mirror of
https://github.com/FEX-Emu/FEX.git
synced 2026-10-07 23:00:19 +02:00
676 lines
26 KiB
C++
676 lines
26 KiB
C++
// SPDX-License-Identifier: MIT
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/*
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$info$
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tags: LinuxSyscalls|syscalls-shared
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$end_info$
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*/
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#include "FEXCore/IR/IR.h"
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#include "LinuxSyscalls/SignalDelegator.h"
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#include "LinuxSyscalls/Syscalls.h"
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#include "LinuxSyscalls/Syscalls/Thread.h"
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#include "LinuxSyscalls/x64/Syscalls.h"
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#include "LinuxSyscalls/x64/Thread.h"
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#include "LinuxSyscalls/x32/Syscalls.h"
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#include "LinuxSyscalls/x32/Thread.h"
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#include <FEXCore/Core/Context.h>
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#include <FEXCore/Core/X86Enums.h>
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#include <FEXCore/Debug/InternalThreadState.h>
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#include <FEXCore/IR/IR.h>
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#include <FEXHeaderUtils/Syscalls.h>
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#include <grp.h>
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#include <limits.h>
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#include <linux/futex.h>
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#include <stdint.h>
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#include <sched.h>
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#include <sys/personality.h>
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#include <sys/poll.h>
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#include <sys/prctl.h>
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#include <sys/resource.h>
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#include <sys/syscall.h>
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#include <sys/types.h>
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#include <sys/time.h>
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#include <sys/wait.h>
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#include <unistd.h>
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#include <sys/fsuid.h>
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ARG_TO_STR(idtype_t, "%u")
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namespace FEX::HLE {
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struct ExecutionThreadHandler {
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FEXCore::Context::Context *CTX;
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FEXCore::Core::InternalThreadState *Thread;
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};
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static void *ThreadHandler(void* Data) {
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ExecutionThreadHandler *Handler = reinterpret_cast<ExecutionThreadHandler*>(Data);
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auto CTX = Handler->CTX;
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auto Thread = Handler->Thread;
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FEXCore::Allocator::free(Handler);
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CTX->ExecutionThread(Thread);
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return nullptr;
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}
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FEXCore::Core::InternalThreadState *CreateNewThread(FEXCore::Context:: Context *CTX, FEXCore::Core::CpuStateFrame *Frame, FEX::HLE::clone3_args *args) {
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uint64_t flags = args->args.flags;
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FEXCore::Core::CPUState NewThreadState{};
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// Clone copies the parent thread's state
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memcpy(&NewThreadState, Frame, sizeof(FEXCore::Core::CPUState));
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NewThreadState.gregs[FEXCore::X86State::REG_RAX] = 0;
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if (args->Type == TYPE_CLONE3) {
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// stack pointer points to the lowest address to the stack
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// set RSP to stack + size
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NewThreadState.gregs[FEXCore::X86State::REG_RSP] = args->args.stack + args->args.stack_size;
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}
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else {
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NewThreadState.gregs[FEXCore::X86State::REG_RSP] = args->args.stack;
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}
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auto NewThread = CTX->CreateThread(0, 0, FEXCore::Context::Context::ManagedBy::CORE, &NewThreadState, args->args.parent_tid);
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if (FEX::HLE::_SyscallHandler->Is64BitMode()) {
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if (flags & CLONE_SETTLS) {
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x64::SetThreadArea(NewThread->CurrentFrame, reinterpret_cast<void*>(args->args.tls));
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}
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// Set us to start just after the syscall instruction
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x64::AdjustRipForNewThread(NewThread->CurrentFrame);
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}
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else {
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if (flags & CLONE_SETTLS) {
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x32::SetThreadArea(NewThread->CurrentFrame, reinterpret_cast<void*>(args->args.tls));
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}
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x32::AdjustRipForNewThread(NewThread->CurrentFrame);
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}
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// We need to do some post-thread creation setup.
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NewThread->StartPaused = true;
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// Initialize a new thread for execution.
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ExecutionThreadHandler *Arg = reinterpret_cast<ExecutionThreadHandler*>(FEXCore::Allocator::malloc(sizeof(ExecutionThreadHandler)));
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Arg->CTX = CTX;
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Arg->Thread = NewThread;
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NewThread->ExecutionThread = FEXCore::Threads::Thread::Create(ThreadHandler, Arg);
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// Wait for the thread to have started.
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NewThread->ThreadWaiting.Wait();
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if (FEX::HLE::_SyscallHandler->NeedXIDCheck()) {
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// The first time an application creates a thread, GLIBC installs their SETXID signal handler.
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// FEX needs to capture all signals and defer them to the guest.
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// Once FEX creates its first guest thread, overwrite the GLIBC SETXID handler *again* to ensure
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// FEX maintains control of the signal handler on this signal.
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FEX::HLE::_SyscallHandler->GetSignalDelegator()->CheckXIDHandler();
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FEX::HLE::_SyscallHandler->DisableXIDCheck();
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}
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// Return the new threads TID
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uint64_t Result = NewThread->ThreadManager.GetTID();
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// Sets the child TID to pointer in ParentTID
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if (flags & CLONE_PARENT_SETTID) {
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*reinterpret_cast<pid_t*>(args->args.parent_tid) = Result;
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}
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// Sets the child TID to the pointer in ChildTID
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if (flags & CLONE_CHILD_SETTID) {
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NewThread->ThreadManager.set_child_tid = reinterpret_cast<int32_t*>(args->args.child_tid);
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*reinterpret_cast<pid_t*>(args->args.child_tid) = Result;
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}
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// When the thread exits, clear the child thread ID at ChildTID
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// Additionally wakeup a futex at that address
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// Address /may/ be changed with SET_TID_ADDRESS syscall
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if (flags & CLONE_CHILD_CLEARTID) {
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NewThread->ThreadManager.clear_child_tid = reinterpret_cast<int32_t*>(args->args.child_tid);
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}
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// clone3 flag
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if (flags & CLONE_PIDFD) {
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// Use pidfd_open to emulate this flag
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const int pidfd = ::syscall(SYSCALL_DEF(pidfd_open), Result, 0);
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if (Result == ~0ULL) {
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LogMan::Msg::EFmt("Couldn't get pidfd of TID {}\n", Result);
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}
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else {
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*reinterpret_cast<int*>(args->args.pidfd) = pidfd;
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}
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}
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return NewThread;
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}
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uint64_t HandleNewClone(FEXCore::Core::InternalThreadState *Thread, FEXCore::Context::Context *CTX, FEXCore::Core::CpuStateFrame *Frame, FEX::HLE::clone3_args *CloneArgs) {
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auto GuestArgs = &CloneArgs->args;
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uint64_t flags = GuestArgs->flags;
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auto NewThread = Thread;
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if (flags & CLONE_THREAD) {
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FEXCore::Core::CPUState NewThreadState{};
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// Clone copies the parent thread's state
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memcpy(&NewThreadState, Frame, sizeof(FEXCore::Core::CPUState));
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NewThreadState.gregs[FEXCore::X86State::REG_RAX] = 0;
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if (GuestArgs->stack == 0) {
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// Copies in the original thread's stack
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}
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else {
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NewThreadState.gregs[FEXCore::X86State::REG_RSP] = GuestArgs->stack;
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}
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// Overwrite thread
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NewThread = CTX->CreateThread(0, 0, FEXCore::Context::Context::ManagedBy::CORE, &NewThreadState, GuestArgs->parent_tid);
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// CLONE_PARENT_SETTID, CLONE_CHILD_SETTID, CLONE_CHILD_CLEARTID, CLONE_PIDFD will be handled by kernel
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// Call execution thread directly since we already are on the new thread
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NewThread->StartRunning.NotifyAll(); // Clear the start running flag
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}
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else{
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// If we don't have CLONE_THREAD then we are effectively a fork
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// Clear all the other threads that are being tracked
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// Frame->Thread is /ONLY/ safe to access when CLONE_THREAD flag is not set
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// Unlock the mutexes on both sides of the fork
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FEX::HLE::_SyscallHandler->UnlockAfterFork(true);
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// Clear all the other threads that are being tracked
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Thread->CTX->UnlockAfterFork(Frame->Thread, true);
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::syscall(SYS_rt_sigprocmask, SIG_SETMASK, &CloneArgs->SignalMask, nullptr, sizeof(CloneArgs->SignalMask));
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Thread->CurrentFrame->State.gregs[FEXCore::X86State::REG_RAX] = 0;
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if (GuestArgs->stack == 0) {
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// Copies in the original thread's stack
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}
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else {
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Thread->CurrentFrame->State.gregs[FEXCore::X86State::REG_RSP] = GuestArgs->stack;
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}
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}
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if (CloneArgs->Type == TYPE_CLONE3) {
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// If we are coming from a clone3 handler then we need to adjust RSP.
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Thread->CurrentFrame->State.gregs[FEXCore::X86State::REG_RSP] += CloneArgs->args.stack_size;
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}
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if (FEX::HLE::_SyscallHandler->Is64BitMode()) {
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if (flags & CLONE_SETTLS) {
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x64::SetThreadArea(NewThread->CurrentFrame, reinterpret_cast<void*>(GuestArgs->tls));
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}
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// Set us to start just after the syscall instruction
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x64::AdjustRipForNewThread(NewThread->CurrentFrame);
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}
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else {
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if (flags & CLONE_SETTLS) {
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x32::SetThreadArea(NewThread->CurrentFrame, reinterpret_cast<void*>(GuestArgs->tls));
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}
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x32::AdjustRipForNewThread(NewThread->CurrentFrame);
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}
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// Depending on clone settings, our TID and PID could have changed
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Thread->ThreadManager.TID = FHU::Syscalls::gettid();
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Thread->ThreadManager.PID = ::getpid();
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FEX::HLE::_SyscallHandler->FM.UpdatePID(Thread->ThreadManager.PID);
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// Start exuting the thread directly
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// Our host clone starts in a new stack space, so it can't return back to the JIT space
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CTX->ExecutionThread(Thread);
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// The rest of the context remains as is and the thread will continue executing
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return Thread->StatusCode;
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}
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uint64_t ForkGuest(FEXCore::Core::InternalThreadState *Thread, FEXCore::Core::CpuStateFrame *Frame, uint32_t flags, void *stack, size_t StackSize, pid_t *parent_tid, pid_t *child_tid, void *tls) {
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// Just before we fork, we lock all syscall mutexes so that both processes will end up with a locked mutex
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uint64_t Mask{~0ULL};
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::syscall(SYS_rt_sigprocmask, SIG_SETMASK, &Mask, &Mask, sizeof(Mask));
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Thread->CTX->LockBeforeFork(Frame->Thread);
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FEX::HLE::_SyscallHandler->LockBeforeFork();
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const bool IsVFork = flags & CLONE_VFORK;
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pid_t Result{};
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int VForkFDs[2];
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if (IsVFork) {
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// Use pipes as a mechanism for knowing when the child process is exiting.
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// FEX can't use `waitpid` for this since the child process may want to use it.
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// If we use `waitpid` then the kernel won't return the same data if asked again.
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pipe2(VForkFDs, O_CLOEXEC);
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// XXX: We don't currently support a real `vfork` as it causes problems.
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// Currently behaves like a fork (with wait after the fact), which isn't correct. Need to find where the problem is
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Result = fork();
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if (Result == 0) {
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// Close the read end of the pipe.
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// Keep the write end open so the parent can poll it.
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close(VForkFDs[0]);
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}
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else {
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// Close the write end of the pipe.
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close(VForkFDs[1]);
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}
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}
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else {
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Result = fork();
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}
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const bool IsChild = Result == 0;
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if (IsChild) {
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// Unlock the mutexes on both sides of the fork
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FEX::HLE::_SyscallHandler->UnlockAfterFork(IsChild);
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// Clear all the other threads that are being tracked
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Thread->CTX->UnlockAfterFork(Frame->Thread, IsChild);
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::syscall(SYS_rt_sigprocmask, SIG_SETMASK, &Mask, nullptr, sizeof(Mask));
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// Child
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// update the internal TID
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Thread->ThreadManager.TID = FHU::Syscalls::gettid();
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Thread->ThreadManager.PID = ::getpid();
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FEX::HLE::_SyscallHandler->FM.UpdatePID(Thread->ThreadManager.PID);
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Thread->ThreadManager.clear_child_tid = nullptr;
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// only a single thread running so no need to remove anything from the thread array
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// Handle child setup now
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if (stack != nullptr) {
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// use specified stack
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Frame->State.gregs[FEXCore::X86State::REG_RSP] = reinterpret_cast<uint64_t>(stack) + StackSize;
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} else {
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// In the case of fork and nullptr stack then the child uses the same stack space as the parent
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// Same virtual address, different addressspace
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}
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if (FEX::HLE::_SyscallHandler->Is64BitMode()) {
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if (flags & CLONE_SETTLS) {
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x64::SetThreadArea(Frame, tls);
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}
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}
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else {
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// 32bit TLS doesn't just set the fs register
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if (flags & CLONE_SETTLS) {
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x32::SetThreadArea(Frame, tls);
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}
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}
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// Sets the child TID to the pointer in ChildTID
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if (flags & CLONE_CHILD_SETTID) {
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Thread->ThreadManager.set_child_tid = child_tid;
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*child_tid = Thread->ThreadManager.TID;
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}
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// When the thread exits, clear the child thread ID at ChildTID
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// Additionally wakeup a futex at that address
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// Address /may/ be changed with SET_TID_ADDRESS syscall
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if (flags & CLONE_CHILD_CLEARTID) {
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Thread->ThreadManager.clear_child_tid = child_tid;
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}
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// the rest of the context remains as is, this thread will keep executing
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return 0;
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} else {
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if (Result != -1) {
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if (flags & CLONE_PARENT_SETTID) {
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*parent_tid = Result;
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}
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}
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// Unlock the mutexes on both sides of the fork
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FEX::HLE::_SyscallHandler->UnlockAfterFork(IsChild);
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// Clear all the other threads that are being tracked
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Thread->CTX->UnlockAfterFork(Frame->Thread, IsChild);
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::syscall(SYS_rt_sigprocmask, SIG_SETMASK, &Mask, nullptr, sizeof(Mask));
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// VFork needs the parent to wait for the child to exit.
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if (IsVFork) {
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// Wait for the read end of the pipe to close.
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pollfd PollFD{};
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PollFD.fd = VForkFDs[0];
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PollFD.events = POLLIN | POLLOUT | POLLRDHUP | POLLERR | POLLHUP | POLLNVAL;
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// Mask all signals until the child process returns.
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sigset_t SignalMask{};
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sigfillset(&SignalMask);
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while (ppoll(&PollFD, 1, nullptr, &SignalMask) == -1 && errno == EINTR);
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// Close the read end now.
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close(VForkFDs[0]);
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}
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// Parent
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SYSCALL_ERRNO();
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}
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}
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void RegisterThread(FEX::HLE::SyscallHandler *Handler) {
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using namespace FEXCore::IR;
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REGISTER_SYSCALL_IMPL(rt_sigreturn, [](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
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FEX::HLE::_SyscallHandler->GetSignalDelegator()->HandleSignalHandlerReturn(true);
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FEX_UNREACHABLE;
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});
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REGISTER_SYSCALL_IMPL_PASS_FLAGS(getpid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
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[](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
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uint64_t Result = ::getpid();
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_FLAGS(fork, SyscallFlags::DEFAULT, [](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
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return ForkGuest(Frame->Thread, Frame, 0, 0, 0, 0, 0, 0);
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});
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REGISTER_SYSCALL_IMPL_FLAGS(vfork, SyscallFlags::DEFAULT, [](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
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return ForkGuest(Frame->Thread, Frame, CLONE_VFORK, 0, 0, 0, 0, 0);
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});
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REGISTER_SYSCALL_IMPL_FLAGS(clone3, SyscallFlags::DEFAULT, ([](FEXCore::Core::CpuStateFrame *Frame, FEX::HLE::kernel_clone3_args *cl_args, size_t size) -> uint64_t {
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FEX::HLE::clone3_args args{};
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args.Type = TypeOfClone::TYPE_CLONE3;
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memcpy(&args.args, cl_args, std::min(sizeof(FEX::HLE::kernel_clone3_args), size));
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return CloneHandler(Frame, &args);
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}));
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REGISTER_SYSCALL_IMPL_FLAGS(exit, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY | SyscallFlags::NORETURN,
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[](FEXCore::Core::CpuStateFrame *Frame, int status) -> uint64_t {
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auto Thread = Frame->Thread;
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// TLS/DTV teardown is something FEX can't control. Disable glibc checking when we leave a pthread.
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// Since this thread is hard stopping, we can't track the TLS/DTV teardown in FEX's thread handling.
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FEXCore::Allocator::YesIKnowImNotSupposedToUseTheGlibcAllocator::HardDisable();
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if (Thread->ThreadManager.clear_child_tid) {
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std::atomic<uint32_t> *Addr = reinterpret_cast<std::atomic<uint32_t>*>(Thread->ThreadManager.clear_child_tid);
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Addr->store(0);
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syscall(SYSCALL_DEF(futex),
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Thread->ThreadManager.clear_child_tid,
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FUTEX_WAKE,
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~0ULL,
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0,
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0,
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0);
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}
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Thread->StatusCode = status;
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Thread->CTX->StopThread(Thread);
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return 0;
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});
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REGISTER_SYSCALL_IMPL_PASS_FLAGS(kill, SyscallFlags::DEFAULT, [](FEXCore::Core::CpuStateFrame *Frame, pid_t pid, int sig) -> uint64_t {
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uint64_t Result = ::kill(pid, sig);
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_PASS_FLAGS(tkill, SyscallFlags::DEFAULT, [](FEXCore::Core::CpuStateFrame *Frame, int tid, int sig) -> uint64_t {
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// Can't actually use tgkill here, kernel rejects tgkill of tgid == 0
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uint64_t Result = ::syscall(SYSCALL_DEF(tkill), tid, sig);
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_PASS_FLAGS(tgkill, SyscallFlags::DEFAULT, [](FEXCore::Core::CpuStateFrame *Frame, int tgid, int tid, int sig) -> uint64_t {
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uint64_t Result = FHU::Syscalls::tgkill(tgid, tid, sig);
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_PASS_FLAGS(getuid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
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[](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
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uint64_t Result = ::getuid();
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_PASS_FLAGS(getgid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
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[](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
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uint64_t Result = ::getgid();
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_PASS_FLAGS(setuid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
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[](FEXCore::Core::CpuStateFrame *Frame, uid_t uid) -> uint64_t {
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uint64_t Result = ::syscall(SYSCALL_DEF(setuid), uid);
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_PASS_FLAGS(setgid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
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[](FEXCore::Core::CpuStateFrame *Frame, gid_t gid) -> uint64_t {
|
|
uint64_t Result = ::syscall(SYSCALL_DEF(setgid), gid);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(geteuid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
|
|
uint64_t Result = ::geteuid();
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(getegid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
|
|
uint64_t Result = ::getegid();
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(getppid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
|
|
uint64_t Result = ::getppid();
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(getpgrp, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
|
|
uint64_t Result = ::getpgrp();
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(setsid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
|
|
uint64_t Result = ::setsid();
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(setreuid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, uid_t ruid, uid_t euid) -> uint64_t {
|
|
uint64_t Result = ::syscall(SYSCALL_DEF(setreuid), ruid, euid);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(setregid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, gid_t rgid, gid_t egid) -> uint64_t {
|
|
uint64_t Result = ::syscall(SYSCALL_DEF(setregid), rgid, egid);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(getgroups, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, int size, gid_t list[]) -> uint64_t {
|
|
uint64_t Result = ::getgroups(size, list);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(setgroups, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, size_t size, const gid_t *list) -> uint64_t {
|
|
uint64_t Result = ::syscall(SYSCALL_DEF(setgroups), size, list);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(setresuid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, uid_t ruid, uid_t euid, uid_t suid) -> uint64_t {
|
|
uint64_t Result = ::syscall(SYSCALL_DEF(setresuid), ruid, euid, suid);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(getresuid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, uid_t *ruid, uid_t *euid, uid_t *suid) -> uint64_t {
|
|
uint64_t Result = ::getresuid(ruid, euid, suid);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(setresgid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, gid_t rgid, gid_t egid, gid_t sgid) -> uint64_t {
|
|
uint64_t Result = ::syscall(SYSCALL_DEF(setresgid), rgid, egid, sgid);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(getresgid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, gid_t *rgid, gid_t *egid, gid_t *sgid) -> uint64_t {
|
|
uint64_t Result = ::getresgid(rgid, egid, sgid);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(personality, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, uint64_t persona) -> uint64_t {
|
|
uint64_t Result = ::personality(persona);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_FLAGS(prctl, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, int option, unsigned long arg2, unsigned long arg3, unsigned long arg4, unsigned long arg5) -> uint64_t {
|
|
uint64_t Result{};
|
|
switch (option) {
|
|
case PR_SET_SECCOMP:
|
|
case PR_GET_SECCOMP:
|
|
// FEX doesn't support seccomp
|
|
return -EINVAL;
|
|
break;
|
|
default:
|
|
Result = ::prctl(option, arg2, arg3, arg4, arg5);
|
|
break;
|
|
}
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_FLAGS(arch_prctl, SyscallFlags::DEFAULT,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, int code, unsigned long addr) -> uint64_t {
|
|
constexpr uint64_t TASK_MAX = (1ULL << 48); // 48-bits until we can query the host side VA sanely. AArch64 doesn't expose this in cpuinfo
|
|
uint64_t Result{};
|
|
switch (code) {
|
|
case 0x1001: // ARCH_SET_GS
|
|
if (addr >= TASK_MAX) {
|
|
// Ignore a non-canonical address
|
|
return -EPERM;
|
|
}
|
|
Frame->State.gs_cached = addr;
|
|
Result = 0;
|
|
break;
|
|
case 0x1002: // ARCH_SET_FS
|
|
if (addr >= TASK_MAX) {
|
|
// Ignore a non-canonical address
|
|
return -EPERM;
|
|
}
|
|
Frame->State.fs_cached = addr;
|
|
Result = 0;
|
|
break;
|
|
case 0x1003: // ARCH_GET_FS
|
|
*reinterpret_cast<uint64_t*>(addr) = Frame->State.fs_cached;
|
|
Result = 0;
|
|
break;
|
|
case 0x1004: // ARCH_GET_GS
|
|
*reinterpret_cast<uint64_t*>(addr) = Frame->State.gs_cached;
|
|
Result = 0;
|
|
break;
|
|
case 0x3001: // ARCH_CET_STATUS
|
|
Result = -EINVAL; // We don't support CET, return EINVAL
|
|
break;
|
|
case 0x1011: // ARCH_GET_CPUID
|
|
return 1;
|
|
break;
|
|
case 0x1012: // ARCH_SET_CPUID
|
|
return -ENODEV; // Claim we don't support faulting on CPUID
|
|
break;
|
|
default:
|
|
LogMan::Msg::EFmt("Unknown prctl: 0x{:x}", code);
|
|
Result = -EINVAL;
|
|
break;
|
|
}
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(gettid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
|
|
uint64_t Result = FHU::Syscalls::gettid();
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(set_tid_address, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, int *tidptr) -> uint64_t {
|
|
auto Thread = Frame->Thread;
|
|
Thread->ThreadManager.clear_child_tid = tidptr;
|
|
return Thread->ThreadManager.GetTID();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(exit_group, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY | SyscallFlags::NORETURN,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, int status) -> uint64_t {
|
|
|
|
// Save telemetry if we're exiting.
|
|
FEX::HLE::_SyscallHandler->GetSignalDelegator()->SaveTelemetry();
|
|
|
|
syscall(SYSCALL_DEF(exit_group), status);
|
|
// This will never be reached
|
|
std::terminate();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(prlimit_64, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, pid_t pid, int resource, const struct rlimit *new_limit, struct rlimit *old_limit) -> uint64_t {
|
|
uint64_t Result = ::syscall(SYSCALL_DEF(prlimit_64), pid, resource, new_limit, old_limit);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(setpgid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, pid_t pid, pid_t pgid) -> uint64_t {
|
|
uint64_t Result = ::setpgid(pid, pgid);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(getpgid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, pid_t pid) -> uint64_t {
|
|
uint64_t Result = ::getpgid(pid);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(setfsuid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, uid_t fsuid) -> uint64_t {
|
|
uint64_t Result = ::setfsuid(fsuid);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(setfsgid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, uid_t fsgid) -> uint64_t {
|
|
uint64_t Result = ::setfsgid(fsgid);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(getsid, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, pid_t pid) -> uint64_t {
|
|
uint64_t Result = ::getsid(pid);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(unshare, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, int flags) -> uint64_t {
|
|
uint64_t Result = ::unshare(flags);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(setns, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, int fd, int nstype) -> uint64_t {
|
|
uint64_t Result = ::setns(fd, nstype);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
|
|
if (Handler->IsHostKernelVersionAtLeast(5, 16, 0)) {
|
|
REGISTER_SYSCALL_IMPL_PASS_FLAGS(futex_waitv, SyscallFlags::OPTIMIZETHROUGH | SyscallFlags::NOSYNCSTATEONENTRY,
|
|
[](FEXCore::Core::CpuStateFrame *Frame, void *waiters, uint32_t nr_futexes, uint32_t flags, struct timespec *timeout, clockid_t clockid) -> uint64_t {
|
|
uint64_t Result = ::syscall(SYSCALL_DEF(futex_waitv), waiters, nr_futexes, flags, timeout, clockid);
|
|
SYSCALL_ERRNO();
|
|
});
|
|
}
|
|
else {
|
|
REGISTER_SYSCALL_IMPL(futex_waitv, UnimplementedSyscallSafe);
|
|
}
|
|
}
|
|
}
|