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Copy pathimports.cpp
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1813 lines (1511 loc) · 44.8 KB
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#include <stdafx.h>
#include <cpu/ppc_context.h>
#include <cpu/guest_thread.h>
#include <apu/audio.h>
#include "function.h"
#include "xex.h"
#include "xbox.h"
#include "heap.h"
#include "memory.h"
#include <memory>
#include "xam.h"
#include "xdm.h"
#include <user/config.h>
#include <os/logger.h>
#ifdef _WIN32
#include <ntstatus.h>
#endif
struct Event final : KernelObject, HostObject<XKEVENT>
{
bool manualReset;
std::atomic<bool> signaled;
Event(XKEVENT* header)
: manualReset(!header->Type), signaled(!!header->SignalState)
{
}
Event(bool manualReset, bool initialState)
: manualReset(manualReset), signaled(initialState)
{
}
uint32_t Wait(uint32_t timeout) override
{
if (timeout == 0)
{
if (manualReset)
{
if (!signaled)
return STATUS_TIMEOUT;
}
else
{
bool expected = true;
if (!signaled.compare_exchange_strong(expected, false))
return STATUS_TIMEOUT;
}
}
else if (timeout == INFINITE)
{
if (manualReset)
{
signaled.wait(false);
}
else
{
while (true)
{
bool expected = true;
if (signaled.compare_exchange_weak(expected, false))
break;
signaled.wait(expected);
}
}
}
else
{
assert(false && "Unhandled timeout value.");
}
return STATUS_SUCCESS;
}
bool Set()
{
signaled = true;
if (manualReset)
signaled.notify_all();
else
signaled.notify_one();
return TRUE;
}
bool Reset()
{
signaled = false;
return TRUE;
}
};
static std::atomic<uint32_t> g_dispatcherObjectStateGeneration;
struct Semaphore final : KernelObject, HostObject<XKSEMAPHORE>
{
std::atomic<uint32_t> count;
uint32_t maximumCount;
Semaphore(XKSEMAPHORE* semaphore)
: count(semaphore->Header.SignalState), maximumCount(semaphore->Limit)
{
}
Semaphore(uint32_t count, uint32_t maximumCount)
: count(count), maximumCount(maximumCount)
{
}
uint32_t Wait(uint32_t timeout) override
{
if (timeout == 0)
{
uint32_t currentCount = count.load();
if (currentCount != 0)
{
if (count.compare_exchange_weak(currentCount, currentCount - 1))
return STATUS_SUCCESS;
}
return STATUS_TIMEOUT;
}
else if (timeout == INFINITE)
{
uint32_t currentCount;
while (true)
{
currentCount = count.load();
if (currentCount != 0)
{
if (count.compare_exchange_weak(currentCount, currentCount - 1))
return STATUS_SUCCESS;
}
else
{
count.wait(0);
}
}
return STATUS_SUCCESS;
}
else
{
assert(false && "Unhandled timeout value.");
return STATUS_TIMEOUT;
}
}
void Release(uint32_t releaseCount, uint32_t* previousCount)
{
if (previousCount != nullptr)
*previousCount = count;
assert(count + releaseCount <= maximumCount);
count += releaseCount;
count.notify_all();
++g_dispatcherObjectStateGeneration;
g_dispatcherObjectStateGeneration.notify_all();
}
};
inline void CloseKernelObject(XDISPATCHER_HEADER& header)
{
if (header.WaitListHead.Flink != OBJECT_SIGNATURE)
{
return;
}
DestroyKernelObject(header.WaitListHead.Blink);
}
uint32_t GuestTimeoutToMilliseconds(be<int64_t>* timeout)
{
return timeout ? (*timeout * -1) / 10000 : INFINITE;
}
// Note: Exported as kVariable in xboxkrnl_table.inc
void VdHSIOCalibrationLock()
{
LOG_UTILITY("STUB: VdHSIOCalibrationLock - Variable access not implemented");
}
// Note: Exported as kVariable in xboxkrnl_table.inc
void KeCertMonitorData()
{
LOG_UTILITY("STUB: KeCertMonitorData - Variable access not implemented");
}
// Note: Exported as kVariable in xboxkrnl_table.inc
void XexExecutableModuleHandle()
{
LOG_UTILITY("STUB: XexExecutableModuleHandle - Variable access not implemented");
}
// Note: Exported as kVariable in xboxkrnl_table.inc
void ExLoadedCommandLine()
{
LOG_UTILITY("STUB: ExLoadedCommandLine - Variable access not implemented");
}
// Note: Exported as kVariable in xboxkrnl_table.inc
void KeDebugMonitorData()
{
LOG_UTILITY("STUB: KeDebugMonitorData - Variable access not implemented");
}
// Note: Exported as kVariable in xboxkrnl_table.inc
void ExThreadObjectType()
{
LOG_UTILITY("STUB: ExThreadObjectType - Variable access not implemented");
}
// Note: Exported as kVariable in xboxkrnl_table.inc
void KeTimeStampBundle()
{
LOG_UTILITY("STUB: KeTimeStampBundle - Variable access not implemented");
}
// Note: Exported as kVariable in xboxkrnl_table.inc
void XboxHardwareInfo()
{
LOG_UTILITY("STUB: XboxHardwareInfo - Variable access not implemented");
}
void XGetVideoMode()
{
LOG_UTILITY("!!! STUB !!!");
}
uint32_t XGetGameRegion()
{
if (Config::Language == ELanguage::Japanese)
return 0x0101;
return 0x03FF;
}
uint32_t XMsgStartIORequest(uint32_t App, uint32_t Message, XXOVERLAPPED* lpOverlapped, void* Buffer, uint32_t szBuffer)
{
return STATUS_SUCCESS;
}
uint32_t XamUserGetSigninState(uint32_t userIndex)
{
return true;
}
uint32_t XamGetSystemVersion()
{
return 0;
}
void XamContentDelete()
{
LOG_UTILITY("!!! STUB !!!");
}
uint32_t XamContentGetCreator(uint32_t userIndex, const XCONTENT_DATA* contentData, be<uint32_t>* isCreator, be<uint64_t>* xuid, XXOVERLAPPED* overlapped)
{
if (isCreator)
*isCreator = true;
if (xuid)
*xuid = 0xB13EBABEBABEBABE;
return 0;
}
uint32_t XamContentGetDeviceState()
{
return 0;
}
uint32_t XamUserGetSigninInfo(uint32_t userIndex, uint32_t flags, XUSER_SIGNIN_INFO* info)
{
if (userIndex == 0)
{
memset(info, 0, sizeof(*info));
info->xuid = 0xB13EBABEBABEBABE;
info->SigninState = 1;
strncpy(info->Name, "SWA", sizeof(info->Name));
info->Name[sizeof(info->Name) - 1] = '\0';
return 0;
}
return 0x00000525; // ERROR_NO_SUCH_USER
}
void XamShowSigninUI()
{
LOG_UTILITY("!!! STUB !!!");
}
uint32_t XamShowDeviceSelectorUI
(
uint32_t userIndex,
uint32_t contentType,
uint32_t contentFlags,
uint64_t totalRequested,
be<uint32_t>* deviceId,
XXOVERLAPPED* overlapped
)
{
XamNotifyEnqueueEvent(9, true);
*deviceId = 1;
XamNotifyEnqueueEvent(9, false);
return 0;
}
void XamShowDirtyDiscErrorUI()
{
LOG_UTILITY("!!! STUB !!!");
}
void XamEnableInactivityProcessing()
{
LOG_UTILITY("!!! STUB !!!");
}
void XamResetInactivity()
{
LOG_UTILITY("!!! STUB !!!");
}
void XamShowMessageBoxUIEx()
{
LOG_UTILITY("!!! STUB !!!");
}
uint32_t XGetLanguage()
{
return (uint32_t)Config::Language.Value;
}
uint32_t XGetAVPack()
{
return 0;
}
void XamLoaderTerminateTitle()
{
LOG_UTILITY("!!! STUB !!!");
}
void XamGetExecutionId()
{
LOG_UTILITY("!!! STUB !!!");
}
void XamLoaderLaunchTitle()
{
LOG_UTILITY("!!! STUB !!!");
}
void NtOpenFile()
{
LOG_UTILITY("!!! STUB !!!");
}
void RtlInitAnsiString(XANSI_STRING* destination, char* source)
{
const uint16_t length = source ? (uint16_t)strlen(source) : 0;
destination->Length = length;
destination->MaximumLength = length + 1;
destination->Buffer = source;
}
uint32_t NtCreateFile
(
be<uint32_t>* FileHandle,
uint32_t DesiredAccess,
XOBJECT_ATTRIBUTES* Attributes,
XIO_STATUS_BLOCK* IoStatusBlock,
uint64_t* AllocationSize,
uint32_t FileAttributes,
uint32_t ShareAccess,
uint32_t CreateDisposition,
uint32_t CreateOptions
)
{
return 0;
}
uint32_t NtClose(uint32_t handle)
{
if (handle == GUEST_INVALID_HANDLE_VALUE)
return 0xFFFFFFFF;
if (IsKernelObject(handle))
{
DestroyKernelObject(handle);
return 0;
}
else
{
assert(false && "Unrecognized kernel object.");
return 0xFFFFFFFF;
}
}
void NtSetInformationFile()
{
LOG_UTILITY("!!! STUB !!!");
}
uint32_t FscSetCacheElementCount()
{
return 0;
}
uint32_t NtWaitForSingleObjectEx(uint32_t Handle, uint32_t WaitMode, uint32_t Alertable, be<int64_t>* Timeout)
{
uint32_t timeout = GuestTimeoutToMilliseconds(Timeout);
assert(timeout == 0 || timeout == INFINITE);
if (IsKernelObject(Handle))
{
return GetKernelObject(Handle)->Wait(timeout);
}
else
{
assert(false && "Unrecognized handle value.");
}
return STATUS_TIMEOUT;
}
void NtWriteFile()
{
LOG_UTILITY("!!! STUB !!!");
}
void vsprintf_x()
{
LOG_UTILITY("!!! STUB !!!");
}
uint32_t ExGetXConfigSetting(uint16_t Category, uint16_t Setting, void* Buffer, uint16_t SizeOfBuffer, be<uint32_t>* RequiredSize)
{
uint32_t data[4]{};
switch (Category)
{
// XCONFIG_SECURED_CATEGORY
case 0x0002:
{
switch (Setting)
{
// XCONFIG_SECURED_AV_REGION
case 0x0002:
data[0] = ByteSwap(0x00001000); // USA/Canada
break;
default:
return 1;
}
}
case 0x0003:
{
switch (Setting)
{
case 0x0001: // XCONFIG_USER_TIME_ZONE_BIAS
case 0x0002: // XCONFIG_USER_TIME_ZONE_STD_NAME
case 0x0003: // XCONFIG_USER_TIME_ZONE_DLT_NAME
case 0x0004: // XCONFIG_USER_TIME_ZONE_STD_DATE
case 0x0005: // XCONFIG_USER_TIME_ZONE_DLT_DATE
case 0x0006: // XCONFIG_USER_TIME_ZONE_STD_BIAS
case 0x0007: // XCONFIG_USER_TIME_ZONE_DLT_BIAS
data[0] = 0;
break;
// XCONFIG_USER_LANGUAGE
case 0x0009:
data[0] = ByteSwap((uint32_t)Config::Language.Value);
break;
// XCONFIG_USER_VIDEO_FLAGS
case 0x000A:
data[0] = ByteSwap(0x00040000);
break;
// XCONFIG_USER_RETAIL_FLAGS
case 0x000C:
data[0] = ByteSwap(1);
break;
// XCONFIG_USER_COUNTRY
case 0x000E:
data[0] = ByteSwap(103);
break;
default:
return 1;
}
}
}
*RequiredSize = 4;
memcpy(Buffer, data, std::min((size_t)SizeOfBuffer, sizeof(data)));
return 0;
}
void NtQueryVirtualMemory()
{
LOG_UTILITY("!!! STUB !!!");
}
void MmQueryStatistics()
{
LOG_UTILITY("!!! STUB !!!");
}
uint32_t NtCreateEvent(be<uint32_t>* handle, void* objAttributes, uint32_t eventType, uint32_t initialState)
{
*handle = GetKernelHandle(CreateKernelObject<Event>(!eventType, !!initialState));
return 0;
}
uint32_t XexCheckExecutablePrivilege()
{
return 0;
}
void DbgPrint()
{
LOG_UTILITY("!!! STUB !!!");
}
void __C_specific_handler_x()
{
LOG_UTILITY("!!! STUB !!!");
}
void RtlNtStatusToDosError()
{
LOG_UTILITY("!!! STUB !!!");
}
void XexGetProcedureAddress()
{
LOG_UTILITY("!!! STUB !!!");
}
void XexGetModuleSection()
{
LOG_UTILITY("!!! STUB !!!");
}
uint32_t RtlUnicodeToMultiByteN(char* MultiByteString, uint32_t MaxBytesInMultiByteString, be<uint32_t>* BytesInMultiByteString, const be<uint16_t>* UnicodeString, uint32_t BytesInUnicodeString)
{
const auto reqSize = BytesInUnicodeString / sizeof(uint16_t);
if (BytesInMultiByteString)
*BytesInMultiByteString = reqSize;
if (reqSize > MaxBytesInMultiByteString)
return STATUS_FAIL_CHECK;
for (size_t i = 0; i < reqSize; i++)
{
const auto c = UnicodeString[i].get();
MultiByteString[i] = c < 256 ? c : '?';
}
return STATUS_SUCCESS;
}
uint32_t KeDelayExecutionThread(uint32_t WaitMode, bool Alertable, be<int64_t>* Timeout)
{
// We don't do async file reads.
if (Alertable)
return STATUS_USER_APC;
uint32_t timeout = GuestTimeoutToMilliseconds(Timeout);
#ifdef _WIN32
Sleep(timeout);
#else
if (timeout == 0)
std::this_thread::yield();
else
std::this_thread::sleep_for(std::chrono::milliseconds(timeout));
#endif
return STATUS_SUCCESS;
}
void ExFreePool()
{
LOG_UTILITY("!!! STUB !!!");
}
void NtQueryInformationFile()
{
LOG_UTILITY("!!! STUB !!!");
}
void NtQueryVolumeInformationFile()
{
LOG_UTILITY("!!! STUB !!!");
}
void NtQueryDirectoryFile()
{
LOG_UTILITY("!!! STUB !!!");
}
void NtReadFileScatter()
{
LOG_UTILITY("!!! STUB !!!");
}
void NtReadFile()
{
LOG_UTILITY("!!! STUB !!!");
}
void NtDuplicateObject()
{
LOG_UTILITY("!!! STUB !!!");
}
void NtAllocateVirtualMemory()
{
LOG_UTILITY("!!! STUB !!!");
}
void NtFreeVirtualMemory()
{
LOG_UTILITY("!!! STUB !!!");
}
void ObDereferenceObject()
{
LOG_UTILITY("!!! STUB !!!");
}
void KeSetBasePriorityThread(GuestThreadHandle* hThread, int priority)
{
#ifdef _WIN32
if (priority == 16)
{
priority = 15;
}
else if (priority == -16)
{
priority = -15;
}
SetThreadPriority(hThread == GetKernelObject(CURRENT_THREAD_HANDLE) ? GetCurrentThread() : hThread->thread.native_handle(), priority);
#endif
}
uint32_t ObReferenceObjectByHandle(uint32_t handle, uint32_t objectType, be<uint32_t>* object)
{
*object = handle;
return 0;
}
void KeQueryBasePriorityThread()
{
LOG_UTILITY("!!! STUB !!!");
}
uint32_t NtSuspendThread(GuestThreadHandle* hThread, uint32_t* suspendCount)
{
assert(hThread != GetKernelObject(CURRENT_THREAD_HANDLE) && hThread->GetThreadId() == GuestThread::GetCurrentThreadId());
hThread->suspended = true;
hThread->suspended.wait(true);
return S_OK;
}
uint32_t KeSetAffinityThread(uint32_t Thread, uint32_t Affinity, be<uint32_t>* lpPreviousAffinity)
{
if (lpPreviousAffinity)
*lpPreviousAffinity = 2;
return 0;
}
void RtlLeaveCriticalSection(XRTL_CRITICAL_SECTION* cs)
{
cs->RecursionCount--;
if (cs->RecursionCount != 0)
return;
std::atomic_ref owningThread(cs->OwningThread);
owningThread.store(0);
owningThread.notify_one();
}
void RtlEnterCriticalSection(XRTL_CRITICAL_SECTION* cs)
{
uint32_t thisThread = g_ppcContext->r13.u32;
assert(thisThread != NULL);
std::atomic_ref owningThread(cs->OwningThread);
while (true)
{
uint32_t previousOwner = 0;
if (owningThread.compare_exchange_weak(previousOwner, thisThread) || previousOwner == thisThread)
{
cs->RecursionCount++;
return;
}
owningThread.wait(previousOwner);
}
}
void RtlImageXexHeaderField()
{
LOG_UTILITY("!!! STUB !!!");
}
void HalReturnToFirmware()
{
LOG_UTILITY("!!! STUB !!!");
}
void RtlFillMemoryUlong()
{
LOG_UTILITY("!!! STUB !!!");
}
void KeBugCheckEx()
{
__builtin_debugtrap();
}
uint32_t KeGetCurrentProcessType()
{
return 1;
}
void RtlCompareMemoryUlong()
{
LOG_UTILITY("!!! STUB !!!");
}
uint32_t RtlInitializeCriticalSection(XRTL_CRITICAL_SECTION* cs)
{
cs->Header.Absolute = 0;
cs->LockCount = -1;
cs->RecursionCount = 0;
cs->OwningThread = 0;
return 0;
}
void RtlRaiseException_x()
{
LOG_UTILITY("!!! STUB !!!");
}
void KfReleaseSpinLock(uint32_t* spinLock)
{
std::atomic_ref spinLockRef(*spinLock);
spinLockRef = 0;
}
void KfAcquireSpinLock(uint32_t* spinLock)
{
std::atomic_ref spinLockRef(*spinLock);
while (true)
{
uint32_t expected = 0;
if (spinLockRef.compare_exchange_weak(expected, g_ppcContext->r13.u32))
break;
std::this_thread::yield();
}
}
uint64_t KeQueryPerformanceFrequency()
{
return 49875000;
}
void MmFreePhysicalMemory(uint32_t type, uint32_t guestAddress)
{
if (guestAddress != NULL)
g_userHeap.Free(g_memory.Translate(guestAddress));
}
bool VdPersistDisplay(uint32_t a1, uint32_t* a2)
{
*a2 = NULL;
return false;
}
void VdSwap()
{
LOG_UTILITY("!!! STUB !!!");
}
void VdGetSystemCommandBuffer()
{
LOG_UTILITY("!!! STUB !!!");
}
void KeReleaseSpinLockFromRaisedIrql(uint32_t* spinLock)
{
std::atomic_ref spinLockRef(*spinLock);
spinLockRef = 0;
}
void KeAcquireSpinLockAtRaisedIrql(uint32_t* spinLock)
{
std::atomic_ref spinLockRef(*spinLock);
while (true)
{
uint32_t expected = 0;
if (spinLockRef.compare_exchange_weak(expected, g_ppcContext->r13.u32))
break;
std::this_thread::yield();
}
}
uint32_t KiApcNormalRoutineNop()
{
return 0;
}
void VdEnableRingBufferRPtrWriteBack()
{
LOG_UTILITY("!!! STUB !!!");
}
void VdInitializeRingBuffer()
{
LOG_UTILITY("!!! STUB !!!");
}
uint32_t MmGetPhysicalAddress(uint32_t address)
{
LOGF_UTILITY("0x{:x}", address);
return address;
}
void VdSetSystemCommandBufferGpuIdentifierAddress()
{
LOG_UTILITY("!!! STUB !!!");
}
void _vsnprintf_x()
{
LOG_UTILITY("!!! STUB !!!");
}
void sprintf_x()
{
LOG_UTILITY("!!! STUB !!!");
}
void ExRegisterTitleTerminateNotification()
{
LOG_UTILITY("!!! STUB !!!");
}
void VdShutdownEngines()
{
LOG_UTILITY("!!! STUB !!!");
}
void VdQueryVideoMode(XVIDEO_MODE* vm)
{
memset(vm, 0, sizeof(XVIDEO_MODE));
vm->DisplayWidth = 1280;
vm->DisplayHeight = 720;
vm->IsInterlaced = false;
vm->IsWidescreen = true;
vm->IsHighDefinition = true;
vm->RefreshRate = 0x42700000;
vm->VideoStandard = 1;
vm->Unknown4A = 0x4A;
vm->Unknown01 = 0x01;
}
void VdGetCurrentDisplayInformation()
{
LOG_UTILITY("!!! STUB !!!");
}
void VdSetDisplayMode()
{
LOG_UTILITY("!!! STUB !!!");
}
void VdSetGraphicsInterruptCallback()
{
LOG_UTILITY("!!! STUB !!!");
}
void VdInitializeEngines()
{
LOG_UTILITY("!!! STUB !!!");
}
void VdIsHSIOTrainingSucceeded()
{
LOG_UTILITY("!!! STUB !!!");
}
void VdGetCurrentDisplayGamma()
{
LOG_UTILITY("!!! STUB !!!");
}
void VdQueryVideoFlags()
{
LOG_UTILITY("!!! STUB !!!");
}
void VdCallGraphicsNotificationRoutines()
{
LOG_UTILITY("!!! STUB !!!");
}
void VdInitializeScalerCommandBuffer()
{
LOG_UTILITY("!!! STUB !!!");
}
void KeLeaveCriticalRegion()
{
LOG_UTILITY("!!! STUB !!!");
}
uint32_t VdRetrainEDRAM()
{
return 0;
}
void VdRetrainEDRAMWorker()
{
LOG_UTILITY("!!! STUB !!!");
}
void KeEnterCriticalRegion()
{
LOG_UTILITY("!!! STUB !!!");
}
uint32_t MmAllocatePhysicalMemoryEx
(
uint32_t flags,
uint32_t size,
uint32_t protect,
uint32_t minAddress,
uint32_t maxAddress,
uint32_t alignment
)
{
LOGF_UTILITY("0x{:x}, 0x{:x}, 0x{:x}, 0x{:x}, 0x{:x}, 0x{:x}", flags, size, protect, minAddress, maxAddress, alignment);
return g_memory.MapVirtual(g_userHeap.AllocPhysical(size, alignment));
}
void ObDeleteSymbolicLink()
{
LOG_UTILITY("!!! STUB !!!");
}
void ObCreateSymbolicLink()
{
LOG_UTILITY("!!! STUB !!!");
}
uint32_t MmQueryAddressProtect(uint32_t guestAddress)
{
return PAGE_READWRITE;
}
void VdEnableDisableClockGating()
{
LOG_UTILITY("!!! STUB !!!");
}
void KeBugCheck()
{
__builtin_debugtrap();
}
void KeLockL2()