universe.cpp revision 7424:0a8469ebc3d9
1/*
2 * Copyright (c) 1997, 2014, Oracle and/or its affiliates. All rights reserved.
3 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
4 *
5 * This code is free software; you can redistribute it and/or modify it
6 * under the terms of the GNU General Public License version 2 only, as
7 * published by the Free Software Foundation.
8 *
9 * This code is distributed in the hope that it will be useful, but WITHOUT
10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
11 * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
12 * version 2 for more details (a copy is included in the LICENSE file that
13 * accompanied this code).
14 *
15 * You should have received a copy of the GNU General Public License version
16 * 2 along with this work; if not, write to the Free Software Foundation,
17 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
18 *
19 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
20 * or visit www.oracle.com if you need additional information or have any
21 * questions.
22 *
23 */
24
25#include "precompiled.hpp"
26#include "classfile/classLoader.hpp"
27#include "classfile/classLoaderData.hpp"
28#include "classfile/javaClasses.hpp"
29#include "classfile/stringTable.hpp"
30#include "classfile/systemDictionary.hpp"
31#include "classfile/vmSymbols.hpp"
32#include "code/codeCache.hpp"
33#include "code/dependencies.hpp"
34#include "gc_interface/collectedHeap.inline.hpp"
35#include "interpreter/interpreter.hpp"
36#include "memory/cardTableModRefBS.hpp"
37#include "memory/filemap.hpp"
38#include "memory/gcLocker.inline.hpp"
39#include "memory/genCollectedHeap.hpp"
40#include "memory/genRemSet.hpp"
41#include "memory/generation.hpp"
42#include "memory/metadataFactory.hpp"
43#include "memory/metaspaceShared.hpp"
44#include "memory/oopFactory.hpp"
45#include "memory/space.hpp"
46#include "memory/universe.hpp"
47#include "memory/universe.inline.hpp"
48#include "oops/constantPool.hpp"
49#include "oops/instanceClassLoaderKlass.hpp"
50#include "oops/instanceKlass.hpp"
51#include "oops/instanceMirrorKlass.hpp"
52#include "oops/instanceRefKlass.hpp"
53#include "oops/oop.inline.hpp"
54#include "oops/typeArrayKlass.hpp"
55#include "prims/jvmtiRedefineClassesTrace.hpp"
56#include "runtime/arguments.hpp"
57#include "runtime/atomic.inline.hpp"
58#include "runtime/deoptimization.hpp"
59#include "runtime/fprofiler.hpp"
60#include "runtime/handles.inline.hpp"
61#include "runtime/init.hpp"
62#include "runtime/java.hpp"
63#include "runtime/javaCalls.hpp"
64#include "runtime/sharedRuntime.hpp"
65#include "runtime/synchronizer.hpp"
66#include "runtime/thread.inline.hpp"
67#include "runtime/timer.hpp"
68#include "runtime/vm_operations.hpp"
69#include "services/memoryService.hpp"
70#include "utilities/copy.hpp"
71#include "utilities/events.hpp"
72#include "utilities/hashtable.inline.hpp"
73#include "utilities/preserveException.hpp"
74#include "utilities/macros.hpp"
75#if INCLUDE_ALL_GCS
76#include "gc_implementation/shared/adaptiveSizePolicy.hpp"
77#include "gc_implementation/concurrentMarkSweep/cmsCollectorPolicy.hpp"
78#include "gc_implementation/g1/g1CollectedHeap.inline.hpp"
79#include "gc_implementation/g1/g1CollectorPolicy.hpp"
80#include "gc_implementation/parallelScavenge/parallelScavengeHeap.hpp"
81#endif // INCLUDE_ALL_GCS
82#if INCLUDE_CDS
83#include "classfile/sharedClassUtil.hpp"
84#endif
85
86PRAGMA_FORMAT_MUTE_WARNINGS_FOR_GCC
87
88// Known objects
89Klass* Universe::_boolArrayKlassObj                 = NULL;
90Klass* Universe::_byteArrayKlassObj                 = NULL;
91Klass* Universe::_charArrayKlassObj                 = NULL;
92Klass* Universe::_intArrayKlassObj                  = NULL;
93Klass* Universe::_shortArrayKlassObj                = NULL;
94Klass* Universe::_longArrayKlassObj                 = NULL;
95Klass* Universe::_singleArrayKlassObj               = NULL;
96Klass* Universe::_doubleArrayKlassObj               = NULL;
97Klass* Universe::_typeArrayKlassObjs[T_VOID+1]      = { NULL /*, NULL...*/ };
98Klass* Universe::_objectArrayKlassObj               = NULL;
99oop Universe::_int_mirror                             = NULL;
100oop Universe::_float_mirror                           = NULL;
101oop Universe::_double_mirror                          = NULL;
102oop Universe::_byte_mirror                            = NULL;
103oop Universe::_bool_mirror                            = NULL;
104oop Universe::_char_mirror                            = NULL;
105oop Universe::_long_mirror                            = NULL;
106oop Universe::_short_mirror                           = NULL;
107oop Universe::_void_mirror                            = NULL;
108oop Universe::_mirrors[T_VOID+1]                      = { NULL /*, NULL...*/ };
109oop Universe::_main_thread_group                      = NULL;
110oop Universe::_system_thread_group                    = NULL;
111objArrayOop Universe::_the_empty_class_klass_array    = NULL;
112Array<Klass*>* Universe::_the_array_interfaces_array = NULL;
113oop Universe::_the_null_string                        = NULL;
114oop Universe::_the_min_jint_string                   = NULL;
115LatestMethodCache* Universe::_finalizer_register_cache = NULL;
116LatestMethodCache* Universe::_loader_addClass_cache    = NULL;
117LatestMethodCache* Universe::_pd_implies_cache         = NULL;
118oop Universe::_out_of_memory_error_java_heap          = NULL;
119oop Universe::_out_of_memory_error_metaspace          = NULL;
120oop Universe::_out_of_memory_error_class_metaspace    = NULL;
121oop Universe::_out_of_memory_error_array_size         = NULL;
122oop Universe::_out_of_memory_error_gc_overhead_limit  = NULL;
123objArrayOop Universe::_preallocated_out_of_memory_error_array = NULL;
124volatile jint Universe::_preallocated_out_of_memory_error_avail_count = 0;
125bool Universe::_verify_in_progress                    = false;
126oop Universe::_null_ptr_exception_instance            = NULL;
127oop Universe::_arithmetic_exception_instance          = NULL;
128oop Universe::_virtual_machine_error_instance         = NULL;
129oop Universe::_vm_exception                           = NULL;
130oop Universe::_allocation_context_notification_obj    = NULL;
131
132Method* Universe::_throw_illegal_access_error         = NULL;
133Array<int>* Universe::_the_empty_int_array            = NULL;
134Array<u2>* Universe::_the_empty_short_array           = NULL;
135Array<Klass*>* Universe::_the_empty_klass_array     = NULL;
136Array<Method*>* Universe::_the_empty_method_array   = NULL;
137
138// These variables are guarded by FullGCALot_lock.
139debug_only(objArrayOop Universe::_fullgc_alot_dummy_array = NULL;)
140debug_only(int Universe::_fullgc_alot_dummy_next      = 0;)
141
142// Heap
143int             Universe::_verify_count = 0;
144
145int             Universe::_base_vtable_size = 0;
146bool            Universe::_bootstrapping = false;
147bool            Universe::_fully_initialized = false;
148
149size_t          Universe::_heap_capacity_at_last_gc;
150size_t          Universe::_heap_used_at_last_gc = 0;
151
152CollectedHeap*  Universe::_collectedHeap = NULL;
153
154NarrowPtrStruct Universe::_narrow_oop = { NULL, 0, true };
155NarrowPtrStruct Universe::_narrow_klass = { NULL, 0, true };
156address Universe::_narrow_ptrs_base;
157
158void Universe::basic_type_classes_do(void f(Klass*)) {
159  f(boolArrayKlassObj());
160  f(byteArrayKlassObj());
161  f(charArrayKlassObj());
162  f(intArrayKlassObj());
163  f(shortArrayKlassObj());
164  f(longArrayKlassObj());
165  f(singleArrayKlassObj());
166  f(doubleArrayKlassObj());
167}
168
169void Universe::oops_do(OopClosure* f, bool do_all) {
170
171  f->do_oop((oop*) &_int_mirror);
172  f->do_oop((oop*) &_float_mirror);
173  f->do_oop((oop*) &_double_mirror);
174  f->do_oop((oop*) &_byte_mirror);
175  f->do_oop((oop*) &_bool_mirror);
176  f->do_oop((oop*) &_char_mirror);
177  f->do_oop((oop*) &_long_mirror);
178  f->do_oop((oop*) &_short_mirror);
179  f->do_oop((oop*) &_void_mirror);
180
181  for (int i = T_BOOLEAN; i < T_VOID+1; i++) {
182    f->do_oop((oop*) &_mirrors[i]);
183  }
184  assert(_mirrors[0] == NULL && _mirrors[T_BOOLEAN - 1] == NULL, "checking");
185
186  f->do_oop((oop*)&_the_empty_class_klass_array);
187  f->do_oop((oop*)&_the_null_string);
188  f->do_oop((oop*)&_the_min_jint_string);
189  f->do_oop((oop*)&_out_of_memory_error_java_heap);
190  f->do_oop((oop*)&_out_of_memory_error_metaspace);
191  f->do_oop((oop*)&_out_of_memory_error_class_metaspace);
192  f->do_oop((oop*)&_out_of_memory_error_array_size);
193  f->do_oop((oop*)&_out_of_memory_error_gc_overhead_limit);
194    f->do_oop((oop*)&_preallocated_out_of_memory_error_array);
195  f->do_oop((oop*)&_null_ptr_exception_instance);
196  f->do_oop((oop*)&_arithmetic_exception_instance);
197  f->do_oop((oop*)&_virtual_machine_error_instance);
198  f->do_oop((oop*)&_main_thread_group);
199  f->do_oop((oop*)&_system_thread_group);
200  f->do_oop((oop*)&_vm_exception);
201  f->do_oop((oop*)&_allocation_context_notification_obj);
202  debug_only(f->do_oop((oop*)&_fullgc_alot_dummy_array);)
203}
204
205// Serialize metadata in and out of CDS archive, not oops.
206void Universe::serialize(SerializeClosure* f, bool do_all) {
207
208  f->do_ptr((void**)&_boolArrayKlassObj);
209  f->do_ptr((void**)&_byteArrayKlassObj);
210  f->do_ptr((void**)&_charArrayKlassObj);
211  f->do_ptr((void**)&_intArrayKlassObj);
212  f->do_ptr((void**)&_shortArrayKlassObj);
213  f->do_ptr((void**)&_longArrayKlassObj);
214  f->do_ptr((void**)&_singleArrayKlassObj);
215  f->do_ptr((void**)&_doubleArrayKlassObj);
216  f->do_ptr((void**)&_objectArrayKlassObj);
217
218  {
219    for (int i = 0; i < T_VOID+1; i++) {
220      if (_typeArrayKlassObjs[i] != NULL) {
221        assert(i >= T_BOOLEAN, "checking");
222        f->do_ptr((void**)&_typeArrayKlassObjs[i]);
223      } else if (do_all) {
224        f->do_ptr((void**)&_typeArrayKlassObjs[i]);
225      }
226    }
227  }
228
229  f->do_ptr((void**)&_the_array_interfaces_array);
230  f->do_ptr((void**)&_the_empty_int_array);
231  f->do_ptr((void**)&_the_empty_short_array);
232  f->do_ptr((void**)&_the_empty_method_array);
233  f->do_ptr((void**)&_the_empty_klass_array);
234  _finalizer_register_cache->serialize(f);
235  _loader_addClass_cache->serialize(f);
236  _pd_implies_cache->serialize(f);
237}
238
239void Universe::check_alignment(uintx size, uintx alignment, const char* name) {
240  if (size < alignment || size % alignment != 0) {
241    vm_exit_during_initialization(
242      err_msg("Size of %s (" UINTX_FORMAT " bytes) must be aligned to " UINTX_FORMAT " bytes", name, size, alignment));
243  }
244}
245
246void initialize_basic_type_klass(Klass* k, TRAPS) {
247  Klass* ok = SystemDictionary::Object_klass();
248  if (UseSharedSpaces) {
249    ClassLoaderData* loader_data = ClassLoaderData::the_null_class_loader_data();
250    assert(k->super() == ok, "u3");
251    k->restore_unshareable_info(loader_data, Handle(), CHECK);
252  } else {
253    k->initialize_supers(ok, CHECK);
254  }
255  k->append_to_sibling_list();
256}
257
258void Universe::genesis(TRAPS) {
259  ResourceMark rm;
260
261  { FlagSetting fs(_bootstrapping, true);
262
263    { MutexLocker mc(Compile_lock);
264
265      // determine base vtable size; without that we cannot create the array klasses
266      compute_base_vtable_size();
267
268      if (!UseSharedSpaces) {
269        _boolArrayKlassObj      = TypeArrayKlass::create_klass(T_BOOLEAN, sizeof(jboolean), CHECK);
270        _charArrayKlassObj      = TypeArrayKlass::create_klass(T_CHAR,    sizeof(jchar),    CHECK);
271        _singleArrayKlassObj    = TypeArrayKlass::create_klass(T_FLOAT,   sizeof(jfloat),   CHECK);
272        _doubleArrayKlassObj    = TypeArrayKlass::create_klass(T_DOUBLE,  sizeof(jdouble),  CHECK);
273        _byteArrayKlassObj      = TypeArrayKlass::create_klass(T_BYTE,    sizeof(jbyte),    CHECK);
274        _shortArrayKlassObj     = TypeArrayKlass::create_klass(T_SHORT,   sizeof(jshort),   CHECK);
275        _intArrayKlassObj       = TypeArrayKlass::create_klass(T_INT,     sizeof(jint),     CHECK);
276        _longArrayKlassObj      = TypeArrayKlass::create_klass(T_LONG,    sizeof(jlong),    CHECK);
277
278        _typeArrayKlassObjs[T_BOOLEAN] = _boolArrayKlassObj;
279        _typeArrayKlassObjs[T_CHAR]    = _charArrayKlassObj;
280        _typeArrayKlassObjs[T_FLOAT]   = _singleArrayKlassObj;
281        _typeArrayKlassObjs[T_DOUBLE]  = _doubleArrayKlassObj;
282        _typeArrayKlassObjs[T_BYTE]    = _byteArrayKlassObj;
283        _typeArrayKlassObjs[T_SHORT]   = _shortArrayKlassObj;
284        _typeArrayKlassObjs[T_INT]     = _intArrayKlassObj;
285        _typeArrayKlassObjs[T_LONG]    = _longArrayKlassObj;
286
287        ClassLoaderData* null_cld = ClassLoaderData::the_null_class_loader_data();
288
289        _the_array_interfaces_array = MetadataFactory::new_array<Klass*>(null_cld, 2, NULL, CHECK);
290        _the_empty_int_array        = MetadataFactory::new_array<int>(null_cld, 0, CHECK);
291        _the_empty_short_array      = MetadataFactory::new_array<u2>(null_cld, 0, CHECK);
292        _the_empty_method_array     = MetadataFactory::new_array<Method*>(null_cld, 0, CHECK);
293        _the_empty_klass_array      = MetadataFactory::new_array<Klass*>(null_cld, 0, CHECK);
294      }
295    }
296
297    vmSymbols::initialize(CHECK);
298
299    SystemDictionary::initialize(CHECK);
300
301    Klass* ok = SystemDictionary::Object_klass();
302
303    _the_null_string            = StringTable::intern("null", CHECK);
304    _the_min_jint_string       = StringTable::intern("-2147483648", CHECK);
305
306    if (UseSharedSpaces) {
307      // Verify shared interfaces array.
308      assert(_the_array_interfaces_array->at(0) ==
309             SystemDictionary::Cloneable_klass(), "u3");
310      assert(_the_array_interfaces_array->at(1) ==
311             SystemDictionary::Serializable_klass(), "u3");
312    } else {
313      // Set up shared interfaces array.  (Do this before supers are set up.)
314      _the_array_interfaces_array->at_put(0, SystemDictionary::Cloneable_klass());
315      _the_array_interfaces_array->at_put(1, SystemDictionary::Serializable_klass());
316    }
317
318    initialize_basic_type_klass(boolArrayKlassObj(), CHECK);
319    initialize_basic_type_klass(charArrayKlassObj(), CHECK);
320    initialize_basic_type_klass(singleArrayKlassObj(), CHECK);
321    initialize_basic_type_klass(doubleArrayKlassObj(), CHECK);
322    initialize_basic_type_klass(byteArrayKlassObj(), CHECK);
323    initialize_basic_type_klass(shortArrayKlassObj(), CHECK);
324    initialize_basic_type_klass(intArrayKlassObj(), CHECK);
325    initialize_basic_type_klass(longArrayKlassObj(), CHECK);
326  } // end of core bootstrapping
327
328  // Maybe this could be lifted up now that object array can be initialized
329  // during the bootstrapping.
330
331  // OLD
332  // Initialize _objectArrayKlass after core bootstraping to make
333  // sure the super class is set up properly for _objectArrayKlass.
334  // ---
335  // NEW
336  // Since some of the old system object arrays have been converted to
337  // ordinary object arrays, _objectArrayKlass will be loaded when
338  // SystemDictionary::initialize(CHECK); is run. See the extra check
339  // for Object_klass_loaded in objArrayKlassKlass::allocate_objArray_klass_impl.
340  _objectArrayKlassObj = InstanceKlass::
341    cast(SystemDictionary::Object_klass())->array_klass(1, CHECK);
342  // OLD
343  // Add the class to the class hierarchy manually to make sure that
344  // its vtable is initialized after core bootstrapping is completed.
345  // ---
346  // New
347  // Have already been initialized.
348  _objectArrayKlassObj->append_to_sibling_list();
349
350  // Compute is_jdk version flags.
351  // Only 1.3 or later has the java.lang.Shutdown class.
352  // Only 1.4 or later has the java.lang.CharSequence interface.
353  // Only 1.5 or later has the java.lang.management.MemoryUsage class.
354  if (JDK_Version::is_partially_initialized()) {
355    uint8_t jdk_version;
356    Klass* k = SystemDictionary::resolve_or_null(
357        vmSymbols::java_lang_management_MemoryUsage(), THREAD);
358    CLEAR_PENDING_EXCEPTION; // ignore exceptions
359    if (k == NULL) {
360      k = SystemDictionary::resolve_or_null(
361          vmSymbols::java_lang_CharSequence(), THREAD);
362      CLEAR_PENDING_EXCEPTION; // ignore exceptions
363      if (k == NULL) {
364        k = SystemDictionary::resolve_or_null(
365            vmSymbols::java_lang_Shutdown(), THREAD);
366        CLEAR_PENDING_EXCEPTION; // ignore exceptions
367        if (k == NULL) {
368          jdk_version = 2;
369        } else {
370          jdk_version = 3;
371        }
372      } else {
373        jdk_version = 4;
374      }
375    } else {
376      jdk_version = 5;
377    }
378    JDK_Version::fully_initialize(jdk_version);
379  }
380
381  #ifdef ASSERT
382  if (FullGCALot) {
383    // Allocate an array of dummy objects.
384    // We'd like these to be at the bottom of the old generation,
385    // so that when we free one and then collect,
386    // (almost) the whole heap moves
387    // and we find out if we actually update all the oops correctly.
388    // But we can't allocate directly in the old generation,
389    // so we allocate wherever, and hope that the first collection
390    // moves these objects to the bottom of the old generation.
391    // We can allocate directly in the permanent generation, so we do.
392    int size;
393    if (UseConcMarkSweepGC) {
394      warning("Using +FullGCALot with concurrent mark sweep gc "
395              "will not force all objects to relocate");
396      size = FullGCALotDummies;
397    } else {
398      size = FullGCALotDummies * 2;
399    }
400    objArrayOop    naked_array = oopFactory::new_objArray(SystemDictionary::Object_klass(), size, CHECK);
401    objArrayHandle dummy_array(THREAD, naked_array);
402    int i = 0;
403    while (i < size) {
404        // Allocate dummy in old generation
405      oop dummy = InstanceKlass::cast(SystemDictionary::Object_klass())->allocate_instance(CHECK);
406      dummy_array->obj_at_put(i++, dummy);
407    }
408    {
409      // Only modify the global variable inside the mutex.
410      // If we had a race to here, the other dummy_array instances
411      // and their elements just get dropped on the floor, which is fine.
412      MutexLocker ml(FullGCALot_lock);
413      if (_fullgc_alot_dummy_array == NULL) {
414        _fullgc_alot_dummy_array = dummy_array();
415      }
416    }
417    assert(i == _fullgc_alot_dummy_array->length(), "just checking");
418  }
419  #endif
420
421  // Initialize dependency array for null class loader
422  ClassLoaderData::the_null_class_loader_data()->init_dependencies(CHECK);
423
424}
425
426// CDS support for patching vtables in metadata in the shared archive.
427// All types inherited from Metadata have vtables, but not types inherited
428// from MetaspaceObj, because the latter does not have virtual functions.
429// If the metadata type has a vtable, it cannot be shared in the read-only
430// section of the CDS archive, because the vtable pointer is patched.
431static inline void add_vtable(void** list, int* n, void* o, int count) {
432  guarantee((*n) < count, "vtable list too small");
433  void* vtable = dereference_vptr(o);
434  assert(*(void**)(vtable) != NULL, "invalid vtable");
435  list[(*n)++] = vtable;
436}
437
438void Universe::init_self_patching_vtbl_list(void** list, int count) {
439  int n = 0;
440  { InstanceKlass o;          add_vtable(list, &n, &o, count); }
441  { InstanceClassLoaderKlass o; add_vtable(list, &n, &o, count); }
442  { InstanceMirrorKlass o;    add_vtable(list, &n, &o, count); }
443  { InstanceRefKlass o;       add_vtable(list, &n, &o, count); }
444  { TypeArrayKlass o;         add_vtable(list, &n, &o, count); }
445  { ObjArrayKlass o;          add_vtable(list, &n, &o, count); }
446  { Method o;                 add_vtable(list, &n, &o, count); }
447  { ConstantPool o;           add_vtable(list, &n, &o, count); }
448}
449
450void Universe::initialize_basic_type_mirrors(TRAPS) {
451    assert(_int_mirror==NULL, "basic type mirrors already initialized");
452    _int_mirror     =
453      java_lang_Class::create_basic_type_mirror("int",    T_INT, CHECK);
454    _float_mirror   =
455      java_lang_Class::create_basic_type_mirror("float",  T_FLOAT,   CHECK);
456    _double_mirror  =
457      java_lang_Class::create_basic_type_mirror("double", T_DOUBLE,  CHECK);
458    _byte_mirror    =
459      java_lang_Class::create_basic_type_mirror("byte",   T_BYTE, CHECK);
460    _bool_mirror    =
461      java_lang_Class::create_basic_type_mirror("boolean",T_BOOLEAN, CHECK);
462    _char_mirror    =
463      java_lang_Class::create_basic_type_mirror("char",   T_CHAR, CHECK);
464    _long_mirror    =
465      java_lang_Class::create_basic_type_mirror("long",   T_LONG, CHECK);
466    _short_mirror   =
467      java_lang_Class::create_basic_type_mirror("short",  T_SHORT,   CHECK);
468    _void_mirror    =
469      java_lang_Class::create_basic_type_mirror("void",   T_VOID, CHECK);
470
471    _mirrors[T_INT]     = _int_mirror;
472    _mirrors[T_FLOAT]   = _float_mirror;
473    _mirrors[T_DOUBLE]  = _double_mirror;
474    _mirrors[T_BYTE]    = _byte_mirror;
475    _mirrors[T_BOOLEAN] = _bool_mirror;
476    _mirrors[T_CHAR]    = _char_mirror;
477    _mirrors[T_LONG]    = _long_mirror;
478    _mirrors[T_SHORT]   = _short_mirror;
479    _mirrors[T_VOID]    = _void_mirror;
480  //_mirrors[T_OBJECT]  = InstanceKlass::cast(_object_klass)->java_mirror();
481  //_mirrors[T_ARRAY]   = InstanceKlass::cast(_object_klass)->java_mirror();
482}
483
484void Universe::fixup_mirrors(TRAPS) {
485  // Bootstrap problem: all classes gets a mirror (java.lang.Class instance) assigned eagerly,
486  // but we cannot do that for classes created before java.lang.Class is loaded. Here we simply
487  // walk over permanent objects created so far (mostly classes) and fixup their mirrors. Note
488  // that the number of objects allocated at this point is very small.
489  assert(SystemDictionary::Class_klass_loaded(), "java.lang.Class should be loaded");
490  HandleMark hm(THREAD);
491  // Cache the start of the static fields
492  InstanceMirrorKlass::init_offset_of_static_fields();
493
494  GrowableArray <Klass*>* list = java_lang_Class::fixup_mirror_list();
495  int list_length = list->length();
496  for (int i = 0; i < list_length; i++) {
497    Klass* k = list->at(i);
498    assert(k->is_klass(), "List should only hold classes");
499    EXCEPTION_MARK;
500    KlassHandle kh(THREAD, k);
501    java_lang_Class::fixup_mirror(kh, CATCH);
502}
503  delete java_lang_Class::fixup_mirror_list();
504  java_lang_Class::set_fixup_mirror_list(NULL);
505}
506
507static bool has_run_finalizers_on_exit = false;
508
509void Universe::run_finalizers_on_exit() {
510  if (has_run_finalizers_on_exit) return;
511  has_run_finalizers_on_exit = true;
512
513  // Called on VM exit. This ought to be run in a separate thread.
514  if (TraceReferenceGC) tty->print_cr("Callback to run finalizers on exit");
515  {
516    PRESERVE_EXCEPTION_MARK;
517    KlassHandle finalizer_klass(THREAD, SystemDictionary::Finalizer_klass());
518    JavaValue result(T_VOID);
519    JavaCalls::call_static(
520      &result,
521      finalizer_klass,
522      vmSymbols::run_finalizers_on_exit_name(),
523      vmSymbols::void_method_signature(),
524      THREAD
525    );
526    // Ignore any pending exceptions
527    CLEAR_PENDING_EXCEPTION;
528  }
529}
530
531
532// initialize_vtable could cause gc if
533// 1) we specified true to initialize_vtable and
534// 2) this ran after gc was enabled
535// In case those ever change we use handles for oops
536void Universe::reinitialize_vtable_of(KlassHandle k_h, TRAPS) {
537  // init vtable of k and all subclasses
538  Klass* ko = k_h();
539  klassVtable* vt = ko->vtable();
540  if (vt) vt->initialize_vtable(false, CHECK);
541  if (ko->oop_is_instance()) {
542    InstanceKlass* ik = (InstanceKlass*)ko;
543    for (KlassHandle s_h(THREAD, ik->subklass());
544         s_h() != NULL;
545         s_h = KlassHandle(THREAD, s_h()->next_sibling())) {
546      reinitialize_vtable_of(s_h, CHECK);
547    }
548  }
549}
550
551
552void initialize_itable_for_klass(Klass* k, TRAPS) {
553  InstanceKlass::cast(k)->itable()->initialize_itable(false, CHECK);
554}
555
556
557void Universe::reinitialize_itables(TRAPS) {
558  SystemDictionary::classes_do(initialize_itable_for_klass, CHECK);
559
560}
561
562
563bool Universe::on_page_boundary(void* addr) {
564  return ((uintptr_t) addr) % os::vm_page_size() == 0;
565}
566
567
568bool Universe::should_fill_in_stack_trace(Handle throwable) {
569  // never attempt to fill in the stack trace of preallocated errors that do not have
570  // backtrace. These errors are kept alive forever and may be "re-used" when all
571  // preallocated errors with backtrace have been consumed. Also need to avoid
572  // a potential loop which could happen if an out of memory occurs when attempting
573  // to allocate the backtrace.
574  return ((throwable() != Universe::_out_of_memory_error_java_heap) &&
575          (throwable() != Universe::_out_of_memory_error_metaspace)  &&
576          (throwable() != Universe::_out_of_memory_error_class_metaspace)  &&
577          (throwable() != Universe::_out_of_memory_error_array_size) &&
578          (throwable() != Universe::_out_of_memory_error_gc_overhead_limit));
579}
580
581
582oop Universe::gen_out_of_memory_error(oop default_err) {
583  // generate an out of memory error:
584  // - if there is a preallocated error with backtrace available then return it wth
585  //   a filled in stack trace.
586  // - if there are no preallocated errors with backtrace available then return
587  //   an error without backtrace.
588  int next;
589  if (_preallocated_out_of_memory_error_avail_count > 0) {
590    next = (int)Atomic::add(-1, &_preallocated_out_of_memory_error_avail_count);
591    assert(next < (int)PreallocatedOutOfMemoryErrorCount, "avail count is corrupt");
592  } else {
593    next = -1;
594  }
595  if (next < 0) {
596    // all preallocated errors have been used.
597    // return default
598    return default_err;
599  } else {
600    // get the error object at the slot and set set it to NULL so that the
601    // array isn't keeping it alive anymore.
602    oop exc = preallocated_out_of_memory_errors()->obj_at(next);
603    assert(exc != NULL, "slot has been used already");
604    preallocated_out_of_memory_errors()->obj_at_put(next, NULL);
605
606    // use the message from the default error
607    oop msg = java_lang_Throwable::message(default_err);
608    assert(msg != NULL, "no message");
609    java_lang_Throwable::set_message(exc, msg);
610
611    // populate the stack trace and return it.
612    java_lang_Throwable::fill_in_stack_trace_of_preallocated_backtrace(exc);
613    return exc;
614  }
615}
616
617intptr_t Universe::_non_oop_bits = 0;
618
619void* Universe::non_oop_word() {
620  // Neither the high bits nor the low bits of this value is allowed
621  // to look like (respectively) the high or low bits of a real oop.
622  //
623  // High and low are CPU-specific notions, but low always includes
624  // the low-order bit.  Since oops are always aligned at least mod 4,
625  // setting the low-order bit will ensure that the low half of the
626  // word will never look like that of a real oop.
627  //
628  // Using the OS-supplied non-memory-address word (usually 0 or -1)
629  // will take care of the high bits, however many there are.
630
631  if (_non_oop_bits == 0) {
632    _non_oop_bits = (intptr_t)os::non_memory_address_word() | 1;
633  }
634
635  return (void*)_non_oop_bits;
636}
637
638jint universe_init() {
639  assert(!Universe::_fully_initialized, "called after initialize_vtables");
640  guarantee(1 << LogHeapWordSize == sizeof(HeapWord),
641         "LogHeapWordSize is incorrect.");
642  guarantee(sizeof(oop) >= sizeof(HeapWord), "HeapWord larger than oop?");
643  guarantee(sizeof(oop) % sizeof(HeapWord) == 0,
644            "oop size is not not a multiple of HeapWord size");
645  TraceTime timer("Genesis", TraceStartupTime);
646  JavaClasses::compute_hard_coded_offsets();
647
648  jint status = Universe::initialize_heap();
649  if (status != JNI_OK) {
650    return status;
651  }
652
653  Metaspace::global_initialize();
654
655  // Create memory for metadata.  Must be after initializing heap for
656  // DumpSharedSpaces.
657  ClassLoaderData::init_null_class_loader_data();
658
659  // We have a heap so create the Method* caches before
660  // Metaspace::initialize_shared_spaces() tries to populate them.
661  Universe::_finalizer_register_cache = new LatestMethodCache();
662  Universe::_loader_addClass_cache    = new LatestMethodCache();
663  Universe::_pd_implies_cache         = new LatestMethodCache();
664
665  if (UseSharedSpaces) {
666    // Read the data structures supporting the shared spaces (shared
667    // system dictionary, symbol table, etc.).  After that, access to
668    // the file (other than the mapped regions) is no longer needed, and
669    // the file is closed. Closing the file does not affect the
670    // currently mapped regions.
671    MetaspaceShared::initialize_shared_spaces();
672    StringTable::create_table();
673  } else {
674    SymbolTable::create_table();
675    StringTable::create_table();
676    ClassLoader::create_package_info_table();
677
678    if (DumpSharedSpaces) {
679      MetaspaceShared::prepare_for_dumping();
680    }
681  }
682
683  return JNI_OK;
684}
685
686// Choose the heap base address and oop encoding mode
687// when compressed oops are used:
688// Unscaled  - Use 32-bits oops without encoding when
689//     NarrowOopHeapBaseMin + heap_size < 4Gb
690// ZeroBased - Use zero based compressed oops with encoding when
691//     NarrowOopHeapBaseMin + heap_size < 32Gb
692// HeapBased - Use compressed oops with heap base + encoding.
693
694// 4Gb
695static const uint64_t UnscaledOopHeapMax = (uint64_t(max_juint) + 1);
696// 32Gb
697// OopEncodingHeapMax == UnscaledOopHeapMax << LogMinObjAlignmentInBytes;
698
699char* Universe::preferred_heap_base(size_t heap_size, size_t alignment, NARROW_OOP_MODE mode) {
700  assert(is_size_aligned((size_t)OopEncodingHeapMax, alignment), "Must be");
701  assert(is_size_aligned((size_t)UnscaledOopHeapMax, alignment), "Must be");
702  assert(is_size_aligned(heap_size, alignment), "Must be");
703
704  uintx heap_base_min_address_aligned = align_size_up(HeapBaseMinAddress, alignment);
705
706  size_t base = 0;
707#ifdef _LP64
708  if (UseCompressedOops) {
709    assert(mode == UnscaledNarrowOop  ||
710           mode == ZeroBasedNarrowOop ||
711           mode == HeapBasedNarrowOop, "mode is invalid");
712    const size_t total_size = heap_size + heap_base_min_address_aligned;
713    // Return specified base for the first request.
714    if (!FLAG_IS_DEFAULT(HeapBaseMinAddress) && (mode == UnscaledNarrowOop)) {
715      base = heap_base_min_address_aligned;
716
717    // If the total size is small enough to allow UnscaledNarrowOop then
718    // just use UnscaledNarrowOop.
719    } else if ((total_size <= OopEncodingHeapMax) && (mode != HeapBasedNarrowOop)) {
720      if ((total_size <= UnscaledOopHeapMax) && (mode == UnscaledNarrowOop) &&
721          (Universe::narrow_oop_shift() == 0)) {
722        // Use 32-bits oops without encoding and
723        // place heap's top on the 4Gb boundary
724        base = (UnscaledOopHeapMax - heap_size);
725      } else {
726        // Can't reserve with NarrowOopShift == 0
727        Universe::set_narrow_oop_shift(LogMinObjAlignmentInBytes);
728
729        if (mode == UnscaledNarrowOop ||
730            mode == ZeroBasedNarrowOop && total_size <= UnscaledOopHeapMax) {
731
732          // Use zero based compressed oops with encoding and
733          // place heap's top on the 32Gb boundary in case
734          // total_size > 4Gb or failed to reserve below 4Gb.
735          uint64_t heap_top = OopEncodingHeapMax;
736
737          // For small heaps, save some space for compressed class pointer
738          // space so it can be decoded with no base.
739          if (UseCompressedClassPointers && !UseSharedSpaces &&
740              OopEncodingHeapMax <= 32*G) {
741
742            uint64_t class_space = align_size_up(CompressedClassSpaceSize, alignment);
743            assert(is_size_aligned((size_t)OopEncodingHeapMax-class_space,
744                   alignment), "difference must be aligned too");
745            uint64_t new_top = OopEncodingHeapMax-class_space;
746
747            if (total_size <= new_top) {
748              heap_top = new_top;
749            }
750          }
751
752          // Align base to the adjusted top of the heap
753          base = heap_top - heap_size;
754        }
755      }
756    } else {
757      // UnscaledNarrowOop encoding didn't work, and no base was found for ZeroBasedOops or
758      // HeapBasedNarrowOop encoding was requested.  So, can't reserve below 32Gb.
759      Universe::set_narrow_oop_shift(LogMinObjAlignmentInBytes);
760    }
761
762    // Set narrow_oop_base and narrow_oop_use_implicit_null_checks
763    // used in ReservedHeapSpace() constructors.
764    // The final values will be set in initialize_heap() below.
765    if ((base != 0) && ((base + heap_size) <= OopEncodingHeapMax)) {
766      // Use zero based compressed oops
767      Universe::set_narrow_oop_base(NULL);
768      // Don't need guard page for implicit checks in indexed
769      // addressing mode with zero based Compressed Oops.
770      Universe::set_narrow_oop_use_implicit_null_checks(true);
771    } else {
772      // Set to a non-NULL value so the ReservedSpace ctor computes
773      // the correct no-access prefix.
774      // The final value will be set in initialize_heap() below.
775      Universe::set_narrow_oop_base((address)UnscaledOopHeapMax);
776#if defined(_WIN64) || defined(AIX)
777      if (UseLargePages) {
778        // Cannot allocate guard pages for implicit checks in indexed
779        // addressing mode when large pages are specified on windows.
780        Universe::set_narrow_oop_use_implicit_null_checks(false);
781      }
782#endif //  _WIN64
783    }
784  }
785#endif
786
787  assert(is_ptr_aligned((char*)base, alignment), "Must be");
788  return (char*)base; // also return NULL (don't care) for 32-bit VM
789}
790
791jint Universe::initialize_heap() {
792
793  if (UseParallelGC) {
794#if INCLUDE_ALL_GCS
795    Universe::_collectedHeap = new ParallelScavengeHeap();
796#else  // INCLUDE_ALL_GCS
797    fatal("UseParallelGC not supported in this VM.");
798#endif // INCLUDE_ALL_GCS
799
800  } else if (UseG1GC) {
801#if INCLUDE_ALL_GCS
802    G1CollectorPolicy* g1p = new G1CollectorPolicy();
803    g1p->initialize_all();
804    G1CollectedHeap* g1h = new G1CollectedHeap(g1p);
805    Universe::_collectedHeap = g1h;
806#else  // INCLUDE_ALL_GCS
807    fatal("UseG1GC not supported in java kernel vm.");
808#endif // INCLUDE_ALL_GCS
809
810  } else {
811    GenCollectorPolicy *gc_policy;
812
813    if (UseSerialGC) {
814      gc_policy = new MarkSweepPolicy();
815    } else if (UseConcMarkSweepGC) {
816#if INCLUDE_ALL_GCS
817      gc_policy = new ConcurrentMarkSweepPolicy();
818#else  // INCLUDE_ALL_GCS
819      fatal("UseConcMarkSweepGC not supported in this VM.");
820#endif // INCLUDE_ALL_GCS
821    } else { // default old generation
822      gc_policy = new MarkSweepPolicy();
823    }
824    gc_policy->initialize_all();
825
826    Universe::_collectedHeap = new GenCollectedHeap(gc_policy);
827  }
828
829  ThreadLocalAllocBuffer::set_max_size(Universe::heap()->max_tlab_size());
830
831  jint status = Universe::heap()->initialize();
832  if (status != JNI_OK) {
833    return status;
834  }
835
836#ifdef _LP64
837  if (UseCompressedOops) {
838    // Subtract a page because something can get allocated at heap base.
839    // This also makes implicit null checking work, because the
840    // memory+1 page below heap_base needs to cause a signal.
841    // See needs_explicit_null_check.
842    // Only set the heap base for compressed oops because it indicates
843    // compressed oops for pstack code.
844    if (((uint64_t)Universe::heap()->reserved_region().end() > OopEncodingHeapMax)) {
845      // Can't reserve heap below 32Gb.
846      // keep the Universe::narrow_oop_base() set in Universe::reserve_heap()
847      Universe::set_narrow_oop_shift(LogMinObjAlignmentInBytes);
848#ifdef AIX
849      // There is no protected page before the heap. This assures all oops
850      // are decoded so that NULL is preserved, so this page will not be accessed.
851      Universe::set_narrow_oop_use_implicit_null_checks(false);
852#endif
853    } else {
854      Universe::set_narrow_oop_base(0);
855#ifdef _WIN64
856      if (!Universe::narrow_oop_use_implicit_null_checks()) {
857        // Don't need guard page for implicit checks in indexed addressing
858        // mode with zero based Compressed Oops.
859        Universe::set_narrow_oop_use_implicit_null_checks(true);
860      }
861#endif //  _WIN64
862      if((uint64_t)Universe::heap()->reserved_region().end() > UnscaledOopHeapMax) {
863        // Can't reserve heap below 4Gb.
864        Universe::set_narrow_oop_shift(LogMinObjAlignmentInBytes);
865      } else {
866        Universe::set_narrow_oop_shift(0);
867      }
868    }
869
870    Universe::set_narrow_ptrs_base(Universe::narrow_oop_base());
871
872    if (PrintCompressedOopsMode || (PrintMiscellaneous && Verbose)) {
873      Universe::print_compressed_oops_mode();
874    }
875  }
876  // Universe::narrow_oop_base() is one page below the heap.
877  assert((intptr_t)Universe::narrow_oop_base() <= (intptr_t)(Universe::heap()->base() -
878         os::vm_page_size()) ||
879         Universe::narrow_oop_base() == NULL, "invalid value");
880  assert(Universe::narrow_oop_shift() == LogMinObjAlignmentInBytes ||
881         Universe::narrow_oop_shift() == 0, "invalid value");
882#endif
883
884  // We will never reach the CATCH below since Exceptions::_throw will cause
885  // the VM to exit if an exception is thrown during initialization
886
887  if (UseTLAB) {
888    assert(Universe::heap()->supports_tlab_allocation(),
889           "Should support thread-local allocation buffers");
890    ThreadLocalAllocBuffer::startup_initialization();
891  }
892  return JNI_OK;
893}
894
895void Universe::print_compressed_oops_mode() {
896  tty->cr();
897  tty->print("heap address: " PTR_FORMAT ", size: " SIZE_FORMAT " MB",
898              Universe::heap()->base(), Universe::heap()->reserved_region().byte_size()/M);
899
900  tty->print(", Compressed Oops mode: %s", narrow_oop_mode_to_string(narrow_oop_mode()));
901
902  if (Universe::narrow_oop_base() != 0) {
903    tty->print(":" PTR_FORMAT, Universe::narrow_oop_base());
904  }
905
906  if (Universe::narrow_oop_shift() != 0) {
907    tty->print(", Oop shift amount: %d", Universe::narrow_oop_shift());
908  }
909
910  tty->cr();
911  tty->cr();
912}
913
914// Reserve the Java heap, which is now the same for all GCs.
915ReservedSpace Universe::reserve_heap(size_t heap_size, size_t alignment) {
916  assert(alignment <= Arguments::conservative_max_heap_alignment(),
917      err_msg("actual alignment "SIZE_FORMAT" must be within maximum heap alignment "SIZE_FORMAT,
918          alignment, Arguments::conservative_max_heap_alignment()));
919  size_t total_reserved = align_size_up(heap_size, alignment);
920  assert(!UseCompressedOops || (total_reserved <= (OopEncodingHeapMax - os::vm_page_size())),
921      "heap size is too big for compressed oops");
922
923  bool use_large_pages = UseLargePages && is_size_aligned(alignment, os::large_page_size());
924  assert(!UseLargePages
925      || UseParallelGC
926      || use_large_pages, "Wrong alignment to use large pages");
927
928  char* addr = Universe::preferred_heap_base(total_reserved, alignment, Universe::UnscaledNarrowOop);
929
930  ReservedHeapSpace total_rs(total_reserved, alignment, use_large_pages, addr);
931
932  if (UseCompressedOops) {
933    if (addr != NULL && !total_rs.is_reserved()) {
934      // Failed to reserve at specified address - the requested memory
935      // region is taken already, for example, by 'java' launcher.
936      // Try again to reserver heap higher.
937      addr = Universe::preferred_heap_base(total_reserved, alignment, Universe::ZeroBasedNarrowOop);
938
939      ReservedHeapSpace total_rs0(total_reserved, alignment,
940          use_large_pages, addr);
941
942      if (addr != NULL && !total_rs0.is_reserved()) {
943        // Failed to reserve at specified address again - give up.
944        addr = Universe::preferred_heap_base(total_reserved, alignment, Universe::HeapBasedNarrowOop);
945        assert(addr == NULL, "");
946
947        ReservedHeapSpace total_rs1(total_reserved, alignment,
948            use_large_pages, addr);
949        total_rs = total_rs1;
950      } else {
951        total_rs = total_rs0;
952      }
953    }
954  }
955
956  if (!total_rs.is_reserved()) {
957    vm_exit_during_initialization(err_msg("Could not reserve enough space for " SIZE_FORMAT "KB object heap", total_reserved/K));
958    return total_rs;
959  }
960
961  if (UseCompressedOops) {
962    // Universe::initialize_heap() will reset this to NULL if unscaled
963    // or zero-based narrow oops are actually used.
964    address base = (address)(total_rs.base() - os::vm_page_size());
965    Universe::set_narrow_oop_base(base);
966  }
967  return total_rs;
968}
969
970
971// It's the caller's responsibility to ensure glitch-freedom
972// (if required).
973void Universe::update_heap_info_at_gc() {
974  _heap_capacity_at_last_gc = heap()->capacity();
975  _heap_used_at_last_gc     = heap()->used();
976}
977
978
979const char* Universe::narrow_oop_mode_to_string(Universe::NARROW_OOP_MODE mode) {
980  switch (mode) {
981    case UnscaledNarrowOop:
982      return "32-bit";
983    case ZeroBasedNarrowOop:
984      return "Zero based";
985    case HeapBasedNarrowOop:
986      return "Non-zero based";
987  }
988
989  ShouldNotReachHere();
990  return "";
991}
992
993
994Universe::NARROW_OOP_MODE Universe::narrow_oop_mode() {
995  if (narrow_oop_base() != 0) {
996    return HeapBasedNarrowOop;
997  }
998
999  if (narrow_oop_shift() != 0) {
1000    return ZeroBasedNarrowOop;
1001  }
1002
1003  return UnscaledNarrowOop;
1004}
1005
1006
1007void universe2_init() {
1008  EXCEPTION_MARK;
1009  Universe::genesis(CATCH);
1010}
1011
1012
1013bool universe_post_init() {
1014  assert(!is_init_completed(), "Error: initialization not yet completed!");
1015  Universe::_fully_initialized = true;
1016  EXCEPTION_MARK;
1017  { ResourceMark rm;
1018    Interpreter::initialize();      // needed for interpreter entry points
1019    if (!UseSharedSpaces) {
1020      HandleMark hm(THREAD);
1021      KlassHandle ok_h(THREAD, SystemDictionary::Object_klass());
1022      Universe::reinitialize_vtable_of(ok_h, CHECK_false);
1023      Universe::reinitialize_itables(CHECK_false);
1024    }
1025  }
1026
1027  HandleMark hm(THREAD);
1028  Klass* k;
1029  instanceKlassHandle k_h;
1030    // Setup preallocated empty java.lang.Class array
1031    Universe::_the_empty_class_klass_array = oopFactory::new_objArray(SystemDictionary::Class_klass(), 0, CHECK_false);
1032
1033    // Setup preallocated OutOfMemoryError errors
1034    k = SystemDictionary::resolve_or_fail(vmSymbols::java_lang_OutOfMemoryError(), true, CHECK_false);
1035    k_h = instanceKlassHandle(THREAD, k);
1036    Universe::_out_of_memory_error_java_heap = k_h->allocate_instance(CHECK_false);
1037    Universe::_out_of_memory_error_metaspace = k_h->allocate_instance(CHECK_false);
1038    Universe::_out_of_memory_error_class_metaspace = k_h->allocate_instance(CHECK_false);
1039    Universe::_out_of_memory_error_array_size = k_h->allocate_instance(CHECK_false);
1040    Universe::_out_of_memory_error_gc_overhead_limit =
1041      k_h->allocate_instance(CHECK_false);
1042
1043    // Setup preallocated NullPointerException
1044    // (this is currently used for a cheap & dirty solution in compiler exception handling)
1045    k = SystemDictionary::resolve_or_fail(vmSymbols::java_lang_NullPointerException(), true, CHECK_false);
1046    Universe::_null_ptr_exception_instance = InstanceKlass::cast(k)->allocate_instance(CHECK_false);
1047    // Setup preallocated ArithmeticException
1048    // (this is currently used for a cheap & dirty solution in compiler exception handling)
1049    k = SystemDictionary::resolve_or_fail(vmSymbols::java_lang_ArithmeticException(), true, CHECK_false);
1050    Universe::_arithmetic_exception_instance = InstanceKlass::cast(k)->allocate_instance(CHECK_false);
1051    // Virtual Machine Error for when we get into a situation we can't resolve
1052    k = SystemDictionary::resolve_or_fail(
1053      vmSymbols::java_lang_VirtualMachineError(), true, CHECK_false);
1054    bool linked = InstanceKlass::cast(k)->link_class_or_fail(CHECK_false);
1055    if (!linked) {
1056      tty->print_cr("Unable to link/verify VirtualMachineError class");
1057      return false; // initialization failed
1058    }
1059    Universe::_virtual_machine_error_instance =
1060      InstanceKlass::cast(k)->allocate_instance(CHECK_false);
1061
1062    Universe::_vm_exception = InstanceKlass::cast(k)->allocate_instance(CHECK_false);
1063
1064  if (!DumpSharedSpaces) {
1065    // These are the only Java fields that are currently set during shared space dumping.
1066    // We prefer to not handle this generally, so we always reinitialize these detail messages.
1067    Handle msg = java_lang_String::create_from_str("Java heap space", CHECK_false);
1068    java_lang_Throwable::set_message(Universe::_out_of_memory_error_java_heap, msg());
1069
1070    msg = java_lang_String::create_from_str("Metaspace", CHECK_false);
1071    java_lang_Throwable::set_message(Universe::_out_of_memory_error_metaspace, msg());
1072    msg = java_lang_String::create_from_str("Compressed class space", CHECK_false);
1073    java_lang_Throwable::set_message(Universe::_out_of_memory_error_class_metaspace, msg());
1074
1075    msg = java_lang_String::create_from_str("Requested array size exceeds VM limit", CHECK_false);
1076    java_lang_Throwable::set_message(Universe::_out_of_memory_error_array_size, msg());
1077
1078    msg = java_lang_String::create_from_str("GC overhead limit exceeded", CHECK_false);
1079    java_lang_Throwable::set_message(Universe::_out_of_memory_error_gc_overhead_limit, msg());
1080
1081    msg = java_lang_String::create_from_str("/ by zero", CHECK_false);
1082    java_lang_Throwable::set_message(Universe::_arithmetic_exception_instance, msg());
1083
1084    // Setup the array of errors that have preallocated backtrace
1085    k = Universe::_out_of_memory_error_java_heap->klass();
1086    assert(k->name() == vmSymbols::java_lang_OutOfMemoryError(), "should be out of memory error");
1087    k_h = instanceKlassHandle(THREAD, k);
1088
1089    int len = (StackTraceInThrowable) ? (int)PreallocatedOutOfMemoryErrorCount : 0;
1090    Universe::_preallocated_out_of_memory_error_array = oopFactory::new_objArray(k_h(), len, CHECK_false);
1091    for (int i=0; i<len; i++) {
1092      oop err = k_h->allocate_instance(CHECK_false);
1093      Handle err_h = Handle(THREAD, err);
1094      java_lang_Throwable::allocate_backtrace(err_h, CHECK_false);
1095      Universe::preallocated_out_of_memory_errors()->obj_at_put(i, err_h());
1096    }
1097    Universe::_preallocated_out_of_memory_error_avail_count = (jint)len;
1098  }
1099
1100
1101  // Setup static method for registering finalizers
1102  // The finalizer klass must be linked before looking up the method, in
1103  // case it needs to get rewritten.
1104  InstanceKlass::cast(SystemDictionary::Finalizer_klass())->link_class(CHECK_false);
1105  Method* m = InstanceKlass::cast(SystemDictionary::Finalizer_klass())->find_method(
1106                                  vmSymbols::register_method_name(),
1107                                  vmSymbols::register_method_signature());
1108  if (m == NULL || !m->is_static()) {
1109    tty->print_cr("Unable to link/verify Finalizer.register method");
1110    return false; // initialization failed (cannot throw exception yet)
1111  }
1112  Universe::_finalizer_register_cache->init(
1113    SystemDictionary::Finalizer_klass(), m);
1114
1115  InstanceKlass::cast(SystemDictionary::misc_Unsafe_klass())->link_class(CHECK_false);
1116  m = InstanceKlass::cast(SystemDictionary::misc_Unsafe_klass())->find_method(
1117                                  vmSymbols::throwIllegalAccessError_name(),
1118                                  vmSymbols::void_method_signature());
1119  if (m != NULL && !m->is_static()) {
1120    // Note null is okay; this method is used in itables, and if it is null,
1121    // then AbstractMethodError is thrown instead.
1122    tty->print_cr("Unable to link/verify Unsafe.throwIllegalAccessError method");
1123    return false; // initialization failed (cannot throw exception yet)
1124  }
1125  Universe::_throw_illegal_access_error = m;
1126
1127  // Setup method for registering loaded classes in class loader vector
1128  InstanceKlass::cast(SystemDictionary::ClassLoader_klass())->link_class(CHECK_false);
1129  m = InstanceKlass::cast(SystemDictionary::ClassLoader_klass())->find_method(vmSymbols::addClass_name(), vmSymbols::class_void_signature());
1130  if (m == NULL || m->is_static()) {
1131    tty->print_cr("Unable to link/verify ClassLoader.addClass method");
1132    return false; // initialization failed (cannot throw exception yet)
1133  }
1134  Universe::_loader_addClass_cache->init(
1135    SystemDictionary::ClassLoader_klass(), m);
1136
1137  // Setup method for checking protection domain
1138  InstanceKlass::cast(SystemDictionary::ProtectionDomain_klass())->link_class(CHECK_false);
1139  m = InstanceKlass::cast(SystemDictionary::ProtectionDomain_klass())->
1140            find_method(vmSymbols::impliesCreateAccessControlContext_name(),
1141                        vmSymbols::void_boolean_signature());
1142  // Allow NULL which should only happen with bootstrapping.
1143  if (m != NULL) {
1144    if (m->is_static()) {
1145      // NoSuchMethodException doesn't actually work because it tries to run the
1146      // <init> function before java_lang_Class is linked. Print error and exit.
1147      tty->print_cr("ProtectionDomain.impliesCreateAccessControlContext() has the wrong linkage");
1148      return false; // initialization failed
1149    }
1150    Universe::_pd_implies_cache->init(
1151      SystemDictionary::ProtectionDomain_klass(), m);;
1152  }
1153
1154  // This needs to be done before the first scavenge/gc, since
1155  // it's an input to soft ref clearing policy.
1156  {
1157    MutexLocker x(Heap_lock);
1158    Universe::update_heap_info_at_gc();
1159  }
1160
1161  // ("weak") refs processing infrastructure initialization
1162  Universe::heap()->post_initialize();
1163
1164  // Initialize performance counters for metaspaces
1165  MetaspaceCounters::initialize_performance_counters();
1166  CompressedClassSpaceCounters::initialize_performance_counters();
1167
1168  MemoryService::add_metaspace_memory_pools();
1169
1170  MemoryService::set_universe_heap(Universe::_collectedHeap);
1171#if INCLUDE_CDS
1172  if (UseSharedSpaces) {
1173    SharedClassUtil::initialize(CHECK_false);
1174  }
1175#endif
1176  return true;
1177}
1178
1179
1180void Universe::compute_base_vtable_size() {
1181  _base_vtable_size = ClassLoader::compute_Object_vtable();
1182}
1183
1184
1185// %%% The Universe::flush_foo methods belong in CodeCache.
1186
1187// Flushes compiled methods dependent on dependee.
1188void Universe::flush_dependents_on(instanceKlassHandle dependee) {
1189  assert_lock_strong(Compile_lock);
1190
1191  if (CodeCache::number_of_nmethods_with_dependencies() == 0) return;
1192
1193  // CodeCache can only be updated by a thread_in_VM and they will all be
1194  // stopped during the safepoint so CodeCache will be safe to update without
1195  // holding the CodeCache_lock.
1196
1197  KlassDepChange changes(dependee);
1198
1199  // Compute the dependent nmethods
1200  if (CodeCache::mark_for_deoptimization(changes) > 0) {
1201    // At least one nmethod has been marked for deoptimization
1202    VM_Deoptimize op;
1203    VMThread::execute(&op);
1204  }
1205}
1206
1207// Flushes compiled methods dependent on a particular CallSite
1208// instance when its target is different than the given MethodHandle.
1209void Universe::flush_dependents_on(Handle call_site, Handle method_handle) {
1210  assert_lock_strong(Compile_lock);
1211
1212  if (CodeCache::number_of_nmethods_with_dependencies() == 0) return;
1213
1214  // CodeCache can only be updated by a thread_in_VM and they will all be
1215  // stopped during the safepoint so CodeCache will be safe to update without
1216  // holding the CodeCache_lock.
1217
1218  CallSiteDepChange changes(call_site(), method_handle());
1219
1220  // Compute the dependent nmethods that have a reference to a
1221  // CallSite object.  We use InstanceKlass::mark_dependent_nmethod
1222  // directly instead of CodeCache::mark_for_deoptimization because we
1223  // want dependents on the call site class only not all classes in
1224  // the ContextStream.
1225  int marked = 0;
1226  {
1227    MutexLockerEx mu(CodeCache_lock, Mutex::_no_safepoint_check_flag);
1228    InstanceKlass* call_site_klass = InstanceKlass::cast(call_site->klass());
1229    marked = call_site_klass->mark_dependent_nmethods(changes);
1230  }
1231  if (marked > 0) {
1232    // At least one nmethod has been marked for deoptimization
1233    VM_Deoptimize op;
1234    VMThread::execute(&op);
1235  }
1236}
1237
1238#ifdef HOTSWAP
1239// Flushes compiled methods dependent on dependee in the evolutionary sense
1240void Universe::flush_evol_dependents_on(instanceKlassHandle ev_k_h) {
1241  // --- Compile_lock is not held. However we are at a safepoint.
1242  assert_locked_or_safepoint(Compile_lock);
1243  if (CodeCache::number_of_nmethods_with_dependencies() == 0) return;
1244
1245  // CodeCache can only be updated by a thread_in_VM and they will all be
1246  // stopped during the safepoint so CodeCache will be safe to update without
1247  // holding the CodeCache_lock.
1248
1249  // Compute the dependent nmethods
1250  if (CodeCache::mark_for_evol_deoptimization(ev_k_h) > 0) {
1251    // At least one nmethod has been marked for deoptimization
1252
1253    // All this already happens inside a VM_Operation, so we'll do all the work here.
1254    // Stuff copied from VM_Deoptimize and modified slightly.
1255
1256    // We do not want any GCs to happen while we are in the middle of this VM operation
1257    ResourceMark rm;
1258    DeoptimizationMarker dm;
1259
1260    // Deoptimize all activations depending on marked nmethods
1261    Deoptimization::deoptimize_dependents();
1262
1263    // Make the dependent methods not entrant (in VM_Deoptimize they are made zombies)
1264    CodeCache::make_marked_nmethods_not_entrant();
1265  }
1266}
1267#endif // HOTSWAP
1268
1269
1270// Flushes compiled methods dependent on dependee
1271void Universe::flush_dependents_on_method(methodHandle m_h) {
1272  // --- Compile_lock is not held. However we are at a safepoint.
1273  assert_locked_or_safepoint(Compile_lock);
1274
1275  // CodeCache can only be updated by a thread_in_VM and they will all be
1276  // stopped dring the safepoint so CodeCache will be safe to update without
1277  // holding the CodeCache_lock.
1278
1279  // Compute the dependent nmethods
1280  if (CodeCache::mark_for_deoptimization(m_h()) > 0) {
1281    // At least one nmethod has been marked for deoptimization
1282
1283    // All this already happens inside a VM_Operation, so we'll do all the work here.
1284    // Stuff copied from VM_Deoptimize and modified slightly.
1285
1286    // We do not want any GCs to happen while we are in the middle of this VM operation
1287    ResourceMark rm;
1288    DeoptimizationMarker dm;
1289
1290    // Deoptimize all activations depending on marked nmethods
1291    Deoptimization::deoptimize_dependents();
1292
1293    // Make the dependent methods not entrant (in VM_Deoptimize they are made zombies)
1294    CodeCache::make_marked_nmethods_not_entrant();
1295  }
1296}
1297
1298void Universe::print() {
1299  print_on(gclog_or_tty);
1300}
1301
1302void Universe::print_on(outputStream* st, bool extended) {
1303  st->print_cr("Heap");
1304  if (!extended) {
1305    heap()->print_on(st);
1306  } else {
1307    heap()->print_extended_on(st);
1308  }
1309}
1310
1311void Universe::print_heap_at_SIGBREAK() {
1312  if (PrintHeapAtSIGBREAK) {
1313    MutexLocker hl(Heap_lock);
1314    print_on(tty);
1315    tty->cr();
1316    tty->flush();
1317  }
1318}
1319
1320void Universe::print_heap_before_gc(outputStream* st, bool ignore_extended) {
1321  st->print_cr("{Heap before GC invocations=%u (full %u):",
1322               heap()->total_collections(),
1323               heap()->total_full_collections());
1324  if (!PrintHeapAtGCExtended || ignore_extended) {
1325    heap()->print_on(st);
1326  } else {
1327    heap()->print_extended_on(st);
1328  }
1329}
1330
1331void Universe::print_heap_after_gc(outputStream* st, bool ignore_extended) {
1332  st->print_cr("Heap after GC invocations=%u (full %u):",
1333               heap()->total_collections(),
1334               heap()->total_full_collections());
1335  if (!PrintHeapAtGCExtended || ignore_extended) {
1336    heap()->print_on(st);
1337  } else {
1338    heap()->print_extended_on(st);
1339  }
1340  st->print_cr("}");
1341}
1342
1343void Universe::verify(VerifyOption option, const char* prefix, bool silent) {
1344  // The use of _verify_in_progress is a temporary work around for
1345  // 6320749.  Don't bother with a creating a class to set and clear
1346  // it since it is only used in this method and the control flow is
1347  // straight forward.
1348  _verify_in_progress = true;
1349
1350  COMPILER2_PRESENT(
1351    assert(!DerivedPointerTable::is_active(),
1352         "DPT should not be active during verification "
1353         "(of thread stacks below)");
1354  )
1355
1356  ResourceMark rm;
1357  HandleMark hm;  // Handles created during verification can be zapped
1358  _verify_count++;
1359
1360  if (!silent) gclog_or_tty->print("%s", prefix);
1361  if (!silent) gclog_or_tty->print("[Verifying ");
1362  if (!silent) gclog_or_tty->print("threads ");
1363  Threads::verify();
1364  if (!silent) gclog_or_tty->print("heap ");
1365  heap()->verify(silent, option);
1366  if (!silent) gclog_or_tty->print("syms ");
1367  SymbolTable::verify();
1368  if (!silent) gclog_or_tty->print("strs ");
1369  StringTable::verify();
1370  {
1371    MutexLockerEx mu(CodeCache_lock, Mutex::_no_safepoint_check_flag);
1372    if (!silent) gclog_or_tty->print("zone ");
1373    CodeCache::verify();
1374  }
1375  if (!silent) gclog_or_tty->print("dict ");
1376  SystemDictionary::verify();
1377#ifndef PRODUCT
1378  if (!silent) gclog_or_tty->print("cldg ");
1379  ClassLoaderDataGraph::verify();
1380#endif
1381  if (!silent) gclog_or_tty->print("metaspace chunks ");
1382  MetaspaceAux::verify_free_chunks();
1383  if (!silent) gclog_or_tty->print("hand ");
1384  JNIHandles::verify();
1385  if (!silent) gclog_or_tty->print("C-heap ");
1386  os::check_heap();
1387  if (!silent) gclog_or_tty->print("code cache ");
1388  CodeCache::verify_oops();
1389  if (!silent) gclog_or_tty->print_cr("]");
1390
1391  _verify_in_progress = false;
1392}
1393
1394// Oop verification (see MacroAssembler::verify_oop)
1395
1396static uintptr_t _verify_oop_data[2]   = {0, (uintptr_t)-1};
1397static uintptr_t _verify_klass_data[2] = {0, (uintptr_t)-1};
1398
1399
1400#ifndef PRODUCT
1401
1402static void calculate_verify_data(uintptr_t verify_data[2],
1403                                  HeapWord* low_boundary,
1404                                  HeapWord* high_boundary) {
1405  assert(low_boundary < high_boundary, "bad interval");
1406
1407  // decide which low-order bits we require to be clear:
1408  size_t alignSize = MinObjAlignmentInBytes;
1409  size_t min_object_size = CollectedHeap::min_fill_size();
1410
1411  // make an inclusive limit:
1412  uintptr_t max = (uintptr_t)high_boundary - min_object_size*wordSize;
1413  uintptr_t min = (uintptr_t)low_boundary;
1414  assert(min < max, "bad interval");
1415  uintptr_t diff = max ^ min;
1416
1417  // throw away enough low-order bits to make the diff vanish
1418  uintptr_t mask = (uintptr_t)(-1);
1419  while ((mask & diff) != 0)
1420    mask <<= 1;
1421  uintptr_t bits = (min & mask);
1422  assert(bits == (max & mask), "correct mask");
1423  // check an intermediate value between min and max, just to make sure:
1424  assert(bits == ((min + (max-min)/2) & mask), "correct mask");
1425
1426  // require address alignment, too:
1427  mask |= (alignSize - 1);
1428
1429  if (!(verify_data[0] == 0 && verify_data[1] == (uintptr_t)-1)) {
1430    assert(verify_data[0] == mask && verify_data[1] == bits, "mask stability");
1431  }
1432  verify_data[0] = mask;
1433  verify_data[1] = bits;
1434}
1435
1436// Oop verification (see MacroAssembler::verify_oop)
1437
1438uintptr_t Universe::verify_oop_mask() {
1439  MemRegion m = heap()->reserved_region();
1440  calculate_verify_data(_verify_oop_data,
1441                        m.start(),
1442                        m.end());
1443  return _verify_oop_data[0];
1444}
1445
1446
1447
1448uintptr_t Universe::verify_oop_bits() {
1449  verify_oop_mask();
1450  return _verify_oop_data[1];
1451}
1452
1453uintptr_t Universe::verify_mark_mask() {
1454  return markOopDesc::lock_mask_in_place;
1455}
1456
1457uintptr_t Universe::verify_mark_bits() {
1458  intptr_t mask = verify_mark_mask();
1459  intptr_t bits = (intptr_t)markOopDesc::prototype();
1460  assert((bits & ~mask) == 0, "no stray header bits");
1461  return bits;
1462}
1463#endif // PRODUCT
1464
1465
1466void Universe::compute_verify_oop_data() {
1467  verify_oop_mask();
1468  verify_oop_bits();
1469  verify_mark_mask();
1470  verify_mark_bits();
1471}
1472
1473
1474void LatestMethodCache::init(Klass* k, Method* m) {
1475  if (!UseSharedSpaces) {
1476    _klass = k;
1477  }
1478#ifndef PRODUCT
1479  else {
1480    // sharing initilization should have already set up _klass
1481    assert(_klass != NULL, "just checking");
1482  }
1483#endif
1484
1485  _method_idnum = m->method_idnum();
1486  assert(_method_idnum >= 0, "sanity check");
1487}
1488
1489
1490Method* LatestMethodCache::get_method() {
1491  if (klass() == NULL) return NULL;
1492  InstanceKlass* ik = InstanceKlass::cast(klass());
1493  Method* m = ik->method_with_idnum(method_idnum());
1494  assert(m != NULL, "sanity check");
1495  return m;
1496}
1497
1498
1499#ifdef ASSERT
1500// Release dummy object(s) at bottom of heap
1501bool Universe::release_fullgc_alot_dummy() {
1502  MutexLocker ml(FullGCALot_lock);
1503  if (_fullgc_alot_dummy_array != NULL) {
1504    if (_fullgc_alot_dummy_next >= _fullgc_alot_dummy_array->length()) {
1505      // No more dummies to release, release entire array instead
1506      _fullgc_alot_dummy_array = NULL;
1507      return false;
1508    }
1509    if (!UseConcMarkSweepGC) {
1510      // Release dummy at bottom of old generation
1511      _fullgc_alot_dummy_array->obj_at_put(_fullgc_alot_dummy_next++, NULL);
1512    }
1513    // Release dummy at bottom of permanent generation
1514    _fullgc_alot_dummy_array->obj_at_put(_fullgc_alot_dummy_next++, NULL);
1515  }
1516  return true;
1517}
1518
1519#endif // ASSERT
1520