xref: /freebsd/contrib/llvm-project/compiler-rt/lib/sanitizer_common/sanitizer_linux.cpp (revision 5e801ac66d24704442eba426ed13c3effb8a34e7)
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