Files
FEX-Emu--FEX/Source/Tools/FEXLoader/LinuxSyscalls/x32/Signals.cpp
T
Ryan Houdek 2d4bf97cac FEXCore: Moves SIGBUS handler to FEXCore/Utils
This can be done in an OS agnostic fashion. FEXCore knows the details of
its JIT and should be done in FEXCore itself.

The frontend is only necessary to inform FEXCore where the fault occured
and provide the array of GPRs for accessing and modifying the signal
state.

This is necessary for supporting both Linux and Wine signal contexts
with their unaligned access handlers.
2023-05-05 17:04:26 -07:00

240 lines
8.4 KiB
C++

/*
$info$
tags: LinuxSyscalls|syscalls-x86-32
$end_info$
*/
#include "ArchHelpers/UContext.h"
#include "LinuxSyscalls/SignalDelegator.h"
#include "LinuxSyscalls/Syscalls.h"
#include "LinuxSyscalls/x64/Syscalls.h"
#include "LinuxSyscalls/x32/Syscalls.h"
#include "LinuxSyscalls/x32/Types.h"
#include <FEXCore/Core/SignalDelegator.h>
#include <errno.h>
#include <signal.h>
#include <stdint.h>
#include <sys/syscall.h>
#include <unistd.h>
#include <time.h>
namespace FEXCore::Core {
struct CpuStateFrame;
}
ARG_TO_STR(FEX::HLE::x32::compat_ptr<FEXCore::x86::siginfo_t>, "%lx")
namespace FEX::HLE::x32 {
void CopySigInfo(FEXCore::x86::siginfo_t *Info, siginfo_t const &Host) {
// Copy the basic things first
Info->si_signo = Host.si_signo;
Info->si_errno = Host.si_errno;
Info->si_code = Host.si_code;
// Check si_code to determine how we need to interpret this
if (Info->si_code == SI_TIMER) {
// SI_TIMER means pid, uid, value
Info->_sifields._timer.tid = Host.si_timerid;
Info->_sifields._timer.overrun = Host.si_overrun;
Info->_sifields._timer.sigval.sival_int = Host.si_value.sival_int;
}
else {
// Now we need to copy over the more complex things
switch (Info->si_signo) {
case SIGSEGV:
case SIGBUS:
// This is the address trying to be accessed, not the RIP
Info->_sifields._sigfault.addr = static_cast<uint32_t>(reinterpret_cast<uintptr_t>(Host.si_addr));
break;
case SIGFPE:
case SIGILL:
// Can't really give a real result here. This is the RIP causing a sigill or sigfpe
// Claim at RIP 0 for now
Info->_sifields._sigfault.addr = 0;
break;
case SIGCHLD:
Info->_sifields._sigchld.pid = Host.si_pid;
Info->_sifields._sigchld.uid = Host.si_uid;
Info->_sifields._sigchld.status = Host.si_status;
Info->_sifields._sigchld.utime = Host.si_utime;
Info->_sifields._sigchld.stime = Host.si_stime;
break;
case SIGALRM:
case SIGVTALRM:
Info->_sifields._timer.tid = Host.si_timerid;
Info->_sifields._timer.overrun = Host.si_overrun;
Info->_sifields._timer.sigval.sival_int = Host.si_int;
break;
default:
LogMan::Msg::EFmt("Unhandled siginfo_t for sigtimedwait: {}", Info->si_signo);
break;
}
}
}
void RegisterSignals(FEX::HLE::SyscallHandler *Handler) {
// Only gets the lower 32-bits of the signal mask
REGISTER_SYSCALL_IMPL_X32(sgetmask, [](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
uint64_t Set{};
FEX::HLE::_SyscallHandler->GetSignalDelegator()->GuestSigProcMask(0, nullptr, &Set);
return Set & ~0U;
});
// Only controls the lower 32-bits of the signal mask
// Blocks the upper 32-bits
REGISTER_SYSCALL_IMPL_X32(ssetmask, [](FEXCore::Core::CpuStateFrame *Frame, uint32_t New) -> uint64_t {
uint64_t Set{};
uint64_t NewSet = (~0ULL << 32) | New;
FEX::HLE::_SyscallHandler->GetSignalDelegator()->GuestSigProcMask(SIG_SETMASK, &NewSet, &Set);
return Set & ~0U;
});
// Only masks the lower 32-bits of the signal mask
// The upper 32-bits are still active (unmasked) and can signal the program
REGISTER_SYSCALL_IMPL_X32(sigsuspend, [](FEXCore::Core::CpuStateFrame *Frame, uint32_t Mask) -> uint64_t {
uint64_t Mask64 = Mask;
return FEX::HLE::_SyscallHandler->GetSignalDelegator()->GuestSigSuspend(&Mask64, 8);
});
REGISTER_SYSCALL_IMPL_X32(sigpending, [](FEXCore::Core::CpuStateFrame *Frame, compat_old_sigset_t *set) -> uint64_t {
uint64_t HostSet{};
uint64_t Result = FEX::HLE::_SyscallHandler->GetSignalDelegator()->GuestSigPending(&HostSet, 8);
if (Result == 0) {
// This old interface only returns the lower signals
*set = HostSet & ~0U;
}
return Result;
});
REGISTER_SYSCALL_IMPL_X32(signal, [](FEXCore::Core::CpuStateFrame *Frame, int signum, uint32_t handler) -> uint64_t {
GuestSigAction newact{};
GuestSigAction oldact{};
newact.sigaction_handler.handler = reinterpret_cast<decltype(newact.sigaction_handler.handler)>(handler);
FEX::HLE::_SyscallHandler->GetSignalDelegator()->RegisterGuestSignalHandler(signum, &newact, &oldact);
return static_cast<uint32_t>(reinterpret_cast<uint64_t>(oldact.sigaction_handler.handler));
});
REGISTER_SYSCALL_IMPL_X32(sigaction, [](FEXCore::Core::CpuStateFrame *Frame, int signum, const OldGuestSigAction_32 *act, OldGuestSigAction_32 *oldact) -> uint64_t {
GuestSigAction *act64_p{};
GuestSigAction *old64_p{};
GuestSigAction act64{};
if (act) {
act64 = *act;
act64_p = &act64;
}
GuestSigAction old64{};
if (oldact) {
old64_p = &old64;
}
uint64_t Result = FEX::HLE::_SyscallHandler->GetSignalDelegator()->RegisterGuestSignalHandler(signum, act64_p, old64_p);
if (Result == 0 && oldact) {
*oldact = old64;
}
return Result;
});
REGISTER_SYSCALL_IMPL_X32(rt_sigaction, [](FEXCore::Core::CpuStateFrame *Frame, int signum, const GuestSigAction_32 *act, GuestSigAction_32 *oldact, size_t sigsetsize) -> uint64_t {
if (sigsetsize != 8) {
return -EINVAL;
}
GuestSigAction *act64_p{};
GuestSigAction *old64_p{};
GuestSigAction act64{};
if (act) {
act64 = *act;
act64_p = &act64;
}
GuestSigAction old64{};
if (oldact) {
old64_p = &old64;
}
uint64_t Result = FEX::HLE::_SyscallHandler->GetSignalDelegator()->RegisterGuestSignalHandler(signum, act64_p, old64_p);
if (Result == 0 && oldact) {
*oldact = old64;
}
return Result;
});
REGISTER_SYSCALL_IMPL_X32(rt_sigtimedwait, [](FEXCore::Core::CpuStateFrame *Frame, uint64_t *set, compat_ptr<FEXCore::x86::siginfo_t> info, const struct timespec32* timeout, size_t sigsetsize) -> uint64_t {
struct timespec* timeout_ptr{};
struct timespec tp64{};
if (timeout) {
tp64 = *timeout;
timeout_ptr = &tp64;
}
siginfo_t HostInfo{};
uint64_t Result = FEX::HLE::_SyscallHandler->GetSignalDelegator()->GuestSigTimedWait(set, &HostInfo, timeout_ptr, sigsetsize);
if (Result != -1) {
// We need to translate the 64-bit siginfo_t to 32-bit siginfo_t
CopySigInfo(info, HostInfo);
}
return Result;
});
REGISTER_SYSCALL_IMPL_X32(rt_sigtimedwait_time64, [](FEXCore::Core::CpuStateFrame *Frame, uint64_t *set, compat_ptr<FEXCore::x86::siginfo_t> info, const struct timespec* timeout, size_t sigsetsize) -> uint64_t {
siginfo_t HostInfo{};
uint64_t Result = FEX::HLE::_SyscallHandler->GetSignalDelegator()->GuestSigTimedWait(set, &HostInfo, timeout, sigsetsize);
if (Result != -1) {
// We need to translate the 64-bit siginfo_t to 32-bit siginfo_t
CopySigInfo(info, HostInfo);
}
return Result;
});
if (Handler->IsHostKernelVersionAtLeast(5, 1, 0)) {
REGISTER_SYSCALL_IMPL_X32(pidfd_send_signal, [](FEXCore::Core::CpuStateFrame *Frame, int pidfd, int sig, compat_ptr<FEXCore::x86::siginfo_t> info, unsigned int flags) -> uint64_t {
siginfo_t *InfoHost_ptr{};
siginfo_t InfoHost{};
if (info) {
InfoHost = *info;
InfoHost_ptr = &InfoHost;
}
uint64_t Result = ::syscall(SYSCALL_DEF(pidfd_send_signal), pidfd, sig, InfoHost_ptr, flags);
SYSCALL_ERRNO();
});
}
else {
REGISTER_SYSCALL_IMPL_X32(pidfd_send_signal, UnimplementedSyscallSafe);
}
REGISTER_SYSCALL_IMPL_X32_PASS(rt_sigqueueinfo, [](FEXCore::Core::CpuStateFrame *Frame, pid_t pid, int sig, compat_ptr<FEXCore::x86::siginfo_t> info) -> uint64_t {
siginfo_t info64{};
siginfo_t *info64_p{};
if (info) {
info64_p = &info64;
}
uint64_t Result = ::syscall(SYSCALL_DEF(rt_sigqueueinfo), pid, sig, info64_p);
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32_PASS(rt_tgsigqueueinfo, [](FEXCore::Core::CpuStateFrame *Frame, pid_t tgid, pid_t tid, int sig, compat_ptr<FEXCore::x86::siginfo_t> info) -> uint64_t {
siginfo_t info64{};
siginfo_t *info64_p{};
if (info) {
info64_p = &info64;
}
uint64_t Result = ::syscall(SYSCALL_DEF(rt_tgsigqueueinfo), tgid, tid, sig, info64_p);
SYSCALL_ERRNO();
});
}
}