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Issue 23903008: Drop OS::IsOutsideAllocatedSpace() and move the tracking to the MemoryAllocator. (Closed) Base URL: https://v8.googlecode.com/svn/branches/bleeding_edge
Patch Set: Fix invalid calculation of committed memory boundaries. Created 7 years, 3 months ago
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1 // Copyright 2012 the V8 project authors. All rights reserved. 1 // Copyright 2012 the V8 project authors. All rights reserved.
2 // Redistribution and use in source and binary forms, with or without 2 // Redistribution and use in source and binary forms, with or without
3 // modification, are permitted provided that the following conditions are 3 // modification, are permitted provided that the following conditions are
4 // met: 4 // met:
5 // 5 //
6 // * Redistributions of source code must retain the above copyright 6 // * Redistributions of source code must retain the above copyright
7 // notice, this list of conditions and the following disclaimer. 7 // notice, this list of conditions and the following disclaimer.
8 // * Redistributions in binary form must reproduce the above 8 // * Redistributions in binary form must reproduce the above
9 // copyright notice, this list of conditions and the following 9 // copyright notice, this list of conditions and the following
10 // disclaimer in the documentation and/or other materials provided 10 // disclaimer in the documentation and/or other materials provided
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69 #include "platform-posix.h" 69 #include "platform-posix.h"
70 #include "platform.h" 70 #include "platform.h"
71 #include "v8threads.h" 71 #include "v8threads.h"
72 #include "vm-state-inl.h" 72 #include "vm-state-inl.h"
73 73
74 74
75 namespace v8 { 75 namespace v8 {
76 namespace internal { 76 namespace internal {
77 77
78 78
79 static Mutex* limit_mutex = NULL;
80
81
82 #ifdef __arm__ 79 #ifdef __arm__
83 80
84 bool OS::ArmUsingHardFloat() { 81 bool OS::ArmUsingHardFloat() {
85 // GCC versions 4.6 and above define __ARM_PCS or __ARM_PCS_VFP to specify 82 // GCC versions 4.6 and above define __ARM_PCS or __ARM_PCS_VFP to specify
86 // the Floating Point ABI used (PCS stands for Procedure Call Standard). 83 // the Floating Point ABI used (PCS stands for Procedure Call Standard).
87 // We use these as well as a couple of other defines to statically determine 84 // We use these as well as a couple of other defines to statically determine
88 // what FP ABI used. 85 // what FP ABI used.
89 // GCC versions 4.4 and below don't support hard-fp. 86 // GCC versions 4.4 and below don't support hard-fp.
90 // GCC versions 4.5 may support hard-fp without defining __ARM_PCS or 87 // GCC versions 4.5 may support hard-fp without defining __ARM_PCS or
91 // __ARM_PCS_VFP. 88 // __ARM_PCS_VFP.
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133 130
134 double OS::LocalTimeOffset() { 131 double OS::LocalTimeOffset() {
135 time_t tv = time(NULL); 132 time_t tv = time(NULL);
136 struct tm* t = localtime(&tv); 133 struct tm* t = localtime(&tv);
137 // tm_gmtoff includes any daylight savings offset, so subtract it. 134 // tm_gmtoff includes any daylight savings offset, so subtract it.
138 return static_cast<double>(t->tm_gmtoff * msPerSecond - 135 return static_cast<double>(t->tm_gmtoff * msPerSecond -
139 (t->tm_isdst > 0 ? 3600 * msPerSecond : 0)); 136 (t->tm_isdst > 0 ? 3600 * msPerSecond : 0));
140 } 137 }
141 138
142 139
143 // We keep the lowest and highest addresses mapped as a quick way of
144 // determining that pointers are outside the heap (used mostly in assertions
145 // and verification). The estimate is conservative, i.e., not all addresses in
146 // 'allocated' space are actually allocated to our heap. The range is
147 // [lowest, highest), inclusive on the low and and exclusive on the high end.
148 static void* lowest_ever_allocated = reinterpret_cast<void*>(-1);
149 static void* highest_ever_allocated = reinterpret_cast<void*>(0);
150
151
152 static void UpdateAllocatedSpaceLimits(void* address, int size) {
153 ASSERT(limit_mutex != NULL);
154 LockGuard<Mutex> lock_guard(limit_mutex);
155
156 lowest_ever_allocated = Min(lowest_ever_allocated, address);
157 highest_ever_allocated =
158 Max(highest_ever_allocated,
159 reinterpret_cast<void*>(reinterpret_cast<char*>(address) + size));
160 }
161
162
163 bool OS::IsOutsideAllocatedSpace(void* address) {
164 return address < lowest_ever_allocated || address >= highest_ever_allocated;
165 }
166
167
168 void* OS::Allocate(const size_t requested, 140 void* OS::Allocate(const size_t requested,
169 size_t* allocated, 141 size_t* allocated,
170 bool is_executable) { 142 bool is_executable) {
171 const size_t msize = RoundUp(requested, AllocateAlignment()); 143 const size_t msize = RoundUp(requested, AllocateAlignment());
172 int prot = PROT_READ | PROT_WRITE | (is_executable ? PROT_EXEC : 0); 144 int prot = PROT_READ | PROT_WRITE | (is_executable ? PROT_EXEC : 0);
173 void* addr = OS::GetRandomMmapAddr(); 145 void* addr = OS::GetRandomMmapAddr();
174 void* mbase = mmap(addr, msize, prot, MAP_PRIVATE | MAP_ANONYMOUS, -1, 0); 146 void* mbase = mmap(addr, msize, prot, MAP_PRIVATE | MAP_ANONYMOUS, -1, 0);
175 if (mbase == MAP_FAILED) { 147 if (mbase == MAP_FAILED) {
176 LOG(i::Isolate::Current(), 148 LOG(i::Isolate::Current(),
177 StringEvent("OS::Allocate", "mmap failed")); 149 StringEvent("OS::Allocate", "mmap failed"));
178 return NULL; 150 return NULL;
179 } 151 }
180 *allocated = msize; 152 *allocated = msize;
181 UpdateAllocatedSpaceLimits(mbase, msize);
182 return mbase; 153 return mbase;
183 } 154 }
184 155
185 156
186 void OS::DumpBacktrace() { 157 void OS::DumpBacktrace() {
187 // backtrace is a glibc extension. 158 // backtrace is a glibc extension.
188 #if defined(__GLIBC__) && !defined(__UCLIBC__) 159 #if defined(__GLIBC__) && !defined(__UCLIBC__)
189 POSIXBacktraceHelper<backtrace, backtrace_symbols>::DumpBacktrace(); 160 POSIXBacktraceHelper<backtrace, backtrace_symbols>::DumpBacktrace();
190 #endif 161 #endif
191 } 162 }
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465 #endif 436 #endif
466 if (MAP_FAILED == mmap(base, 437 if (MAP_FAILED == mmap(base,
467 size, 438 size,
468 prot, 439 prot,
469 MAP_PRIVATE | MAP_ANONYMOUS | MAP_FIXED, 440 MAP_PRIVATE | MAP_ANONYMOUS | MAP_FIXED,
470 kMmapFd, 441 kMmapFd,
471 kMmapFdOffset)) { 442 kMmapFdOffset)) {
472 return false; 443 return false;
473 } 444 }
474 445
475 UpdateAllocatedSpaceLimits(base, size);
476 return true; 446 return true;
477 } 447 }
478 448
479 449
480 bool VirtualMemory::UncommitRegion(void* base, size_t size) { 450 bool VirtualMemory::UncommitRegion(void* base, size_t size) {
481 return mmap(base, 451 return mmap(base,
482 size, 452 size,
483 PROT_NONE, 453 PROT_NONE,
484 MAP_PRIVATE | MAP_ANONYMOUS | MAP_NORESERVE | MAP_FIXED, 454 MAP_PRIVATE | MAP_ANONYMOUS | MAP_NORESERVE | MAP_FIXED,
485 kMmapFd, 455 kMmapFd,
486 kMmapFdOffset) != MAP_FAILED; 456 kMmapFdOffset) != MAP_FAILED;
487 } 457 }
488 458
489 459
490 bool VirtualMemory::ReleaseRegion(void* base, size_t size) { 460 bool VirtualMemory::ReleaseRegion(void* base, size_t size) {
491 return munmap(base, size) == 0; 461 return munmap(base, size) == 0;
492 } 462 }
493 463
494 464
495 bool VirtualMemory::HasLazyCommits() { 465 bool VirtualMemory::HasLazyCommits() {
496 return true; 466 return true;
497 } 467 }
498 468
499 469
500 void OS::SetUp() { 470 void OS::SetUp() {
501 // Seed the random number generator. We preserve microsecond resolution. 471 // Seed the random number generator. We preserve microsecond resolution.
502 uint64_t seed = static_cast<uint64_t>(TimeCurrentMillis()) ^ (getpid() << 16); 472 uint64_t seed = static_cast<uint64_t>(TimeCurrentMillis()) ^ (getpid() << 16);
503 srandom(static_cast<unsigned int>(seed)); 473 srandom(static_cast<unsigned int>(seed));
504 limit_mutex = new Mutex();
505 } 474 }
506 475
507 476
508 void OS::TearDown() {
509 delete limit_mutex;
510 }
511
512
513 } } // namespace v8::internal 477 } } // namespace v8::internal
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