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Since this syscall doesn't exist, we need to convert it to the equivalent utimensat like the kernel does internally. This is fairly trivial but there are some safety nets in place.
247 lines
8.0 KiB
C++
247 lines
8.0 KiB
C++
// SPDX-License-Identifier: MIT
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/*
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$info$
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tags: LinuxSyscalls|syscalls-x86-32
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$end_info$
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*/
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#include "LinuxSyscalls/Syscalls.h"
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#include "LinuxSyscalls/x32/Syscalls.h"
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#include "LinuxSyscalls/x32/Types.h"
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#include "LinuxSyscalls/x64/Syscalls.h"
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#include <stdint.h>
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#include <syscall.h>
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#include <sys/stat.h>
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#include <sys/time.h>
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#include <sys/timex.h>
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#include <time.h>
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#include <unistd.h>
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#include <utime.h>
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ARG_TO_STR(FEX::HLE::x32::compat_ptr<FEX::HLE::x32::timespec32>, "%lx")
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ARG_TO_STR(FEX::HLE::x32::compat_ptr<FEX::HLE::x32::timex32>, "%lx")
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struct timespec;
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namespace FEXCore::Core {
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struct CpuStateFrame;
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}
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namespace FEX::HLE::x32 {
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void RegisterTime(FEX::HLE::SyscallHandler* Handler) {
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REGISTER_SYSCALL_IMPL_X32(time, [](FEXCore::Core::CpuStateFrame* Frame, FEX::HLE::x32::old_time32_t* tloc) -> uint64_t {
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time_t Host {};
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uint64_t Result = ::time(&Host);
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if (tloc) {
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FaultSafeUserMemAccess::VerifyIsWritable(tloc, sizeof(*tloc));
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// On 32-bit this truncates
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*tloc = (FEX::HLE::x32::old_time32_t)Host;
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}
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_X32(times, [](FEXCore::Core::CpuStateFrame* Frame, struct FEX::HLE::x32::compat_tms* buf) -> uint64_t {
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struct tms Host {};
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uint64_t Result = ::times(&Host);
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if (buf) {
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FaultSafeUserMemAccess::VerifyIsWritable(buf, sizeof(*buf));
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*buf = Host;
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}
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_X32(utime, [](FEXCore::Core::CpuStateFrame* Frame, char* filename, const FEX::HLE::x32::old_utimbuf32* times) -> uint64_t {
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struct utimbuf Host {};
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struct utimbuf* Host_p {};
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if (times) {
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FaultSafeUserMemAccess::VerifyIsReadable(times, sizeof(*times));
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Host = *times;
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Host_p = &Host;
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}
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uint64_t Result = ::utime(filename, Host_p);
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_X32(gettimeofday, [](FEXCore::Core::CpuStateFrame* Frame, timeval32* tv, struct timezone* tz) -> uint64_t {
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struct timeval tv64 {};
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struct timeval* tv_ptr {};
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if (tv) {
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tv_ptr = &tv64;
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}
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uint64_t Result = ::gettimeofday(tv_ptr, tz);
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if (tv) {
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FaultSafeUserMemAccess::VerifyIsWritable(tv, sizeof(*tv));
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*tv = tv64;
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}
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_X32(settimeofday, [](FEXCore::Core::CpuStateFrame* Frame, const timeval32* tv, const struct timezone* tz) -> uint64_t {
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struct timeval tv64 {};
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struct timeval* tv_ptr {};
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if (tv) {
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FaultSafeUserMemAccess::VerifyIsReadable(tv, sizeof(*tv));
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tv64 = *tv;
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tv_ptr = &tv64;
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}
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const uint64_t Result = ::settimeofday(tv_ptr, tz);
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_X32(nanosleep, [](FEXCore::Core::CpuStateFrame* Frame, const timespec32* req, timespec32* rem) -> uint64_t {
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struct timespec rem64 {};
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struct timespec* rem64_ptr {};
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if (rem) {
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FaultSafeUserMemAccess::VerifyIsReadable(rem, sizeof(*rem));
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rem64 = *rem;
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rem64_ptr = &rem64;
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}
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uint64_t Result = 0;
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if (req) {
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FaultSafeUserMemAccess::VerifyIsReadable(req, sizeof(*req));
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const struct timespec req64 = *req;
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Result = ::nanosleep(&req64, rem64_ptr);
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} else {
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Result = ::nanosleep(nullptr, rem64_ptr);
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}
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if (rem) {
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FaultSafeUserMemAccess::VerifyIsWritable(rem, sizeof(*rem));
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*rem = rem64;
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}
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_X32(clock_gettime, [](FEXCore::Core::CpuStateFrame* Frame, clockid_t clk_id, timespec32* tp) -> uint64_t {
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struct timespec tp64 {};
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uint64_t Result = ::clock_gettime(clk_id, &tp64);
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if (tp) {
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FaultSafeUserMemAccess::VerifyIsWritable(tp, sizeof(*tp));
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*tp = tp64;
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}
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_X32(clock_getres, [](FEXCore::Core::CpuStateFrame* Frame, clockid_t clk_id, timespec32* tp) -> uint64_t {
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struct timespec tp64 {};
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uint64_t Result = ::clock_getres(clk_id, &tp64);
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if (tp) {
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FaultSafeUserMemAccess::VerifyIsWritable(tp, sizeof(*tp));
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*tp = tp64;
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}
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_X32(
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clock_nanosleep, [](FEXCore::Core::CpuStateFrame* Frame, clockid_t clockid, int flags, const timespec32* request, timespec32* remain) -> uint64_t {
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struct timespec req64 {};
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struct timespec* req64_ptr {};
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struct timespec rem64 {};
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struct timespec* rem64_ptr {};
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if (request) {
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FaultSafeUserMemAccess::VerifyIsReadable(request, sizeof(*request));
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req64 = *request;
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req64_ptr = &req64;
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}
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if (remain) {
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FaultSafeUserMemAccess::VerifyIsReadable(remain, sizeof(*remain));
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rem64 = *remain;
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rem64_ptr = &rem64;
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}
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// Can't use glibc helper here since it does additional validation and data munging that breaks games.
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uint64_t Result = ::syscall(SYSCALL_DEF(clock_nanosleep), clockid, flags, req64_ptr, rem64_ptr);
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if (remain && (flags & TIMER_ABSTIME) == 0) {
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FaultSafeUserMemAccess::VerifyIsWritable(remain, sizeof(*remain));
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// Remain is completely ignored if TIMER_ABSTIME is set.
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*remain = rem64;
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}
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_X32(clock_settime, [](FEXCore::Core::CpuStateFrame* Frame, clockid_t clockid, const timespec32* tp) -> uint64_t {
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if (!tp) {
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// clock_settime is required to pass a timespec.
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return -EFAULT;
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}
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uint64_t Result = 0;
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FaultSafeUserMemAccess::VerifyIsReadable(tp, sizeof(*tp));
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const struct timespec tp64 = *tp;
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Result = ::clock_settime(clockid, &tp64);
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_X32(futimesat, [](FEXCore::Core::CpuStateFrame* Frame, int dirfd, const char* pathname, const timeval32 times[2]) -> uint64_t {
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return FEX::HLE::futimesat_compat<timeval32>(dirfd, pathname, times);
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});
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REGISTER_SYSCALL_IMPL_X32(
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utimensat, [](FEXCore::Core::CpuStateFrame* Frame, int dirfd, const char* pathname, const compat_ptr<timespec32> times, int flags) -> uint64_t {
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uint64_t Result = 0;
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if (times) {
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FaultSafeUserMemAccess::VerifyIsReadable(times, sizeof(timeval32) * 2);
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timespec times64[2] {};
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times64[0] = times[0];
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times64[1] = times[1];
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Result = ::syscall(SYSCALL_DEF(utimensat), dirfd, pathname, times64, flags);
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} else {
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Result = ::syscall(SYSCALL_DEF(utimensat), dirfd, pathname, nullptr, flags);
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}
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_X32(utimes, [](FEXCore::Core::CpuStateFrame* Frame, const char* filename, const timeval32 times[2]) -> uint64_t {
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uint64_t Result = 0;
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if (times) {
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FaultSafeUserMemAccess::VerifyIsReadable(times, sizeof(timeval32) * 2);
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struct timeval times64[2] {};
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times64[0] = times[0];
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times64[1] = times[1];
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Result = ::utimes(filename, times64);
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} else {
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Result = ::utimes(filename, nullptr);
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}
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_X32(adjtimex, [](FEXCore::Core::CpuStateFrame* Frame, compat_ptr<FEX::HLE::x32::timex32> buf) -> uint64_t {
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FaultSafeUserMemAccess::VerifyIsReadable(buf, sizeof(*buf));
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struct timex Host {};
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Host = *buf;
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uint64_t Result = ::adjtimex(&Host);
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if (Result != -1) {
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FaultSafeUserMemAccess::VerifyIsWritable(buf, sizeof(*buf));
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*buf = Host;
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}
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SYSCALL_ERRNO();
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});
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REGISTER_SYSCALL_IMPL_X32(clock_adjtime,
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[](FEXCore::Core::CpuStateFrame* Frame, clockid_t clk_id, compat_ptr<FEX::HLE::x32::timex32> buf) -> uint64_t {
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FaultSafeUserMemAccess::VerifyIsReadable(buf, sizeof(*buf));
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struct timex Host {};
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Host = *buf;
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uint64_t Result = ::clock_adjtime(clk_id, &Host);
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if (Result != -1) {
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FaultSafeUserMemAccess::VerifyIsWritable(buf, sizeof(*buf));
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*buf = Host;
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}
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SYSCALL_ERRNO();
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});
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}
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} // namespace FEX::HLE::x32
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