src/share/vm/memory/allocation.hpp

Fri, 12 Oct 2012 11:31:27 -0700

author
collins
date
Fri, 12 Oct 2012 11:31:27 -0700
changeset 4168
5876f980ea19
parent 4165
fb19af007ffc
child 4183
7b5885dadbdc
permissions
-rw-r--r--

Merge

duke@435 1 /*
zgu@3900 2 * Copyright (c) 1997, 2012, Oracle and/or its affiliates. All rights reserved.
duke@435 3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
duke@435 4 *
duke@435 5 * This code is free software; you can redistribute it and/or modify it
duke@435 6 * under the terms of the GNU General Public License version 2 only, as
duke@435 7 * published by the Free Software Foundation.
duke@435 8 *
duke@435 9 * This code is distributed in the hope that it will be useful, but WITHOUT
duke@435 10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
duke@435 11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
duke@435 12 * version 2 for more details (a copy is included in the LICENSE file that
duke@435 13 * accompanied this code).
duke@435 14 *
duke@435 15 * You should have received a copy of the GNU General Public License version
duke@435 16 * 2 along with this work; if not, write to the Free Software Foundation,
duke@435 17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
duke@435 18 *
trims@1907 19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
trims@1907 20 * or visit www.oracle.com if you need additional information or have any
trims@1907 21 * questions.
duke@435 22 *
duke@435 23 */
duke@435 24
stefank@2314 25 #ifndef SHARE_VM_MEMORY_ALLOCATION_HPP
stefank@2314 26 #define SHARE_VM_MEMORY_ALLOCATION_HPP
stefank@2314 27
stefank@2314 28 #include "runtime/globals.hpp"
stefank@2314 29 #include "utilities/globalDefinitions.hpp"
jprovino@4165 30 #include "utilities/macros.hpp"
stefank@2314 31 #ifdef COMPILER1
stefank@2314 32 #include "c1/c1_globals.hpp"
stefank@2314 33 #endif
stefank@2314 34 #ifdef COMPILER2
stefank@2314 35 #include "opto/c2_globals.hpp"
stefank@2314 36 #endif
stefank@2314 37
zgu@2834 38 #include <new>
zgu@2834 39
duke@435 40 #define ARENA_ALIGN_M1 (((size_t)(ARENA_AMALLOC_ALIGNMENT)) - 1)
duke@435 41 #define ARENA_ALIGN_MASK (~((size_t)ARENA_ALIGN_M1))
duke@435 42 #define ARENA_ALIGN(x) ((((size_t)(x)) + ARENA_ALIGN_M1) & ARENA_ALIGN_MASK)
duke@435 43
zgu@3900 44
zgu@3900 45 // noinline attribute
zgu@3900 46 #ifdef _WINDOWS
zgu@3900 47 #define _NOINLINE_ __declspec(noinline)
zgu@3900 48 #else
zgu@3900 49 #if __GNUC__ < 3 // gcc 2.x does not support noinline attribute
zgu@3900 50 #define _NOINLINE_
zgu@3900 51 #else
zgu@3900 52 #define _NOINLINE_ __attribute__ ((noinline))
zgu@3900 53 #endif
zgu@3900 54 #endif
zgu@3900 55
duke@435 56 // All classes in the virtual machine must be subclassed
duke@435 57 // by one of the following allocation classes:
duke@435 58 //
duke@435 59 // For objects allocated in the resource area (see resourceArea.hpp).
duke@435 60 // - ResourceObj
duke@435 61 //
duke@435 62 // For objects allocated in the C-heap (managed by: free & malloc).
duke@435 63 // - CHeapObj
duke@435 64 //
duke@435 65 // For objects allocated on the stack.
duke@435 66 // - StackObj
duke@435 67 //
duke@435 68 // For embedded objects.
duke@435 69 // - ValueObj
duke@435 70 //
duke@435 71 // For classes used as name spaces.
duke@435 72 // - AllStatic
duke@435 73 //
coleenp@4037 74 // For classes in Metaspace (class data)
coleenp@4037 75 // - MetaspaceObj
coleenp@4037 76 //
duke@435 77 // The printable subclasses are used for debugging and define virtual
duke@435 78 // member functions for printing. Classes that avoid allocating the
duke@435 79 // vtbl entries in the objects should therefore not be the printable
duke@435 80 // subclasses.
duke@435 81 //
duke@435 82 // The following macros and function should be used to allocate memory
duke@435 83 // directly in the resource area or in the C-heap:
duke@435 84 //
duke@435 85 // NEW_RESOURCE_ARRAY(type,size)
duke@435 86 // NEW_RESOURCE_OBJ(type)
duke@435 87 // NEW_C_HEAP_ARRAY(type,size)
duke@435 88 // NEW_C_HEAP_OBJ(type)
duke@435 89 // char* AllocateHeap(size_t size, const char* name);
duke@435 90 // void FreeHeap(void* p);
duke@435 91 //
duke@435 92 // C-heap allocation can be traced using +PrintHeapAllocation.
duke@435 93 // malloc and free should therefore never called directly.
duke@435 94
duke@435 95 // Base class for objects allocated in the C-heap.
duke@435 96
duke@435 97 // In non product mode we introduce a super class for all allocation classes
duke@435 98 // that supports printing.
duke@435 99 // We avoid the superclass in product mode since some C++ compilers add
duke@435 100 // a word overhead for empty super classes.
duke@435 101
duke@435 102 #ifdef PRODUCT
duke@435 103 #define ALLOCATION_SUPER_CLASS_SPEC
duke@435 104 #else
duke@435 105 #define ALLOCATION_SUPER_CLASS_SPEC : public AllocatedObj
duke@435 106 class AllocatedObj {
duke@435 107 public:
duke@435 108 // Printing support
duke@435 109 void print() const;
duke@435 110 void print_value() const;
duke@435 111
duke@435 112 virtual void print_on(outputStream* st) const;
duke@435 113 virtual void print_value_on(outputStream* st) const;
duke@435 114 };
duke@435 115 #endif
duke@435 116
zgu@3900 117
zgu@3900 118 /*
zgu@3900 119 * MemoryType bitmap layout:
zgu@3900 120 * | 16 15 14 13 12 11 10 09 | 08 07 06 05 | 04 03 02 01 |
zgu@3900 121 * | memory type | object | reserved |
zgu@3900 122 * | | type | |
zgu@3900 123 */
zgu@3900 124 enum MemoryType {
zgu@3900 125 // Memory type by sub systems. It occupies lower byte.
zgu@3900 126 mtNone = 0x0000, // undefined
zgu@3900 127 mtClass = 0x0100, // memory class for Java classes
zgu@3900 128 mtThread = 0x0200, // memory for thread objects
zgu@3900 129 mtThreadStack = 0x0300,
zgu@3900 130 mtCode = 0x0400, // memory for generated code
zgu@3900 131 mtGC = 0x0500, // memory for GC
zgu@3900 132 mtCompiler = 0x0600, // memory for compiler
zgu@3900 133 mtInternal = 0x0700, // memory used by VM, but does not belong to
zgu@3900 134 // any of above categories, and not used for
zgu@3900 135 // native memory tracking
zgu@3900 136 mtOther = 0x0800, // memory not used by VM
zgu@3900 137 mtSymbol = 0x0900, // symbol
zgu@3900 138 mtNMT = 0x0A00, // memory used by native memory tracking
zgu@3900 139 mtChunk = 0x0B00, // chunk that holds content of arenas
zgu@3900 140 mtJavaHeap = 0x0C00, // Java heap
zgu@3900 141 mtDontTrack = 0x0D00, // memory we donot or cannot track
zgu@3900 142 mt_number_of_types = 0x000C, // number of memory types
zgu@3900 143 mt_masks = 0x7F00,
zgu@3900 144
zgu@3900 145 // object type mask
zgu@3900 146 otArena = 0x0010, // an arena object
zgu@3900 147 otNMTRecorder = 0x0020, // memory recorder object
zgu@3900 148 ot_masks = 0x00F0
zgu@3900 149 };
zgu@3900 150
zgu@3900 151 #define IS_MEMORY_TYPE(flags, type) ((flags & mt_masks) == type)
zgu@3900 152 #define HAS_VALID_MEMORY_TYPE(flags)((flags & mt_masks) != mtNone)
zgu@3900 153 #define FLAGS_TO_MEMORY_TYPE(flags) (flags & mt_masks)
zgu@3900 154
zgu@3900 155 #define IS_ARENA_OBJ(flags) ((flags & ot_masks) == otArena)
zgu@3900 156 #define IS_NMT_RECORDER(flags) ((flags & ot_masks) == otNMTRecorder)
zgu@3900 157 #define NMT_CAN_TRACK(flags) (!IS_NMT_RECORDER(flags) && !(IS_MEMORY_TYPE(flags, mtDontTrack)))
zgu@3900 158
zgu@3900 159 typedef unsigned short MEMFLAGS;
zgu@3900 160
jprovino@4165 161 #if INCLUDE_NMT
jprovino@4165 162
zgu@3900 163 extern bool NMT_track_callsite;
zgu@3900 164
jprovino@4165 165 #else
jprovino@4165 166
jprovino@4165 167 const bool NMT_track_callsite = false;
jprovino@4165 168
jprovino@4165 169 #endif // INCLUDE_NMT
jprovino@4165 170
zgu@3900 171 // debug build does not inline
zgu@3900 172 #if defined(_DEBUG_)
zgu@3900 173 #define CURRENT_PC (NMT_track_callsite ? os::get_caller_pc(1) : 0)
zgu@3900 174 #define CALLER_PC (NMT_track_callsite ? os::get_caller_pc(2) : 0)
zgu@3900 175 #define CALLER_CALLER_PC (NMT_track_callsite ? os::get_caller_pc(3) : 0)
zgu@3900 176 #else
zgu@3900 177 #define CURRENT_PC (NMT_track_callsite? os::get_caller_pc(0) : 0)
zgu@3900 178 #define CALLER_PC (NMT_track_callsite ? os::get_caller_pc(1) : 0)
zgu@3900 179 #define CALLER_CALLER_PC (NMT_track_callsite ? os::get_caller_pc(2) : 0)
zgu@3900 180 #endif
zgu@3900 181
zgu@3900 182
zgu@3900 183
zgu@3900 184 template <MEMFLAGS F> class CHeapObj ALLOCATION_SUPER_CLASS_SPEC {
duke@435 185 public:
zgu@3900 186 _NOINLINE_ void* operator new(size_t size, address caller_pc = 0);
zgu@3900 187 _NOINLINE_ void* operator new (size_t size, const std::nothrow_t& nothrow_constant,
zgu@3900 188 address caller_pc = 0);
zgu@3900 189
duke@435 190 void operator delete(void* p);
duke@435 191 };
duke@435 192
duke@435 193 // Base class for objects allocated on the stack only.
duke@435 194 // Calling new or delete will result in fatal error.
duke@435 195
duke@435 196 class StackObj ALLOCATION_SUPER_CLASS_SPEC {
duke@435 197 public:
duke@435 198 void* operator new(size_t size);
duke@435 199 void operator delete(void* p);
duke@435 200 };
duke@435 201
duke@435 202 // Base class for objects used as value objects.
duke@435 203 // Calling new or delete will result in fatal error.
duke@435 204 //
duke@435 205 // Portability note: Certain compilers (e.g. gcc) will
duke@435 206 // always make classes bigger if it has a superclass, even
duke@435 207 // if the superclass does not have any virtual methods or
duke@435 208 // instance fields. The HotSpot implementation relies on this
duke@435 209 // not to happen. So never make a ValueObj class a direct subclass
duke@435 210 // of this object, but use the VALUE_OBJ_CLASS_SPEC class instead, e.g.,
duke@435 211 // like this:
duke@435 212 //
duke@435 213 // class A VALUE_OBJ_CLASS_SPEC {
duke@435 214 // ...
duke@435 215 // }
duke@435 216 //
duke@435 217 // With gcc and possible other compilers the VALUE_OBJ_CLASS_SPEC can
duke@435 218 // be defined as a an empty string "".
duke@435 219 //
duke@435 220 class _ValueObj {
duke@435 221 public:
duke@435 222 void* operator new(size_t size);
duke@435 223 void operator delete(void* p);
duke@435 224 };
duke@435 225
coleenp@4037 226
coleenp@4037 227 // Base class for objects stored in Metaspace.
coleenp@4037 228 // Calling delete will result in fatal error.
coleenp@4037 229 //
coleenp@4037 230 // Do not inherit from something with a vptr because this class does
coleenp@4037 231 // not introduce one. This class is used to allocate both shared read-only
coleenp@4037 232 // and shared read-write classes.
coleenp@4037 233 //
coleenp@4037 234
coleenp@4037 235 class ClassLoaderData;
coleenp@4037 236
coleenp@4037 237 class MetaspaceObj {
coleenp@4037 238 public:
coleenp@4037 239 bool is_metadata() const;
coleenp@4037 240 bool is_shared() const;
coleenp@4037 241 void print_address_on(outputStream* st) const; // nonvirtual address printing
coleenp@4037 242
coleenp@4037 243 void* operator new(size_t size, ClassLoaderData* loader_data,
coleenp@4037 244 size_t word_size, bool read_only, Thread* thread);
coleenp@4037 245 // can't use TRAPS from this header file.
coleenp@4037 246 void operator delete(void* p) { ShouldNotCallThis(); }
coleenp@4037 247 };
coleenp@4037 248
duke@435 249 // Base class for classes that constitute name spaces.
duke@435 250
duke@435 251 class AllStatic {
duke@435 252 public:
duke@435 253 AllStatic() { ShouldNotCallThis(); }
duke@435 254 ~AllStatic() { ShouldNotCallThis(); }
duke@435 255 };
duke@435 256
duke@435 257
duke@435 258 //------------------------------Chunk------------------------------------------
duke@435 259 // Linked list of raw memory chunks
zgu@3900 260 class Chunk: CHeapObj<mtChunk> {
never@3138 261 friend class VMStructs;
never@3138 262
duke@435 263 protected:
duke@435 264 Chunk* _next; // Next Chunk in list
duke@435 265 const size_t _len; // Size of this Chunk
duke@435 266 public:
duke@435 267 void* operator new(size_t size, size_t length);
duke@435 268 void operator delete(void* p);
duke@435 269 Chunk(size_t length);
duke@435 270
duke@435 271 enum {
duke@435 272 // default sizes; make them slightly smaller than 2**k to guard against
duke@435 273 // buddy-system style malloc implementations
duke@435 274 #ifdef _LP64
duke@435 275 slack = 40, // [RGV] Not sure if this is right, but make it
duke@435 276 // a multiple of 8.
duke@435 277 #else
duke@435 278 slack = 20, // suspected sizeof(Chunk) + internal malloc headers
duke@435 279 #endif
duke@435 280
duke@435 281 init_size = 1*K - slack, // Size of first chunk
duke@435 282 medium_size= 10*K - slack, // Size of medium-sized chunk
duke@435 283 size = 32*K - slack, // Default size of an Arena chunk (following the first)
duke@435 284 non_pool_size = init_size + 32 // An initial size which is not one of above
duke@435 285 };
duke@435 286
duke@435 287 void chop(); // Chop this chunk
duke@435 288 void next_chop(); // Chop next chunk
duke@435 289 static size_t aligned_overhead_size(void) { return ARENA_ALIGN(sizeof(Chunk)); }
coleenp@4037 290 static size_t aligned_overhead_size(size_t byte_size) { return ARENA_ALIGN(byte_size); }
duke@435 291
duke@435 292 size_t length() const { return _len; }
duke@435 293 Chunk* next() const { return _next; }
duke@435 294 void set_next(Chunk* n) { _next = n; }
duke@435 295 // Boundaries of data area (possibly unused)
duke@435 296 char* bottom() const { return ((char*) this) + aligned_overhead_size(); }
duke@435 297 char* top() const { return bottom() + _len; }
duke@435 298 bool contains(char* p) const { return bottom() <= p && p <= top(); }
duke@435 299
duke@435 300 // Start the chunk_pool cleaner task
duke@435 301 static void start_chunk_pool_cleaner_task();
bobv@2036 302
bobv@2036 303 static void clean_chunk_pool();
duke@435 304 };
duke@435 305
duke@435 306 //------------------------------Arena------------------------------------------
duke@435 307 // Fast allocation of memory
zgu@3900 308 class Arena : public CHeapObj<mtNone|otArena> {
duke@435 309 protected:
duke@435 310 friend class ResourceMark;
duke@435 311 friend class HandleMark;
duke@435 312 friend class NoHandleMark;
never@3138 313 friend class VMStructs;
never@3138 314
duke@435 315 Chunk *_first; // First chunk
duke@435 316 Chunk *_chunk; // current chunk
duke@435 317 char *_hwm, *_max; // High water mark and max in current chunk
duke@435 318 void* grow(size_t x); // Get a new Chunk of at least size x
zgu@3900 319 size_t _size_in_bytes; // Size of arena (used for native memory tracking)
zgu@3900 320
kvn@2557 321 NOT_PRODUCT(static julong _bytes_allocated;) // total #bytes allocated since start
duke@435 322 friend class AllocStats;
duke@435 323 debug_only(void* malloc(size_t size);)
duke@435 324 debug_only(void* internal_malloc_4(size_t x);)
kvn@2557 325 NOT_PRODUCT(void inc_bytes_allocated(size_t x);)
kamg@2589 326
kamg@2589 327 void signal_out_of_memory(size_t request, const char* whence) const;
kamg@2589 328
kamg@2589 329 void check_for_overflow(size_t request, const char* whence) const {
kamg@2589 330 if (UINTPTR_MAX - request < (uintptr_t)_hwm) {
kamg@2589 331 signal_out_of_memory(request, whence);
kamg@2589 332 }
kamg@2589 333 }
kamg@2589 334
duke@435 335 public:
duke@435 336 Arena();
duke@435 337 Arena(size_t init_size);
duke@435 338 Arena(Arena *old);
duke@435 339 ~Arena();
duke@435 340 void destruct_contents();
duke@435 341 char* hwm() const { return _hwm; }
duke@435 342
zgu@3900 343 // new operators
zgu@3900 344 void* operator new (size_t size);
zgu@3900 345 void* operator new (size_t size, const std::nothrow_t& nothrow_constant);
zgu@3900 346
zgu@3900 347 // dynamic memory type tagging
zgu@3900 348 void* operator new(size_t size, MEMFLAGS flags);
zgu@3900 349 void* operator new(size_t size, const std::nothrow_t& nothrow_constant, MEMFLAGS flags);
zgu@3900 350 void operator delete(void* p);
zgu@3900 351
duke@435 352 // Fast allocate in the arena. Common case is: pointer test + increment.
duke@435 353 void* Amalloc(size_t x) {
duke@435 354 assert(is_power_of_2(ARENA_AMALLOC_ALIGNMENT) , "should be a power of 2");
duke@435 355 x = ARENA_ALIGN(x);
duke@435 356 debug_only(if (UseMallocOnly) return malloc(x);)
kamg@2589 357 check_for_overflow(x, "Arena::Amalloc");
kvn@2557 358 NOT_PRODUCT(inc_bytes_allocated(x);)
duke@435 359 if (_hwm + x > _max) {
duke@435 360 return grow(x);
duke@435 361 } else {
duke@435 362 char *old = _hwm;
duke@435 363 _hwm += x;
duke@435 364 return old;
duke@435 365 }
duke@435 366 }
duke@435 367 // Further assume size is padded out to words
duke@435 368 void *Amalloc_4(size_t x) {
duke@435 369 assert( (x&(sizeof(char*)-1)) == 0, "misaligned size" );
duke@435 370 debug_only(if (UseMallocOnly) return malloc(x);)
kamg@2589 371 check_for_overflow(x, "Arena::Amalloc_4");
kvn@2557 372 NOT_PRODUCT(inc_bytes_allocated(x);)
duke@435 373 if (_hwm + x > _max) {
duke@435 374 return grow(x);
duke@435 375 } else {
duke@435 376 char *old = _hwm;
duke@435 377 _hwm += x;
duke@435 378 return old;
duke@435 379 }
duke@435 380 }
duke@435 381
duke@435 382 // Allocate with 'double' alignment. It is 8 bytes on sparc.
duke@435 383 // In other cases Amalloc_D() should be the same as Amalloc_4().
duke@435 384 void* Amalloc_D(size_t x) {
duke@435 385 assert( (x&(sizeof(char*)-1)) == 0, "misaligned size" );
duke@435 386 debug_only(if (UseMallocOnly) return malloc(x);)
duke@435 387 #if defined(SPARC) && !defined(_LP64)
duke@435 388 #define DALIGN_M1 7
duke@435 389 size_t delta = (((size_t)_hwm + DALIGN_M1) & ~DALIGN_M1) - (size_t)_hwm;
duke@435 390 x += delta;
duke@435 391 #endif
kamg@2589 392 check_for_overflow(x, "Arena::Amalloc_D");
kvn@2557 393 NOT_PRODUCT(inc_bytes_allocated(x);)
duke@435 394 if (_hwm + x > _max) {
duke@435 395 return grow(x); // grow() returns a result aligned >= 8 bytes.
duke@435 396 } else {
duke@435 397 char *old = _hwm;
duke@435 398 _hwm += x;
duke@435 399 #if defined(SPARC) && !defined(_LP64)
duke@435 400 old += delta; // align to 8-bytes
duke@435 401 #endif
duke@435 402 return old;
duke@435 403 }
duke@435 404 }
duke@435 405
duke@435 406 // Fast delete in area. Common case is: NOP (except for storage reclaimed)
duke@435 407 void Afree(void *ptr, size_t size) {
duke@435 408 #ifdef ASSERT
duke@435 409 if (ZapResourceArea) memset(ptr, badResourceValue, size); // zap freed memory
duke@435 410 if (UseMallocOnly) return;
duke@435 411 #endif
duke@435 412 if (((char*)ptr) + size == _hwm) _hwm = (char*)ptr;
duke@435 413 }
duke@435 414
duke@435 415 void *Arealloc( void *old_ptr, size_t old_size, size_t new_size );
duke@435 416
duke@435 417 // Move contents of this arena into an empty arena
duke@435 418 Arena *move_contents(Arena *empty_arena);
duke@435 419
duke@435 420 // Determine if pointer belongs to this Arena or not.
duke@435 421 bool contains( const void *ptr ) const;
duke@435 422
duke@435 423 // Total of all chunks in use (not thread-safe)
duke@435 424 size_t used() const;
duke@435 425
duke@435 426 // Total # of bytes used
zgu@3900 427 size_t size_in_bytes() const { return _size_in_bytes; };
zgu@3900 428 void set_size_in_bytes(size_t size);
zgu@3900 429
duke@435 430 static void free_malloced_objects(Chunk* chunk, char* hwm, char* max, char* hwm2) PRODUCT_RETURN;
duke@435 431 static void free_all(char** start, char** end) PRODUCT_RETURN;
duke@435 432
zgu@3900 433 // how many arena instances
zgu@3900 434 NOT_PRODUCT(static volatile jint _instance_count;)
duke@435 435 private:
duke@435 436 // Reset this Arena to empty, access will trigger grow if necessary
duke@435 437 void reset(void) {
duke@435 438 _first = _chunk = NULL;
duke@435 439 _hwm = _max = NULL;
zgu@3900 440 set_size_in_bytes(0);
duke@435 441 }
duke@435 442 };
duke@435 443
duke@435 444 // One of the following macros must be used when allocating
duke@435 445 // an array or object from an arena
jcoomes@2191 446 #define NEW_ARENA_ARRAY(arena, type, size) \
jcoomes@2191 447 (type*) (arena)->Amalloc((size) * sizeof(type))
duke@435 448
jcoomes@2191 449 #define REALLOC_ARENA_ARRAY(arena, type, old, old_size, new_size) \
jcoomes@2191 450 (type*) (arena)->Arealloc((char*)(old), (old_size) * sizeof(type), \
jcoomes@2191 451 (new_size) * sizeof(type) )
duke@435 452
jcoomes@2191 453 #define FREE_ARENA_ARRAY(arena, type, old, size) \
jcoomes@2191 454 (arena)->Afree((char*)(old), (size) * sizeof(type))
duke@435 455
jcoomes@2191 456 #define NEW_ARENA_OBJ(arena, type) \
duke@435 457 NEW_ARENA_ARRAY(arena, type, 1)
duke@435 458
duke@435 459
duke@435 460 //%note allocation_1
duke@435 461 extern char* resource_allocate_bytes(size_t size);
duke@435 462 extern char* resource_allocate_bytes(Thread* thread, size_t size);
duke@435 463 extern char* resource_reallocate_bytes( char *old, size_t old_size, size_t new_size);
duke@435 464 extern void resource_free_bytes( char *old, size_t size );
duke@435 465
duke@435 466 //----------------------------------------------------------------------
duke@435 467 // Base class for objects allocated in the resource area per default.
duke@435 468 // Optionally, objects may be allocated on the C heap with
duke@435 469 // new(ResourceObj::C_HEAP) Foo(...) or in an Arena with new (&arena)
duke@435 470 // ResourceObj's can be allocated within other objects, but don't use
duke@435 471 // new or delete (allocation_type is unknown). If new is used to allocate,
duke@435 472 // use delete to deallocate.
duke@435 473 class ResourceObj ALLOCATION_SUPER_CLASS_SPEC {
duke@435 474 public:
kvn@2040 475 enum allocation_type { STACK_OR_EMBEDDED = 0, RESOURCE_AREA, C_HEAP, ARENA, allocation_mask = 0x3 };
kvn@2043 476 static void set_allocation_type(address res, allocation_type type) NOT_DEBUG_RETURN;
duke@435 477 #ifdef ASSERT
duke@435 478 private:
kvn@2040 479 // When this object is allocated on stack the new() operator is not
kvn@2040 480 // called but garbage on stack may look like a valid allocation_type.
kvn@2040 481 // Store negated 'this' pointer when new() is called to distinguish cases.
kvn@2357 482 // Use second array's element for verification value to distinguish garbage.
kvn@2357 483 uintptr_t _allocation_t[2];
kvn@2357 484 bool is_type_set() const;
duke@435 485 public:
kvn@2043 486 allocation_type get_allocation_type() const;
kvn@2043 487 bool allocated_on_stack() const { return get_allocation_type() == STACK_OR_EMBEDDED; }
kvn@2043 488 bool allocated_on_res_area() const { return get_allocation_type() == RESOURCE_AREA; }
kvn@2043 489 bool allocated_on_C_heap() const { return get_allocation_type() == C_HEAP; }
kvn@2043 490 bool allocated_on_arena() const { return get_allocation_type() == ARENA; }
kvn@2040 491 ResourceObj(); // default construtor
kvn@2040 492 ResourceObj(const ResourceObj& r); // default copy construtor
kvn@2040 493 ResourceObj& operator=(const ResourceObj& r); // default copy assignment
kvn@2040 494 ~ResourceObj();
duke@435 495 #endif // ASSERT
duke@435 496
duke@435 497 public:
zgu@3900 498 void* operator new(size_t size, allocation_type type, MEMFLAGS flags);
duke@435 499 void* operator new(size_t size, Arena *arena) {
duke@435 500 address res = (address)arena->Amalloc(size);
kvn@2040 501 DEBUG_ONLY(set_allocation_type(res, ARENA);)
duke@435 502 return res;
duke@435 503 }
duke@435 504 void* operator new(size_t size) {
duke@435 505 address res = (address)resource_allocate_bytes(size);
kvn@2040 506 DEBUG_ONLY(set_allocation_type(res, RESOURCE_AREA);)
duke@435 507 return res;
duke@435 508 }
duke@435 509 void operator delete(void* p);
duke@435 510 };
duke@435 511
duke@435 512 // One of the following macros must be used when allocating an array
duke@435 513 // or object to determine whether it should reside in the C heap on in
duke@435 514 // the resource area.
duke@435 515
duke@435 516 #define NEW_RESOURCE_ARRAY(type, size)\
duke@435 517 (type*) resource_allocate_bytes((size) * sizeof(type))
duke@435 518
duke@435 519 #define NEW_RESOURCE_ARRAY_IN_THREAD(thread, type, size)\
duke@435 520 (type*) resource_allocate_bytes(thread, (size) * sizeof(type))
duke@435 521
duke@435 522 #define REALLOC_RESOURCE_ARRAY(type, old, old_size, new_size)\
duke@435 523 (type*) resource_reallocate_bytes((char*)(old), (old_size) * sizeof(type), (new_size) * sizeof(type) )
duke@435 524
duke@435 525 #define FREE_RESOURCE_ARRAY(type, old, size)\
duke@435 526 resource_free_bytes((char*)(old), (size) * sizeof(type))
duke@435 527
duke@435 528 #define FREE_FAST(old)\
duke@435 529 /* nop */
duke@435 530
duke@435 531 #define NEW_RESOURCE_OBJ(type)\
duke@435 532 NEW_RESOURCE_ARRAY(type, 1)
duke@435 533
zgu@3900 534 #define NEW_C_HEAP_ARRAY(type, size, memflags)\
zgu@3900 535 (type*) (AllocateHeap((size) * sizeof(type), memflags))
duke@435 536
zgu@3900 537 #define REALLOC_C_HEAP_ARRAY(type, old, size, memflags)\
zgu@3900 538 (type*) (ReallocateHeap((char*)old, (size) * sizeof(type), memflags))
duke@435 539
zgu@3900 540 #define FREE_C_HEAP_ARRAY(type,old,memflags) \
zgu@3900 541 FreeHeap((char*)(old), memflags)
duke@435 542
zgu@3900 543 #define NEW_C_HEAP_OBJ(type, memflags)\
zgu@3900 544 NEW_C_HEAP_ARRAY(type, 1, memflags)
zgu@3900 545
zgu@3900 546
zgu@3900 547 #define NEW_C_HEAP_ARRAY2(type, size, memflags, pc)\
zgu@3900 548 (type*) (AllocateHeap((size) * sizeof(type), memflags, pc))
zgu@3900 549
zgu@3900 550 #define REALLOC_C_HEAP_ARRAY2(type, old, size, memflags, pc)\
zgu@3900 551 (type*) (ReallocateHeap((char*)old, (size) * sizeof(type), memflags, pc))
zgu@3900 552
zgu@3900 553 #define NEW_C_HEAP_OBJ2(type, memflags, pc)\
zgu@3900 554 NEW_C_HEAP_ARRAY2(type, 1, memflags, pc)
zgu@3900 555
duke@435 556
duke@435 557 extern bool warn_new_operator;
duke@435 558
duke@435 559 // for statistics
duke@435 560 #ifndef PRODUCT
duke@435 561 class AllocStats : StackObj {
kvn@2557 562 julong start_mallocs, start_frees;
kvn@2557 563 julong start_malloc_bytes, start_mfree_bytes, start_res_bytes;
duke@435 564 public:
duke@435 565 AllocStats();
duke@435 566
kvn@2557 567 julong num_mallocs(); // since creation of receiver
kvn@2557 568 julong alloc_bytes();
kvn@2557 569 julong num_frees();
kvn@2557 570 julong free_bytes();
kvn@2557 571 julong resource_bytes();
duke@435 572 void print();
duke@435 573 };
duke@435 574 #endif
duke@435 575
duke@435 576
duke@435 577 //------------------------------ReallocMark---------------------------------
duke@435 578 // Code which uses REALLOC_RESOURCE_ARRAY should check an associated
duke@435 579 // ReallocMark, which is declared in the same scope as the reallocated
duke@435 580 // pointer. Any operation that could __potentially__ cause a reallocation
duke@435 581 // should check the ReallocMark.
duke@435 582 class ReallocMark: public StackObj {
duke@435 583 protected:
duke@435 584 NOT_PRODUCT(int _nesting;)
duke@435 585
duke@435 586 public:
duke@435 587 ReallocMark() PRODUCT_RETURN;
duke@435 588 void check() PRODUCT_RETURN;
duke@435 589 };
stefank@2314 590
stefank@2314 591 #endif // SHARE_VM_MEMORY_ALLOCATION_HPP

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