1 //===-- sanitizer_posix.cc ------------------------------------------------===//
3 // This file is distributed under the University of Illinois Open Source
4 // License. See LICENSE.TXT for details.
6 //===----------------------------------------------------------------------===//
8 // This file is shared between AddressSanitizer and ThreadSanitizer
9 // run-time libraries and implements POSIX-specific functions from
11 //===----------------------------------------------------------------------===//
13 #include "sanitizer_platform.h"
17 #include "sanitizer_common.h"
18 #include "sanitizer_libc.h"
19 #include "sanitizer_posix.h"
20 #include "sanitizer_procmaps.h"
21 #include "sanitizer_stacktrace.h"
28 #include <sys/utsname.h>
31 #if SANITIZER_LINUX && !SANITIZER_ANDROID
32 #include <sys/personality.h>
36 // The MAP_NORESERVE define has been removed in FreeBSD 11.x, and even before
37 // that, it was never implemented. So just define it to zero.
39 #define MAP_NORESERVE 0
42 namespace __sanitizer
{
44 // ------------- sanitizer_common.h
45 uptr
GetMmapGranularity() {
49 #if SANITIZER_WORDSIZE == 32
50 // Take care of unusable kernel area in top gigabyte.
51 static uptr
GetKernelAreaSize() {
52 #if SANITIZER_LINUX && !SANITIZER_X32
53 const uptr gbyte
= 1UL << 30;
55 // Firstly check if there are writable segments
56 // mapped to top gigabyte (e.g. stack).
57 MemoryMappingLayout
proc_maps(/*cache_enabled*/true);
59 while (proc_maps
.Next(/*start*/nullptr, &end
,
60 /*offset*/nullptr, /*filename*/nullptr,
61 /*filename_size*/0, &prot
)) {
62 if ((end
>= 3 * gbyte
)
63 && (prot
& MemoryMappingLayout::kProtectionWrite
) != 0)
67 #if !SANITIZER_ANDROID
68 // Even if nothing is mapped, top Gb may still be accessible
69 // if we are running on 64-bit kernel.
70 // Uname may report misleading results if personality type
71 // is modified (e.g. under schroot) so check this as well.
72 struct utsname uname_info
;
73 int pers
= personality(0xffffffffUL
);
74 if (!(pers
& PER_MASK
)
75 && uname(&uname_info
) == 0
76 && internal_strstr(uname_info
.machine
, "64"))
78 #endif // SANITIZER_ANDROID
80 // Top gigabyte is reserved for kernel.
84 #endif // SANITIZER_LINUX && !SANITIZER_X32
86 #endif // SANITIZER_WORDSIZE == 32
88 uptr
GetMaxVirtualAddress() {
89 #if SANITIZER_WORDSIZE == 64
90 # if defined(__powerpc64__) || defined(__aarch64__)
91 // On PowerPC64 we have two different address space layouts: 44- and 46-bit.
92 // We somehow need to figure out which one we are using now and choose
93 // one of 0x00000fffffffffffUL and 0x00003fffffffffffUL.
94 // Note that with 'ulimit -s unlimited' the stack is moved away from the top
95 // of the address space, so simply checking the stack address is not enough.
96 // This should (does) work for both PowerPC64 Endian modes.
97 // Similarly, aarch64 has multiple address space layouts: 39, 42 and 47-bit.
98 return (1ULL << (MostSignificantSetBitIndex(GET_CURRENT_FRAME()) + 1)) - 1;
99 # elif defined(__mips64)
100 return (1ULL << 40) - 1; // 0x000000ffffffffffUL;
102 return (1ULL << 47) - 1; // 0x00007fffffffffffUL;
104 #else // SANITIZER_WORDSIZE == 32
105 uptr res
= (1ULL << 32) - 1; // 0xffffffff;
106 if (!common_flags()->full_address_space
)
107 res
-= GetKernelAreaSize();
108 CHECK_LT(reinterpret_cast<uptr
>(&res
), res
);
110 #endif // SANITIZER_WORDSIZE
113 void *MmapOrDie(uptr size
, const char *mem_type
) {
114 size
= RoundUpTo(size
, GetPageSizeCached());
115 uptr res
= internal_mmap(nullptr, size
,
116 PROT_READ
| PROT_WRITE
,
117 MAP_PRIVATE
| MAP_ANON
, -1, 0);
119 if (internal_iserror(res
, &reserrno
))
120 ReportMmapFailureAndDie(size
, mem_type
, "allocate", reserrno
);
121 IncreaseTotalMmap(size
);
125 void UnmapOrDie(void *addr
, uptr size
) {
126 if (!addr
|| !size
) return;
127 uptr res
= internal_munmap(addr
, size
);
128 if (internal_iserror(res
)) {
129 Report("ERROR: %s failed to deallocate 0x%zx (%zd) bytes at address %p\n",
130 SanitizerToolName
, size
, size
, addr
);
131 CHECK("unable to unmap" && 0);
133 DecreaseTotalMmap(size
);
136 void *MmapNoReserveOrDie(uptr size
, const char *mem_type
) {
137 uptr PageSize
= GetPageSizeCached();
138 uptr p
= internal_mmap(nullptr,
139 RoundUpTo(size
, PageSize
),
140 PROT_READ
| PROT_WRITE
,
141 MAP_PRIVATE
| MAP_ANON
| MAP_NORESERVE
,
144 if (internal_iserror(p
, &reserrno
))
145 ReportMmapFailureAndDie(size
, mem_type
, "allocate noreserve", reserrno
);
146 IncreaseTotalMmap(size
);
150 void *MmapFixedOrDie(uptr fixed_addr
, uptr size
) {
151 uptr PageSize
= GetPageSizeCached();
152 uptr p
= internal_mmap((void*)(fixed_addr
& ~(PageSize
- 1)),
153 RoundUpTo(size
, PageSize
),
154 PROT_READ
| PROT_WRITE
,
155 MAP_PRIVATE
| MAP_ANON
| MAP_FIXED
,
158 if (internal_iserror(p
, &reserrno
)) {
160 internal_snprintf(mem_type
, sizeof(mem_type
), "memory at address 0x%zx",
162 ReportMmapFailureAndDie(size
, mem_type
, "allocate", reserrno
);
164 IncreaseTotalMmap(size
);
168 bool MprotectNoAccess(uptr addr
, uptr size
) {
169 return 0 == internal_mprotect((void*)addr
, size
, PROT_NONE
);
172 fd_t
OpenFile(const char *filename
, FileAccessMode mode
, error_t
*errno_p
) {
175 case RdOnly
: flags
= O_RDONLY
; break;
176 case WrOnly
: flags
= O_WRONLY
| O_CREAT
; break;
177 case RdWr
: flags
= O_RDWR
| O_CREAT
; break;
179 fd_t res
= internal_open(filename
, flags
, 0660);
180 if (internal_iserror(res
, errno_p
))
185 void CloseFile(fd_t fd
) {
189 bool ReadFromFile(fd_t fd
, void *buff
, uptr buff_size
, uptr
*bytes_read
,
191 uptr res
= internal_read(fd
, buff
, buff_size
);
192 if (internal_iserror(res
, error_p
))
199 bool WriteToFile(fd_t fd
, const void *buff
, uptr buff_size
, uptr
*bytes_written
,
201 uptr res
= internal_write(fd
, buff
, buff_size
);
202 if (internal_iserror(res
, error_p
))
205 *bytes_written
= res
;
209 bool RenameFile(const char *oldpath
, const char *newpath
, error_t
*error_p
) {
210 uptr res
= internal_rename(oldpath
, newpath
);
211 return !internal_iserror(res
, error_p
);
214 void *MapFileToMemory(const char *file_name
, uptr
*buff_size
) {
215 fd_t fd
= OpenFile(file_name
, RdOnly
);
216 CHECK(fd
!= kInvalidFd
);
217 uptr fsize
= internal_filesize(fd
);
218 CHECK_NE(fsize
, (uptr
)-1);
220 *buff_size
= RoundUpTo(fsize
, GetPageSizeCached());
221 uptr map
= internal_mmap(nullptr, *buff_size
, PROT_READ
, MAP_PRIVATE
, fd
, 0);
222 return internal_iserror(map
) ? nullptr : (void *)map
;
225 void *MapWritableFileToMemory(void *addr
, uptr size
, fd_t fd
, OFF_T offset
) {
226 uptr flags
= MAP_SHARED
;
227 if (addr
) flags
|= MAP_FIXED
;
228 uptr p
= internal_mmap(addr
, size
, PROT_READ
| PROT_WRITE
, flags
, fd
, offset
);
230 if (internal_iserror(p
, &mmap_errno
)) {
231 Printf("could not map writable file (%d, %lld, %zu): %zd, errno: %d\n",
232 fd
, (long long)offset
, size
, p
, mmap_errno
);
238 static inline bool IntervalsAreSeparate(uptr start1
, uptr end1
,
239 uptr start2
, uptr end2
) {
240 CHECK(start1
<= end1
);
241 CHECK(start2
<= end2
);
242 return (end1
< start2
) || (end2
< start1
);
245 // FIXME: this is thread-unsafe, but should not cause problems most of the time.
246 // When the shadow is mapped only a single thread usually exists (plus maybe
247 // several worker threads on Mac, which aren't expected to map big chunks of
249 bool MemoryRangeIsAvailable(uptr range_start
, uptr range_end
) {
250 MemoryMappingLayout
proc_maps(/*cache_enabled*/true);
252 while (proc_maps
.Next(&start
, &end
,
253 /*offset*/nullptr, /*filename*/nullptr,
254 /*filename_size*/0, /*protection*/nullptr)) {
255 if (start
== end
) continue; // Empty range.
257 if (!IntervalsAreSeparate(start
, end
- 1, range_start
, range_end
))
263 void DumpProcessMap() {
264 MemoryMappingLayout
proc_maps(/*cache_enabled*/true);
266 const sptr kBufSize
= 4095;
267 char *filename
= (char*)MmapOrDie(kBufSize
, __func__
);
268 Report("Process memory map follows:\n");
269 while (proc_maps
.Next(&start
, &end
, /* file_offset */nullptr,
270 filename
, kBufSize
, /* protection */nullptr)) {
271 Printf("\t%p-%p\t%s\n", (void*)start
, (void*)end
, filename
);
273 Report("End of process memory map.\n");
274 UnmapOrDie(filename
, kBufSize
);
277 const char *GetPwd() {
278 return GetEnv("PWD");
281 bool IsPathSeparator(const char c
) {
285 bool IsAbsolutePath(const char *path
) {
286 return path
!= nullptr && IsPathSeparator(path
[0]);
289 void ReportFile::Write(const char *buffer
, uptr length
) {
291 static const char *kWriteError
=
292 "ReportFile::Write() can't output requested buffer!\n";
294 if (length
!= internal_write(fd
, buffer
, length
)) {
295 internal_write(fd
, kWriteError
, internal_strlen(kWriteError
));
300 bool GetCodeRangeForFile(const char *module
, uptr
*start
, uptr
*end
) {
301 uptr s
, e
, off
, prot
;
302 InternalScopedString
buff(kMaxPathLength
);
303 MemoryMappingLayout
proc_maps(/*cache_enabled*/false);
304 while (proc_maps
.Next(&s
, &e
, &off
, buff
.data(), buff
.size(), &prot
)) {
305 if ((prot
& MemoryMappingLayout::kProtectionExecute
) != 0
306 && internal_strcmp(module
, buff
.data()) == 0) {
315 SignalContext
SignalContext::Create(void *siginfo
, void *context
) {
316 uptr addr
= (uptr
)((siginfo_t
*)siginfo
)->si_addr
;
318 GetPcSpBp(context
, &pc
, &sp
, &bp
);
319 return SignalContext(context
, addr
, pc
, sp
, bp
);
322 // This function check is the built VMA matches the runtime one for
323 // architectures with multiple VMA size.
324 void CheckVMASize() {
326 static const unsigned kBuiltVMA
= SANITIZER_AARCH64_VMA
;
327 unsigned maxRuntimeVMA
=
328 (MostSignificantSetBitIndex(GET_CURRENT_FRAME()) + 1);
329 if (kBuiltVMA
!= maxRuntimeVMA
) {
330 Printf("WARNING: %s runtime VMA is not the one built for.\n",
332 Printf("\tBuilt VMA: %u bits\n", kBuiltVMA
);
333 Printf("\tRuntime VMA: %u bits\n", maxRuntimeVMA
);
338 } // namespace __sanitizer
340 #endif // SANITIZER_POSIX