Files
FEX-Emu--FEX/Source/Tests/FEXLoader.cpp
T
2021-08-02 23:10:23 -07:00

601 lines
19 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/Config.h"
#include "Common/EnvironmentLoader.h"
#include "Common/RootFSSetup.h"
#include "ELFCodeLoader.h"
#include "ELFCodeLoader2.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/CodeLoader.h>
#include <FEXCore/Core/Context.h>
#include <FEXCore/Utils/Allocator.h>
#include <FEXCore/Utils/LogManager.h>
#include <cstdint>
#include <filesystem>
#include <string>
#include <unistd.h>
#include <vector>
#include <fstream>
#include <filesystem>
#include <algorithm>
#include <set>
#include <thread>
#include <queue>
#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());
}
}
void AssertHandler(char const *Message) {
if (!SilentLog) {
std::ostringstream Output;
Output << "[ASSERT] " << Message << std::endl;
write(OutputFD, Output.str().c_str(), Output.str().size());
}
}
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 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(std::make_unique<FEX::Config::MainLoader>());
if (IsInterpreter) {
FEX::ArgLoader::LoadWithoutArguments(argc, argv);
}
else {
FEXCore::Config::AddLayer(std::make_unique<FEX::ArgLoader::ArgLoader>(argc, argv));
}
FEXCore::Config::AddLayer(std::make_unique<FEX::Config::EnvLoader>(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(std::make_unique<FEX::Config::AppLoader>(ProgramName, true));
FEXCore::Config::AddLayer(std::make_unique<FEX::Config::AppLoader>(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);
::SilentLog = SilentLog();
if (!::SilentLog) {
auto LogFile = OutputLog();
if (LogFile == "stderr") {
OutputFD = STDERR_FILENO;
}
else if (LogFile == "stdout") {
OutputFD = STDOUT_FILENO;
}
else if (!LogFile.empty()) {
OutputFD = open(LogFile.c_str(), O_CREAT | O_CLOEXEC | O_WRONLY);
}
}
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.");
}
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));
FEXCore::Config::Set(FEXCore::Config::CONFIG_IS64BIT_MODE, Loader.Is64BitMode() ? "1" : "0");
std::unique_ptr<FEX::HLE::x32::MemAllocator> Allocator;
if (Loader.Is64BitMode()) {
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();
Loader.FreeSections();
FEX::RootFS::Shutdown();
FEXCore::Config::Shutdown();
LogMan::Throw::UnInstallHandlers();
LogMan::Msg::UnInstallHandlers();
FEXCore::Allocator::ClearHooks();
// Allocator is now original system allocator
if (ShutdownReason == FEXCore::Context::ExitReason::EXIT_SHUTDOWN) {
return ProgramStatus;
}
else {
return -64 | ShutdownReason;
}
}