373 lines
11 KiB
C++
373 lines
11 KiB
C++
#include "master.hpp"
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namespace factor {
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HMODULE hFactorDll;
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bool set_memory_locked(cell base, cell size, bool locked) {
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int prot = locked ? PAGE_NOACCESS : PAGE_READWRITE;
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DWORD ignore;
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int status = VirtualProtect((char*)base, size, prot, &ignore);
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return status != 0;
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}
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void factor_vm::init_ffi() {
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hFactorDll = GetModuleHandle(NULL);
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if (!hFactorDll)
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fatal_error("GetModuleHandle() failed", 0);
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}
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void factor_vm::ffi_dlopen(dll* dll) {
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dll->handle = LoadLibraryEx((WCHAR*)alien_offset(dll->path), NULL, 0);
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}
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cell factor_vm::ffi_dlsym(dll* dll, symbol_char* symbol) {
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return (cell)GetProcAddress(dll ? (HMODULE) dll->handle : hFactorDll,
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symbol);
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}
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cell factor_vm::ffi_dlsym_raw(dll* dll, symbol_char* symbol) {
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return ffi_dlsym(dll, symbol);
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}
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void factor_vm::ffi_dlclose(dll* dll) {
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FreeLibrary((HMODULE) dll->handle);
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dll->handle = NULL;
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}
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BOOL factor_vm::windows_stat(vm_char* path) {
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BY_HANDLE_FILE_INFORMATION bhfi;
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HANDLE h = CreateFileW(path, GENERIC_READ, FILE_SHARE_READ | FILE_SHARE_WRITE | FILE_SHARE_DELETE, NULL,
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OPEN_EXISTING, FILE_FLAG_BACKUP_SEMANTICS, NULL);
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if (h == INVALID_HANDLE_VALUE) {
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// FindFirstFile is the only call that can stat c:\pagefile.sys
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WIN32_FIND_DATA st;
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HANDLE h;
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if (INVALID_HANDLE_VALUE == (h = FindFirstFile(path, &st)))
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return false;
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FindClose(h);
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return true;
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}
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BOOL ret = GetFileInformationByHandle(h, &bhfi);
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CloseHandle(h);
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return ret;
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}
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// You must free() this yourself.
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const vm_char* factor_vm::default_image_path() {
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vm_char full_path[MAX_UNICODE_PATH];
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vm_char* ptr;
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vm_char temp_path[MAX_UNICODE_PATH];
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if (!GetModuleFileName(NULL, full_path, MAX_UNICODE_PATH))
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fatal_error("GetModuleFileName() failed", 0);
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if ((ptr = wcsrchr(full_path, '.')))
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*ptr = 0;
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wcsncpy(temp_path, full_path, MAX_UNICODE_PATH - 1);
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size_t full_path_len = wcslen(full_path);
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if (full_path_len < MAX_UNICODE_PATH - 1)
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wcsncat(temp_path, L".image", MAX_UNICODE_PATH - full_path_len - 1);
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temp_path[MAX_UNICODE_PATH - 1] = 0;
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return safe_strdup(temp_path);
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}
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// You must free() this yourself.
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const vm_char* factor_vm::vm_executable_path() {
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vm_char full_path[MAX_UNICODE_PATH];
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if (!GetModuleFileName(NULL, full_path, MAX_UNICODE_PATH))
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fatal_error("GetModuleFileName() failed", 0);
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return safe_strdup(full_path);
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}
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void factor_vm::primitive_existsp() {
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vm_char* path = untag_check<byte_array>(ctx->pop())->data<vm_char>();
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ctx->push(tag_boolean(windows_stat(path)));
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}
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segment::segment(cell size_, bool executable_p) {
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size = size_;
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char* mem;
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cell alloc_size = getpagesize() * 2 + size;
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if ((mem = (char*)VirtualAlloc(
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NULL, alloc_size, MEM_COMMIT,
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executable_p ? PAGE_EXECUTE_READWRITE : PAGE_READWRITE)) ==
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0) {
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fatal_error("Out of memory in VirtualAlloc", alloc_size);
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}
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start = (cell)mem + getpagesize();
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end = start + size;
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set_border_locked(true);
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}
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segment::~segment() {
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SYSTEM_INFO si;
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GetSystemInfo(&si);
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if (!VirtualFree((void*)(start - si.dwPageSize), 0, MEM_RELEASE))
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fatal_error("Segment deallocation failed", 0);
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}
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long getpagesize() {
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static long g_pagesize = 0;
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if (!g_pagesize) {
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SYSTEM_INFO system_info;
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GetSystemInfo(&system_info);
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g_pagesize = system_info.dwPageSize;
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}
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return g_pagesize;
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}
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bool move_file(const vm_char* path1, const vm_char* path2) {
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// MoveFileEx returns FALSE on fail.
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BOOL val = MoveFileEx((path1), (path2), MOVEFILE_REPLACE_EXISTING);
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if (val == FALSE) {
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// MoveFileEx doesn't set errno, which primitive_save_image()
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// reads the error code from. Instead of converting from
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// GetLastError() to errno values, we ust set it to the generic
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// EIO value.
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errno = EIO;
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}
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return val == TRUE;
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}
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void factor_vm::init_signals() {}
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THREADHANDLE start_thread(void* (*start_routine)(void*), void* args) {
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return (void*)CreateThread(NULL, 0, (LPTHREAD_START_ROUTINE) start_routine,
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args, 0, 0);
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}
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uint64_t nano_count() {
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static double scale_factor;
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static uint32_t hi = 0;
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static uint32_t lo = 0;
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// Note: on older systems QueryPerformanceCounter may be unreliable
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// until you add /usepmtimer to Boot.ini. I had an issue where two
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// nano_count calls would show a difference of about 1 second,
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// while actually about 80 seconds have passed. The /usepmtimer
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// switch cured the issue on that PC (WinXP Pro SP3 32-bit).
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// See also http://www.virtualdub.org/blog/pivot/entry.php?id=106
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LARGE_INTEGER count;
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BOOL ret = QueryPerformanceCounter(&count);
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if (ret == 0)
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fatal_error("QueryPerformanceCounter", 0);
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if (scale_factor == 0.0) {
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LARGE_INTEGER frequency;
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BOOL ret = QueryPerformanceFrequency(&frequency);
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if (ret == 0)
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fatal_error("QueryPerformanceFrequency", 0);
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scale_factor = (1000000000.0 / frequency.QuadPart);
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}
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#ifdef FACTOR_64
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hi = count.HighPart;
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#else
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// On VirtualBox, QueryPerformanceCounter does not increment
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// the high part every time the low part overflows. Workaround.
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if (lo > count.LowPart)
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hi++;
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#endif
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lo = count.LowPart;
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return (uint64_t)((((uint64_t)hi << 32) | (uint64_t)lo) * scale_factor);
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}
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void sleep_nanos(uint64_t nsec) { Sleep((DWORD)(nsec / 1000000)); }
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typedef enum _EXCEPTION_DISPOSITION {
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ExceptionContinueExecution = 0,
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ExceptionContinueSearch = 1,
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ExceptionNestedException = 2,
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ExceptionCollidedUnwind = 3
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} EXCEPTION_DISPOSITION;
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LONG factor_vm::exception_handler(PEXCEPTION_RECORD e, void* frame, PCONTEXT c,
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void* dispatch) {
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switch (e->ExceptionCode) {
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case EXCEPTION_ACCESS_VIOLATION:
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signal_fault_addr = e->ExceptionInformation[1];
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signal_fault_pc = c->EIP;
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verify_memory_protection_error(signal_fault_addr);
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dispatch_signal_handler((cell*)&c->ESP, (cell*)&c->EIP,
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(cell)factor::memory_signal_handler_impl);
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break;
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case STATUS_FLOAT_DENORMAL_OPERAND:
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case STATUS_FLOAT_DIVIDE_BY_ZERO:
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case STATUS_FLOAT_INEXACT_RESULT:
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case STATUS_FLOAT_INVALID_OPERATION:
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case STATUS_FLOAT_OVERFLOW:
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case STATUS_FLOAT_STACK_CHECK:
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case STATUS_FLOAT_UNDERFLOW:
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case STATUS_FLOAT_MULTIPLE_FAULTS:
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case STATUS_FLOAT_MULTIPLE_TRAPS:
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#ifdef FACTOR_64
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signal_fpu_status = fpu_status(MXCSR(c));
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#else
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signal_fpu_status = fpu_status(X87SW(c) | MXCSR(c));
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// This seems to have no effect
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X87SW(c) = 0;
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#endif
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MXCSR(c) &= 0xffffffc0;
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dispatch_signal_handler((cell*)&c->ESP, (cell*)&c->EIP,
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(cell)factor::fp_signal_handler_impl);
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break;
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default:
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signal_number = e->ExceptionCode;
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dispatch_signal_handler((cell*)&c->ESP, (cell*)&c->EIP,
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(cell)factor::synchronous_signal_handler_impl);
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break;
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}
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return ExceptionContinueExecution;
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}
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VM_C_API LONG exception_handler(PEXCEPTION_RECORD e, void* frame, PCONTEXT c,
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void* dispatch) {
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factor_vm* vm = current_vm_p();
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if (factor_vm::fatal_erroring_p || !vm)
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return ExceptionContinueSearch;
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return vm->exception_handler(e, frame, c, dispatch);
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}
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// On Unix SIGINT (ctrl-c) automatically interrupts blocking io system
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// calls. It doesn't on Windows, so we need to manually send some
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// cancellation requests to unblock the thread.
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VOID CALLBACK dummy_cb (ULONG_PTR dwParam) { }
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// CancelSynchronousIo is not in Windows XP
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#if _WIN32_WINNT >= 0x0600
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static void wake_up_thread(HANDLE thread) {
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if (!CancelSynchronousIo(thread)) {
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DWORD err = GetLastError();
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// CancelSynchronousIo() didn't find anything to cancel, let's try
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// with QueueUserAPC() instead.
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if (err == ERROR_NOT_FOUND) {
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if (!QueueUserAPC(&dummy_cb, thread, NULL)) {
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fatal_error("QueueUserAPC() failed", GetLastError());
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}
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} else {
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fatal_error("CancelSynchronousIo() failed", err);
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}
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}
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}
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#else
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static void wake_up_thread(HANDLE thread) {}
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#endif
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static BOOL WINAPI ctrl_handler(DWORD dwCtrlType) {
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switch (dwCtrlType) {
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case CTRL_C_EVENT: {
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// The CtrlHandler runs in its own thread without stopping the main
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// thread. Since in practice nobody uses the multi-VM stuff yet, we just
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// grab the first VM we can get. This will not be a good idea when we
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// actually support native threads.
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FACTOR_ASSERT(thread_vms.size() == 1);
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factor_vm* vm = thread_vms.begin()->second;
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vm->enqueue_fep();
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// Before leaving the ctrl_handler, try and wake up the main thread.
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wake_up_thread(factor::boot_thread);
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return TRUE;
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}
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default:
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return FALSE;
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}
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}
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void open_console() { handle_ctrl_c(); }
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void ignore_ctrl_c() {
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SetConsoleCtrlHandler(factor::ctrl_handler, FALSE);
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}
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void handle_ctrl_c() {
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SetConsoleCtrlHandler(factor::ctrl_handler, TRUE);
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}
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void lock_console() {}
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void unlock_console() {}
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void close_console() {}
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cell get_thread_pc(THREADHANDLE th) {
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DWORD suscount = SuspendThread(th);
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FACTOR_ASSERT(suscount == 0);
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CONTEXT context;
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memset((void*)&context, 0, sizeof(CONTEXT));
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context.ContextFlags = CONTEXT_CONTROL;
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BOOL context_ok = GetThreadContext(th, &context);
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FACTOR_ASSERT(context_ok);
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suscount = ResumeThread(th);
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FACTOR_ASSERT(suscount == 1);
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return context.EIP;
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}
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void factor_vm::sampler_thread_loop() {
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LARGE_INTEGER counter, new_counter, units_per_second;
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DWORD ok;
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ok = QueryPerformanceFrequency(&units_per_second);
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FACTOR_ASSERT(ok);
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ok = QueryPerformanceCounter(&counter);
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FACTOR_ASSERT(ok);
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counter.QuadPart *= samples_per_second;
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while (atomic::load(&sampling_profiler_p)) {
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SwitchToThread();
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ok = QueryPerformanceCounter(&new_counter);
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FACTOR_ASSERT(ok);
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new_counter.QuadPart *= samples_per_second;
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cell samples = 0;
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while (new_counter.QuadPart - counter.QuadPart >
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units_per_second.QuadPart) {
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++samples;
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counter.QuadPart += units_per_second.QuadPart;
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}
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if (samples == 0)
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continue;
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cell pc = get_thread_pc(thread);
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enqueue_samples(samples, pc, false);
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}
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}
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static DWORD WINAPI sampler_thread_entry(LPVOID parent_vm) {
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static_cast<factor_vm*>(parent_vm)->sampler_thread_loop();
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return 0;
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}
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void factor_vm::start_sampling_profiler_timer() {
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sampler_thread = CreateThread(NULL, 0, &sampler_thread_entry,
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static_cast<LPVOID>(this), 0, NULL);
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}
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void factor_vm::end_sampling_profiler_timer() {
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atomic::store(&sampling_profiler_p, false);
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DWORD wait_result =
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WaitForSingleObject(sampler_thread, 3000 * (DWORD) samples_per_second);
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if (wait_result != WAIT_OBJECT_0)
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TerminateThread(sampler_thread, 0);
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CloseHandle(sampler_thread);
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sampler_thread = NULL;
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}
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void abort() { ::abort(); }
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}
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