Files
FEX-Emu--FEX/Source/Tests/LinuxSyscalls/x32/Thread.cpp
T
Ryan Houdek 7bfa1c4838 Linux: Fixes 32-bit sigaltstack
Due to an incorrect pointer check, we were never setting the sigaltstack
on 32-bit applications.
Additionally the stack_t type didn't have the members in the correct
order.

This fixes wine 32-bit applications where wine sends an application
SIGUSR1 and expects the altstack to be used. This is because the
altstack has the thread's TEB region at the start of the stack.

Without this when the application was getting sent a SIGUSR1, it would
remain in the application stack, thus getting an invalid TEB and loading
an FS register with zero.
2021-08-20 23:55:56 -07:00

314 lines
11 KiB
C++

/*
$info$
tags: LinuxSyscalls|syscalls-x86-32
$end_info$
*/
#include "Tests/LinuxSyscalls/Syscalls.h"
#include "Tests/LinuxSyscalls/Syscalls/Thread.h"
#include "Tests/LinuxSyscalls/x32/Syscalls.h"
#include "Tests/LinuxSyscalls/x32/Thread.h"
#include <FEXCore/Core/Context.h>
#include <FEXCore/Debug/InternalThreadState.h>
#include <cstdint>
#include <filesystem>
#include <grp.h>
#include <linux/futex.h>
#include <sys/fsuid.h>
#include <sys/syscall.h>
#include <sys/wait.h>
#include <unistd.h>
ARG_TO_STR(FEX::HLE::x32::compat_ptr<FEX::HLE::x32::stack_t32>, "%x")
namespace FEX::HLE::x32 {
uint64_t SetThreadArea(FEXCore::Core::CpuStateFrame *Frame, void *tls) {
struct x32::user_desc* u_info = reinterpret_cast<struct x32::user_desc*>(tls);
// The kernel only gives 32-bit userspace 3 TLS segments
// 6 = glibc
// 7 = wine fs
// 8 = etc
constexpr uint32_t NextEntry = 6;
constexpr uint32_t MaxEntry = NextEntry+3;
if (u_info->entry_number == -1) {
for (uint32_t i = NextEntry; i < MaxEntry; ++i) {
auto GDT = &Frame->State.gdt[i];
if (GDT->base == 0) {
// If the base is zero then it isn't present with our setup
u_info->entry_number = i;
break;
}
}
if (u_info->entry_number == -1) {
// Couldn't find a slot. Return empty handed
return -ESRCH;
}
}
// Now we need to update the thread's GDT to handle this change
auto GDT = &Frame->State.gdt[u_info->entry_number];
GDT->base = u_info->base_addr;
return 0;
}
void AdjustRipForNewThread(FEXCore::Core::CpuStateFrame *Frame) {
Frame->State.rip += 2;
}
void RegisterThread() {
REGISTER_SYSCALL_IMPL_X32(clone, ([](FEXCore::Core::CpuStateFrame *Frame, uint32_t flags, void *stack, pid_t *parent_tid, void *tls, pid_t *child_tid) -> uint64_t {
FEX::HLE::clone3_args args {
.Type = TypeOfClone::TYPE_CLONE2,
.args = {
.flags = flags & ~CSIGNAL, // This no longer contains CSIGNAL
.pidfd = reinterpret_cast<uint64_t>(parent_tid), // For clone, pidfd is duplicated here
.child_tid = reinterpret_cast<uint64_t>(child_tid),
.parent_tid = reinterpret_cast<uint64_t>(parent_tid),
.exit_signal = flags & CSIGNAL,
.stack = reinterpret_cast<uint64_t>(stack),
.stack_size = ~0ULL, // This syscall isn't able to see the stack size
.tls = reinterpret_cast<uint64_t>(tls),
.set_tid = 0, // This syscall isn't able to select TIDs
.set_tid_size = 0,
.cgroup = 0, // This syscall can't select cgroups
}
};
return CloneHandler(Frame, &args);
}));
REGISTER_SYSCALL_IMPL_X32(waitpid, [](FEXCore::Core::CpuStateFrame *Frame, pid_t pid, int32_t *status, int32_t options) -> uint64_t {
uint64_t Result = ::waitpid(pid, status, options);
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(nice, [](FEXCore::Core::CpuStateFrame *Frame, int inc) -> uint64_t {
uint64_t Result = ::nice(inc);
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(set_thread_area, [](FEXCore::Core::CpuStateFrame *Frame, struct user_desc *u_info) -> uint64_t {
return SetThreadArea(Frame, u_info);
});
REGISTER_SYSCALL_IMPL_X32(set_robust_list, [](FEXCore::Core::CpuStateFrame *Frame, struct robust_list_head *head, size_t len) -> uint64_t {
auto Thread = Frame->Thread;
// Retain the robust list head but don't give it to the kernel
// The kernel would break if it tried parsing a 32bit robust list from a 64bit process
Thread->ThreadManager.robust_list_head = reinterpret_cast<uint64_t>(head);
return 0;
});
REGISTER_SYSCALL_IMPL_X32(get_robust_list, [](FEXCore::Core::CpuStateFrame *Frame, int pid, struct robust_list_head **head, uint32_t *len_ptr) -> uint64_t {
auto Thread = Frame->Thread;
// Give the robust list back to the application
// Steam specifically checks to make sure the robust list is set
*(uint32_t**)head = (uint32_t*)Thread->ThreadManager.robust_list_head;
*len_ptr = 12;
return 0;
});
REGISTER_SYSCALL_IMPL_X32(futex, [](FEXCore::Core::CpuStateFrame *Frame, int *uaddr, int futex_op, int val, const timespec32 *timeout, int *uaddr2, uint32_t val3) -> uint64_t {
void* timeout_ptr = (void*)timeout;
struct timespec tp64{};
int cmd = futex_op & FUTEX_CMD_MASK;
if (timeout &&
(cmd == FUTEX_WAIT ||
cmd == FUTEX_LOCK_PI ||
cmd == FUTEX_WAIT_BITSET ||
cmd == FUTEX_WAIT_REQUEUE_PI)) {
// timeout argument is only handled as timespec in these cases
// Otherwise just an integer
tp64 = *timeout;
timeout_ptr = &tp64;
}
uint64_t Result = syscall(SYS_futex,
uaddr,
futex_op,
val,
timeout_ptr,
uaddr2,
val3);
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(getgroups32, [](FEXCore::Core::CpuStateFrame *Frame, int size, gid_t list[]) -> uint64_t {
uint64_t Result = ::getgroups(size, list);
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(setgroups32, [](FEXCore::Core::CpuStateFrame *Frame, size_t size, const gid_t *list) -> uint64_t {
uint64_t Result = ::setgroups(size, list);
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(getuid32, [](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
uint64_t Result = ::getuid();
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(getgid32, [](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
uint64_t Result = ::getgid();
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(setuid32, [](FEXCore::Core::CpuStateFrame *Frame, uid_t uid) -> uint64_t {
uint64_t Result = ::setuid(uid);
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(setgid32, [](FEXCore::Core::CpuStateFrame *Frame, gid_t gid) -> uint64_t {
uint64_t Result = ::setgid(gid);
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(geteuid32, [](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
uint64_t Result = ::geteuid();
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(getegid32, [](FEXCore::Core::CpuStateFrame *Frame) -> uint64_t {
uint64_t Result = ::getegid();
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(setfsuid32, [](FEXCore::Core::CpuStateFrame *Frame, uid_t fsuid) -> uint64_t {
uint64_t Result = ::setfsuid(fsuid);
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(setfsgid32, [](FEXCore::Core::CpuStateFrame *Frame, uid_t fsgid) -> uint64_t {
uint64_t Result = ::setfsgid(fsgid);
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(setreuid32, [](FEXCore::Core::CpuStateFrame *Frame, uid_t ruid, uid_t euid) -> uint64_t {
uint64_t Result = ::setreuid(ruid, euid);
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(setresuid32, [](FEXCore::Core::CpuStateFrame *Frame, uid_t ruid, uid_t euid, uid_t suid) -> uint64_t {
uint64_t Result = ::setresuid(ruid, euid, suid);
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(getresuid32, [](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_X32(setresgid32, [](FEXCore::Core::CpuStateFrame *Frame, gid_t rgid, gid_t egid, gid_t sgid) -> uint64_t {
uint64_t Result = ::setresgid(rgid, egid, sgid);
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(getresgid32, [](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_X32(setregid32, [](FEXCore::Core::CpuStateFrame *Frame, gid_t rgid, gid_t egid) -> uint64_t {
uint64_t Result = ::setregid(rgid, egid);
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(sigaltstack, [](FEXCore::Core::CpuStateFrame *Frame, const compat_ptr<stack_t32> ss, compat_ptr<stack_t32> old_ss) -> uint64_t {
stack_t ss64{};
stack_t old64{};
stack_t *ss64_ptr{};
stack_t *old64_ptr{};
if (ss) {
ss64 = *ss;
ss64_ptr = &ss64;
}
if (old_ss) {
old64 = *old_ss;
old64_ptr = &old64;
}
uint64_t Result = FEX::HLE::_SyscallHandler->GetSignalDelegator()->RegisterGuestSigAltStack(ss64_ptr, old64_ptr);
if (Result == 0 && old_ss) {
*old_ss = old64;
}
return Result;
});
// launch a new process under fex
// currently does not propagate argv[0] correctly
REGISTER_SYSCALL_IMPL_X32(execve, [](FEXCore::Core::CpuStateFrame *Frame, const char *pathname, uint32_t *argv, uint32_t *envp) -> uint64_t {
std::vector<const char*> Args;
std::vector<const char*> Envp;
for (int i = 0; argv[i]; i++) {
Args.push_back(reinterpret_cast<const char*>(static_cast<uintptr_t>(argv[i])));
}
Args.push_back(nullptr);
for (int i = 0; envp[i]; i++) {
Envp.push_back(reinterpret_cast<const char*>(static_cast<uintptr_t>(envp[i])));
}
Envp.push_back(nullptr);
return FEX::HLE::ExecveHandler(pathname, Args, Envp, nullptr);
});
REGISTER_SYSCALL_IMPL_X32(execveat, ([](FEXCore::Core::CpuStateFrame *Frame, int dirfd, const char *pathname, uint32_t *argv, uint32_t *envp, int flags) -> uint64_t {
std::vector<const char*> Args;
std::vector<const char*> Envp;
for (int i = 0; argv[i]; i++) {
Args.push_back(reinterpret_cast<const char*>(static_cast<uintptr_t>(argv[i])));
}
Args.push_back(nullptr);
for (int i = 0; envp[i]; i++) {
Envp.push_back(reinterpret_cast<const char*>(static_cast<uintptr_t>(envp[i])));
}
Envp.push_back(nullptr);
FEX::HLE::ExecveAtArgs AtArgs {
.dirfd = dirfd,
.flags = flags,
};
return FEX::HLE::ExecveHandler(pathname, Args, Envp, &AtArgs);
}));
REGISTER_SYSCALL_IMPL_X32(wait4, [](FEXCore::Core::CpuStateFrame *Frame, pid_t pid, int *wstatus, int options, struct rusage_32 *rusage) -> uint64_t {
struct rusage usage64{};
struct rusage *usage64_p{};
if (rusage) {
usage64 = *rusage;
usage64_p = &usage64;
}
uint64_t Result = ::wait4(pid, wstatus, options, usage64_p);
if (rusage) {
*rusage = usage64;
}
SYSCALL_ERRNO();
});
REGISTER_SYSCALL_IMPL_X32(futex_time64, [](FEXCore::Core::CpuStateFrame *Frame, int *uaddr, int futex_op, int val, const struct timespec *timeout, int *uaddr2, uint32_t val3) -> uint64_t {
uint64_t Result = syscall(SYS_futex,
uaddr,
futex_op,
val,
timeout,
uaddr2,
val3);
SYSCALL_ERRNO();
});
}
}