include "Tests/LinuxSyscalls/SignalDelegator.h"
#include "Linux/Utils/ELFContainer.h"
#include <FEXCore/Config/Config.h>
#include <FEXCore/Core/Context.h>
#include <FEXCore/Core/CoreState.h>
#include <FEXCore/Utils/Allocator.h>
#include <FEXCore/Utils/LogManager.h>
#include <FEXCore/Utils/Telemetry.h>
#include <FEXCore/Utils/Threads.h>
#include <atomic>
#include <cstdint>
#include <elf.h>
#include <errno.h>
#include <fcntl.h>
#include <fstream>
#include <filesystem>
#include <memory>
#include <mutex>
#include <queue>
#include <set>
#include <stdio.h>
#include <stdlib.h>
#include <string>
#include <string.h>
#include <sys/auxv.h>
#include <sys/resource.h>
#include <sys/select.h>
#include <system_error>
#include <thread>
#include <unistd.h>
#include <utility>
#include <vector>
#include <sys/sysinfo.h>
namespace {
static bool SilentLog;
static int OutputFD {STDERR_FILENO};
static bool ExecutedWithFD {false};
void MsgHandler(LogMan::DebugLevels Level, char const *Message) {
const char *CharLevel{nullptr};
switch (Level) {
case LogMan::NONE:
CharLevel = "NONE";
break;
case LogMan::ASSERT:
CharLevel = "ASSERT";
break;
case LogMan::ERROR:
CharLevel = "ERROR";
break;
case LogMan::DEBUG:
CharLevel = "DEBUG";
break;
case LogMan::INFO:
CharLevel = "Info";
break;
case LogMan::STDOUT:
CharLevel = "STDOUT";
break;
case LogMan::STDERR:
CharLevel = "STDERR";
break;
default:
CharLevel = "???";
break;
}
if (!SilentLog) {
std::ostringstream Output;
Output << "[" << CharLevel << "] " << Message << std::endl;
write(OutputFD, Output.str().c_str(), Output.str().size());
fsync(OutputFD);
}
}
void AssertHandler(char const *Message) {
if (!SilentLog) {
std::ostringstream Output;
Output << "[ASSERT] " << Message << std::endl;
write(OutputFD, Output.str().c_str(), Output.str().size());
fsync(OutputFD);
}
}
bool CheckMemMapping() {
std::fstream fs;
fs.open("/proc/self/maps", std::fstream::in | std::fstream::binary);
std::string Line;
while (std::getline(fs, Line)) {
if (fs.eof()) break;
uint64_t Begin, End;
if (sscanf(Line.c_str(), "%lx-%lx", &Begin, &End) == 2) {
// If a memory range is living inside the 32bit memory space then we have a problem
if (Begin < 0x1'0000'0000) {
return false;
}
}
}
fs.close();
return true;
}
}
void InterpreterHandler(std::string *Filename, std::string const &RootFS, std::vector<std::string> *args) {
// Open the file pointer to the filename and see if we need to find an interpreter
std::fstream File;
size_t FileSize{0};
File.open(*Filename, std::fstream::in | std::fstream::binary);
if (!File.is_open())
return;
File.seekg(0, File.end);
FileSize = File.tellg();
File.seekg(0, File.beg);
// Is the file large enough for shebang
if (FileSize <= 2)
return;
// Handle shebang files
if (File.get() == '#' &&
File.get() == '!') {
std::string InterpreterLine;
std::getline(File, InterpreterLine);
std::vector<std::string> ShebangArguments{};
// Shebang line can have a single argument
std::istringstream InterpreterSS(InterpreterLine);
std::string Argument;
while (std::getline(InterpreterSS, Argument, ' ')) {
if (Argument.empty()) {
continue;
}
ShebangArguments.emplace_back(Argument);
}
// Executable argument
std::string &ShebangProgram = ShebangArguments[0];
// If the filename is absolute then prepend the rootfs
// If it is relative then don't append the rootfs
if (ShebangProgram[0] == '/') {
ShebangProgram = RootFS + ShebangProgram;
}
*Filename = ShebangProgram;
// Insert all the arguments at the start
args->insert(args->begin(), ShebangArguments.begin(), ShebangArguments.end());
// Done here
return;
}
}
bool RanAsInterpreter(char *Program) {
return ExecutedWithFD || strstr(Program, "FEXInterpreter") != nullptr;
}
bool IsInterpreterInstalled() {
// The interpreter is installed if both the binfmt_misc handlers are available
// Or if we were originally executed with FD. Which means the interpreter is installed
std::error_code ec{};
return ExecutedWithFD ||
(std::filesystem::exists("/proc/sys/fs/binfmt_misc/FEX-x86", ec) &&
std::filesystem::exists("/proc/sys/fs/binfmt_misc/FEX-x86_64", ec));
}
void AOTGenSection(FEXCore::Context::Context *CTX, ELFCodeLoader2::LoadedSection &Section) {
// Make sure this section is executable and big enough
if (!Section.Executable || Section.Size < 16)
return;
std::set<uintptr_t> InitialBranchTargets;
// Load the ELF again with symbol parsing this time
ELFLoader::ELFContainer container{Section.Filename, "", false};
// Add symbols to the branch targets list
container.AddSymbols([&](ELFLoader::ELFSymbol* sym) {
auto Destination = sym->Address + Section.ElfBase;
if (! (Destination >= Section.Base && Destination <= (Section.Base + Section.Size)) ) {
return; // outside of current section, unlikely to be real code
}
InitialBranchTargets.insert(Destination);
});
LogMan::Msg::I("Symbol seed: %ld", InitialBranchTargets.size());
// Add unwind entries to the branch target list
container.AddUnwindEntries([&](uintptr_t Entry) {
auto Destination = Entry + Section.ElfBase;
if (! (Destination >= Section.Base && Destination <= (Section.Base + Section.Size)) ) {
return; // outside of current section, unlikely to be real code
}
InitialBranchTargets.insert(Destination);
});
LogMan::Msg::I("Symbol + Unwind seed: %ld", InitialBranchTargets.size());
// Scan the executable section and try to find function entries
for (size_t Offset = 0; Offset < (Section.Size - 16); Offset++) {
uint8_t *pCode = (uint8_t *)(Section.Base + Offset);
// Possible CALL <disp32>
if (*pCode == 0xE8) {
uintptr_t Destination = (int)(pCode[1] | (pCode[2] << 8) | (pCode[3] << 16) | (pCode[4] << 24));
Destination += (uintptr_t)pCode + 5;
auto DestinationPtr = (uint8_t*)Destination;
if (! (Destination >= Section.Base && Destination <= (Section.Base + Section.Size)) )
continue; // outside of current section, unlikely to be real code
if (DestinationPtr[0] == 0 && DestinationPtr[1] == 0)
continue; // add al, [rax], unlikely to be real code
InitialBranchTargets.insert(Destination);
}
// endbr64 marker marks an indirect branch destination
if (pCode[0] == 0xf3 && pCode[1] == 0x0f && pCode[2] == 0x1e && pCode[3] == 0xfa) {
InitialBranchTargets.insert((uintptr_t)pCode);
}
}
uint64_t SectionMaxAddress = Section.Base + Section.Size;
std::set<uint64_t> Compiled;
std::atomic<int> counter = 0;
std::queue<uint64_t> BranchTargets;
// Setup BranchTargets, Compiled sets from InitiaBranchTargets
Compiled.insert(InitialBranchTargets.begin(), InitialBranchTargets.end());
for (auto BranchTarget: InitialBranchTargets) {
BranchTargets.push(BranchTarget);
}
InitialBranchTargets.clear();
std::mutex QueueMutex;
std::vector<std::thread> ThreadPool;
for (int i = 0; i < get_nprocs_conf(); i++) {
std::thread thd([&BranchTargets, CTX, &counter, &Compiled, &Section, &QueueMutex, SectionMaxAddress]() {
// Set the priority of the thread so it doesn't overwhelm the system when running in the background
setpriority(PRIO_PROCESS, ::gettid(), 19);
// Setup thread - Each compilation thread uses its own backing FEX thread
FEXCore::Core::CPUState state;
auto Thread = FEXCore::Context::CreateThread(CTX, &state, gettid());
std::set<uint64_t> ExternalBranchesLocal;
FEXCore::Context::ConfigureAOTGen(Thread, &ExternalBranchesLocal, SectionMaxAddress);
for (;;) {
uint64_t BranchTarget;
// Get a entrypoint to process from the queue
QueueMutex.lock();
if (BranchTargets.empty()) {
QueueMutex.unlock();
break; // no entrypoint to process - exit
}
BranchTarget = BranchTargets.front();
BranchTargets.pop();
QueueMutex.unlock();
// Compile entrypoint
counter++;
FEXCore::Context::CompileRIP(Thread, BranchTarget);
// Are there more branches?
if (ExternalBranchesLocal.size() > 0) {
// Add them to the "to process" list
QueueMutex.lock();
for(auto Destination: ExternalBranchesLocal) {
if (! (Destination >= Section.Base && Destination <= (Section.Base + Section.Size)) )
continue;
if (Compiled.contains(Destination))
continue;
Compiled.insert(Destination);
BranchTargets.push(Destination);
}
QueueMutex.unlock();
ExternalBranchesLocal.clear();
}
}
// All entryproints processed, cleanup this thread
FEXCore::Context::DestroyThread(CTX, Thread);
});
// Add to the thread pool
ThreadPool.push_back(std::move(thd));
}
// Make sure all threads are finished
for (auto & Thread: ThreadPool) {
Thread.join();
}
ThreadPool.clear();
LogMan::Msg::I("\nAll Done: %d", counter.load());
}
int main(int argc, char **argv, char **const envp) {
bool IsInterpreter = RanAsInterpreter(argv[0]);
ExecutedWithFD = getauxval(AT_EXECFD) != 0;
LogMan::Throw::InstallHandler(AssertHandler);
LogMan::Msg::InstallHandler(MsgHandler);
#if !(defined(ENABLE_ASAN) && ENABLE_ASAN)
// LLVM ASAN maps things to the lower 32bits
// Valgrind also places us in the lower 32-bits
if (!getenv("VALGRIND_LAUNCHER") &&
!CheckMemMapping()) {
LogMan::Msg::E("[Unsupported] FEX mapped to lower 32bits! Exiting!");
return -1;
}
#endif
FEXCore::Config::Initialize();
FEXCore::Config::AddLayer(FEXCore::Config::CreateMainLayer());
if (IsInterpreter) {
FEX::ArgLoader::LoadWithoutArguments(argc, argv);
}
else {
FEXCore::Config::AddLayer(std::make_unique<FEX::ArgLoader::ArgLoader>(argc, argv));
}
FEXCore::Config::AddLayer(FEXCore::Config::CreateEnvironmentLayer(envp));
FEXCore::Config::Load();
auto Args = FEX::ArgLoader::Get();
auto ParsedArgs = FEX::ArgLoader::GetParsedArgs();
if (Args.empty()) {
// Early exit if we weren't passed an argument
return 0;
}
std::string Program = Args[0];
// These layers load on initialization
auto ProgramName = std::filesystem::path(Program).filename();
FEXCore::Config::AddLayer(FEXCore::Config::CreateAppLayer(ProgramName, true));
FEXCore::Config::AddLayer(FEXCore::Config::CreateAppLayer(ProgramName, false));
// Reload the meta layer
FEXCore::Config::ReloadMetaLayer();
FEXCore::Config::Set(FEXCore::Config::CONFIG_IS_INTERPRETER, IsInterpreter ? "1" : "0");
FEXCore::Config::Set(FEXCore::Config::CONFIG_INTERPRETER_INSTALLED, IsInterpreterInstalled() ? "1" : "0");
// Early check for process stall
// Doesn't use CONFIG_ROOTFS and we don't want it to spin up a squashfs instance
FEX_CONFIG_OPT(StallProcess, STALLPROCESS);
if (StallProcess) {
while (1) {
// Stall this process out forever
select(0, nullptr, nullptr, nullptr, nullptr);
}
}
// Ensure RootFS is setup before config options try to pull CONFIG_ROOTFS
if (!FEX::RootFS::Setup(envp)) {
LogMan::Msg::E("RootFS failure");
return -1;
}
FEX_CONFIG_OPT(SilentLog, SILENTLOG);
FEX_CONFIG_OPT(AOTIRCapture, AOTIRCAPTURE);
FEX_CONFIG_OPT(AOTIRGenerate, AOTIRGENERATE);
FEX_CONFIG_OPT(AOTIRLoad, AOTIRLOAD);
FEX_CONFIG_OPT(OutputLog, OUTPUTLOG);
FEX_CONFIG_OPT(LDPath, ROOTFS);
FEX_CONFIG_OPT(Environment, ENV);
FEX_CONFIG_OPT(HostEnvironment, HOSTENV);
::SilentLog = SilentLog();
if (!::SilentLog) {
auto LogFile = OutputLog();
// If stderr or stdout then we need to dup the FD
// In some cases some applications will close stderr and stdout
// then redirect the FD to either a log OR some cases just not use
// stderr/stdout and the FD will be reused for regular FD ops.
//
// We want to maintain the original output location otherwise we
// can run in to problems of writing to some file
if (LogFile == "stderr") {
OutputFD = dup(STDERR_FILENO);
}
else if (LogFile == "stdout") {
OutputFD = dup(STDOUT_FILENO);
}
else if (!LogFile.empty()) {
OutputFD = open(LogFile.c_str(), O_CREAT | O_CLOEXEC | O_WRONLY);
}
}
FEXCore::Telemetry::Initialize();
InterpreterHandler(&Program, LDPath(), &Args);
std::error_code ec{};
if (!std::filesystem::exists(Program, ec)) {
// Early exit if the program passed in doesn't exist
// Will prevent a crash later
fprintf(stderr, "%s: command not found\n", Program.c_str());
return -ENOEXEC;
}
uint32_t KernelVersion = FEX::HLE::SyscallHandler::CalculateHostKernelVersion();
if (KernelVersion < FEX::HLE::SyscallHandler::KernelVersion(4, 17)) {
// We require 4.17 minimum for MAP_FIXED_NOREPLACE
LogMan::Msg::E("FEXLoader requires kernel 4.17 minimum. Expect problems.");
}
// Before we go any further, set all of our host environment variables that the config has provided
for (auto &HostEnv : HostEnvironment.All()) {
// We are going to keep these alive in memory.
// No need to split the string with setenv
putenv(HostEnv.data());
}
ELFCodeLoader2 Loader{Program, LDPath(), Args, ParsedArgs, envp, &Environment};
//FEX::HarnessHelper::ELFCodeLoader Loader{Program, LDPath(), Args, ParsedArgs, envp, &Environment};
if (!Loader.ELFWasLoaded()) {
// Loader couldn't load this program for some reason
fprintf(stderr, "Invalid or Unsupported elf file.\n");
#ifdef _M_ARM_64
fprintf(stderr, "This is likely due to a misconfigured x86-64 RootFS\n");
fprintf(stderr, "Current RootFS path set to '%s'\n", LDPath().c_str());
std::error_code ec;
if (LDPath().size() == 0 ||
std::filesystem::exists(LDPath(), ec) == false) {
fprintf(stderr, "RootFS path doesn't exist. This is required on AArch64 hosts\n");
}
#endif
return -ENOEXEC;
}
FEXCore::Config::Set(FEXCore::Config::CONFIG_APP_FILENAME, std::filesystem::canonical(Program).string());
FEXCore::Config::Set(FEXCore::Config::CONFIG_IS64BIT_MODE, Loader.Is64BitMode() ? "1" : "0");
std::unique_ptr<FEX::HLE::x32::MemAllocator> Allocator;
FEXCore::Allocator::PtrCache *Base48Bit{};
if (Loader.Is64BitMode()) {
// Destroy the 48th bit if it exists
Base48Bit = FEXCore::Allocator::Steal48BitVA();
if (!Loader.MapMemory([](void *addr, size_t length, int prot, int flags, int fd, off_t offset) {
return FEXCore::Allocator::mmap(addr, length, prot, flags, fd, offset);
}, [](void *addr, size_t length) {
return FEXCore::Allocator::munmap(addr, length);
})) {
// failed to map
LogMan::Msg::E("Failed to map 64-bit elf file.");
return -ENOEXEC;
}
} else {
FEX_CONFIG_OPT(Use32BitAllocator, FORCE32BITALLOCATOR);
if (KernelVersion < FEX::HLE::SyscallHandler::KernelVersion(4, 17)) {
Use32BitAllocator = true;
}
// Setup our userspace allocator
if (!Use32BitAllocator &&
KernelVersion >= FEX::HLE::SyscallHandler::KernelVersion(4, 17)) {
FEXCore::Allocator::SetupHooks();
}
Allocator = FEX::HLE::x32::CreateAllocator(Use32BitAllocator);
if (!Loader.MapMemory([&Allocator](void *addr, size_t length, int prot, int flags, int fd, off_t offset) {
return Allocator->mmap(addr, length, prot, flags, fd, offset);
}, [&Allocator](void *addr, size_t length) {
return Allocator->munmap(addr, length);
})) {
// failed to map
LogMan::Msg::E("Failed to map 32-bit elf file.");
return -ENOEXEC;
}
}
// System allocator is now system allocator or FEX
FEXCore::Context::InitializeStaticTables(Loader.Is64BitMode() ? FEXCore::Context::MODE_64BIT : FEXCore::Context::MODE_32BIT);
auto CTX = FEXCore::Context::CreateNewContext();
FEXCore::Context::InitializeContext(CTX);
auto SignalDelegation = std::make_unique<FEX::HLE::SignalDelegator>();
auto SyscallHandler = Loader.Is64BitMode() ? FEX::HLE::x64::CreateHandler(CTX, SignalDelegation.get())
: FEX::HLE::x32::CreateHandler(CTX, SignalDelegation.get(), std::move(Allocator));
SyscallHandler->SetCodeLoader(&Loader);
auto BRKInfo = Loader.GetBRKInfo();
SyscallHandler->DefaultProgramBreak(BRKInfo.Base, BRKInfo.Size);
FEXCore::Context::SetSignalDelegator(CTX, SignalDelegation.get());
FEXCore::Context::SetSyscallHandler(CTX, SyscallHandler.get());
FEXCore::Context::InitCore(CTX, &Loader);
FEXCore::Context::ExitReason ShutdownReason = FEXCore::Context::ExitReason::EXIT_SHUTDOWN;
// There might already be an exit handler, leave it installed
if(!FEXCore::Context::GetExitHandler(CTX)) {
FEXCore::Context::SetExitHandler(CTX, [&](uint64_t thread, FEXCore::Context::ExitReason reason) {
if (reason != FEXCore::Context::ExitReason::EXIT_DEBUG) {
ShutdownReason = reason;
FEXCore::Context::Stop(CTX);
}
});
}
if (AOTIRLoad() || AOTIRCapture() || AOTIRGenerate()) {
LogMan::Msg::I("Warning: AOTIR is experimental, and might lead to crashes. Capture doesn't work with programs that fork.");
}
FEXCore::Context::SetAOTIRLoader(CTX, [](const std::string &fileid) -> int {
auto filepath = std::filesystem::path(FEXCore::Config::GetDataDirectory()) / "aotir" / (fileid + ".aotir");
return open(filepath.c_str(), O_RDONLY);
});
FEXCore::Context::SetAOTIRWriter(CTX, [](const std::string& fileid) -> std::unique_ptr<std::ostream> {
auto filepath = std::filesystem::path(FEXCore::Config::GetDataDirectory()) / "aotir" / (fileid + ".aotir");
auto AOTWrite = std::make_unique<std::ofstream>(filepath, std::ios::out | std::ios::binary);
if (*AOTWrite) {
std::filesystem::resize_file(filepath, 0);
AOTWrite->seekp(0);
LogMan::Msg::I("AOTIR: Storing %s", fileid.c_str());
} else {
LogMan::Msg::I("AOTIR: Failed to store %s", fileid.c_str());
}
return AOTWrite;
});
for(auto Section: *Loader.Sections) {
FEXCore::Context::AddNamedRegion(CTX, Section.Base, Section.Size, Section.Offs, Section.Filename);
}
if (AOTIRGenerate()) {
for(auto &Section: *Loader.Sections) {
AOTGenSection(CTX, Section);
}
} else {
FEXCore::Context::RunUntilExit(CTX);
}
if (std::filesystem::create_directories(std::filesystem::path(FEXCore::Config::GetDataDirectory()) / "aotir", ec)) {
FEXCore::Context::WriteFilesWithCode(CTX, [](const std::string& fileid, const std::string& filename) {
auto filepath = std::filesystem::path(FEXCore::Config::GetDataDirectory()) / "aotir" / (fileid + ".path");
int fd = open(filepath.c_str(), O_CREAT | O_EXCL | O_WRONLY, 0644);
if (fd != -1) {
write(fd, filename.c_str(), filename.size());
close(fd);
}
});
}
if (AOTIRCapture() || AOTIRGenerate()) {
FEXCore::Context::FinalizeAOTIRCache(CTX);
LogMan::Msg::I("AOTIR Cache Stored");
}
auto ProgramStatus = FEXCore::Context::GetProgramStatus(CTX);
SyscallHandler.reset();
SignalDelegation.reset();
FEXCore::Context::DestroyContext(CTX);
FEXCore::Context::ShutdownStaticTables();
FEXCore::Threads::Shutdown();
Loader.FreeSections();
FEX::RootFS::Shutdown();
FEXCore::Config::Shutdown();
LogMan::Throw::UnInstallHandlers();
LogMan::Msg::UnInstallHandlers();
FEXCore::Allocator::ClearHooks();
FEXCore::Allocator::ReclaimMemoryRegion(Base48Bit);
// Allocator is now original system allocator
FEXCore::Telemetry::Shutdown(ProgramName);
if (ShutdownReason == FEXCore::Context::ExitReason::EXIT_SHUTDOWN) {
return ProgramStatus;
}
else {
return -64 | ShutdownReason;
}
}