1 //===-- sanitizer_linux.cpp -----------------------------------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // This file is shared between AddressSanitizer and ThreadSanitizer 10 // run-time libraries and implements linux-specific functions from 11 // sanitizer_libc.h. 12 //===----------------------------------------------------------------------===// 13 14 #include "sanitizer_platform.h" 15 16 #if SANITIZER_FREEBSD || SANITIZER_LINUX || SANITIZER_NETBSD || \ 17 SANITIZER_SOLARIS 18 19 #include "sanitizer_common.h" 20 #include "sanitizer_flags.h" 21 #include "sanitizer_getauxval.h" 22 #include "sanitizer_internal_defs.h" 23 #include "sanitizer_libc.h" 24 #include "sanitizer_linux.h" 25 #include "sanitizer_mutex.h" 26 #include "sanitizer_placement_new.h" 27 #include "sanitizer_procmaps.h" 28 29 #if SANITIZER_LINUX && !SANITIZER_GO 30 #include <asm/param.h> 31 #endif 32 33 // For mips64, syscall(__NR_stat) fills the buffer in the 'struct kernel_stat' 34 // format. Struct kernel_stat is defined as 'struct stat' in asm/stat.h. To 35 // access stat from asm/stat.h, without conflicting with definition in 36 // sys/stat.h, we use this trick. 37 #if defined(__mips64) 38 #include <asm/unistd.h> 39 #include <sys/types.h> 40 #define stat kernel_stat 41 #if SANITIZER_GO 42 #undef st_atime 43 #undef st_mtime 44 #undef st_ctime 45 #define st_atime st_atim 46 #define st_mtime st_mtim 47 #define st_ctime st_ctim 48 #endif 49 #include <asm/stat.h> 50 #undef stat 51 #endif 52 53 #include <dlfcn.h> 54 #include <errno.h> 55 #include <fcntl.h> 56 #include <link.h> 57 #include <pthread.h> 58 #include <sched.h> 59 #include <signal.h> 60 #include <sys/mman.h> 61 #include <sys/param.h> 62 #if !SANITIZER_SOLARIS 63 #include <sys/ptrace.h> 64 #endif 65 #include <sys/resource.h> 66 #include <sys/stat.h> 67 #include <sys/syscall.h> 68 #include <sys/time.h> 69 #include <sys/types.h> 70 #include <ucontext.h> 71 #include <unistd.h> 72 73 #if SANITIZER_LINUX 74 #include <sys/utsname.h> 75 #endif 76 77 #if SANITIZER_LINUX && !SANITIZER_ANDROID 78 #include <sys/personality.h> 79 #endif 80 81 #if SANITIZER_FREEBSD 82 #include <sys/exec.h> 83 #include <sys/procctl.h> 84 #include <sys/sysctl.h> 85 #include <machine/atomic.h> 86 extern "C" { 87 // <sys/umtx.h> must be included after <errno.h> and <sys/types.h> on 88 // FreeBSD 9.2 and 10.0. 89 #include <sys/umtx.h> 90 } 91 #include <sys/thr.h> 92 #endif // SANITIZER_FREEBSD 93 94 #if SANITIZER_NETBSD 95 #include <limits.h> // For NAME_MAX 96 #include <sys/sysctl.h> 97 #include <sys/exec.h> 98 extern struct ps_strings *__ps_strings; 99 #endif // SANITIZER_NETBSD 100 101 #if SANITIZER_SOLARIS 102 #include <stdlib.h> 103 #include <thread.h> 104 #define environ _environ 105 #endif 106 107 extern char **environ; 108 109 #if SANITIZER_LINUX 110 // <linux/time.h> 111 struct kernel_timeval { 112 long tv_sec; 113 long tv_usec; 114 }; 115 116 // <linux/futex.h> is broken on some linux distributions. 117 const int FUTEX_WAIT = 0; 118 const int FUTEX_WAKE = 1; 119 const int FUTEX_PRIVATE_FLAG = 128; 120 const int FUTEX_WAIT_PRIVATE = FUTEX_WAIT | FUTEX_PRIVATE_FLAG; 121 const int FUTEX_WAKE_PRIVATE = FUTEX_WAKE | FUTEX_PRIVATE_FLAG; 122 #endif // SANITIZER_LINUX 123 124 // Are we using 32-bit or 64-bit Linux syscalls? 125 // x32 (which defines __x86_64__) has SANITIZER_WORDSIZE == 32 126 // but it still needs to use 64-bit syscalls. 127 #if SANITIZER_LINUX && (defined(__x86_64__) || defined(__powerpc64__) || \ 128 SANITIZER_WORDSIZE == 64) 129 # define SANITIZER_LINUX_USES_64BIT_SYSCALLS 1 130 #else 131 # define SANITIZER_LINUX_USES_64BIT_SYSCALLS 0 132 #endif 133 134 // Note : FreeBSD had implemented both 135 // Linux apis, available from 136 // future 12.x version most likely 137 #if SANITIZER_LINUX && defined(__NR_getrandom) 138 # if !defined(GRND_NONBLOCK) 139 # define GRND_NONBLOCK 1 140 # endif 141 # define SANITIZER_USE_GETRANDOM 1 142 #else 143 # define SANITIZER_USE_GETRANDOM 0 144 #endif // SANITIZER_LINUX && defined(__NR_getrandom) 145 146 #if SANITIZER_FREEBSD && __FreeBSD_version >= 1200000 147 # define SANITIZER_USE_GETENTROPY 1 148 #else 149 # define SANITIZER_USE_GETENTROPY 0 150 #endif 151 152 namespace __sanitizer { 153 154 void SetSigProcMask(__sanitizer_sigset_t *set, __sanitizer_sigset_t *old) { 155 CHECK_EQ(0, internal_sigprocmask(SIG_SETMASK, set, old)); 156 } 157 158 ScopedBlockSignals::ScopedBlockSignals(__sanitizer_sigset_t *copy) { 159 __sanitizer_sigset_t set; 160 internal_sigfillset(&set); 161 # if SANITIZER_LINUX && !SANITIZER_ANDROID 162 // Glibc uses SIGSETXID signal during setuid call. If this signal is blocked 163 // on any thread, setuid call hangs. 164 // See test/sanitizer_common/TestCases/Linux/setuid.c. 165 internal_sigdelset(&set, 33); 166 # endif 167 SetSigProcMask(&set, &saved_); 168 if (copy) 169 internal_memcpy(copy, &saved_, sizeof(saved_)); 170 } 171 172 ScopedBlockSignals::~ScopedBlockSignals() { SetSigProcMask(&saved_, nullptr); } 173 174 # if SANITIZER_LINUX && defined(__x86_64__) 175 # include "sanitizer_syscall_linux_x86_64.inc" 176 # elif SANITIZER_LINUX && SANITIZER_RISCV64 177 # include "sanitizer_syscall_linux_riscv64.inc" 178 # elif SANITIZER_LINUX && defined(__aarch64__) 179 # include "sanitizer_syscall_linux_aarch64.inc" 180 # elif SANITIZER_LINUX && defined(__arm__) 181 # include "sanitizer_syscall_linux_arm.inc" 182 # elif SANITIZER_LINUX && defined(__hexagon__) 183 # include "sanitizer_syscall_linux_hexagon.inc" 184 # else 185 # include "sanitizer_syscall_generic.inc" 186 # endif 187 188 // --------------- sanitizer_libc.h 189 #if !SANITIZER_SOLARIS && !SANITIZER_NETBSD 190 #if !SANITIZER_S390 191 uptr internal_mmap(void *addr, uptr length, int prot, int flags, int fd, 192 u64 offset) { 193 #if SANITIZER_FREEBSD || SANITIZER_LINUX_USES_64BIT_SYSCALLS 194 return internal_syscall(SYSCALL(mmap), (uptr)addr, length, prot, flags, fd, 195 offset); 196 #else 197 // mmap2 specifies file offset in 4096-byte units. 198 CHECK(IsAligned(offset, 4096)); 199 return internal_syscall(SYSCALL(mmap2), addr, length, prot, flags, fd, 200 offset / 4096); 201 #endif 202 } 203 #endif // !SANITIZER_S390 204 205 uptr internal_munmap(void *addr, uptr length) { 206 return internal_syscall(SYSCALL(munmap), (uptr)addr, length); 207 } 208 209 #if SANITIZER_LINUX 210 uptr internal_mremap(void *old_address, uptr old_size, uptr new_size, int flags, 211 void *new_address) { 212 return internal_syscall(SYSCALL(mremap), (uptr)old_address, old_size, 213 new_size, flags, (uptr)new_address); 214 } 215 #endif 216 217 int internal_mprotect(void *addr, uptr length, int prot) { 218 return internal_syscall(SYSCALL(mprotect), (uptr)addr, length, prot); 219 } 220 221 int internal_madvise(uptr addr, uptr length, int advice) { 222 return internal_syscall(SYSCALL(madvise), addr, length, advice); 223 } 224 225 uptr internal_close(fd_t fd) { 226 return internal_syscall(SYSCALL(close), fd); 227 } 228 229 uptr internal_open(const char *filename, int flags) { 230 #if SANITIZER_USES_CANONICAL_LINUX_SYSCALLS 231 return internal_syscall(SYSCALL(openat), AT_FDCWD, (uptr)filename, flags); 232 #else 233 return internal_syscall(SYSCALL(open), (uptr)filename, flags); 234 #endif 235 } 236 237 uptr internal_open(const char *filename, int flags, u32 mode) { 238 #if SANITIZER_USES_CANONICAL_LINUX_SYSCALLS 239 return internal_syscall(SYSCALL(openat), AT_FDCWD, (uptr)filename, flags, 240 mode); 241 #else 242 return internal_syscall(SYSCALL(open), (uptr)filename, flags, mode); 243 #endif 244 } 245 246 uptr internal_read(fd_t fd, void *buf, uptr count) { 247 sptr res; 248 HANDLE_EINTR(res, 249 (sptr)internal_syscall(SYSCALL(read), fd, (uptr)buf, count)); 250 return res; 251 } 252 253 uptr internal_write(fd_t fd, const void *buf, uptr count) { 254 sptr res; 255 HANDLE_EINTR(res, 256 (sptr)internal_syscall(SYSCALL(write), fd, (uptr)buf, count)); 257 return res; 258 } 259 260 uptr internal_ftruncate(fd_t fd, uptr size) { 261 sptr res; 262 HANDLE_EINTR(res, (sptr)internal_syscall(SYSCALL(ftruncate), fd, 263 (OFF_T)size)); 264 return res; 265 } 266 267 #if !SANITIZER_LINUX_USES_64BIT_SYSCALLS && SANITIZER_LINUX 268 static void stat64_to_stat(struct stat64 *in, struct stat *out) { 269 internal_memset(out, 0, sizeof(*out)); 270 out->st_dev = in->st_dev; 271 out->st_ino = in->st_ino; 272 out->st_mode = in->st_mode; 273 out->st_nlink = in->st_nlink; 274 out->st_uid = in->st_uid; 275 out->st_gid = in->st_gid; 276 out->st_rdev = in->st_rdev; 277 out->st_size = in->st_size; 278 out->st_blksize = in->st_blksize; 279 out->st_blocks = in->st_blocks; 280 out->st_atime = in->st_atime; 281 out->st_mtime = in->st_mtime; 282 out->st_ctime = in->st_ctime; 283 } 284 #endif 285 286 #if defined(__mips64) 287 // Undefine compatibility macros from <sys/stat.h> 288 // so that they would not clash with the kernel_stat 289 // st_[a|m|c]time fields 290 #if !SANITIZER_GO 291 #undef st_atime 292 #undef st_mtime 293 #undef st_ctime 294 #endif 295 #if defined(SANITIZER_ANDROID) 296 // Bionic sys/stat.h defines additional macros 297 // for compatibility with the old NDKs and 298 // they clash with the kernel_stat structure 299 // st_[a|m|c]time_nsec fields. 300 #undef st_atime_nsec 301 #undef st_mtime_nsec 302 #undef st_ctime_nsec 303 #endif 304 static void kernel_stat_to_stat(struct kernel_stat *in, struct stat *out) { 305 internal_memset(out, 0, sizeof(*out)); 306 out->st_dev = in->st_dev; 307 out->st_ino = in->st_ino; 308 out->st_mode = in->st_mode; 309 out->st_nlink = in->st_nlink; 310 out->st_uid = in->st_uid; 311 out->st_gid = in->st_gid; 312 out->st_rdev = in->st_rdev; 313 out->st_size = in->st_size; 314 out->st_blksize = in->st_blksize; 315 out->st_blocks = in->st_blocks; 316 #if defined(__USE_MISC) || \ 317 defined(__USE_XOPEN2K8) || \ 318 defined(SANITIZER_ANDROID) 319 out->st_atim.tv_sec = in->st_atime; 320 out->st_atim.tv_nsec = in->st_atime_nsec; 321 out->st_mtim.tv_sec = in->st_mtime; 322 out->st_mtim.tv_nsec = in->st_mtime_nsec; 323 out->st_ctim.tv_sec = in->st_ctime; 324 out->st_ctim.tv_nsec = in->st_ctime_nsec; 325 #else 326 out->st_atime = in->st_atime; 327 out->st_atimensec = in->st_atime_nsec; 328 out->st_mtime = in->st_mtime; 329 out->st_mtimensec = in->st_mtime_nsec; 330 out->st_ctime = in->st_ctime; 331 out->st_atimensec = in->st_ctime_nsec; 332 #endif 333 } 334 #endif 335 336 uptr internal_stat(const char *path, void *buf) { 337 #if SANITIZER_FREEBSD 338 return internal_syscall(SYSCALL(fstatat), AT_FDCWD, (uptr)path, (uptr)buf, 0); 339 #elif SANITIZER_USES_CANONICAL_LINUX_SYSCALLS 340 return internal_syscall(SYSCALL(newfstatat), AT_FDCWD, (uptr)path, (uptr)buf, 341 0); 342 #elif SANITIZER_LINUX_USES_64BIT_SYSCALLS 343 # if defined(__mips64) 344 // For mips64, stat syscall fills buffer in the format of kernel_stat 345 struct kernel_stat kbuf; 346 int res = internal_syscall(SYSCALL(stat), path, &kbuf); 347 kernel_stat_to_stat(&kbuf, (struct stat *)buf); 348 return res; 349 # else 350 return internal_syscall(SYSCALL(stat), (uptr)path, (uptr)buf); 351 # endif 352 #else 353 struct stat64 buf64; 354 int res = internal_syscall(SYSCALL(stat64), path, &buf64); 355 stat64_to_stat(&buf64, (struct stat *)buf); 356 return res; 357 #endif 358 } 359 360 uptr internal_lstat(const char *path, void *buf) { 361 #if SANITIZER_FREEBSD 362 return internal_syscall(SYSCALL(fstatat), AT_FDCWD, (uptr)path, (uptr)buf, 363 AT_SYMLINK_NOFOLLOW); 364 #elif SANITIZER_USES_CANONICAL_LINUX_SYSCALLS 365 return internal_syscall(SYSCALL(newfstatat), AT_FDCWD, (uptr)path, (uptr)buf, 366 AT_SYMLINK_NOFOLLOW); 367 #elif SANITIZER_LINUX_USES_64BIT_SYSCALLS 368 # if SANITIZER_MIPS64 369 // For mips64, lstat syscall fills buffer in the format of kernel_stat 370 struct kernel_stat kbuf; 371 int res = internal_syscall(SYSCALL(lstat), path, &kbuf); 372 kernel_stat_to_stat(&kbuf, (struct stat *)buf); 373 return res; 374 # else 375 return internal_syscall(SYSCALL(lstat), (uptr)path, (uptr)buf); 376 # endif 377 #else 378 struct stat64 buf64; 379 int res = internal_syscall(SYSCALL(lstat64), path, &buf64); 380 stat64_to_stat(&buf64, (struct stat *)buf); 381 return res; 382 #endif 383 } 384 385 uptr internal_fstat(fd_t fd, void *buf) { 386 #if SANITIZER_FREEBSD || SANITIZER_LINUX_USES_64BIT_SYSCALLS 387 #if SANITIZER_MIPS64 388 // For mips64, fstat syscall fills buffer in the format of kernel_stat 389 struct kernel_stat kbuf; 390 int res = internal_syscall(SYSCALL(fstat), fd, &kbuf); 391 kernel_stat_to_stat(&kbuf, (struct stat *)buf); 392 return res; 393 # else 394 return internal_syscall(SYSCALL(fstat), fd, (uptr)buf); 395 # endif 396 #else 397 struct stat64 buf64; 398 int res = internal_syscall(SYSCALL(fstat64), fd, &buf64); 399 stat64_to_stat(&buf64, (struct stat *)buf); 400 return res; 401 #endif 402 } 403 404 uptr internal_filesize(fd_t fd) { 405 struct stat st; 406 if (internal_fstat(fd, &st)) 407 return -1; 408 return (uptr)st.st_size; 409 } 410 411 uptr internal_dup(int oldfd) { 412 return internal_syscall(SYSCALL(dup), oldfd); 413 } 414 415 uptr internal_dup2(int oldfd, int newfd) { 416 #if SANITIZER_USES_CANONICAL_LINUX_SYSCALLS 417 return internal_syscall(SYSCALL(dup3), oldfd, newfd, 0); 418 #else 419 return internal_syscall(SYSCALL(dup2), oldfd, newfd); 420 #endif 421 } 422 423 uptr internal_readlink(const char *path, char *buf, uptr bufsize) { 424 #if SANITIZER_USES_CANONICAL_LINUX_SYSCALLS 425 return internal_syscall(SYSCALL(readlinkat), AT_FDCWD, (uptr)path, (uptr)buf, 426 bufsize); 427 #else 428 return internal_syscall(SYSCALL(readlink), (uptr)path, (uptr)buf, bufsize); 429 #endif 430 } 431 432 uptr internal_unlink(const char *path) { 433 #if SANITIZER_USES_CANONICAL_LINUX_SYSCALLS 434 return internal_syscall(SYSCALL(unlinkat), AT_FDCWD, (uptr)path, 0); 435 #else 436 return internal_syscall(SYSCALL(unlink), (uptr)path); 437 #endif 438 } 439 440 uptr internal_rename(const char *oldpath, const char *newpath) { 441 #if defined(__riscv) && defined(__linux__) 442 return internal_syscall(SYSCALL(renameat2), AT_FDCWD, (uptr)oldpath, AT_FDCWD, 443 (uptr)newpath, 0); 444 #elif SANITIZER_USES_CANONICAL_LINUX_SYSCALLS 445 return internal_syscall(SYSCALL(renameat), AT_FDCWD, (uptr)oldpath, AT_FDCWD, 446 (uptr)newpath); 447 #else 448 return internal_syscall(SYSCALL(rename), (uptr)oldpath, (uptr)newpath); 449 #endif 450 } 451 452 uptr internal_sched_yield() { 453 return internal_syscall(SYSCALL(sched_yield)); 454 } 455 456 void internal_usleep(u64 useconds) { 457 struct timespec ts; 458 ts.tv_sec = useconds / 1000000; 459 ts.tv_nsec = (useconds % 1000000) * 1000; 460 internal_syscall(SYSCALL(nanosleep), &ts, &ts); 461 } 462 463 uptr internal_execve(const char *filename, char *const argv[], 464 char *const envp[]) { 465 return internal_syscall(SYSCALL(execve), (uptr)filename, (uptr)argv, 466 (uptr)envp); 467 } 468 #endif // !SANITIZER_SOLARIS && !SANITIZER_NETBSD 469 470 #if !SANITIZER_NETBSD 471 void internal__exit(int exitcode) { 472 #if SANITIZER_FREEBSD || SANITIZER_SOLARIS 473 internal_syscall(SYSCALL(exit), exitcode); 474 #else 475 internal_syscall(SYSCALL(exit_group), exitcode); 476 #endif 477 Die(); // Unreachable. 478 } 479 #endif // !SANITIZER_NETBSD 480 481 // ----------------- sanitizer_common.h 482 bool FileExists(const char *filename) { 483 if (ShouldMockFailureToOpen(filename)) 484 return false; 485 struct stat st; 486 #if SANITIZER_USES_CANONICAL_LINUX_SYSCALLS 487 if (internal_syscall(SYSCALL(newfstatat), AT_FDCWD, filename, &st, 0)) 488 #else 489 if (internal_stat(filename, &st)) 490 #endif 491 return false; 492 // Sanity check: filename is a regular file. 493 return S_ISREG(st.st_mode); 494 } 495 496 #if !SANITIZER_NETBSD 497 tid_t GetTid() { 498 #if SANITIZER_FREEBSD 499 long Tid; 500 thr_self(&Tid); 501 return Tid; 502 #elif SANITIZER_SOLARIS 503 return thr_self(); 504 #else 505 return internal_syscall(SYSCALL(gettid)); 506 #endif 507 } 508 509 int TgKill(pid_t pid, tid_t tid, int sig) { 510 #if SANITIZER_LINUX 511 return internal_syscall(SYSCALL(tgkill), pid, tid, sig); 512 #elif SANITIZER_FREEBSD 513 return internal_syscall(SYSCALL(thr_kill2), pid, tid, sig); 514 #elif SANITIZER_SOLARIS 515 (void)pid; 516 return thr_kill(tid, sig); 517 #endif 518 } 519 #endif 520 521 #if SANITIZER_GLIBC 522 u64 NanoTime() { 523 kernel_timeval tv; 524 internal_memset(&tv, 0, sizeof(tv)); 525 internal_syscall(SYSCALL(gettimeofday), &tv, 0); 526 return (u64)tv.tv_sec * 1000 * 1000 * 1000 + tv.tv_usec * 1000; 527 } 528 // Used by real_clock_gettime. 529 uptr internal_clock_gettime(__sanitizer_clockid_t clk_id, void *tp) { 530 return internal_syscall(SYSCALL(clock_gettime), clk_id, tp); 531 } 532 #elif !SANITIZER_SOLARIS && !SANITIZER_NETBSD 533 u64 NanoTime() { 534 struct timespec ts; 535 clock_gettime(CLOCK_REALTIME, &ts); 536 return (u64)ts.tv_sec * 1000 * 1000 * 1000 + ts.tv_nsec; 537 } 538 #endif 539 540 // Like getenv, but reads env directly from /proc (on Linux) or parses the 541 // 'environ' array (on some others) and does not use libc. This function 542 // should be called first inside __asan_init. 543 const char *GetEnv(const char *name) { 544 #if SANITIZER_FREEBSD || SANITIZER_NETBSD || SANITIZER_SOLARIS 545 if (::environ != 0) { 546 uptr NameLen = internal_strlen(name); 547 for (char **Env = ::environ; *Env != 0; Env++) { 548 if (internal_strncmp(*Env, name, NameLen) == 0 && (*Env)[NameLen] == '=') 549 return (*Env) + NameLen + 1; 550 } 551 } 552 return 0; // Not found. 553 #elif SANITIZER_LINUX 554 static char *environ; 555 static uptr len; 556 static bool inited; 557 if (!inited) { 558 inited = true; 559 uptr environ_size; 560 if (!ReadFileToBuffer("/proc/self/environ", &environ, &environ_size, &len)) 561 environ = nullptr; 562 } 563 if (!environ || len == 0) return nullptr; 564 uptr namelen = internal_strlen(name); 565 const char *p = environ; 566 while (*p != '\0') { // will happen at the \0\0 that terminates the buffer 567 // proc file has the format NAME=value\0NAME=value\0NAME=value\0... 568 const char* endp = 569 (char*)internal_memchr(p, '\0', len - (p - environ)); 570 if (!endp) // this entry isn't NUL terminated 571 return nullptr; 572 else if (!internal_memcmp(p, name, namelen) && p[namelen] == '=') // Match. 573 return p + namelen + 1; // point after = 574 p = endp + 1; 575 } 576 return nullptr; // Not found. 577 #else 578 #error "Unsupported platform" 579 #endif 580 } 581 582 #if !SANITIZER_FREEBSD && !SANITIZER_NETBSD && !SANITIZER_GO 583 extern "C" { 584 SANITIZER_WEAK_ATTRIBUTE extern void *__libc_stack_end; 585 } 586 #endif 587 588 #if !SANITIZER_FREEBSD && !SANITIZER_NETBSD 589 static void ReadNullSepFileToArray(const char *path, char ***arr, 590 int arr_size) { 591 char *buff; 592 uptr buff_size; 593 uptr buff_len; 594 *arr = (char **)MmapOrDie(arr_size * sizeof(char *), "NullSepFileArray"); 595 if (!ReadFileToBuffer(path, &buff, &buff_size, &buff_len, 1024 * 1024)) { 596 (*arr)[0] = nullptr; 597 return; 598 } 599 (*arr)[0] = buff; 600 int count, i; 601 for (count = 1, i = 1; ; i++) { 602 if (buff[i] == 0) { 603 if (buff[i+1] == 0) break; 604 (*arr)[count] = &buff[i+1]; 605 CHECK_LE(count, arr_size - 1); // FIXME: make this more flexible. 606 count++; 607 } 608 } 609 (*arr)[count] = nullptr; 610 } 611 #endif 612 613 static void GetArgsAndEnv(char ***argv, char ***envp) { 614 #if SANITIZER_FREEBSD 615 // On FreeBSD, retrieving the argument and environment arrays is done via the 616 // kern.ps_strings sysctl, which returns a pointer to a structure containing 617 // this information. See also <sys/exec.h>. 618 ps_strings *pss; 619 uptr sz = sizeof(pss); 620 if (internal_sysctlbyname("kern.ps_strings", &pss, &sz, NULL, 0) == -1) { 621 Printf("sysctl kern.ps_strings failed\n"); 622 Die(); 623 } 624 *argv = pss->ps_argvstr; 625 *envp = pss->ps_envstr; 626 #elif SANITIZER_NETBSD 627 *argv = __ps_strings->ps_argvstr; 628 *envp = __ps_strings->ps_envstr; 629 #else // SANITIZER_FREEBSD 630 #if !SANITIZER_GO 631 if (&__libc_stack_end) { 632 uptr* stack_end = (uptr*)__libc_stack_end; 633 // Normally argc can be obtained from *stack_end, however, on ARM glibc's 634 // _start clobbers it: 635 // https://sourceware.org/git/?p=glibc.git;a=blob;f=sysdeps/arm/start.S;hb=refs/heads/release/2.31/master#l75 636 // Do not special-case ARM and infer argc from argv everywhere. 637 int argc = 0; 638 while (stack_end[argc + 1]) argc++; 639 *argv = (char**)(stack_end + 1); 640 *envp = (char**)(stack_end + argc + 2); 641 } else { 642 #endif // !SANITIZER_GO 643 static const int kMaxArgv = 2000, kMaxEnvp = 2000; 644 ReadNullSepFileToArray("/proc/self/cmdline", argv, kMaxArgv); 645 ReadNullSepFileToArray("/proc/self/environ", envp, kMaxEnvp); 646 #if !SANITIZER_GO 647 } 648 #endif // !SANITIZER_GO 649 #endif // SANITIZER_FREEBSD 650 } 651 652 char **GetArgv() { 653 char **argv, **envp; 654 GetArgsAndEnv(&argv, &envp); 655 return argv; 656 } 657 658 char **GetEnviron() { 659 char **argv, **envp; 660 GetArgsAndEnv(&argv, &envp); 661 return envp; 662 } 663 664 #if !SANITIZER_SOLARIS 665 void FutexWait(atomic_uint32_t *p, u32 cmp) { 666 # if SANITIZER_FREEBSD 667 _umtx_op(p, UMTX_OP_WAIT_UINT, cmp, 0, 0); 668 # elif SANITIZER_NETBSD 669 sched_yield(); /* No userspace futex-like synchronization */ 670 # else 671 internal_syscall(SYSCALL(futex), (uptr)p, FUTEX_WAIT_PRIVATE, cmp, 0, 0, 0); 672 # endif 673 } 674 675 void FutexWake(atomic_uint32_t *p, u32 count) { 676 # if SANITIZER_FREEBSD 677 _umtx_op(p, UMTX_OP_WAKE, count, 0, 0); 678 # elif SANITIZER_NETBSD 679 /* No userspace futex-like synchronization */ 680 # else 681 internal_syscall(SYSCALL(futex), (uptr)p, FUTEX_WAKE_PRIVATE, count, 0, 0, 0); 682 # endif 683 } 684 685 # endif // !SANITIZER_SOLARIS 686 687 // ----------------- sanitizer_linux.h 688 // The actual size of this structure is specified by d_reclen. 689 // Note that getdents64 uses a different structure format. We only provide the 690 // 32-bit syscall here. 691 #if SANITIZER_NETBSD 692 // Not used 693 #else 694 struct linux_dirent { 695 #if SANITIZER_X32 || defined(__aarch64__) || SANITIZER_RISCV64 696 u64 d_ino; 697 u64 d_off; 698 #else 699 unsigned long d_ino; 700 unsigned long d_off; 701 #endif 702 unsigned short d_reclen; 703 #if defined(__aarch64__) || SANITIZER_RISCV64 704 unsigned char d_type; 705 #endif 706 char d_name[256]; 707 }; 708 #endif 709 710 #if !SANITIZER_SOLARIS && !SANITIZER_NETBSD 711 // Syscall wrappers. 712 uptr internal_ptrace(int request, int pid, void *addr, void *data) { 713 return internal_syscall(SYSCALL(ptrace), request, pid, (uptr)addr, 714 (uptr)data); 715 } 716 717 uptr internal_waitpid(int pid, int *status, int options) { 718 return internal_syscall(SYSCALL(wait4), pid, (uptr)status, options, 719 0 /* rusage */); 720 } 721 722 uptr internal_getpid() { 723 return internal_syscall(SYSCALL(getpid)); 724 } 725 726 uptr internal_getppid() { 727 return internal_syscall(SYSCALL(getppid)); 728 } 729 730 int internal_dlinfo(void *handle, int request, void *p) { 731 #if SANITIZER_FREEBSD 732 return dlinfo(handle, request, p); 733 #else 734 UNIMPLEMENTED(); 735 #endif 736 } 737 738 uptr internal_getdents(fd_t fd, struct linux_dirent *dirp, unsigned int count) { 739 #if SANITIZER_FREEBSD 740 return internal_syscall(SYSCALL(getdirentries), fd, (uptr)dirp, count, NULL); 741 #elif SANITIZER_USES_CANONICAL_LINUX_SYSCALLS 742 return internal_syscall(SYSCALL(getdents64), fd, (uptr)dirp, count); 743 #else 744 return internal_syscall(SYSCALL(getdents), fd, (uptr)dirp, count); 745 #endif 746 } 747 748 uptr internal_lseek(fd_t fd, OFF_T offset, int whence) { 749 return internal_syscall(SYSCALL(lseek), fd, offset, whence); 750 } 751 752 #if SANITIZER_LINUX 753 uptr internal_prctl(int option, uptr arg2, uptr arg3, uptr arg4, uptr arg5) { 754 return internal_syscall(SYSCALL(prctl), option, arg2, arg3, arg4, arg5); 755 } 756 #endif 757 758 uptr internal_sigaltstack(const void *ss, void *oss) { 759 return internal_syscall(SYSCALL(sigaltstack), (uptr)ss, (uptr)oss); 760 } 761 762 int internal_fork() { 763 #if SANITIZER_USES_CANONICAL_LINUX_SYSCALLS 764 return internal_syscall(SYSCALL(clone), SIGCHLD, 0); 765 #else 766 return internal_syscall(SYSCALL(fork)); 767 #endif 768 } 769 770 #if SANITIZER_FREEBSD 771 int internal_sysctl(const int *name, unsigned int namelen, void *oldp, 772 uptr *oldlenp, const void *newp, uptr newlen) { 773 return internal_syscall(SYSCALL(__sysctl), name, namelen, oldp, 774 (size_t *)oldlenp, newp, (size_t)newlen); 775 } 776 777 int internal_sysctlbyname(const char *sname, void *oldp, uptr *oldlenp, 778 const void *newp, uptr newlen) { 779 // Note: this function can be called during startup, so we need to avoid 780 // calling any interceptable functions. On FreeBSD >= 1300045 sysctlbyname() 781 // is a real syscall, but for older versions it calls sysctlnametomib() 782 // followed by sysctl(). To avoid calling the intercepted version and 783 // asserting if this happens during startup, call the real sysctlnametomib() 784 // followed by internal_sysctl() if the syscall is not available. 785 #ifdef SYS___sysctlbyname 786 return internal_syscall(SYSCALL(__sysctlbyname), sname, 787 internal_strlen(sname), oldp, (size_t *)oldlenp, newp, 788 (size_t)newlen); 789 #else 790 static decltype(sysctlnametomib) *real_sysctlnametomib = nullptr; 791 if (!real_sysctlnametomib) 792 real_sysctlnametomib = 793 (decltype(sysctlnametomib) *)dlsym(RTLD_NEXT, "sysctlnametomib"); 794 CHECK(real_sysctlnametomib); 795 796 int oid[CTL_MAXNAME]; 797 size_t len = CTL_MAXNAME; 798 if (real_sysctlnametomib(sname, oid, &len) == -1) 799 return (-1); 800 return internal_sysctl(oid, len, oldp, oldlenp, newp, newlen); 801 #endif 802 } 803 #endif 804 805 #if SANITIZER_LINUX 806 #define SA_RESTORER 0x04000000 807 // Doesn't set sa_restorer if the caller did not set it, so use with caution 808 //(see below). 809 int internal_sigaction_norestorer(int signum, const void *act, void *oldact) { 810 __sanitizer_kernel_sigaction_t k_act, k_oldact; 811 internal_memset(&k_act, 0, sizeof(__sanitizer_kernel_sigaction_t)); 812 internal_memset(&k_oldact, 0, sizeof(__sanitizer_kernel_sigaction_t)); 813 const __sanitizer_sigaction *u_act = (const __sanitizer_sigaction *)act; 814 __sanitizer_sigaction *u_oldact = (__sanitizer_sigaction *)oldact; 815 if (u_act) { 816 k_act.handler = u_act->handler; 817 k_act.sigaction = u_act->sigaction; 818 internal_memcpy(&k_act.sa_mask, &u_act->sa_mask, 819 sizeof(__sanitizer_kernel_sigset_t)); 820 // Without SA_RESTORER kernel ignores the calls (probably returns EINVAL). 821 k_act.sa_flags = u_act->sa_flags | SA_RESTORER; 822 // FIXME: most often sa_restorer is unset, however the kernel requires it 823 // to point to a valid signal restorer that calls the rt_sigreturn syscall. 824 // If sa_restorer passed to the kernel is NULL, the program may crash upon 825 // signal delivery or fail to unwind the stack in the signal handler. 826 // libc implementation of sigaction() passes its own restorer to 827 // rt_sigaction, so we need to do the same (we'll need to reimplement the 828 // restorers; for x86_64 the restorer address can be obtained from 829 // oldact->sa_restorer upon a call to sigaction(xxx, NULL, oldact). 830 #if !SANITIZER_ANDROID || !SANITIZER_MIPS32 831 k_act.sa_restorer = u_act->sa_restorer; 832 #endif 833 } 834 835 uptr result = internal_syscall(SYSCALL(rt_sigaction), (uptr)signum, 836 (uptr)(u_act ? &k_act : nullptr), 837 (uptr)(u_oldact ? &k_oldact : nullptr), 838 (uptr)sizeof(__sanitizer_kernel_sigset_t)); 839 840 if ((result == 0) && u_oldact) { 841 u_oldact->handler = k_oldact.handler; 842 u_oldact->sigaction = k_oldact.sigaction; 843 internal_memcpy(&u_oldact->sa_mask, &k_oldact.sa_mask, 844 sizeof(__sanitizer_kernel_sigset_t)); 845 u_oldact->sa_flags = k_oldact.sa_flags; 846 #if !SANITIZER_ANDROID || !SANITIZER_MIPS32 847 u_oldact->sa_restorer = k_oldact.sa_restorer; 848 #endif 849 } 850 return result; 851 } 852 #endif // SANITIZER_LINUX 853 854 uptr internal_sigprocmask(int how, __sanitizer_sigset_t *set, 855 __sanitizer_sigset_t *oldset) { 856 #if SANITIZER_FREEBSD 857 return internal_syscall(SYSCALL(sigprocmask), how, set, oldset); 858 #else 859 __sanitizer_kernel_sigset_t *k_set = (__sanitizer_kernel_sigset_t *)set; 860 __sanitizer_kernel_sigset_t *k_oldset = (__sanitizer_kernel_sigset_t *)oldset; 861 return internal_syscall(SYSCALL(rt_sigprocmask), (uptr)how, (uptr)k_set, 862 (uptr)k_oldset, sizeof(__sanitizer_kernel_sigset_t)); 863 #endif 864 } 865 866 void internal_sigfillset(__sanitizer_sigset_t *set) { 867 internal_memset(set, 0xff, sizeof(*set)); 868 } 869 870 void internal_sigemptyset(__sanitizer_sigset_t *set) { 871 internal_memset(set, 0, sizeof(*set)); 872 } 873 874 #if SANITIZER_LINUX 875 void internal_sigdelset(__sanitizer_sigset_t *set, int signum) { 876 signum -= 1; 877 CHECK_GE(signum, 0); 878 CHECK_LT(signum, sizeof(*set) * 8); 879 __sanitizer_kernel_sigset_t *k_set = (__sanitizer_kernel_sigset_t *)set; 880 const uptr idx = signum / (sizeof(k_set->sig[0]) * 8); 881 const uptr bit = signum % (sizeof(k_set->sig[0]) * 8); 882 k_set->sig[idx] &= ~((uptr)1 << bit); 883 } 884 885 bool internal_sigismember(__sanitizer_sigset_t *set, int signum) { 886 signum -= 1; 887 CHECK_GE(signum, 0); 888 CHECK_LT(signum, sizeof(*set) * 8); 889 __sanitizer_kernel_sigset_t *k_set = (__sanitizer_kernel_sigset_t *)set; 890 const uptr idx = signum / (sizeof(k_set->sig[0]) * 8); 891 const uptr bit = signum % (sizeof(k_set->sig[0]) * 8); 892 return k_set->sig[idx] & ((uptr)1 << bit); 893 } 894 #elif SANITIZER_FREEBSD 895 void internal_sigdelset(__sanitizer_sigset_t *set, int signum) { 896 sigset_t *rset = reinterpret_cast<sigset_t *>(set); 897 sigdelset(rset, signum); 898 } 899 900 bool internal_sigismember(__sanitizer_sigset_t *set, int signum) { 901 sigset_t *rset = reinterpret_cast<sigset_t *>(set); 902 return sigismember(rset, signum); 903 } 904 #endif 905 #endif // !SANITIZER_SOLARIS 906 907 #if !SANITIZER_NETBSD 908 // ThreadLister implementation. 909 ThreadLister::ThreadLister(pid_t pid) : pid_(pid), buffer_(4096) { 910 char task_directory_path[80]; 911 internal_snprintf(task_directory_path, sizeof(task_directory_path), 912 "/proc/%d/task/", pid); 913 descriptor_ = internal_open(task_directory_path, O_RDONLY | O_DIRECTORY); 914 if (internal_iserror(descriptor_)) { 915 Report("Can't open /proc/%d/task for reading.\n", pid); 916 } 917 } 918 919 ThreadLister::Result ThreadLister::ListThreads( 920 InternalMmapVector<tid_t> *threads) { 921 if (internal_iserror(descriptor_)) 922 return Error; 923 internal_lseek(descriptor_, 0, SEEK_SET); 924 threads->clear(); 925 926 Result result = Ok; 927 for (bool first_read = true;; first_read = false) { 928 // Resize to max capacity if it was downsized by IsAlive. 929 buffer_.resize(buffer_.capacity()); 930 CHECK_GE(buffer_.size(), 4096); 931 uptr read = internal_getdents( 932 descriptor_, (struct linux_dirent *)buffer_.data(), buffer_.size()); 933 if (!read) 934 return result; 935 if (internal_iserror(read)) { 936 Report("Can't read directory entries from /proc/%d/task.\n", pid_); 937 return Error; 938 } 939 940 for (uptr begin = (uptr)buffer_.data(), end = begin + read; begin < end;) { 941 struct linux_dirent *entry = (struct linux_dirent *)begin; 942 begin += entry->d_reclen; 943 if (entry->d_ino == 1) { 944 // Inode 1 is for bad blocks and also can be a reason for early return. 945 // Should be emitted if kernel tried to output terminating thread. 946 // See proc_task_readdir implementation in Linux. 947 result = Incomplete; 948 } 949 if (entry->d_ino && *entry->d_name >= '0' && *entry->d_name <= '9') 950 threads->push_back(internal_atoll(entry->d_name)); 951 } 952 953 // Now we are going to detect short-read or early EOF. In such cases Linux 954 // can return inconsistent list with missing alive threads. 955 // Code will just remember that the list can be incomplete but it will 956 // continue reads to return as much as possible. 957 if (!first_read) { 958 // The first one was a short-read by definition. 959 result = Incomplete; 960 } else if (read > buffer_.size() - 1024) { 961 // Read was close to the buffer size. So double the size and assume the 962 // worst. 963 buffer_.resize(buffer_.size() * 2); 964 result = Incomplete; 965 } else if (!threads->empty() && !IsAlive(threads->back())) { 966 // Maybe Linux early returned from read on terminated thread (!pid_alive) 967 // and failed to restore read position. 968 // See next_tid and proc_task_instantiate in Linux. 969 result = Incomplete; 970 } 971 } 972 } 973 974 bool ThreadLister::IsAlive(int tid) { 975 // /proc/%d/task/%d/status uses same call to detect alive threads as 976 // proc_task_readdir. See task_state implementation in Linux. 977 char path[80]; 978 internal_snprintf(path, sizeof(path), "/proc/%d/task/%d/status", pid_, tid); 979 if (!ReadFileToVector(path, &buffer_) || buffer_.empty()) 980 return false; 981 buffer_.push_back(0); 982 static const char kPrefix[] = "\nPPid:"; 983 const char *field = internal_strstr(buffer_.data(), kPrefix); 984 if (!field) 985 return false; 986 field += internal_strlen(kPrefix); 987 return (int)internal_atoll(field) != 0; 988 } 989 990 ThreadLister::~ThreadLister() { 991 if (!internal_iserror(descriptor_)) 992 internal_close(descriptor_); 993 } 994 #endif 995 996 #if SANITIZER_WORDSIZE == 32 997 // Take care of unusable kernel area in top gigabyte. 998 static uptr GetKernelAreaSize() { 999 #if SANITIZER_LINUX && !SANITIZER_X32 1000 const uptr gbyte = 1UL << 30; 1001 1002 // Firstly check if there are writable segments 1003 // mapped to top gigabyte (e.g. stack). 1004 MemoryMappingLayout proc_maps(/*cache_enabled*/true); 1005 if (proc_maps.Error()) 1006 return 0; 1007 MemoryMappedSegment segment; 1008 while (proc_maps.Next(&segment)) { 1009 if ((segment.end >= 3 * gbyte) && segment.IsWritable()) return 0; 1010 } 1011 1012 #if !SANITIZER_ANDROID 1013 // Even if nothing is mapped, top Gb may still be accessible 1014 // if we are running on 64-bit kernel. 1015 // Uname may report misleading results if personality type 1016 // is modified (e.g. under schroot) so check this as well. 1017 struct utsname uname_info; 1018 int pers = personality(0xffffffffUL); 1019 if (!(pers & PER_MASK) && internal_uname(&uname_info) == 0 && 1020 internal_strstr(uname_info.machine, "64")) 1021 return 0; 1022 #endif // SANITIZER_ANDROID 1023 1024 // Top gigabyte is reserved for kernel. 1025 return gbyte; 1026 #else 1027 return 0; 1028 #endif // SANITIZER_LINUX && !SANITIZER_X32 1029 } 1030 #endif // SANITIZER_WORDSIZE == 32 1031 1032 uptr GetMaxVirtualAddress() { 1033 #if SANITIZER_NETBSD && defined(__x86_64__) 1034 return 0x7f7ffffff000ULL; // (0x00007f8000000000 - PAGE_SIZE) 1035 #elif SANITIZER_WORDSIZE == 64 1036 # if defined(__powerpc64__) || defined(__aarch64__) 1037 // On PowerPC64 we have two different address space layouts: 44- and 46-bit. 1038 // We somehow need to figure out which one we are using now and choose 1039 // one of 0x00000fffffffffffUL and 0x00003fffffffffffUL. 1040 // Note that with 'ulimit -s unlimited' the stack is moved away from the top 1041 // of the address space, so simply checking the stack address is not enough. 1042 // This should (does) work for both PowerPC64 Endian modes. 1043 // Similarly, aarch64 has multiple address space layouts: 39, 42 and 47-bit. 1044 return (1ULL << (MostSignificantSetBitIndex(GET_CURRENT_FRAME()) + 1)) - 1; 1045 #elif SANITIZER_RISCV64 1046 return (1ULL << 38) - 1; 1047 # elif defined(__mips64) 1048 return (1ULL << 40) - 1; // 0x000000ffffffffffUL; 1049 # elif defined(__s390x__) 1050 return (1ULL << 53) - 1; // 0x001fffffffffffffUL; 1051 #elif defined(__sparc__) 1052 return ~(uptr)0; 1053 # else 1054 return (1ULL << 47) - 1; // 0x00007fffffffffffUL; 1055 # endif 1056 #else // SANITIZER_WORDSIZE == 32 1057 # if defined(__s390__) 1058 return (1ULL << 31) - 1; // 0x7fffffff; 1059 # else 1060 return (1ULL << 32) - 1; // 0xffffffff; 1061 # endif 1062 #endif // SANITIZER_WORDSIZE 1063 } 1064 1065 uptr GetMaxUserVirtualAddress() { 1066 uptr addr = GetMaxVirtualAddress(); 1067 #if SANITIZER_WORDSIZE == 32 && !defined(__s390__) 1068 if (!common_flags()->full_address_space) 1069 addr -= GetKernelAreaSize(); 1070 CHECK_LT(reinterpret_cast<uptr>(&addr), addr); 1071 #endif 1072 return addr; 1073 } 1074 1075 #if !SANITIZER_ANDROID 1076 uptr GetPageSize() { 1077 #if SANITIZER_LINUX && (defined(__x86_64__) || defined(__i386__)) && \ 1078 defined(EXEC_PAGESIZE) 1079 return EXEC_PAGESIZE; 1080 #elif SANITIZER_FREEBSD || SANITIZER_NETBSD 1081 // Use sysctl as sysconf can trigger interceptors internally. 1082 int pz = 0; 1083 uptr pzl = sizeof(pz); 1084 int mib[2] = {CTL_HW, HW_PAGESIZE}; 1085 int rv = internal_sysctl(mib, 2, &pz, &pzl, nullptr, 0); 1086 CHECK_EQ(rv, 0); 1087 return (uptr)pz; 1088 #elif SANITIZER_USE_GETAUXVAL 1089 return getauxval(AT_PAGESZ); 1090 #else 1091 return sysconf(_SC_PAGESIZE); // EXEC_PAGESIZE may not be trustworthy. 1092 #endif 1093 } 1094 #endif // !SANITIZER_ANDROID 1095 1096 uptr ReadBinaryName(/*out*/char *buf, uptr buf_len) { 1097 #if SANITIZER_SOLARIS 1098 const char *default_module_name = getexecname(); 1099 CHECK_NE(default_module_name, NULL); 1100 return internal_snprintf(buf, buf_len, "%s", default_module_name); 1101 #else 1102 #if SANITIZER_FREEBSD || SANITIZER_NETBSD 1103 #if SANITIZER_FREEBSD 1104 const int Mib[4] = {CTL_KERN, KERN_PROC, KERN_PROC_PATHNAME, -1}; 1105 #else 1106 const int Mib[4] = {CTL_KERN, KERN_PROC_ARGS, -1, KERN_PROC_PATHNAME}; 1107 #endif 1108 const char *default_module_name = "kern.proc.pathname"; 1109 uptr Size = buf_len; 1110 bool IsErr = 1111 (internal_sysctl(Mib, ARRAY_SIZE(Mib), buf, &Size, NULL, 0) != 0); 1112 int readlink_error = IsErr ? errno : 0; 1113 uptr module_name_len = Size; 1114 #else 1115 const char *default_module_name = "/proc/self/exe"; 1116 uptr module_name_len = internal_readlink( 1117 default_module_name, buf, buf_len); 1118 int readlink_error; 1119 bool IsErr = internal_iserror(module_name_len, &readlink_error); 1120 #endif // SANITIZER_SOLARIS 1121 if (IsErr) { 1122 // We can't read binary name for some reason, assume it's unknown. 1123 Report("WARNING: reading executable name failed with errno %d, " 1124 "some stack frames may not be symbolized\n", readlink_error); 1125 module_name_len = internal_snprintf(buf, buf_len, "%s", 1126 default_module_name); 1127 CHECK_LT(module_name_len, buf_len); 1128 } 1129 return module_name_len; 1130 #endif 1131 } 1132 1133 uptr ReadLongProcessName(/*out*/ char *buf, uptr buf_len) { 1134 #if SANITIZER_LINUX 1135 char *tmpbuf; 1136 uptr tmpsize; 1137 uptr tmplen; 1138 if (ReadFileToBuffer("/proc/self/cmdline", &tmpbuf, &tmpsize, &tmplen, 1139 1024 * 1024)) { 1140 internal_strncpy(buf, tmpbuf, buf_len); 1141 UnmapOrDie(tmpbuf, tmpsize); 1142 return internal_strlen(buf); 1143 } 1144 #endif 1145 return ReadBinaryName(buf, buf_len); 1146 } 1147 1148 // Match full names of the form /path/to/base_name{-,.}* 1149 bool LibraryNameIs(const char *full_name, const char *base_name) { 1150 const char *name = full_name; 1151 // Strip path. 1152 while (*name != '\0') name++; 1153 while (name > full_name && *name != '/') name--; 1154 if (*name == '/') name++; 1155 uptr base_name_length = internal_strlen(base_name); 1156 if (internal_strncmp(name, base_name, base_name_length)) return false; 1157 return (name[base_name_length] == '-' || name[base_name_length] == '.'); 1158 } 1159 1160 #if !SANITIZER_ANDROID 1161 // Call cb for each region mapped by map. 1162 void ForEachMappedRegion(link_map *map, void (*cb)(const void *, uptr)) { 1163 CHECK_NE(map, nullptr); 1164 #if !SANITIZER_FREEBSD 1165 typedef ElfW(Phdr) Elf_Phdr; 1166 typedef ElfW(Ehdr) Elf_Ehdr; 1167 #endif // !SANITIZER_FREEBSD 1168 char *base = (char *)map->l_addr; 1169 Elf_Ehdr *ehdr = (Elf_Ehdr *)base; 1170 char *phdrs = base + ehdr->e_phoff; 1171 char *phdrs_end = phdrs + ehdr->e_phnum * ehdr->e_phentsize; 1172 1173 // Find the segment with the minimum base so we can "relocate" the p_vaddr 1174 // fields. Typically ET_DYN objects (DSOs) have base of zero and ET_EXEC 1175 // objects have a non-zero base. 1176 uptr preferred_base = (uptr)-1; 1177 for (char *iter = phdrs; iter != phdrs_end; iter += ehdr->e_phentsize) { 1178 Elf_Phdr *phdr = (Elf_Phdr *)iter; 1179 if (phdr->p_type == PT_LOAD && preferred_base > (uptr)phdr->p_vaddr) 1180 preferred_base = (uptr)phdr->p_vaddr; 1181 } 1182 1183 // Compute the delta from the real base to get a relocation delta. 1184 sptr delta = (uptr)base - preferred_base; 1185 // Now we can figure out what the loader really mapped. 1186 for (char *iter = phdrs; iter != phdrs_end; iter += ehdr->e_phentsize) { 1187 Elf_Phdr *phdr = (Elf_Phdr *)iter; 1188 if (phdr->p_type == PT_LOAD) { 1189 uptr seg_start = phdr->p_vaddr + delta; 1190 uptr seg_end = seg_start + phdr->p_memsz; 1191 // None of these values are aligned. We consider the ragged edges of the 1192 // load command as defined, since they are mapped from the file. 1193 seg_start = RoundDownTo(seg_start, GetPageSizeCached()); 1194 seg_end = RoundUpTo(seg_end, GetPageSizeCached()); 1195 cb((void *)seg_start, seg_end - seg_start); 1196 } 1197 } 1198 } 1199 #endif 1200 1201 #if SANITIZER_LINUX 1202 #if defined(__x86_64__) 1203 // We cannot use glibc's clone wrapper, because it messes with the child 1204 // task's TLS. It writes the PID and TID of the child task to its thread 1205 // descriptor, but in our case the child task shares the thread descriptor with 1206 // the parent (because we don't know how to allocate a new thread 1207 // descriptor to keep glibc happy). So the stock version of clone(), when 1208 // used with CLONE_VM, would end up corrupting the parent's thread descriptor. 1209 uptr internal_clone(int (*fn)(void *), void *child_stack, int flags, void *arg, 1210 int *parent_tidptr, void *newtls, int *child_tidptr) { 1211 long long res; 1212 if (!fn || !child_stack) 1213 return -EINVAL; 1214 CHECK_EQ(0, (uptr)child_stack % 16); 1215 child_stack = (char *)child_stack - 2 * sizeof(unsigned long long); 1216 ((unsigned long long *)child_stack)[0] = (uptr)fn; 1217 ((unsigned long long *)child_stack)[1] = (uptr)arg; 1218 register void *r8 __asm__("r8") = newtls; 1219 register int *r10 __asm__("r10") = child_tidptr; 1220 __asm__ __volatile__( 1221 /* %rax = syscall(%rax = SYSCALL(clone), 1222 * %rdi = flags, 1223 * %rsi = child_stack, 1224 * %rdx = parent_tidptr, 1225 * %r8 = new_tls, 1226 * %r10 = child_tidptr) 1227 */ 1228 "syscall\n" 1229 1230 /* if (%rax != 0) 1231 * return; 1232 */ 1233 "testq %%rax,%%rax\n" 1234 "jnz 1f\n" 1235 1236 /* In the child. Terminate unwind chain. */ 1237 // XXX: We should also terminate the CFI unwind chain 1238 // here. Unfortunately clang 3.2 doesn't support the 1239 // necessary CFI directives, so we skip that part. 1240 "xorq %%rbp,%%rbp\n" 1241 1242 /* Call "fn(arg)". */ 1243 "popq %%rax\n" 1244 "popq %%rdi\n" 1245 "call *%%rax\n" 1246 1247 /* Call _exit(%rax). */ 1248 "movq %%rax,%%rdi\n" 1249 "movq %2,%%rax\n" 1250 "syscall\n" 1251 1252 /* Return to parent. */ 1253 "1:\n" 1254 : "=a" (res) 1255 : "a"(SYSCALL(clone)), "i"(SYSCALL(exit)), 1256 "S"(child_stack), 1257 "D"(flags), 1258 "d"(parent_tidptr), 1259 "r"(r8), 1260 "r"(r10) 1261 : "memory", "r11", "rcx"); 1262 return res; 1263 } 1264 #elif defined(__mips__) 1265 uptr internal_clone(int (*fn)(void *), void *child_stack, int flags, void *arg, 1266 int *parent_tidptr, void *newtls, int *child_tidptr) { 1267 long long res; 1268 if (!fn || !child_stack) 1269 return -EINVAL; 1270 CHECK_EQ(0, (uptr)child_stack % 16); 1271 child_stack = (char *)child_stack - 2 * sizeof(unsigned long long); 1272 ((unsigned long long *)child_stack)[0] = (uptr)fn; 1273 ((unsigned long long *)child_stack)[1] = (uptr)arg; 1274 register void *a3 __asm__("$7") = newtls; 1275 register int *a4 __asm__("$8") = child_tidptr; 1276 // We don't have proper CFI directives here because it requires alot of code 1277 // for very marginal benefits. 1278 __asm__ __volatile__( 1279 /* $v0 = syscall($v0 = __NR_clone, 1280 * $a0 = flags, 1281 * $a1 = child_stack, 1282 * $a2 = parent_tidptr, 1283 * $a3 = new_tls, 1284 * $a4 = child_tidptr) 1285 */ 1286 ".cprestore 16;\n" 1287 "move $4,%1;\n" 1288 "move $5,%2;\n" 1289 "move $6,%3;\n" 1290 "move $7,%4;\n" 1291 /* Store the fifth argument on stack 1292 * if we are using 32-bit abi. 1293 */ 1294 #if SANITIZER_WORDSIZE == 32 1295 "lw %5,16($29);\n" 1296 #else 1297 "move $8,%5;\n" 1298 #endif 1299 "li $2,%6;\n" 1300 "syscall;\n" 1301 1302 /* if ($v0 != 0) 1303 * return; 1304 */ 1305 "bnez $2,1f;\n" 1306 1307 /* Call "fn(arg)". */ 1308 #if SANITIZER_WORDSIZE == 32 1309 #ifdef __BIG_ENDIAN__ 1310 "lw $25,4($29);\n" 1311 "lw $4,12($29);\n" 1312 #else 1313 "lw $25,0($29);\n" 1314 "lw $4,8($29);\n" 1315 #endif 1316 #else 1317 "ld $25,0($29);\n" 1318 "ld $4,8($29);\n" 1319 #endif 1320 "jal $25;\n" 1321 1322 /* Call _exit($v0). */ 1323 "move $4,$2;\n" 1324 "li $2,%7;\n" 1325 "syscall;\n" 1326 1327 /* Return to parent. */ 1328 "1:\n" 1329 : "=r" (res) 1330 : "r"(flags), 1331 "r"(child_stack), 1332 "r"(parent_tidptr), 1333 "r"(a3), 1334 "r"(a4), 1335 "i"(__NR_clone), 1336 "i"(__NR_exit) 1337 : "memory", "$29" ); 1338 return res; 1339 } 1340 #elif SANITIZER_RISCV64 1341 uptr internal_clone(int (*fn)(void *), void *child_stack, int flags, void *arg, 1342 int *parent_tidptr, void *newtls, int *child_tidptr) { 1343 if (!fn || !child_stack) 1344 return -EINVAL; 1345 1346 CHECK_EQ(0, (uptr)child_stack % 16); 1347 1348 register int res __asm__("a0"); 1349 register int __flags __asm__("a0") = flags; 1350 register void *__stack __asm__("a1") = child_stack; 1351 register int *__ptid __asm__("a2") = parent_tidptr; 1352 register void *__tls __asm__("a3") = newtls; 1353 register int *__ctid __asm__("a4") = child_tidptr; 1354 register int (*__fn)(void *) __asm__("a5") = fn; 1355 register void *__arg __asm__("a6") = arg; 1356 register int nr_clone __asm__("a7") = __NR_clone; 1357 1358 __asm__ __volatile__( 1359 "ecall\n" 1360 1361 /* if (a0 != 0) 1362 * return a0; 1363 */ 1364 "bnez a0, 1f\n" 1365 1366 // In the child, now. Call "fn(arg)". 1367 "mv a0, a6\n" 1368 "jalr a5\n" 1369 1370 // Call _exit(a0). 1371 "addi a7, zero, %9\n" 1372 "ecall\n" 1373 "1:\n" 1374 1375 : "=r"(res) 1376 : "0"(__flags), "r"(__stack), "r"(__ptid), "r"(__tls), "r"(__ctid), 1377 "r"(__fn), "r"(__arg), "r"(nr_clone), "i"(__NR_exit) 1378 : "memory"); 1379 return res; 1380 } 1381 #elif defined(__aarch64__) 1382 uptr internal_clone(int (*fn)(void *), void *child_stack, int flags, void *arg, 1383 int *parent_tidptr, void *newtls, int *child_tidptr) { 1384 register long long res __asm__("x0"); 1385 if (!fn || !child_stack) 1386 return -EINVAL; 1387 CHECK_EQ(0, (uptr)child_stack % 16); 1388 child_stack = (char *)child_stack - 2 * sizeof(unsigned long long); 1389 ((unsigned long long *)child_stack)[0] = (uptr)fn; 1390 ((unsigned long long *)child_stack)[1] = (uptr)arg; 1391 1392 register int (*__fn)(void *) __asm__("x0") = fn; 1393 register void *__stack __asm__("x1") = child_stack; 1394 register int __flags __asm__("x2") = flags; 1395 register void *__arg __asm__("x3") = arg; 1396 register int *__ptid __asm__("x4") = parent_tidptr; 1397 register void *__tls __asm__("x5") = newtls; 1398 register int *__ctid __asm__("x6") = child_tidptr; 1399 1400 __asm__ __volatile__( 1401 "mov x0,x2\n" /* flags */ 1402 "mov x2,x4\n" /* ptid */ 1403 "mov x3,x5\n" /* tls */ 1404 "mov x4,x6\n" /* ctid */ 1405 "mov x8,%9\n" /* clone */ 1406 1407 "svc 0x0\n" 1408 1409 /* if (%r0 != 0) 1410 * return %r0; 1411 */ 1412 "cmp x0, #0\n" 1413 "bne 1f\n" 1414 1415 /* In the child, now. Call "fn(arg)". */ 1416 "ldp x1, x0, [sp], #16\n" 1417 "blr x1\n" 1418 1419 /* Call _exit(%r0). */ 1420 "mov x8, %10\n" 1421 "svc 0x0\n" 1422 "1:\n" 1423 1424 : "=r" (res) 1425 : "i"(-EINVAL), 1426 "r"(__fn), "r"(__stack), "r"(__flags), "r"(__arg), 1427 "r"(__ptid), "r"(__tls), "r"(__ctid), 1428 "i"(__NR_clone), "i"(__NR_exit) 1429 : "x30", "memory"); 1430 return res; 1431 } 1432 #elif defined(__powerpc64__) 1433 uptr internal_clone(int (*fn)(void *), void *child_stack, int flags, void *arg, 1434 int *parent_tidptr, void *newtls, int *child_tidptr) { 1435 long long res; 1436 // Stack frame structure. 1437 #if SANITIZER_PPC64V1 1438 // Back chain == 0 (SP + 112) 1439 // Frame (112 bytes): 1440 // Parameter save area (SP + 48), 8 doublewords 1441 // TOC save area (SP + 40) 1442 // Link editor doubleword (SP + 32) 1443 // Compiler doubleword (SP + 24) 1444 // LR save area (SP + 16) 1445 // CR save area (SP + 8) 1446 // Back chain (SP + 0) 1447 # define FRAME_SIZE 112 1448 # define FRAME_TOC_SAVE_OFFSET 40 1449 #elif SANITIZER_PPC64V2 1450 // Back chain == 0 (SP + 32) 1451 // Frame (32 bytes): 1452 // TOC save area (SP + 24) 1453 // LR save area (SP + 16) 1454 // CR save area (SP + 8) 1455 // Back chain (SP + 0) 1456 # define FRAME_SIZE 32 1457 # define FRAME_TOC_SAVE_OFFSET 24 1458 #else 1459 # error "Unsupported PPC64 ABI" 1460 #endif 1461 if (!fn || !child_stack) 1462 return -EINVAL; 1463 CHECK_EQ(0, (uptr)child_stack % 16); 1464 1465 register int (*__fn)(void *) __asm__("r3") = fn; 1466 register void *__cstack __asm__("r4") = child_stack; 1467 register int __flags __asm__("r5") = flags; 1468 register void *__arg __asm__("r6") = arg; 1469 register int *__ptidptr __asm__("r7") = parent_tidptr; 1470 register void *__newtls __asm__("r8") = newtls; 1471 register int *__ctidptr __asm__("r9") = child_tidptr; 1472 1473 __asm__ __volatile__( 1474 /* fn and arg are saved across the syscall */ 1475 "mr 28, %5\n\t" 1476 "mr 27, %8\n\t" 1477 1478 /* syscall 1479 r0 == __NR_clone 1480 r3 == flags 1481 r4 == child_stack 1482 r5 == parent_tidptr 1483 r6 == newtls 1484 r7 == child_tidptr */ 1485 "mr 3, %7\n\t" 1486 "mr 5, %9\n\t" 1487 "mr 6, %10\n\t" 1488 "mr 7, %11\n\t" 1489 "li 0, %3\n\t" 1490 "sc\n\t" 1491 1492 /* Test if syscall was successful */ 1493 "cmpdi cr1, 3, 0\n\t" 1494 "crandc cr1*4+eq, cr1*4+eq, cr0*4+so\n\t" 1495 "bne- cr1, 1f\n\t" 1496 1497 /* Set up stack frame */ 1498 "li 29, 0\n\t" 1499 "stdu 29, -8(1)\n\t" 1500 "stdu 1, -%12(1)\n\t" 1501 /* Do the function call */ 1502 "std 2, %13(1)\n\t" 1503 #if SANITIZER_PPC64V1 1504 "ld 0, 0(28)\n\t" 1505 "ld 2, 8(28)\n\t" 1506 "mtctr 0\n\t" 1507 #elif SANITIZER_PPC64V2 1508 "mr 12, 28\n\t" 1509 "mtctr 12\n\t" 1510 #else 1511 # error "Unsupported PPC64 ABI" 1512 #endif 1513 "mr 3, 27\n\t" 1514 "bctrl\n\t" 1515 "ld 2, %13(1)\n\t" 1516 1517 /* Call _exit(r3) */ 1518 "li 0, %4\n\t" 1519 "sc\n\t" 1520 1521 /* Return to parent */ 1522 "1:\n\t" 1523 "mr %0, 3\n\t" 1524 : "=r" (res) 1525 : "0" (-1), 1526 "i" (EINVAL), 1527 "i" (__NR_clone), 1528 "i" (__NR_exit), 1529 "r" (__fn), 1530 "r" (__cstack), 1531 "r" (__flags), 1532 "r" (__arg), 1533 "r" (__ptidptr), 1534 "r" (__newtls), 1535 "r" (__ctidptr), 1536 "i" (FRAME_SIZE), 1537 "i" (FRAME_TOC_SAVE_OFFSET) 1538 : "cr0", "cr1", "memory", "ctr", "r0", "r27", "r28", "r29"); 1539 return res; 1540 } 1541 #elif defined(__i386__) 1542 uptr internal_clone(int (*fn)(void *), void *child_stack, int flags, void *arg, 1543 int *parent_tidptr, void *newtls, int *child_tidptr) { 1544 int res; 1545 if (!fn || !child_stack) 1546 return -EINVAL; 1547 CHECK_EQ(0, (uptr)child_stack % 16); 1548 child_stack = (char *)child_stack - 7 * sizeof(unsigned int); 1549 ((unsigned int *)child_stack)[0] = (uptr)flags; 1550 ((unsigned int *)child_stack)[1] = (uptr)0; 1551 ((unsigned int *)child_stack)[2] = (uptr)fn; 1552 ((unsigned int *)child_stack)[3] = (uptr)arg; 1553 __asm__ __volatile__( 1554 /* %eax = syscall(%eax = SYSCALL(clone), 1555 * %ebx = flags, 1556 * %ecx = child_stack, 1557 * %edx = parent_tidptr, 1558 * %esi = new_tls, 1559 * %edi = child_tidptr) 1560 */ 1561 1562 /* Obtain flags */ 1563 "movl (%%ecx), %%ebx\n" 1564 /* Do the system call */ 1565 "pushl %%ebx\n" 1566 "pushl %%esi\n" 1567 "pushl %%edi\n" 1568 /* Remember the flag value. */ 1569 "movl %%ebx, (%%ecx)\n" 1570 "int $0x80\n" 1571 "popl %%edi\n" 1572 "popl %%esi\n" 1573 "popl %%ebx\n" 1574 1575 /* if (%eax != 0) 1576 * return; 1577 */ 1578 1579 "test %%eax,%%eax\n" 1580 "jnz 1f\n" 1581 1582 /* terminate the stack frame */ 1583 "xorl %%ebp,%%ebp\n" 1584 /* Call FN. */ 1585 "call *%%ebx\n" 1586 #ifdef PIC 1587 "call here\n" 1588 "here:\n" 1589 "popl %%ebx\n" 1590 "addl $_GLOBAL_OFFSET_TABLE_+[.-here], %%ebx\n" 1591 #endif 1592 /* Call exit */ 1593 "movl %%eax, %%ebx\n" 1594 "movl %2, %%eax\n" 1595 "int $0x80\n" 1596 "1:\n" 1597 : "=a" (res) 1598 : "a"(SYSCALL(clone)), "i"(SYSCALL(exit)), 1599 "c"(child_stack), 1600 "d"(parent_tidptr), 1601 "S"(newtls), 1602 "D"(child_tidptr) 1603 : "memory"); 1604 return res; 1605 } 1606 #elif defined(__arm__) 1607 uptr internal_clone(int (*fn)(void *), void *child_stack, int flags, void *arg, 1608 int *parent_tidptr, void *newtls, int *child_tidptr) { 1609 unsigned int res; 1610 if (!fn || !child_stack) 1611 return -EINVAL; 1612 child_stack = (char *)child_stack - 2 * sizeof(unsigned int); 1613 ((unsigned int *)child_stack)[0] = (uptr)fn; 1614 ((unsigned int *)child_stack)[1] = (uptr)arg; 1615 register int r0 __asm__("r0") = flags; 1616 register void *r1 __asm__("r1") = child_stack; 1617 register int *r2 __asm__("r2") = parent_tidptr; 1618 register void *r3 __asm__("r3") = newtls; 1619 register int *r4 __asm__("r4") = child_tidptr; 1620 register int r7 __asm__("r7") = __NR_clone; 1621 1622 #if __ARM_ARCH > 4 || defined (__ARM_ARCH_4T__) 1623 # define ARCH_HAS_BX 1624 #endif 1625 #if __ARM_ARCH > 4 1626 # define ARCH_HAS_BLX 1627 #endif 1628 1629 #ifdef ARCH_HAS_BX 1630 # ifdef ARCH_HAS_BLX 1631 # define BLX(R) "blx " #R "\n" 1632 # else 1633 # define BLX(R) "mov lr, pc; bx " #R "\n" 1634 # endif 1635 #else 1636 # define BLX(R) "mov lr, pc; mov pc," #R "\n" 1637 #endif 1638 1639 __asm__ __volatile__( 1640 /* %r0 = syscall(%r7 = SYSCALL(clone), 1641 * %r0 = flags, 1642 * %r1 = child_stack, 1643 * %r2 = parent_tidptr, 1644 * %r3 = new_tls, 1645 * %r4 = child_tidptr) 1646 */ 1647 1648 /* Do the system call */ 1649 "swi 0x0\n" 1650 1651 /* if (%r0 != 0) 1652 * return %r0; 1653 */ 1654 "cmp r0, #0\n" 1655 "bne 1f\n" 1656 1657 /* In the child, now. Call "fn(arg)". */ 1658 "ldr r0, [sp, #4]\n" 1659 "ldr ip, [sp], #8\n" 1660 BLX(ip) 1661 /* Call _exit(%r0). */ 1662 "mov r7, %7\n" 1663 "swi 0x0\n" 1664 "1:\n" 1665 "mov %0, r0\n" 1666 : "=r"(res) 1667 : "r"(r0), "r"(r1), "r"(r2), "r"(r3), "r"(r4), "r"(r7), 1668 "i"(__NR_exit) 1669 : "memory"); 1670 return res; 1671 } 1672 #endif 1673 #endif // SANITIZER_LINUX 1674 1675 #if SANITIZER_LINUX 1676 int internal_uname(struct utsname *buf) { 1677 return internal_syscall(SYSCALL(uname), buf); 1678 } 1679 #endif 1680 1681 #if SANITIZER_ANDROID 1682 #if __ANDROID_API__ < 21 1683 extern "C" __attribute__((weak)) int dl_iterate_phdr( 1684 int (*)(struct dl_phdr_info *, size_t, void *), void *); 1685 #endif 1686 1687 static int dl_iterate_phdr_test_cb(struct dl_phdr_info *info, size_t size, 1688 void *data) { 1689 // Any name starting with "lib" indicates a bug in L where library base names 1690 // are returned instead of paths. 1691 if (info->dlpi_name && info->dlpi_name[0] == 'l' && 1692 info->dlpi_name[1] == 'i' && info->dlpi_name[2] == 'b') { 1693 *(bool *)data = true; 1694 return 1; 1695 } 1696 return 0; 1697 } 1698 1699 static atomic_uint32_t android_api_level; 1700 1701 static AndroidApiLevel AndroidDetectApiLevelStatic() { 1702 #if __ANDROID_API__ <= 19 1703 return ANDROID_KITKAT; 1704 #elif __ANDROID_API__ <= 22 1705 return ANDROID_LOLLIPOP_MR1; 1706 #else 1707 return ANDROID_POST_LOLLIPOP; 1708 #endif 1709 } 1710 1711 static AndroidApiLevel AndroidDetectApiLevel() { 1712 if (!&dl_iterate_phdr) 1713 return ANDROID_KITKAT; // K or lower 1714 bool base_name_seen = false; 1715 dl_iterate_phdr(dl_iterate_phdr_test_cb, &base_name_seen); 1716 if (base_name_seen) 1717 return ANDROID_LOLLIPOP_MR1; // L MR1 1718 return ANDROID_POST_LOLLIPOP; // post-L 1719 // Plain L (API level 21) is completely broken wrt ASan and not very 1720 // interesting to detect. 1721 } 1722 1723 extern "C" __attribute__((weak)) void* _DYNAMIC; 1724 1725 AndroidApiLevel AndroidGetApiLevel() { 1726 AndroidApiLevel level = 1727 (AndroidApiLevel)atomic_load(&android_api_level, memory_order_relaxed); 1728 if (level) return level; 1729 level = &_DYNAMIC == nullptr ? AndroidDetectApiLevelStatic() 1730 : AndroidDetectApiLevel(); 1731 atomic_store(&android_api_level, level, memory_order_relaxed); 1732 return level; 1733 } 1734 1735 #endif 1736 1737 static HandleSignalMode GetHandleSignalModeImpl(int signum) { 1738 switch (signum) { 1739 case SIGABRT: 1740 return common_flags()->handle_abort; 1741 case SIGILL: 1742 return common_flags()->handle_sigill; 1743 case SIGTRAP: 1744 return common_flags()->handle_sigtrap; 1745 case SIGFPE: 1746 return common_flags()->handle_sigfpe; 1747 case SIGSEGV: 1748 return common_flags()->handle_segv; 1749 case SIGBUS: 1750 return common_flags()->handle_sigbus; 1751 } 1752 return kHandleSignalNo; 1753 } 1754 1755 HandleSignalMode GetHandleSignalMode(int signum) { 1756 HandleSignalMode result = GetHandleSignalModeImpl(signum); 1757 if (result == kHandleSignalYes && !common_flags()->allow_user_segv_handler) 1758 return kHandleSignalExclusive; 1759 return result; 1760 } 1761 1762 #if !SANITIZER_GO 1763 void *internal_start_thread(void *(*func)(void *arg), void *arg) { 1764 // Start the thread with signals blocked, otherwise it can steal user signals. 1765 ScopedBlockSignals block(nullptr); 1766 void *th; 1767 real_pthread_create(&th, nullptr, func, arg); 1768 return th; 1769 } 1770 1771 void internal_join_thread(void *th) { 1772 real_pthread_join(th, nullptr); 1773 } 1774 #else 1775 void *internal_start_thread(void *(*func)(void *), void *arg) { return 0; } 1776 1777 void internal_join_thread(void *th) {} 1778 #endif 1779 1780 #if defined(__aarch64__) 1781 // Android headers in the older NDK releases miss this definition. 1782 struct __sanitizer_esr_context { 1783 struct _aarch64_ctx head; 1784 uint64_t esr; 1785 }; 1786 1787 static bool Aarch64GetESR(ucontext_t *ucontext, u64 *esr) { 1788 static const u32 kEsrMagic = 0x45535201; 1789 u8 *aux = reinterpret_cast<u8 *>(ucontext->uc_mcontext.__reserved); 1790 while (true) { 1791 _aarch64_ctx *ctx = (_aarch64_ctx *)aux; 1792 if (ctx->size == 0) break; 1793 if (ctx->magic == kEsrMagic) { 1794 *esr = ((__sanitizer_esr_context *)ctx)->esr; 1795 return true; 1796 } 1797 aux += ctx->size; 1798 } 1799 return false; 1800 } 1801 #endif 1802 1803 using Context = ucontext_t; 1804 1805 SignalContext::WriteFlag SignalContext::GetWriteFlag() const { 1806 Context *ucontext = (Context *)context; 1807 #if defined(__x86_64__) || defined(__i386__) 1808 static const uptr PF_WRITE = 1U << 1; 1809 #if SANITIZER_FREEBSD 1810 uptr err = ucontext->uc_mcontext.mc_err; 1811 #elif SANITIZER_NETBSD 1812 uptr err = ucontext->uc_mcontext.__gregs[_REG_ERR]; 1813 #elif SANITIZER_SOLARIS && defined(__i386__) 1814 const int Err = 13; 1815 uptr err = ucontext->uc_mcontext.gregs[Err]; 1816 #else 1817 uptr err = ucontext->uc_mcontext.gregs[REG_ERR]; 1818 #endif // SANITIZER_FREEBSD 1819 return err & PF_WRITE ? WRITE : READ; 1820 #elif defined(__mips__) 1821 uint32_t *exception_source; 1822 uint32_t faulty_instruction; 1823 uint32_t op_code; 1824 1825 exception_source = (uint32_t *)ucontext->uc_mcontext.pc; 1826 faulty_instruction = (uint32_t)(*exception_source); 1827 1828 op_code = (faulty_instruction >> 26) & 0x3f; 1829 1830 // FIXME: Add support for FPU, microMIPS, DSP, MSA memory instructions. 1831 switch (op_code) { 1832 case 0x28: // sb 1833 case 0x29: // sh 1834 case 0x2b: // sw 1835 case 0x3f: // sd 1836 #if __mips_isa_rev < 6 1837 case 0x2c: // sdl 1838 case 0x2d: // sdr 1839 case 0x2a: // swl 1840 case 0x2e: // swr 1841 #endif 1842 return SignalContext::WRITE; 1843 1844 case 0x20: // lb 1845 case 0x24: // lbu 1846 case 0x21: // lh 1847 case 0x25: // lhu 1848 case 0x23: // lw 1849 case 0x27: // lwu 1850 case 0x37: // ld 1851 #if __mips_isa_rev < 6 1852 case 0x1a: // ldl 1853 case 0x1b: // ldr 1854 case 0x22: // lwl 1855 case 0x26: // lwr 1856 #endif 1857 return SignalContext::READ; 1858 #if __mips_isa_rev == 6 1859 case 0x3b: // pcrel 1860 op_code = (faulty_instruction >> 19) & 0x3; 1861 switch (op_code) { 1862 case 0x1: // lwpc 1863 case 0x2: // lwupc 1864 return SignalContext::READ; 1865 } 1866 #endif 1867 } 1868 return SignalContext::UNKNOWN; 1869 #elif defined(__arm__) 1870 static const uptr FSR_WRITE = 1U << 11; 1871 uptr fsr = ucontext->uc_mcontext.error_code; 1872 return fsr & FSR_WRITE ? WRITE : READ; 1873 #elif defined(__aarch64__) 1874 static const u64 ESR_ELx_WNR = 1U << 6; 1875 u64 esr; 1876 if (!Aarch64GetESR(ucontext, &esr)) return UNKNOWN; 1877 return esr & ESR_ELx_WNR ? WRITE : READ; 1878 #elif defined(__sparc__) 1879 // Decode the instruction to determine the access type. 1880 // From OpenSolaris $SRC/uts/sun4/os/trap.c (get_accesstype). 1881 #if SANITIZER_SOLARIS 1882 uptr pc = ucontext->uc_mcontext.gregs[REG_PC]; 1883 #else 1884 // Historical BSDism here. 1885 struct sigcontext *scontext = (struct sigcontext *)context; 1886 #if defined(__arch64__) 1887 uptr pc = scontext->sigc_regs.tpc; 1888 #else 1889 uptr pc = scontext->si_regs.pc; 1890 #endif 1891 #endif 1892 u32 instr = *(u32 *)pc; 1893 return (instr >> 21) & 1 ? WRITE: READ; 1894 #elif defined(__riscv) 1895 #if SANITIZER_FREEBSD 1896 unsigned long pc = ucontext->uc_mcontext.mc_gpregs.gp_sepc; 1897 #else 1898 unsigned long pc = ucontext->uc_mcontext.__gregs[REG_PC]; 1899 #endif 1900 unsigned faulty_instruction = *(uint16_t *)pc; 1901 1902 #if defined(__riscv_compressed) 1903 if ((faulty_instruction & 0x3) != 0x3) { // it's a compressed instruction 1904 // set op_bits to the instruction bits [1, 0, 15, 14, 13] 1905 unsigned op_bits = 1906 ((faulty_instruction & 0x3) << 3) | (faulty_instruction >> 13); 1907 unsigned rd = faulty_instruction & 0xF80; // bits 7-11, inclusive 1908 switch (op_bits) { 1909 case 0b10'010: // c.lwsp (rd != x0) 1910 #if __riscv_xlen == 64 1911 case 0b10'011: // c.ldsp (rd != x0) 1912 #endif 1913 return rd ? SignalContext::READ : SignalContext::UNKNOWN; 1914 case 0b00'010: // c.lw 1915 #if __riscv_flen >= 32 && __riscv_xlen == 32 1916 case 0b10'011: // c.flwsp 1917 #endif 1918 #if __riscv_flen >= 32 || __riscv_xlen == 64 1919 case 0b00'011: // c.flw / c.ld 1920 #endif 1921 #if __riscv_flen == 64 1922 case 0b00'001: // c.fld 1923 case 0b10'001: // c.fldsp 1924 #endif 1925 return SignalContext::READ; 1926 case 0b00'110: // c.sw 1927 case 0b10'110: // c.swsp 1928 #if __riscv_flen >= 32 || __riscv_xlen == 64 1929 case 0b00'111: // c.fsw / c.sd 1930 case 0b10'111: // c.fswsp / c.sdsp 1931 #endif 1932 #if __riscv_flen == 64 1933 case 0b00'101: // c.fsd 1934 case 0b10'101: // c.fsdsp 1935 #endif 1936 return SignalContext::WRITE; 1937 default: 1938 return SignalContext::UNKNOWN; 1939 } 1940 } 1941 #endif 1942 1943 unsigned opcode = faulty_instruction & 0x7f; // lower 7 bits 1944 unsigned funct3 = (faulty_instruction >> 12) & 0x7; // bits 12-14, inclusive 1945 switch (opcode) { 1946 case 0b0000011: // loads 1947 switch (funct3) { 1948 case 0b000: // lb 1949 case 0b001: // lh 1950 case 0b010: // lw 1951 #if __riscv_xlen == 64 1952 case 0b011: // ld 1953 #endif 1954 case 0b100: // lbu 1955 case 0b101: // lhu 1956 return SignalContext::READ; 1957 default: 1958 return SignalContext::UNKNOWN; 1959 } 1960 case 0b0100011: // stores 1961 switch (funct3) { 1962 case 0b000: // sb 1963 case 0b001: // sh 1964 case 0b010: // sw 1965 #if __riscv_xlen == 64 1966 case 0b011: // sd 1967 #endif 1968 return SignalContext::WRITE; 1969 default: 1970 return SignalContext::UNKNOWN; 1971 } 1972 #if __riscv_flen >= 32 1973 case 0b0000111: // floating-point loads 1974 switch (funct3) { 1975 case 0b010: // flw 1976 #if __riscv_flen == 64 1977 case 0b011: // fld 1978 #endif 1979 return SignalContext::READ; 1980 default: 1981 return SignalContext::UNKNOWN; 1982 } 1983 case 0b0100111: // floating-point stores 1984 switch (funct3) { 1985 case 0b010: // fsw 1986 #if __riscv_flen == 64 1987 case 0b011: // fsd 1988 #endif 1989 return SignalContext::WRITE; 1990 default: 1991 return SignalContext::UNKNOWN; 1992 } 1993 #endif 1994 default: 1995 return SignalContext::UNKNOWN; 1996 } 1997 #else 1998 (void)ucontext; 1999 return UNKNOWN; // FIXME: Implement. 2000 #endif 2001 } 2002 2003 bool SignalContext::IsTrueFaultingAddress() const { 2004 auto si = static_cast<const siginfo_t *>(siginfo); 2005 // SIGSEGV signals without a true fault address have si_code set to 128. 2006 return si->si_signo == SIGSEGV && si->si_code != 128; 2007 } 2008 2009 void SignalContext::DumpAllRegisters(void *context) { 2010 // FIXME: Implement this. 2011 } 2012 2013 static void GetPcSpBp(void *context, uptr *pc, uptr *sp, uptr *bp) { 2014 #if SANITIZER_NETBSD 2015 // This covers all NetBSD architectures 2016 ucontext_t *ucontext = (ucontext_t *)context; 2017 *pc = _UC_MACHINE_PC(ucontext); 2018 *bp = _UC_MACHINE_FP(ucontext); 2019 *sp = _UC_MACHINE_SP(ucontext); 2020 #elif defined(__arm__) 2021 ucontext_t *ucontext = (ucontext_t*)context; 2022 *pc = ucontext->uc_mcontext.arm_pc; 2023 *bp = ucontext->uc_mcontext.arm_fp; 2024 *sp = ucontext->uc_mcontext.arm_sp; 2025 #elif defined(__aarch64__) 2026 ucontext_t *ucontext = (ucontext_t*)context; 2027 *pc = ucontext->uc_mcontext.pc; 2028 *bp = ucontext->uc_mcontext.regs[29]; 2029 *sp = ucontext->uc_mcontext.sp; 2030 #elif defined(__hppa__) 2031 ucontext_t *ucontext = (ucontext_t*)context; 2032 *pc = ucontext->uc_mcontext.sc_iaoq[0]; 2033 /* GCC uses %r3 whenever a frame pointer is needed. */ 2034 *bp = ucontext->uc_mcontext.sc_gr[3]; 2035 *sp = ucontext->uc_mcontext.sc_gr[30]; 2036 #elif defined(__x86_64__) 2037 # if SANITIZER_FREEBSD 2038 ucontext_t *ucontext = (ucontext_t*)context; 2039 *pc = ucontext->uc_mcontext.mc_rip; 2040 *bp = ucontext->uc_mcontext.mc_rbp; 2041 *sp = ucontext->uc_mcontext.mc_rsp; 2042 # else 2043 ucontext_t *ucontext = (ucontext_t*)context; 2044 *pc = ucontext->uc_mcontext.gregs[REG_RIP]; 2045 *bp = ucontext->uc_mcontext.gregs[REG_RBP]; 2046 *sp = ucontext->uc_mcontext.gregs[REG_RSP]; 2047 # endif 2048 #elif defined(__i386__) 2049 # if SANITIZER_FREEBSD 2050 ucontext_t *ucontext = (ucontext_t*)context; 2051 *pc = ucontext->uc_mcontext.mc_eip; 2052 *bp = ucontext->uc_mcontext.mc_ebp; 2053 *sp = ucontext->uc_mcontext.mc_esp; 2054 # else 2055 ucontext_t *ucontext = (ucontext_t*)context; 2056 # if SANITIZER_SOLARIS 2057 /* Use the numeric values: the symbolic ones are undefined by llvm 2058 include/llvm/Support/Solaris.h. */ 2059 # ifndef REG_EIP 2060 # define REG_EIP 14 // REG_PC 2061 # endif 2062 # ifndef REG_EBP 2063 # define REG_EBP 6 // REG_FP 2064 # endif 2065 # ifndef REG_UESP 2066 # define REG_UESP 17 // REG_SP 2067 # endif 2068 # endif 2069 *pc = ucontext->uc_mcontext.gregs[REG_EIP]; 2070 *bp = ucontext->uc_mcontext.gregs[REG_EBP]; 2071 *sp = ucontext->uc_mcontext.gregs[REG_UESP]; 2072 # endif 2073 #elif defined(__powerpc__) || defined(__powerpc64__) 2074 ucontext_t *ucontext = (ucontext_t*)context; 2075 *pc = ucontext->uc_mcontext.regs->nip; 2076 *sp = ucontext->uc_mcontext.regs->gpr[PT_R1]; 2077 // The powerpc{,64}-linux ABIs do not specify r31 as the frame 2078 // pointer, but GCC always uses r31 when we need a frame pointer. 2079 *bp = ucontext->uc_mcontext.regs->gpr[PT_R31]; 2080 #elif defined(__sparc__) 2081 #if defined(__arch64__) || defined(__sparcv9) 2082 #define STACK_BIAS 2047 2083 #else 2084 #define STACK_BIAS 0 2085 # endif 2086 # if SANITIZER_SOLARIS 2087 ucontext_t *ucontext = (ucontext_t *)context; 2088 *pc = ucontext->uc_mcontext.gregs[REG_PC]; 2089 *sp = ucontext->uc_mcontext.gregs[REG_O6] + STACK_BIAS; 2090 #else 2091 // Historical BSDism here. 2092 struct sigcontext *scontext = (struct sigcontext *)context; 2093 #if defined(__arch64__) 2094 *pc = scontext->sigc_regs.tpc; 2095 *sp = scontext->sigc_regs.u_regs[14] + STACK_BIAS; 2096 #else 2097 *pc = scontext->si_regs.pc; 2098 *sp = scontext->si_regs.u_regs[14]; 2099 #endif 2100 # endif 2101 *bp = (uptr)((uhwptr *)*sp)[14] + STACK_BIAS; 2102 #elif defined(__mips__) 2103 ucontext_t *ucontext = (ucontext_t*)context; 2104 *pc = ucontext->uc_mcontext.pc; 2105 *bp = ucontext->uc_mcontext.gregs[30]; 2106 *sp = ucontext->uc_mcontext.gregs[29]; 2107 #elif defined(__s390__) 2108 ucontext_t *ucontext = (ucontext_t*)context; 2109 # if defined(__s390x__) 2110 *pc = ucontext->uc_mcontext.psw.addr; 2111 # else 2112 *pc = ucontext->uc_mcontext.psw.addr & 0x7fffffff; 2113 # endif 2114 *bp = ucontext->uc_mcontext.gregs[11]; 2115 *sp = ucontext->uc_mcontext.gregs[15]; 2116 #elif defined(__riscv) 2117 ucontext_t *ucontext = (ucontext_t*)context; 2118 # if SANITIZER_FREEBSD 2119 *pc = ucontext->uc_mcontext.mc_gpregs.gp_sepc; 2120 *bp = ucontext->uc_mcontext.mc_gpregs.gp_s[0]; 2121 *sp = ucontext->uc_mcontext.mc_gpregs.gp_sp; 2122 # else 2123 *pc = ucontext->uc_mcontext.__gregs[REG_PC]; 2124 *bp = ucontext->uc_mcontext.__gregs[REG_S0]; 2125 *sp = ucontext->uc_mcontext.__gregs[REG_SP]; 2126 # endif 2127 # elif defined(__hexagon__) 2128 ucontext_t *ucontext = (ucontext_t *)context; 2129 *pc = ucontext->uc_mcontext.pc; 2130 *bp = ucontext->uc_mcontext.r30; 2131 *sp = ucontext->uc_mcontext.r29; 2132 # else 2133 # error "Unsupported arch" 2134 # endif 2135 } 2136 2137 void SignalContext::InitPcSpBp() { GetPcSpBp(context, &pc, &sp, &bp); } 2138 2139 void InitializePlatformEarly() { 2140 // Do nothing. 2141 } 2142 2143 void MaybeReexec() { 2144 // No need to re-exec on Linux. 2145 } 2146 2147 void CheckASLR() { 2148 #if SANITIZER_NETBSD 2149 int mib[3]; 2150 int paxflags; 2151 uptr len = sizeof(paxflags); 2152 2153 mib[0] = CTL_PROC; 2154 mib[1] = internal_getpid(); 2155 mib[2] = PROC_PID_PAXFLAGS; 2156 2157 if (UNLIKELY(internal_sysctl(mib, 3, &paxflags, &len, NULL, 0) == -1)) { 2158 Printf("sysctl failed\n"); 2159 Die(); 2160 } 2161 2162 if (UNLIKELY(paxflags & CTL_PROC_PAXFLAGS_ASLR)) { 2163 Printf("This sanitizer is not compatible with enabled ASLR.\n" 2164 "To disable ASLR, please run \"paxctl +a %s\" and try again.\n", 2165 GetArgv()[0]); 2166 Die(); 2167 } 2168 #elif SANITIZER_PPC64V2 2169 // Disable ASLR for Linux PPC64LE. 2170 int old_personality = personality(0xffffffff); 2171 if (old_personality != -1 && (old_personality & ADDR_NO_RANDOMIZE) == 0) { 2172 VReport(1, "WARNING: Program is being run with address space layout " 2173 "randomization (ASLR) enabled which prevents the thread and " 2174 "memory sanitizers from working on powerpc64le.\n" 2175 "ASLR will be disabled and the program re-executed.\n"); 2176 CHECK_NE(personality(old_personality | ADDR_NO_RANDOMIZE), -1); 2177 ReExec(); 2178 } 2179 #elif SANITIZER_FREEBSD 2180 int aslr_status; 2181 if (UNLIKELY(procctl(P_PID, 0, PROC_ASLR_STATUS, &aslr_status) == -1)) { 2182 // We're making things less 'dramatic' here since 2183 // the cmd is not necessarily guaranteed to be here 2184 // just yet regarding FreeBSD release 2185 return; 2186 } 2187 if ((aslr_status & PROC_ASLR_ACTIVE) != 0) { 2188 VReport(1, "This sanitizer is not compatible with enabled ASLR " 2189 "and binaries compiled with PIE\n" 2190 "ASLR will be disabled and the program re-executed.\n"); 2191 int aslr_ctl = PROC_ASLR_FORCE_DISABLE; 2192 CHECK_NE(procctl(P_PID, 0, PROC_ASLR_CTL, &aslr_ctl), -1); 2193 ReExec(); 2194 } 2195 #else 2196 // Do nothing 2197 #endif 2198 } 2199 2200 void CheckMPROTECT() { 2201 #if SANITIZER_NETBSD 2202 int mib[3]; 2203 int paxflags; 2204 uptr len = sizeof(paxflags); 2205 2206 mib[0] = CTL_PROC; 2207 mib[1] = internal_getpid(); 2208 mib[2] = PROC_PID_PAXFLAGS; 2209 2210 if (UNLIKELY(internal_sysctl(mib, 3, &paxflags, &len, NULL, 0) == -1)) { 2211 Printf("sysctl failed\n"); 2212 Die(); 2213 } 2214 2215 if (UNLIKELY(paxflags & CTL_PROC_PAXFLAGS_MPROTECT)) { 2216 Printf("This sanitizer is not compatible with enabled MPROTECT\n"); 2217 Die(); 2218 } 2219 #else 2220 // Do nothing 2221 #endif 2222 } 2223 2224 void CheckNoDeepBind(const char *filename, int flag) { 2225 #ifdef RTLD_DEEPBIND 2226 if (flag & RTLD_DEEPBIND) { 2227 Report( 2228 "You are trying to dlopen a %s shared library with RTLD_DEEPBIND flag" 2229 " which is incompatible with sanitizer runtime " 2230 "(see https://github.com/google/sanitizers/issues/611 for details" 2231 "). If you want to run %s library under sanitizers please remove " 2232 "RTLD_DEEPBIND from dlopen flags.\n", 2233 filename, filename); 2234 Die(); 2235 } 2236 #endif 2237 } 2238 2239 uptr FindAvailableMemoryRange(uptr size, uptr alignment, uptr left_padding, 2240 uptr *largest_gap_found, 2241 uptr *max_occupied_addr) { 2242 UNREACHABLE("FindAvailableMemoryRange is not available"); 2243 return 0; 2244 } 2245 2246 bool GetRandom(void *buffer, uptr length, bool blocking) { 2247 if (!buffer || !length || length > 256) 2248 return false; 2249 #if SANITIZER_USE_GETENTROPY 2250 uptr rnd = getentropy(buffer, length); 2251 int rverrno = 0; 2252 if (internal_iserror(rnd, &rverrno) && rverrno == EFAULT) 2253 return false; 2254 else if (rnd == 0) 2255 return true; 2256 #endif // SANITIZER_USE_GETENTROPY 2257 2258 #if SANITIZER_USE_GETRANDOM 2259 static atomic_uint8_t skip_getrandom_syscall; 2260 if (!atomic_load_relaxed(&skip_getrandom_syscall)) { 2261 // Up to 256 bytes, getrandom will not be interrupted. 2262 uptr res = internal_syscall(SYSCALL(getrandom), buffer, length, 2263 blocking ? 0 : GRND_NONBLOCK); 2264 int rverrno = 0; 2265 if (internal_iserror(res, &rverrno) && rverrno == ENOSYS) 2266 atomic_store_relaxed(&skip_getrandom_syscall, 1); 2267 else if (res == length) 2268 return true; 2269 } 2270 #endif // SANITIZER_USE_GETRANDOM 2271 // Up to 256 bytes, a read off /dev/urandom will not be interrupted. 2272 // blocking is moot here, O_NONBLOCK has no effect when opening /dev/urandom. 2273 uptr fd = internal_open("/dev/urandom", O_RDONLY); 2274 if (internal_iserror(fd)) 2275 return false; 2276 uptr res = internal_read(fd, buffer, length); 2277 if (internal_iserror(res)) 2278 return false; 2279 internal_close(fd); 2280 return true; 2281 } 2282 2283 } // namespace __sanitizer 2284 2285 #endif 2286