1 //===-- asan_win.cpp 2 //------------------------------------------------------===//> 3 // 4 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 5 // See https://llvm.org/LICENSE.txt for license information. 6 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 7 // 8 //===----------------------------------------------------------------------===// 9 // 10 // This file is a part of AddressSanitizer, an address sanity checker. 11 // 12 // Windows-specific details. 13 //===----------------------------------------------------------------------===// 14 15 #include "sanitizer_common/sanitizer_platform.h" 16 #if SANITIZER_WINDOWS 17 # define WIN32_LEAN_AND_MEAN 18 # include <stdlib.h> 19 # include <windows.h> 20 21 # include "asan_interceptors.h" 22 # include "asan_internal.h" 23 # include "asan_mapping.h" 24 # include "asan_report.h" 25 # include "asan_stack.h" 26 # include "asan_thread.h" 27 # include "sanitizer_common/sanitizer_libc.h" 28 # include "sanitizer_common/sanitizer_mutex.h" 29 # include "sanitizer_common/sanitizer_win.h" 30 # include "sanitizer_common/sanitizer_win_defs.h" 31 32 using namespace __asan; 33 34 extern "C" { 35 SANITIZER_INTERFACE_ATTRIBUTE 36 int __asan_should_detect_stack_use_after_return() { 37 __asan_init(); 38 return __asan_option_detect_stack_use_after_return; 39 } 40 41 SANITIZER_INTERFACE_ATTRIBUTE 42 uptr __asan_get_shadow_memory_dynamic_address() { 43 __asan_init(); 44 return __asan_shadow_memory_dynamic_address; 45 } 46 } // extern "C" 47 48 // ---------------------- Windows-specific interceptors ---------------- {{{ 49 static LPTOP_LEVEL_EXCEPTION_FILTER default_seh_handler; 50 static LPTOP_LEVEL_EXCEPTION_FILTER user_seh_handler; 51 52 extern "C" SANITIZER_INTERFACE_ATTRIBUTE long __asan_unhandled_exception_filter( 53 EXCEPTION_POINTERS *info) { 54 EXCEPTION_RECORD *exception_record = info->ExceptionRecord; 55 CONTEXT *context = info->ContextRecord; 56 57 // FIXME: Handle EXCEPTION_STACK_OVERFLOW here. 58 59 SignalContext sig(exception_record, context); 60 ReportDeadlySignal(sig); 61 UNREACHABLE("returned from reporting deadly signal"); 62 } 63 64 // Wrapper SEH Handler. If the exception should be handled by asan, we call 65 // __asan_unhandled_exception_filter, otherwise, we execute the user provided 66 // exception handler or the default. 67 static long WINAPI SEHHandler(EXCEPTION_POINTERS *info) { 68 DWORD exception_code = info->ExceptionRecord->ExceptionCode; 69 if (__sanitizer::IsHandledDeadlyException(exception_code)) 70 return __asan_unhandled_exception_filter(info); 71 if (user_seh_handler) 72 return user_seh_handler(info); 73 // Bubble out to the default exception filter. 74 if (default_seh_handler) 75 return default_seh_handler(info); 76 return EXCEPTION_CONTINUE_SEARCH; 77 } 78 79 INTERCEPTOR_WINAPI(LPTOP_LEVEL_EXCEPTION_FILTER, SetUnhandledExceptionFilter, 80 LPTOP_LEVEL_EXCEPTION_FILTER ExceptionFilter) { 81 CHECK(REAL(SetUnhandledExceptionFilter)); 82 if (ExceptionFilter == &SEHHandler) 83 return REAL(SetUnhandledExceptionFilter)(ExceptionFilter); 84 // We record the user provided exception handler to be called for all the 85 // exceptions unhandled by asan. 86 Swap(ExceptionFilter, user_seh_handler); 87 return ExceptionFilter; 88 } 89 90 INTERCEPTOR_WINAPI(void, RtlRaiseException, EXCEPTION_RECORD *ExceptionRecord) { 91 CHECK(REAL(RtlRaiseException)); 92 // This is a noreturn function, unless it's one of the exceptions raised to 93 // communicate with the debugger, such as the one from OutputDebugString. 94 if (ExceptionRecord->ExceptionCode != DBG_PRINTEXCEPTION_C) 95 __asan_handle_no_return(); 96 REAL(RtlRaiseException)(ExceptionRecord); 97 } 98 99 INTERCEPTOR_WINAPI(void, RaiseException, void *a, void *b, void *c, void *d) { 100 CHECK(REAL(RaiseException)); 101 __asan_handle_no_return(); 102 REAL(RaiseException)(a, b, c, d); 103 } 104 105 #ifdef _WIN64 106 107 INTERCEPTOR_WINAPI(EXCEPTION_DISPOSITION, __C_specific_handler, 108 _EXCEPTION_RECORD *a, void *b, _CONTEXT *c, 109 _DISPATCHER_CONTEXT *d) { 110 CHECK(REAL(__C_specific_handler)); 111 __asan_handle_no_return(); 112 return REAL(__C_specific_handler)(a, b, c, d); 113 } 114 115 #else 116 117 INTERCEPTOR(int, _except_handler3, void *a, void *b, void *c, void *d) { 118 CHECK(REAL(_except_handler3)); 119 __asan_handle_no_return(); 120 return REAL(_except_handler3)(a, b, c, d); 121 } 122 123 #if ASAN_DYNAMIC 124 // This handler is named differently in -MT and -MD CRTs. 125 #define _except_handler4 _except_handler4_common 126 #endif 127 INTERCEPTOR(int, _except_handler4, void *a, void *b, void *c, void *d) { 128 CHECK(REAL(_except_handler4)); 129 __asan_handle_no_return(); 130 return REAL(_except_handler4)(a, b, c, d); 131 } 132 #endif 133 134 struct ThreadStartParams { 135 thread_callback_t start_routine; 136 void *arg; 137 }; 138 139 static thread_return_t THREAD_CALLING_CONV asan_thread_start(void *arg) { 140 AsanThread *t = (AsanThread *)arg; 141 SetCurrentThread(t); 142 t->ThreadStart(GetTid()); 143 144 ThreadStartParams params; 145 t->GetStartData(params); 146 147 auto res = (*params.start_routine)(params.arg); 148 t->Destroy(); // POSIX calls this from TSD destructor. 149 return res; 150 } 151 152 INTERCEPTOR_WINAPI(HANDLE, CreateThread, LPSECURITY_ATTRIBUTES security, 153 SIZE_T stack_size, LPTHREAD_START_ROUTINE start_routine, 154 void *arg, DWORD thr_flags, DWORD *tid) { 155 // Strict init-order checking is thread-hostile. 156 if (flags()->strict_init_order) 157 StopInitOrderChecking(); 158 GET_STACK_TRACE_THREAD; 159 // FIXME: The CreateThread interceptor is not the same as a pthread_create 160 // one. This is a bandaid fix for PR22025. 161 bool detached = false; // FIXME: how can we determine it on Windows? 162 u32 current_tid = GetCurrentTidOrInvalid(); 163 ThreadStartParams params = {start_routine, arg}; 164 AsanThread *t = AsanThread::Create(params, current_tid, &stack, detached); 165 return REAL(CreateThread)(security, stack_size, asan_thread_start, t, 166 thr_flags, tid); 167 } 168 169 // }}} 170 171 namespace __asan { 172 173 void InitializePlatformInterceptors() { 174 __interception::SetErrorReportCallback(Report); 175 176 // The interceptors were not designed to be removable, so we have to keep this 177 // module alive for the life of the process. 178 HMODULE pinned; 179 CHECK(GetModuleHandleExW( 180 GET_MODULE_HANDLE_EX_FLAG_FROM_ADDRESS | GET_MODULE_HANDLE_EX_FLAG_PIN, 181 (LPCWSTR)&InitializePlatformInterceptors, &pinned)); 182 183 ASAN_INTERCEPT_FUNC(CreateThread); 184 ASAN_INTERCEPT_FUNC(SetUnhandledExceptionFilter); 185 186 #ifdef _WIN64 187 ASAN_INTERCEPT_FUNC(__C_specific_handler); 188 #else 189 ASAN_INTERCEPT_FUNC(_except_handler3); 190 ASAN_INTERCEPT_FUNC(_except_handler4); 191 #endif 192 193 // Try to intercept kernel32!RaiseException, and if that fails, intercept 194 // ntdll!RtlRaiseException instead. 195 if (!::__interception::OverrideFunction("RaiseException", 196 (uptr)WRAP(RaiseException), 197 (uptr *)&REAL(RaiseException))) { 198 CHECK(::__interception::OverrideFunction("RtlRaiseException", 199 (uptr)WRAP(RtlRaiseException), 200 (uptr *)&REAL(RtlRaiseException))); 201 } 202 } 203 204 void InstallAtExitCheckLeaks() {} 205 206 void AsanApplyToGlobals(globals_op_fptr op, const void *needle) { 207 UNIMPLEMENTED(); 208 } 209 210 void FlushUnneededASanShadowMemory(uptr p, uptr size) { 211 // Only asan on 64-bit Windows supports committing shadow memory on demand. 212 #if SANITIZER_WINDOWS64 213 // Since asan's mapping is compacting, the shadow chunk may be 214 // not page-aligned, so we only flush the page-aligned portion. 215 ReleaseMemoryPagesToOS(MemToShadow(p), MemToShadow(p + size)); 216 #endif 217 } 218 219 // ---------------------- TSD ---------------- {{{ 220 static bool tsd_key_inited = false; 221 222 static __declspec(thread) void *fake_tsd = 0; 223 224 // https://docs.microsoft.com/en-us/windows/desktop/api/winternl/ns-winternl-_teb 225 // "[This structure may be altered in future versions of Windows. Applications 226 // should use the alternate functions listed in this topic.]" 227 typedef struct _TEB { 228 PVOID Reserved1[12]; 229 // PVOID ThreadLocalStoragePointer; is here, at the last field in Reserved1. 230 PVOID ProcessEnvironmentBlock; 231 PVOID Reserved2[399]; 232 BYTE Reserved3[1952]; 233 PVOID TlsSlots[64]; 234 BYTE Reserved4[8]; 235 PVOID Reserved5[26]; 236 PVOID ReservedForOle; 237 PVOID Reserved6[4]; 238 PVOID TlsExpansionSlots; 239 } TEB, *PTEB; 240 241 constexpr size_t TEB_RESERVED_FIELDS_THREAD_LOCAL_STORAGE_OFFSET = 11; 242 BOOL IsTlsInitialized() { 243 PTEB teb = (PTEB)NtCurrentTeb(); 244 return teb->Reserved1[TEB_RESERVED_FIELDS_THREAD_LOCAL_STORAGE_OFFSET] != 245 nullptr; 246 } 247 248 void AsanTSDInit(void (*destructor)(void *tsd)) { 249 // FIXME: we're ignoring the destructor for now. 250 tsd_key_inited = true; 251 } 252 253 void *AsanTSDGet() { 254 CHECK(tsd_key_inited); 255 return IsTlsInitialized() ? fake_tsd : nullptr; 256 } 257 258 void AsanTSDSet(void *tsd) { 259 CHECK(tsd_key_inited); 260 fake_tsd = tsd; 261 } 262 263 void PlatformTSDDtor(void *tsd) { AsanThread::TSDDtor(tsd); } 264 // }}} 265 266 // ---------------------- Various stuff ---------------- {{{ 267 void *AsanDoesNotSupportStaticLinkage() { 268 #if defined(_DEBUG) 269 #error Please build the runtime with a non-debug CRT: /MD or /MT 270 #endif 271 return 0; 272 } 273 274 uptr FindDynamicShadowStart() { 275 return MapDynamicShadow(MemToShadowSize(kHighMemEnd), ASAN_SHADOW_SCALE, 276 /*min_shadow_base_alignment*/ 0, kHighMemEnd); 277 } 278 279 void AsanCheckDynamicRTPrereqs() {} 280 281 void AsanCheckIncompatibleRT() {} 282 283 void AsanOnDeadlySignal(int, void *siginfo, void *context) { UNIMPLEMENTED(); } 284 285 bool PlatformUnpoisonStacks() { return false; } 286 287 #if SANITIZER_WINDOWS64 288 // Exception handler for dealing with shadow memory. 289 static LONG CALLBACK 290 ShadowExceptionHandler(PEXCEPTION_POINTERS exception_pointers) { 291 uptr page_size = GetPageSizeCached(); 292 // Only handle access violations. 293 if (exception_pointers->ExceptionRecord->ExceptionCode != 294 EXCEPTION_ACCESS_VIOLATION || 295 exception_pointers->ExceptionRecord->NumberParameters < 2) { 296 __asan_handle_no_return(); 297 return EXCEPTION_CONTINUE_SEARCH; 298 } 299 300 // Only handle access violations that land within the shadow memory. 301 uptr addr = 302 (uptr)(exception_pointers->ExceptionRecord->ExceptionInformation[1]); 303 304 // Check valid shadow range. 305 if (!AddrIsInShadow(addr)) { 306 __asan_handle_no_return(); 307 return EXCEPTION_CONTINUE_SEARCH; 308 } 309 310 // This is an access violation while trying to read from the shadow. Commit 311 // the relevant page and let execution continue. 312 313 // Determine the address of the page that is being accessed. 314 uptr page = RoundDownTo(addr, page_size); 315 316 // Commit the page. 317 uptr result = 318 (uptr)::VirtualAlloc((LPVOID)page, page_size, MEM_COMMIT, PAGE_READWRITE); 319 if (result != page) 320 return EXCEPTION_CONTINUE_SEARCH; 321 322 // The page mapping succeeded, so continue execution as usual. 323 return EXCEPTION_CONTINUE_EXECUTION; 324 } 325 326 #endif 327 328 void InitializePlatformExceptionHandlers() { 329 #if SANITIZER_WINDOWS64 330 // On Win64, we map memory on demand with access violation handler. 331 // Install our exception handler. 332 CHECK(AddVectoredExceptionHandler(TRUE, &ShadowExceptionHandler)); 333 #endif 334 } 335 336 bool IsSystemHeapAddress(uptr addr) { 337 return ::HeapValidate(GetProcessHeap(), 0, (void *)addr) != FALSE; 338 } 339 340 // We want to install our own exception handler (EH) to print helpful reports 341 // on access violations and whatnot. Unfortunately, the CRT initializers assume 342 // they are run before any user code and drop any previously-installed EHs on 343 // the floor, so we can't install our handler inside __asan_init. 344 // (See crt0dat.c in the CRT sources for the details) 345 // 346 // Things get even more complicated with the dynamic runtime, as it finishes its 347 // initialization before the .exe module CRT begins to initialize. 348 // 349 // For the static runtime (-MT), it's enough to put a callback to 350 // __asan_set_seh_filter in the last section for C initializers. 351 // 352 // For the dynamic runtime (-MD), we want link the same 353 // asan_dynamic_runtime_thunk.lib to all the modules, thus __asan_set_seh_filter 354 // will be called for each instrumented module. This ensures that at least one 355 // __asan_set_seh_filter call happens after the .exe module CRT is initialized. 356 extern "C" SANITIZER_INTERFACE_ATTRIBUTE int __asan_set_seh_filter() { 357 // We should only store the previous handler if it's not our own handler in 358 // order to avoid loops in the EH chain. 359 auto prev_seh_handler = SetUnhandledExceptionFilter(SEHHandler); 360 if (prev_seh_handler != &SEHHandler) 361 default_seh_handler = prev_seh_handler; 362 return 0; 363 } 364 365 bool HandleDlopenInit() { 366 // Not supported on this platform. 367 static_assert(!SANITIZER_SUPPORTS_INIT_FOR_DLOPEN, 368 "Expected SANITIZER_SUPPORTS_INIT_FOR_DLOPEN to be false"); 369 return false; 370 } 371 372 #if !ASAN_DYNAMIC 373 // The CRT runs initializers in this order: 374 // - C initializers, from XIA to XIZ 375 // - C++ initializers, from XCA to XCZ 376 // Prior to 2015, the CRT set the unhandled exception filter at priority XIY, 377 // near the end of C initialization. Starting in 2015, it was moved to the 378 // beginning of C++ initialization. We set our priority to XCAB to run 379 // immediately after the CRT runs. This way, our exception filter is called 380 // first and we can delegate to their filter if appropriate. 381 #pragma section(".CRT$XCAB", long, read) 382 __declspec(allocate(".CRT$XCAB")) int (*__intercept_seh)() = 383 __asan_set_seh_filter; 384 385 // Piggyback on the TLS initialization callback directory to initialize asan as 386 // early as possible. Initializers in .CRT$XL* are called directly by ntdll, 387 // which run before the CRT. Users also add code to .CRT$XLC, so it's important 388 // to run our initializers first. 389 static void NTAPI asan_thread_init(void *module, DWORD reason, void *reserved) { 390 if (reason == DLL_PROCESS_ATTACH) 391 __asan_init(); 392 } 393 394 #pragma section(".CRT$XLAB", long, read) 395 __declspec(allocate(".CRT$XLAB")) void(NTAPI *__asan_tls_init)( 396 void *, unsigned long, void *) = asan_thread_init; 397 #endif 398 399 static void NTAPI asan_thread_exit(void *module, DWORD reason, void *reserved) { 400 if (reason == DLL_THREAD_DETACH) { 401 // Unpoison the thread's stack because the memory may be re-used. 402 NT_TIB *tib = (NT_TIB *)NtCurrentTeb(); 403 uptr stackSize = (uptr)tib->StackBase - (uptr)tib->StackLimit; 404 __asan_unpoison_memory_region(tib->StackLimit, stackSize); 405 } 406 } 407 408 #pragma section(".CRT$XLY", long, read) 409 __declspec(allocate(".CRT$XLY")) void(NTAPI *__asan_tls_exit)( 410 void *, unsigned long, void *) = asan_thread_exit; 411 412 WIN_FORCE_LINK(__asan_dso_reg_hook) 413 414 // }}} 415 } // namespace __asan 416 417 #endif // SANITIZER_WINDOWS 418