1//===- Win32/Process.cpp - Win32 Process Implementation ------- -*- C++ -*-===// 2// 3// The LLVM Compiler Infrastructure 4// 5// This file is distributed under the University of Illinois Open Source 6// License. See LICENSE.TXT for details. 7// 8//===----------------------------------------------------------------------===// 9// 10// This file provides the Win32 specific implementation of the Process class. 11// 12//===----------------------------------------------------------------------===// 13 14#include "llvm/Support/Allocator.h" 15#include "llvm/Support/ErrorHandling.h" 16#include "llvm/Support/WindowsError.h" 17#include <malloc.h> 18 19// The Windows.h header must be after LLVM and standard headers. 20#include "WindowsSupport.h" 21 22#include <direct.h> 23#include <io.h> 24#include <psapi.h> 25#include <shellapi.h> 26 27#ifdef __MINGW32__ 28 #if (HAVE_LIBPSAPI != 1) 29 #error "libpsapi.a should be present" 30 #endif 31 #if (HAVE_LIBSHELL32 != 1) 32 #error "libshell32.a should be present" 33 #endif 34#else 35 #pragma comment(lib, "psapi.lib") 36 #pragma comment(lib, "shell32.lib") 37#endif 38 39//===----------------------------------------------------------------------===// 40//=== WARNING: Implementation here must contain only Win32 specific code 41//=== and must not be UNIX code 42//===----------------------------------------------------------------------===// 43 44#ifdef __MINGW32__ 45// This ban should be lifted when MinGW 1.0+ has defined this value. 46# define _HEAPOK (-2) 47#endif 48 49using namespace llvm; 50using namespace sys; 51 52static TimeValue getTimeValueFromFILETIME(FILETIME Time) { 53 ULARGE_INTEGER TimeInteger; 54 TimeInteger.LowPart = Time.dwLowDateTime; 55 TimeInteger.HighPart = Time.dwHighDateTime; 56 57 // FILETIME's are # of 100 nanosecond ticks (1/10th of a microsecond) 58 return TimeValue( 59 static_cast<TimeValue::SecondsType>(TimeInteger.QuadPart / 10000000), 60 static_cast<TimeValue::NanoSecondsType>( 61 (TimeInteger.QuadPart % 10000000) * 100)); 62} 63 64// This function retrieves the page size using GetNativeSystemInfo() and is 65// present solely so it can be called once to initialize the self_process member 66// below. 67static unsigned computePageSize() { 68 // GetNativeSystemInfo() provides the physical page size which may differ 69 // from GetSystemInfo() in 32-bit applications running under WOW64. 70 SYSTEM_INFO info; 71 GetNativeSystemInfo(&info); 72 // FIXME: FileOffset in MapViewOfFile() should be aligned to not dwPageSize, 73 // but dwAllocationGranularity. 74 return static_cast<unsigned>(info.dwPageSize); 75} 76 77unsigned Process::getPageSize() { 78 static unsigned Ret = computePageSize(); 79 return Ret; 80} 81 82size_t 83Process::GetMallocUsage() 84{ 85 _HEAPINFO hinfo; 86 hinfo._pentry = NULL; 87 88 size_t size = 0; 89 90 while (_heapwalk(&hinfo) == _HEAPOK) 91 size += hinfo._size; 92 93 return size; 94} 95 96void Process::GetTimeUsage(TimeValue &elapsed, TimeValue &user_time, 97 TimeValue &sys_time) { 98 elapsed = TimeValue::now(); 99 100 FILETIME ProcCreate, ProcExit, KernelTime, UserTime; 101 if (GetProcessTimes(GetCurrentProcess(), &ProcCreate, &ProcExit, &KernelTime, 102 &UserTime) == 0) 103 return; 104 105 user_time = getTimeValueFromFILETIME(UserTime); 106 sys_time = getTimeValueFromFILETIME(KernelTime); 107} 108 109// Some LLVM programs such as bugpoint produce core files as a normal part of 110// their operation. To prevent the disk from filling up, this configuration 111// item does what's necessary to prevent their generation. 112void Process::PreventCoreFiles() { 113 // Windows does have the concept of core files, called minidumps. However, 114 // disabling minidumps for a particular application extends past the lifetime 115 // of that application, which is the incorrect behavior for this API. 116 // Additionally, the APIs require elevated privileges to disable and re- 117 // enable minidumps, which makes this untenable. For more information, see 118 // WerAddExcludedApplication and WerRemoveExcludedApplication (Vista and 119 // later). 120 // 121 // Windows also has modal pop-up message boxes. As this method is used by 122 // bugpoint, preventing these pop-ups is additionally important. 123 SetErrorMode(SEM_FAILCRITICALERRORS | 124 SEM_NOGPFAULTERRORBOX | 125 SEM_NOOPENFILEERRORBOX); 126 127 coreFilesPrevented = true; 128} 129 130/// Returns the environment variable \arg Name's value as a string encoded in 131/// UTF-8. \arg Name is assumed to be in UTF-8 encoding. 132Optional<std::string> Process::GetEnv(StringRef Name) { 133 // Convert the argument to UTF-16 to pass it to _wgetenv(). 134 SmallVector<wchar_t, 128> NameUTF16; 135 if (windows::UTF8ToUTF16(Name, NameUTF16)) 136 return None; 137 138 // Environment variable can be encoded in non-UTF8 encoding, and there's no 139 // way to know what the encoding is. The only reliable way to look up 140 // multibyte environment variable is to use GetEnvironmentVariableW(). 141 SmallVector<wchar_t, MAX_PATH> Buf; 142 size_t Size = MAX_PATH; 143 do { 144 Buf.reserve(Size); 145 Size = 146 GetEnvironmentVariableW(NameUTF16.data(), Buf.data(), Buf.capacity()); 147 if (Size == 0) 148 return None; 149 150 // Try again with larger buffer. 151 } while (Size > Buf.capacity()); 152 Buf.set_size(Size); 153 154 // Convert the result from UTF-16 to UTF-8. 155 SmallVector<char, MAX_PATH> Res; 156 if (windows::UTF16ToUTF8(Buf.data(), Size, Res)) 157 return None; 158 return std::string(Res.data()); 159} 160 161static void AllocateAndPush(const SmallVectorImpl<char> &S, 162 SmallVectorImpl<const char *> &Vector, 163 SpecificBumpPtrAllocator<char> &Allocator) { 164 char *Buffer = Allocator.Allocate(S.size() + 1); 165 ::memcpy(Buffer, S.data(), S.size()); 166 Buffer[S.size()] = '\0'; 167 Vector.push_back(Buffer); 168} 169 170/// Convert Arg from UTF-16 to UTF-8 and push it onto Args. 171static std::error_code 172ConvertAndPushArg(const wchar_t *Arg, SmallVectorImpl<const char *> &Args, 173 SpecificBumpPtrAllocator<char> &Allocator) { 174 SmallVector<char, MAX_PATH> ArgString; 175 if (std::error_code ec = windows::UTF16ToUTF8(Arg, wcslen(Arg), ArgString)) 176 return ec; 177 AllocateAndPush(ArgString, Args, Allocator); 178 return std::error_code(); 179} 180 181/// \brief Perform wildcard expansion of Arg, or just push it into Args if it 182/// doesn't have wildcards or doesn't match any files. 183static std::error_code 184WildcardExpand(const wchar_t *Arg, SmallVectorImpl<const char *> &Args, 185 SpecificBumpPtrAllocator<char> &Allocator) { 186 if (!wcspbrk(Arg, L"*?")) { 187 // Arg does not contain any wildcard characters. This is the common case. 188 return ConvertAndPushArg(Arg, Args, Allocator); 189 } 190 191 if (wcscmp(Arg, L"/?") == 0 || wcscmp(Arg, L"-?") == 0) { 192 // Don't wildcard expand /?. Always treat it as an option. 193 return ConvertAndPushArg(Arg, Args, Allocator); 194 } 195 196 // Extract any directory part of the argument. 197 SmallVector<char, MAX_PATH> Dir; 198 if (std::error_code ec = windows::UTF16ToUTF8(Arg, wcslen(Arg), Dir)) 199 return ec; 200 sys::path::remove_filename(Dir); 201 const int DirSize = Dir.size(); 202 203 // Search for matching files. 204 // FIXME: This assumes the wildcard is only in the file name and not in the 205 // directory portion of the file path. For example, it doesn't handle 206 // "*\foo.c" nor "s?c\bar.cpp". 207 WIN32_FIND_DATAW FileData; 208 HANDLE FindHandle = FindFirstFileW(Arg, &FileData); 209 if (FindHandle == INVALID_HANDLE_VALUE) { 210 return ConvertAndPushArg(Arg, Args, Allocator); 211 } 212 213 std::error_code ec; 214 do { 215 SmallVector<char, MAX_PATH> FileName; 216 ec = windows::UTF16ToUTF8(FileData.cFileName, wcslen(FileData.cFileName), 217 FileName); 218 if (ec) 219 break; 220 221 // Append FileName to Dir, and remove it afterwards. 222 llvm::sys::path::append(Dir, StringRef(FileName.data(), FileName.size())); 223 AllocateAndPush(Dir, Args, Allocator); 224 Dir.resize(DirSize); 225 } while (FindNextFileW(FindHandle, &FileData)); 226 227 FindClose(FindHandle); 228 return ec; 229} 230 231static std::error_code 232ExpandShortFileName(const wchar_t *Arg, SmallVectorImpl<const char *> &Args, 233 SpecificBumpPtrAllocator<char> &Allocator) { 234 SmallVector<wchar_t, MAX_PATH> LongPath; 235 DWORD Length = GetLongPathNameW(Arg, LongPath.data(), LongPath.capacity()); 236 if (Length == 0) 237 return mapWindowsError(GetLastError()); 238 if (Length > LongPath.capacity()) { 239 // We're not going to try to deal with paths longer than MAX_PATH, so we'll 240 // treat this as an error. GetLastError() returns ERROR_SUCCESS, which 241 // isn't useful, so we'll hardcode an appropriate error value. 242 return mapWindowsError(ERROR_INSUFFICIENT_BUFFER); 243 } 244 LongPath.set_size(Length); 245 return ConvertAndPushArg(LongPath.data(), Args, Allocator); 246} 247 248std::error_code 249Process::GetArgumentVector(SmallVectorImpl<const char *> &Args, 250 ArrayRef<const char *>, 251 SpecificBumpPtrAllocator<char> &ArgAllocator) { 252 int ArgCount; 253 wchar_t **UnicodeCommandLine = 254 CommandLineToArgvW(GetCommandLineW(), &ArgCount); 255 if (!UnicodeCommandLine) 256 return mapWindowsError(::GetLastError()); 257 258 Args.reserve(ArgCount); 259 std::error_code ec; 260 261 // The first argument may contain just the name of the executable (e.g., 262 // "clang") rather than the full path, so swap it with the full path. 263 wchar_t ModuleName[MAX_PATH]; 264 int Length = ::GetModuleFileNameW(NULL, ModuleName, MAX_PATH); 265 if (0 < Length && Length < MAX_PATH) 266 UnicodeCommandLine[0] = ModuleName; 267 268 // If the first argument is a shortened (8.3) name (which is possible even 269 // if we got the module name), the driver will have trouble distinguishing it 270 // (e.g., clang.exe v. clang++.exe), so expand it now. 271 ec = ExpandShortFileName(UnicodeCommandLine[0], Args, ArgAllocator); 272 273 for (int i = 1; i < ArgCount && !ec; ++i) { 274 ec = WildcardExpand(UnicodeCommandLine[i], Args, ArgAllocator); 275 if (ec) 276 break; 277 } 278 279 LocalFree(UnicodeCommandLine); 280 return ec; 281} 282 283std::error_code Process::FixupStandardFileDescriptors() { 284 return std::error_code(); 285} 286 287std::error_code Process::SafelyCloseFileDescriptor(int FD) { 288 if (::close(FD) < 0) 289 return std::error_code(errno, std::generic_category()); 290 return std::error_code(); 291} 292 293bool Process::StandardInIsUserInput() { 294 return FileDescriptorIsDisplayed(0); 295} 296 297bool Process::StandardOutIsDisplayed() { 298 return FileDescriptorIsDisplayed(1); 299} 300 301bool Process::StandardErrIsDisplayed() { 302 return FileDescriptorIsDisplayed(2); 303} 304 305bool Process::FileDescriptorIsDisplayed(int fd) { 306 DWORD Mode; // Unused 307 return (GetConsoleMode((HANDLE)_get_osfhandle(fd), &Mode) != 0); 308} 309 310unsigned Process::StandardOutColumns() { 311 unsigned Columns = 0; 312 CONSOLE_SCREEN_BUFFER_INFO csbi; 313 if (GetConsoleScreenBufferInfo(GetStdHandle(STD_OUTPUT_HANDLE), &csbi)) 314 Columns = csbi.dwSize.X; 315 return Columns; 316} 317 318unsigned Process::StandardErrColumns() { 319 unsigned Columns = 0; 320 CONSOLE_SCREEN_BUFFER_INFO csbi; 321 if (GetConsoleScreenBufferInfo(GetStdHandle(STD_ERROR_HANDLE), &csbi)) 322 Columns = csbi.dwSize.X; 323 return Columns; 324} 325 326// The terminal always has colors. 327bool Process::FileDescriptorHasColors(int fd) { 328 return FileDescriptorIsDisplayed(fd); 329} 330 331bool Process::StandardOutHasColors() { 332 return FileDescriptorHasColors(1); 333} 334 335bool Process::StandardErrHasColors() { 336 return FileDescriptorHasColors(2); 337} 338 339static bool UseANSI = false; 340void Process::UseANSIEscapeCodes(bool enable) { 341 UseANSI = enable; 342} 343 344namespace { 345class DefaultColors 346{ 347 private: 348 WORD defaultColor; 349 public: 350 DefaultColors() 351 :defaultColor(GetCurrentColor()) {} 352 static unsigned GetCurrentColor() { 353 CONSOLE_SCREEN_BUFFER_INFO csbi; 354 if (GetConsoleScreenBufferInfo(GetStdHandle(STD_OUTPUT_HANDLE), &csbi)) 355 return csbi.wAttributes; 356 return 0; 357 } 358 WORD operator()() const { return defaultColor; } 359}; 360 361DefaultColors defaultColors; 362 363WORD fg_color(WORD color) { 364 return color & (FOREGROUND_BLUE | FOREGROUND_GREEN | 365 FOREGROUND_INTENSITY | FOREGROUND_RED); 366} 367 368WORD bg_color(WORD color) { 369 return color & (BACKGROUND_BLUE | BACKGROUND_GREEN | 370 BACKGROUND_INTENSITY | BACKGROUND_RED); 371} 372} 373 374bool Process::ColorNeedsFlush() { 375 return !UseANSI; 376} 377 378const char *Process::OutputBold(bool bg) { 379 if (UseANSI) return "\033[1m"; 380 381 WORD colors = DefaultColors::GetCurrentColor(); 382 if (bg) 383 colors |= BACKGROUND_INTENSITY; 384 else 385 colors |= FOREGROUND_INTENSITY; 386 SetConsoleTextAttribute(GetStdHandle(STD_OUTPUT_HANDLE), colors); 387 return 0; 388} 389 390const char *Process::OutputColor(char code, bool bold, bool bg) { 391 if (UseANSI) return colorcodes[bg?1:0][bold?1:0][code&7]; 392 393 WORD current = DefaultColors::GetCurrentColor(); 394 WORD colors; 395 if (bg) { 396 colors = ((code&1) ? BACKGROUND_RED : 0) | 397 ((code&2) ? BACKGROUND_GREEN : 0 ) | 398 ((code&4) ? BACKGROUND_BLUE : 0); 399 if (bold) 400 colors |= BACKGROUND_INTENSITY; 401 colors |= fg_color(current); 402 } else { 403 colors = ((code&1) ? FOREGROUND_RED : 0) | 404 ((code&2) ? FOREGROUND_GREEN : 0 ) | 405 ((code&4) ? FOREGROUND_BLUE : 0); 406 if (bold) 407 colors |= FOREGROUND_INTENSITY; 408 colors |= bg_color(current); 409 } 410 SetConsoleTextAttribute(GetStdHandle(STD_OUTPUT_HANDLE), colors); 411 return 0; 412} 413 414static WORD GetConsoleTextAttribute(HANDLE hConsoleOutput) { 415 CONSOLE_SCREEN_BUFFER_INFO info; 416 GetConsoleScreenBufferInfo(GetStdHandle(STD_OUTPUT_HANDLE), &info); 417 return info.wAttributes; 418} 419 420const char *Process::OutputReverse() { 421 if (UseANSI) return "\033[7m"; 422 423 const WORD attributes 424 = GetConsoleTextAttribute(GetStdHandle(STD_OUTPUT_HANDLE)); 425 426 const WORD foreground_mask = FOREGROUND_BLUE | FOREGROUND_GREEN | 427 FOREGROUND_RED | FOREGROUND_INTENSITY; 428 const WORD background_mask = BACKGROUND_BLUE | BACKGROUND_GREEN | 429 BACKGROUND_RED | BACKGROUND_INTENSITY; 430 const WORD color_mask = foreground_mask | background_mask; 431 432 WORD new_attributes = 433 ((attributes & FOREGROUND_BLUE )?BACKGROUND_BLUE :0) | 434 ((attributes & FOREGROUND_GREEN )?BACKGROUND_GREEN :0) | 435 ((attributes & FOREGROUND_RED )?BACKGROUND_RED :0) | 436 ((attributes & FOREGROUND_INTENSITY)?BACKGROUND_INTENSITY:0) | 437 ((attributes & BACKGROUND_BLUE )?FOREGROUND_BLUE :0) | 438 ((attributes & BACKGROUND_GREEN )?FOREGROUND_GREEN :0) | 439 ((attributes & BACKGROUND_RED )?FOREGROUND_RED :0) | 440 ((attributes & BACKGROUND_INTENSITY)?FOREGROUND_INTENSITY:0) | 441 0; 442 new_attributes = (attributes & ~color_mask) | (new_attributes & color_mask); 443 444 SetConsoleTextAttribute(GetStdHandle(STD_OUTPUT_HANDLE), new_attributes); 445 return 0; 446} 447 448const char *Process::ResetColor() { 449 if (UseANSI) return "\033[0m"; 450 SetConsoleTextAttribute(GetStdHandle(STD_OUTPUT_HANDLE), defaultColors()); 451 return 0; 452} 453 454// Include GetLastError() in a fatal error message. 455static void ReportLastErrorFatal(const char *Msg) { 456 std::string ErrMsg; 457 MakeErrMsg(&ErrMsg, Msg); 458 report_fatal_error(ErrMsg); 459} 460 461unsigned Process::GetRandomNumber() { 462 HCRYPTPROV HCPC; 463 if (!::CryptAcquireContextW(&HCPC, NULL, NULL, PROV_RSA_FULL, 464 CRYPT_VERIFYCONTEXT)) 465 ReportLastErrorFatal("Could not acquire a cryptographic context"); 466 467 ScopedCryptContext CryptoProvider(HCPC); 468 unsigned Ret; 469 if (!::CryptGenRandom(CryptoProvider, sizeof(Ret), 470 reinterpret_cast<BYTE *>(&Ret))) 471 ReportLastErrorFatal("Could not generate a random number"); 472 return Ret; 473} 474