instanceKlass.cpp 135.8 KB
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/*
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 * Copyright (c) 1997, 2013, Oracle and/or its affiliates. All rights reserved.
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 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
 *
 * This code is free software; you can redistribute it and/or modify it
 * under the terms of the GNU General Public License version 2 only, as
 * published by the Free Software Foundation.
 *
 * This code is distributed in the hope that it will be useful, but WITHOUT
 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
 * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
 * version 2 for more details (a copy is included in the LICENSE file that
 * accompanied this code).
 *
 * You should have received a copy of the GNU General Public License version
 * 2 along with this work; if not, write to the Free Software Foundation,
 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
 *
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 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
 * or visit www.oracle.com if you need additional information or have any
 * questions.
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 *
 */

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#include "precompiled.hpp"
#include "classfile/javaClasses.hpp"
#include "classfile/systemDictionary.hpp"
#include "classfile/verifier.hpp"
#include "classfile/vmSymbols.hpp"
#include "compiler/compileBroker.hpp"
#include "gc_implementation/shared/markSweep.inline.hpp"
#include "gc_interface/collectedHeap.inline.hpp"
#include "interpreter/oopMapCache.hpp"
#include "interpreter/rewriter.hpp"
#include "jvmtifiles/jvmti.h"
#include "memory/genOopClosures.inline.hpp"
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#include "memory/heapInspection.hpp"
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#include "memory/metadataFactory.hpp"
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#include "memory/oopFactory.hpp"
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#include "oops/fieldStreams.hpp"
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#include "oops/instanceClassLoaderKlass.hpp"
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#include "oops/instanceKlass.hpp"
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#include "oops/instanceMirrorKlass.hpp"
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#include "oops/instanceOop.hpp"
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#include "oops/klass.inline.hpp"
#include "oops/method.hpp"
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#include "oops/oop.inline.hpp"
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#include "oops/symbol.hpp"
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#include "prims/jvmtiExport.hpp"
#include "prims/jvmtiRedefineClassesTrace.hpp"
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#include "prims/jvmtiRedefineClasses.hpp"
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#include "prims/methodComparator.hpp"
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#include "runtime/fieldDescriptor.hpp"
#include "runtime/handles.inline.hpp"
#include "runtime/javaCalls.hpp"
#include "runtime/mutexLocker.hpp"
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#include "runtime/thread.inline.hpp"
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#include "services/classLoadingService.hpp"
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#include "services/threadService.hpp"
#include "utilities/dtrace.hpp"
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#include "utilities/macros.hpp"
#if INCLUDE_ALL_GCS
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#include "gc_implementation/concurrentMarkSweep/cmsOopClosures.inline.hpp"
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#include "gc_implementation/g1/g1CollectedHeap.inline.hpp"
#include "gc_implementation/g1/g1OopClosures.inline.hpp"
#include "gc_implementation/g1/g1RemSet.inline.hpp"
#include "gc_implementation/g1/heapRegionSeq.inline.hpp"
#include "gc_implementation/parNew/parOopClosures.inline.hpp"
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#include "gc_implementation/parallelScavenge/parallelScavengeHeap.inline.hpp"
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#include "gc_implementation/parallelScavenge/psPromotionManager.inline.hpp"
#include "gc_implementation/parallelScavenge/psScavenge.inline.hpp"
#include "oops/oop.pcgc.inline.hpp"
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#endif // INCLUDE_ALL_GCS
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#ifdef COMPILER1
#include "c1/c1_Compiler.hpp"
#endif
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#ifdef DTRACE_ENABLED

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#ifndef USDT2

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HS_DTRACE_PROBE_DECL4(hotspot, class__initialization__required,
  char*, intptr_t, oop, intptr_t);
HS_DTRACE_PROBE_DECL5(hotspot, class__initialization__recursive,
  char*, intptr_t, oop, intptr_t, int);
HS_DTRACE_PROBE_DECL5(hotspot, class__initialization__concurrent,
  char*, intptr_t, oop, intptr_t, int);
HS_DTRACE_PROBE_DECL5(hotspot, class__initialization__erroneous,
  char*, intptr_t, oop, intptr_t, int);
HS_DTRACE_PROBE_DECL5(hotspot, class__initialization__super__failed,
  char*, intptr_t, oop, intptr_t, int);
HS_DTRACE_PROBE_DECL5(hotspot, class__initialization__clinit,
  char*, intptr_t, oop, intptr_t, int);
HS_DTRACE_PROBE_DECL5(hotspot, class__initialization__error,
  char*, intptr_t, oop, intptr_t, int);
HS_DTRACE_PROBE_DECL5(hotspot, class__initialization__end,
  char*, intptr_t, oop, intptr_t, int);

#define DTRACE_CLASSINIT_PROBE(type, clss, thread_type)          \
  {                                                              \
    char* data = NULL;                                           \
    int len = 0;                                                 \
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    Symbol* name = (clss)->name();                               \
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    if (name != NULL) {                                          \
      data = (char*)name->bytes();                               \
      len = name->utf8_length();                                 \
    }                                                            \
    HS_DTRACE_PROBE4(hotspot, class__initialization__##type,     \
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      data, len, SOLARIS_ONLY((void *))(clss)->class_loader(), thread_type);           \
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  }

#define DTRACE_CLASSINIT_PROBE_WAIT(type, clss, thread_type, wait) \
  {                                                              \
    char* data = NULL;                                           \
    int len = 0;                                                 \
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    Symbol* name = (clss)->name();                               \
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    if (name != NULL) {                                          \
      data = (char*)name->bytes();                               \
      len = name->utf8_length();                                 \
    }                                                            \
    HS_DTRACE_PROBE5(hotspot, class__initialization__##type,     \
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      data, len, SOLARIS_ONLY((void *))(clss)->class_loader(), thread_type, wait);     \
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  }
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#else /* USDT2 */

#define HOTSPOT_CLASS_INITIALIZATION_required HOTSPOT_CLASS_INITIALIZATION_REQUIRED
#define HOTSPOT_CLASS_INITIALIZATION_recursive HOTSPOT_CLASS_INITIALIZATION_RECURSIVE
#define HOTSPOT_CLASS_INITIALIZATION_concurrent HOTSPOT_CLASS_INITIALIZATION_CONCURRENT
#define HOTSPOT_CLASS_INITIALIZATION_erroneous HOTSPOT_CLASS_INITIALIZATION_ERRONEOUS
#define HOTSPOT_CLASS_INITIALIZATION_super__failed HOTSPOT_CLASS_INITIALIZATION_SUPER_FAILED
#define HOTSPOT_CLASS_INITIALIZATION_clinit HOTSPOT_CLASS_INITIALIZATION_CLINIT
#define HOTSPOT_CLASS_INITIALIZATION_error HOTSPOT_CLASS_INITIALIZATION_ERROR
#define HOTSPOT_CLASS_INITIALIZATION_end HOTSPOT_CLASS_INITIALIZATION_END
#define DTRACE_CLASSINIT_PROBE(type, clss, thread_type)          \
  {                                                              \
    char* data = NULL;                                           \
    int len = 0;                                                 \
    Symbol* name = (clss)->name();                               \
    if (name != NULL) {                                          \
      data = (char*)name->bytes();                               \
      len = name->utf8_length();                                 \
    }                                                            \
    HOTSPOT_CLASS_INITIALIZATION_##type(                         \
      data, len, (clss)->class_loader(), thread_type);           \
  }

#define DTRACE_CLASSINIT_PROBE_WAIT(type, clss, thread_type, wait) \
  {                                                              \
    char* data = NULL;                                           \
    int len = 0;                                                 \
    Symbol* name = (clss)->name();                               \
    if (name != NULL) {                                          \
      data = (char*)name->bytes();                               \
      len = name->utf8_length();                                 \
    }                                                            \
    HOTSPOT_CLASS_INITIALIZATION_##type(                         \
      data, len, (clss)->class_loader(), thread_type, wait);     \
  }
#endif /* USDT2 */
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#else //  ndef DTRACE_ENABLED

#define DTRACE_CLASSINIT_PROBE(type, clss, thread_type)
#define DTRACE_CLASSINIT_PROBE_WAIT(type, clss, thread_type, wait)

#endif //  ndef DTRACE_ENABLED

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volatile int InstanceKlass::_total_instanceKlass_count = 0;

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InstanceKlass* InstanceKlass::allocate_instance_klass(
                                              ClassLoaderData* loader_data,
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                                              int vtable_len,
                                              int itable_len,
                                              int static_field_size,
                                              int nonstatic_oop_map_size,
                                              ReferenceType rt,
                                              AccessFlags access_flags,
                                              Symbol* name,
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                                              Klass* super_klass,
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                                              bool is_anonymous,
                                              TRAPS) {
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  int size = InstanceKlass::size(vtable_len, itable_len, nonstatic_oop_map_size,
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                                 access_flags.is_interface(), is_anonymous);
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  // Allocation
  InstanceKlass* ik;
  if (rt == REF_NONE) {
    if (name == vmSymbols::java_lang_Class()) {
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      ik = new (loader_data, size, THREAD) InstanceMirrorKlass(
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        vtable_len, itable_len, static_field_size, nonstatic_oop_map_size, rt,
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        access_flags, is_anonymous);
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    } else if (name == vmSymbols::java_lang_ClassLoader() ||
          (SystemDictionary::ClassLoader_klass_loaded() &&
          super_klass != NULL &&
          super_klass->is_subtype_of(SystemDictionary::ClassLoader_klass()))) {
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      ik = new (loader_data, size, THREAD) InstanceClassLoaderKlass(
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        vtable_len, itable_len, static_field_size, nonstatic_oop_map_size, rt,
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        access_flags, is_anonymous);
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    } else {
      // normal class
      ik = new (loader_data, size, THREAD) InstanceKlass(
        vtable_len, itable_len, static_field_size, nonstatic_oop_map_size, rt,
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        access_flags, is_anonymous);
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    }
  } else {
    // reference klass
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    ik = new (loader_data, size, THREAD) InstanceRefKlass(
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        vtable_len, itable_len, static_field_size, nonstatic_oop_map_size, rt,
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        access_flags, is_anonymous);
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  }

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  // Check for pending exception before adding to the loader data and incrementing
  // class count.  Can get OOM here.
  if (HAS_PENDING_EXCEPTION) {
    return NULL;
  }

  // Add all classes to our internal class loader list here,
  // including classes in the bootstrap (NULL) class loader.
  loader_data->add_class(ik);

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  Atomic::inc(&_total_instanceKlass_count);
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  return ik;
}

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// copy method ordering from resource area to Metaspace
void InstanceKlass::copy_method_ordering(intArray* m, TRAPS) {
  if (m != NULL) {
    // allocate a new array and copy contents (memcpy?)
    _method_ordering = MetadataFactory::new_array<int>(class_loader_data(), m->length(), CHECK);
    for (int i = 0; i < m->length(); i++) {
      _method_ordering->at_put(i, m->at(i));
    }
  } else {
    _method_ordering = Universe::the_empty_int_array();
  }
}

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// create a new array of vtable_indices for default methods
Array<int>* InstanceKlass::create_new_default_vtable_indices(int len, TRAPS) {
  Array<int>* vtable_indices = MetadataFactory::new_array<int>(class_loader_data(), len, CHECK_NULL);
  assert(default_vtable_indices() == NULL, "only create once");
  set_default_vtable_indices(vtable_indices);
  return vtable_indices;
}
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InstanceKlass::InstanceKlass(int vtable_len,
                             int itable_len,
                             int static_field_size,
                             int nonstatic_oop_map_size,
                             ReferenceType rt,
                             AccessFlags access_flags,
                             bool is_anonymous) {
  No_Safepoint_Verifier no_safepoint; // until k becomes parsable

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  int iksize = InstanceKlass::size(vtable_len, itable_len, nonstatic_oop_map_size,
                                   access_flags.is_interface(), is_anonymous);
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  set_vtable_length(vtable_len);
  set_itable_length(itable_len);
  set_static_field_size(static_field_size);
  set_nonstatic_oop_map_size(nonstatic_oop_map_size);
  set_access_flags(access_flags);
  _misc_flags = 0;  // initialize to zero
  set_is_anonymous(is_anonymous);
  assert(size() == iksize, "wrong size for object");

  set_array_klasses(NULL);
  set_methods(NULL);
  set_method_ordering(NULL);
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  set_default_methods(NULL);
  set_default_vtable_indices(NULL);
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  set_local_interfaces(NULL);
  set_transitive_interfaces(NULL);
  init_implementor();
  set_fields(NULL, 0);
  set_constants(NULL);
  set_class_loader_data(NULL);
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  set_source_file_name_index(0);
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  set_source_debug_extension(NULL, 0);
  set_array_name(NULL);
  set_inner_classes(NULL);
  set_static_oop_field_count(0);
  set_nonstatic_field_size(0);
  set_is_marked_dependent(false);
  set_init_state(InstanceKlass::allocated);
  set_init_thread(NULL);
  set_reference_type(rt);
  set_oop_map_cache(NULL);
  set_jni_ids(NULL);
  set_osr_nmethods_head(NULL);
  set_breakpoints(NULL);
  init_previous_versions();
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  set_generic_signature_index(0);
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  release_set_methods_jmethod_ids(NULL);
  set_annotations(NULL);
  set_jvmti_cached_class_field_map(NULL);
  set_initial_method_idnum(0);
  _dependencies = NULL;
  set_jvmti_cached_class_field_map(NULL);
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  set_cached_class_file(NULL);
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  set_initial_method_idnum(0);
  set_minor_version(0);
  set_major_version(0);
  NOT_PRODUCT(_verify_count = 0;)
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  // initialize the non-header words to zero
  intptr_t* p = (intptr_t*)this;
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  for (int index = InstanceKlass::header_size(); index < iksize; index++) {
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    p[index] = NULL_WORD;
  }

  // Set temporary value until parseClassFile updates it with the real instance
  // size.
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  set_layout_helper(Klass::instance_layout_helper(0, true));
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}


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void InstanceKlass::deallocate_methods(ClassLoaderData* loader_data,
                                       Array<Method*>* methods) {
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  if (methods != NULL && methods != Universe::the_empty_method_array() &&
      !methods->is_shared()) {
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    for (int i = 0; i < methods->length(); i++) {
      Method* method = methods->at(i);
      if (method == NULL) continue;  // maybe null if error processing
      // Only want to delete methods that are not executing for RedefineClasses.
      // The previous version will point to them so they're not totally dangling
      assert (!method->on_stack(), "shouldn't be called with methods on stack");
      MetadataFactory::free_metadata(loader_data, method);
    }
    MetadataFactory::free_array<Method*>(loader_data, methods);
  }
}

void InstanceKlass::deallocate_interfaces(ClassLoaderData* loader_data,
                                          Klass* super_klass,
                                          Array<Klass*>* local_interfaces,
                                          Array<Klass*>* transitive_interfaces) {
  // Only deallocate transitive interfaces if not empty, same as super class
  // or same as local interfaces.  See code in parseClassFile.
  Array<Klass*>* ti = transitive_interfaces;
  if (ti != Universe::the_empty_klass_array() && ti != local_interfaces) {
    // check that the interfaces don't come from super class
    Array<Klass*>* sti = (super_klass == NULL) ? NULL :
                    InstanceKlass::cast(super_klass)->transitive_interfaces();
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    if (ti != sti && ti != NULL && !ti->is_shared()) {
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      MetadataFactory::free_array<Klass*>(loader_data, ti);
    }
  }

  // local interfaces can be empty
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  if (local_interfaces != Universe::the_empty_klass_array() &&
      local_interfaces != NULL && !local_interfaces->is_shared()) {
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    MetadataFactory::free_array<Klass*>(loader_data, local_interfaces);
  }
}

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// This function deallocates the metadata and C heap pointers that the
// InstanceKlass points to.
void InstanceKlass::deallocate_contents(ClassLoaderData* loader_data) {

  // Orphan the mirror first, CMS thinks it's still live.
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  if (java_mirror() != NULL) {
    java_lang_Class::set_klass(java_mirror(), NULL);
  }
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  // Need to take this class off the class loader data list.
  loader_data->remove_class(this);

  // The array_klass for this class is created later, after error handling.
  // For class redefinition, we keep the original class so this scratch class
  // doesn't have an array class.  Either way, assert that there is nothing
  // to deallocate.
  assert(array_klasses() == NULL, "array classes shouldn't be created for this class yet");

  // Release C heap allocated data that this might point to, which includes
  // reference counting symbol names.
  release_C_heap_structures();

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  deallocate_methods(loader_data, methods());
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  set_methods(NULL);

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  if (method_ordering() != NULL &&
      method_ordering() != Universe::the_empty_int_array() &&
      !method_ordering()->is_shared()) {
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    MetadataFactory::free_array<int>(loader_data, method_ordering());
  }
  set_method_ordering(NULL);

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  // default methods can be empty
  if (default_methods() != NULL &&
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      default_methods() != Universe::the_empty_method_array() &&
      !default_methods()->is_shared()) {
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    MetadataFactory::free_array<Method*>(loader_data, default_methods());
  }
  // Do NOT deallocate the default methods, they are owned by superinterfaces.
  set_default_methods(NULL);

  // default methods vtable indices can be empty
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  if (default_vtable_indices() != NULL &&
      !default_vtable_indices()->is_shared()) {
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    MetadataFactory::free_array<int>(loader_data, default_vtable_indices());
  }
  set_default_vtable_indices(NULL);


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  // This array is in Klass, but remove it with the InstanceKlass since
  // this place would be the only caller and it can share memory with transitive
  // interfaces.
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  if (secondary_supers() != NULL &&
      secondary_supers() != Universe::the_empty_klass_array() &&
      secondary_supers() != transitive_interfaces() &&
      !secondary_supers()->is_shared()) {
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    MetadataFactory::free_array<Klass*>(loader_data, secondary_supers());
  }
  set_secondary_supers(NULL);

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  deallocate_interfaces(loader_data, super(), local_interfaces(), transitive_interfaces());
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  set_transitive_interfaces(NULL);
  set_local_interfaces(NULL);

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  if (fields() != NULL && !fields()->is_shared()) {
    MetadataFactory::free_array<jushort>(loader_data, fields());
  }
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  set_fields(NULL, 0);

  // If a method from a redefined class is using this constant pool, don't
  // delete it, yet.  The new class's previous version will point to this.
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  if (constants() != NULL) {
    assert (!constants()->on_stack(), "shouldn't be called if anything is onstack");
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    if (!constants()->is_shared()) {
      MetadataFactory::free_metadata(loader_data, constants());
    }
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    set_constants(NULL);
  }
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  if (inner_classes() != NULL &&
      inner_classes() != Universe::the_empty_short_array() &&
      !inner_classes()->is_shared()) {
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    MetadataFactory::free_array<jushort>(loader_data, inner_classes());
  }
  set_inner_classes(NULL);

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  // We should deallocate the Annotations instance if it's not in shared spaces.
  if (annotations() != NULL && !annotations()->is_shared()) {
    MetadataFactory::free_metadata(loader_data, annotations());
  }
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  set_annotations(NULL);
}

bool InstanceKlass::should_be_initialized() const {
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  return !is_initialized();
}

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klassVtable* InstanceKlass::vtable() const {
  return new klassVtable(this, start_of_vtable(), vtable_length() / vtableEntry::size());
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}

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klassItable* InstanceKlass::itable() const {
  return new klassItable(instanceKlassHandle(this));
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}

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void InstanceKlass::eager_initialize(Thread *thread) {
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  if (!EagerInitialization) return;

  if (this->is_not_initialized()) {
    // abort if the the class has a class initializer
    if (this->class_initializer() != NULL) return;

    // abort if it is java.lang.Object (initialization is handled in genesis)
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    Klass* super = this->super();
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    if (super == NULL) return;

    // abort if the super class should be initialized
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    if (!InstanceKlass::cast(super)->is_initialized()) return;
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    // call body to expose the this pointer
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    instanceKlassHandle this_oop(thread, this);
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    eager_initialize_impl(this_oop);
  }
}

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// JVMTI spec thinks there are signers and protection domain in the
// instanceKlass.  These accessors pretend these fields are there.
// The hprof specification also thinks these fields are in InstanceKlass.
oop InstanceKlass::protection_domain() const {
  // return the protection_domain from the mirror
  return java_lang_Class::protection_domain(java_mirror());
}

// To remove these from requires an incompatible change and CCC request.
objArrayOop InstanceKlass::signers() const {
  // return the signers from the mirror
  return java_lang_Class::signers(java_mirror());
}

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oop InstanceKlass::init_lock() const {
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  // return the init lock from the mirror
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  oop lock = java_lang_Class::init_lock(java_mirror());
  assert((oop)lock != NULL || !is_not_initialized(), // initialized or in_error state
         "only fully initialized state can have a null lock");
  return lock;
}

// Set the initialization lock to null so the object can be GC'ed.  Any racing
// threads to get this lock will see a null lock and will not lock.
// That's okay because they all check for initialized state after getting
// the lock and return.
void InstanceKlass::fence_and_clear_init_lock() {
  // make sure previous stores are all done, notably the init_state.
  OrderAccess::storestore();
  java_lang_Class::set_init_lock(java_mirror(), NULL);
  assert(!is_not_initialized(), "class must be initialized now");
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}
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void InstanceKlass::eager_initialize_impl(instanceKlassHandle this_oop) {
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  EXCEPTION_MARK;
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  oop init_lock = this_oop->init_lock();
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  ObjectLocker ol(init_lock, THREAD, init_lock != NULL);
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  // abort if someone beat us to the initialization
  if (!this_oop->is_not_initialized()) return;  // note: not equivalent to is_initialized()

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  ClassState old_state = this_oop->init_state();
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  link_class_impl(this_oop, true, THREAD);
  if (HAS_PENDING_EXCEPTION) {
    CLEAR_PENDING_EXCEPTION;
    // Abort if linking the class throws an exception.

    // Use a test to avoid redundantly resetting the state if there's
    // no change.  Set_init_state() asserts that state changes make
    // progress, whereas here we might just be spinning in place.
    if( old_state != this_oop->_init_state )
      this_oop->set_init_state (old_state);
  } else {
    // linking successfull, mark class as initialized
    this_oop->set_init_state (fully_initialized);
540
    this_oop->fence_and_clear_init_lock();
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    // trace
    if (TraceClassInitialization) {
      ResourceMark rm(THREAD);
      tty->print_cr("[Initialized %s without side effects]", this_oop->external_name());
    }
  }
}


// See "The Virtual Machine Specification" section 2.16.5 for a detailed explanation of the class initialization
// process. The step comments refers to the procedure described in that section.
// Note: implementation moved to static method to expose the this pointer.
553
void InstanceKlass::initialize(TRAPS) {
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  if (this->should_be_initialized()) {
    HandleMark hm(THREAD);
556
    instanceKlassHandle this_oop(THREAD, this);
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    initialize_impl(this_oop, CHECK);
    // Note: at this point the class may be initialized
    //       OR it may be in the state of being initialized
    //       in case of recursive initialization!
  } else {
    assert(is_initialized(), "sanity check");
  }
}


567
bool InstanceKlass::verify_code(
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    instanceKlassHandle this_oop, bool throw_verifyerror, TRAPS) {
  // 1) Verify the bytecodes
  Verifier::Mode mode =
    throw_verifyerror ? Verifier::ThrowException : Verifier::NoException;
572
  return Verifier::verify(this_oop, mode, this_oop->should_verify_class(), CHECK_false);
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}


// Used exclusively by the shared spaces dump mechanism to prevent
// classes mapped into the shared regions in new VMs from appearing linked.

579
void InstanceKlass::unlink_class() {
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  assert(is_linked(), "must be linked");
  _init_state = loaded;
}

584
void InstanceKlass::link_class(TRAPS) {
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  assert(is_loaded(), "must be loaded");
  if (!is_linked()) {
587 588
    HandleMark hm(THREAD);
    instanceKlassHandle this_oop(THREAD, this);
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    link_class_impl(this_oop, true, CHECK);
  }
}

// Called to verify that a class can link during initialization, without
// throwing a VerifyError.
595
bool InstanceKlass::link_class_or_fail(TRAPS) {
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  assert(is_loaded(), "must be loaded");
  if (!is_linked()) {
598 599
    HandleMark hm(THREAD);
    instanceKlassHandle this_oop(THREAD, this);
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    link_class_impl(this_oop, false, CHECK_false);
  }
  return is_linked();
}

605
bool InstanceKlass::link_class_impl(
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    instanceKlassHandle this_oop, bool throw_verifyerror, TRAPS) {
  // check for error state
  if (this_oop->is_in_error_state()) {
    ResourceMark rm(THREAD);
    THROW_MSG_(vmSymbols::java_lang_NoClassDefFoundError(),
               this_oop->external_name(), false);
  }
  // return if already verified
  if (this_oop->is_linked()) {
    return true;
  }

  // Timing
  // timer handles recursion
  assert(THREAD->is_Java_thread(), "non-JavaThread in link_class_impl");
  JavaThread* jt = (JavaThread*)THREAD;

  // link super class before linking this class
  instanceKlassHandle super(THREAD, this_oop->super());
  if (super.not_null()) {
    if (super->is_interface()) {  // check if super class is an interface
      ResourceMark rm(THREAD);
      Exceptions::fthrow(
        THREAD_AND_LOCATION,
630
        vmSymbols::java_lang_IncompatibleClassChangeError(),
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        "class %s has interface %s as super class",
        this_oop->external_name(),
        super->external_name()
      );
      return false;
    }

    link_class_impl(super, throw_verifyerror, CHECK_false);
  }

  // link all interfaces implemented by this class before linking this class
642
  Array<Klass*>* interfaces = this_oop->local_interfaces();
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  int num_interfaces = interfaces->length();
  for (int index = 0; index < num_interfaces; index++) {
    HandleMark hm(THREAD);
646
    instanceKlassHandle ih(THREAD, interfaces->at(index));
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    link_class_impl(ih, throw_verifyerror, CHECK_false);
  }

  // in case the class is linked in the process of linking its superclasses
  if (this_oop->is_linked()) {
    return true;
  }

655 656 657 658 659 660 661 662 663
  // trace only the link time for this klass that includes
  // the verification time
  PerfClassTraceTime vmtimer(ClassLoader::perf_class_link_time(),
                             ClassLoader::perf_class_link_selftime(),
                             ClassLoader::perf_classes_linked(),
                             jt->get_thread_stat()->perf_recursion_counts_addr(),
                             jt->get_thread_stat()->perf_timers_addr(),
                             PerfClassTraceTime::CLASS_LINK);

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  // verification & rewriting
  {
666
    oop init_lock = this_oop->init_lock();
667
    ObjectLocker ol(init_lock, THREAD, init_lock != NULL);
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    // rewritten will have been set if loader constraint error found
    // on an earlier link attempt
    // don't verify or rewrite if already rewritten
671

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    if (!this_oop->is_linked()) {
      if (!this_oop->is_rewritten()) {
        {
          // Timer includes any side effects of class verification (resolution,
          // etc), but not recursive entry into verify_code().
677 678 679 680 681 682
          PerfClassTraceTime timer(ClassLoader::perf_class_verify_time(),
                                   ClassLoader::perf_class_verify_selftime(),
                                   ClassLoader::perf_classes_verified(),
                                   jt->get_thread_stat()->perf_recursion_counts_addr(),
                                   jt->get_thread_stat()->perf_timers_addr(),
                                   PerfClassTraceTime::CLASS_VERIFY);
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          bool verify_ok = verify_code(this_oop, throw_verifyerror, THREAD);
          if (!verify_ok) {
            return false;
          }
        }

        // Just in case a side-effect of verify linked this class already
        // (which can sometimes happen since the verifier loads classes
        // using custom class loaders, which are free to initialize things)
        if (this_oop->is_linked()) {
          return true;
        }

        // also sets rewritten
        this_oop->rewrite_class(CHECK_false);
      }

700
      // relocate jsrs and link methods after they are all rewritten
701
      this_oop->link_methods(CHECK_false);
702

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      // Initialize the vtable and interface table after
      // methods have been rewritten since rewrite may
705
      // fabricate new Method*s.
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      // also does loader constraint checking
      if (!this_oop()->is_shared()) {
        ResourceMark rm(THREAD);
        this_oop->vtable()->initialize_vtable(true, CHECK_false);
        this_oop->itable()->initialize_itable(true, CHECK_false);
      }
#ifdef ASSERT
      else {
        ResourceMark rm(THREAD);
        this_oop->vtable()->verify(tty, true);
        // In case itable verification is ever added.
        // this_oop->itable()->verify(tty, true);
      }
#endif
      this_oop->set_init_state(linked);
      if (JvmtiExport::should_post_class_prepare()) {
        Thread *thread = THREAD;
        assert(thread->is_Java_thread(), "thread->is_Java_thread()");
        JvmtiExport::post_class_prepare((JavaThread *) thread, this_oop());
      }
    }
  }
  return true;
}


// Rewrite the byte codes of all of the methods of a class.
// The rewriter must be called exactly once. Rewriting must happen after
// verification but before the first method of the class is executed.
735
void InstanceKlass::rewrite_class(TRAPS) {
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  assert(is_loaded(), "must be loaded");
737
  instanceKlassHandle this_oop(THREAD, this);
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  if (this_oop->is_rewritten()) {
    assert(this_oop()->is_shared(), "rewriting an unshared class?");
    return;
  }
742
  Rewriter::rewrite(this_oop, CHECK);
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  this_oop->set_rewritten();
}

746 747 748
// Now relocate and link method entry points after class is rewritten.
// This is outside is_rewritten flag. In case of an exception, it can be
// executed more than once.
749 750 751 752 753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773
void InstanceKlass::link_methods(TRAPS) {
  int len = methods()->length();
  for (int i = len-1; i >= 0; i--) {
    methodHandle m(THREAD, methods()->at(i));

    // Set up method entry points for compiler and interpreter    .
    m->link_method(m, CHECK);

    // This is for JVMTI and unrelated to relocator but the last thing we do
#ifdef ASSERT
    if (StressMethodComparator) {
      ResourceMark rm(THREAD);
      static int nmc = 0;
      for (int j = i; j >= 0 && j >= i-4; j--) {
        if ((++nmc % 1000) == 0)  tty->print_cr("Have run MethodComparator %d times...", nmc);
        bool z = MethodComparator::methods_EMCP(m(),
                   methods()->at(j));
        if (j == i && !z) {
          tty->print("MethodComparator FAIL: "); m->print(); m->print_codes();
          assert(z, "method must compare equal to itself");
        }
      }
    }
#endif //ASSERT
  }
774 775
}

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777
void InstanceKlass::initialize_impl(instanceKlassHandle this_oop, TRAPS) {
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  // Make sure klass is linked (verified) before initialization
  // A class could already be verified, since it has been reflected upon.
  this_oop->link_class(CHECK);

782
  DTRACE_CLASSINIT_PROBE(required, InstanceKlass::cast(this_oop()), -1);
783 784 785

  bool wait = false;

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  // refer to the JVM book page 47 for description of steps
  // Step 1
788
  {
789
    oop init_lock = this_oop->init_lock();
790
    ObjectLocker ol(init_lock, THREAD, init_lock != NULL);
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    Thread *self = THREAD; // it's passed the current thread

    // Step 2
    // If we were to use wait() instead of waitInterruptibly() then
    // we might end up throwing IE from link/symbol resolution sites
    // that aren't expected to throw.  This would wreak havoc.  See 6320309.
    while(this_oop->is_being_initialized() && !this_oop->is_reentrant_initialization(self)) {
799
        wait = true;
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      ol.waitUninterruptibly(CHECK);
    }

    // Step 3
804
    if (this_oop->is_being_initialized() && this_oop->is_reentrant_initialization(self)) {
805
      DTRACE_CLASSINIT_PROBE_WAIT(recursive, InstanceKlass::cast(this_oop()), -1,wait);
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      return;
807
    }
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    // Step 4
810
    if (this_oop->is_initialized()) {
811
      DTRACE_CLASSINIT_PROBE_WAIT(concurrent, InstanceKlass::cast(this_oop()), -1,wait);
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      return;
813
    }
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    // Step 5
    if (this_oop->is_in_error_state()) {
817
      DTRACE_CLASSINIT_PROBE_WAIT(erroneous, InstanceKlass::cast(this_oop()), -1,wait);
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      ResourceMark rm(THREAD);
      const char* desc = "Could not initialize class ";
      const char* className = this_oop->external_name();
      size_t msglen = strlen(desc) + strlen(className) + 1;
822
      char* message = NEW_RESOURCE_ARRAY(char, msglen);
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      if (NULL == message) {
        // Out of memory: can't create detailed error message
        THROW_MSG(vmSymbols::java_lang_NoClassDefFoundError(), className);
      } else {
        jio_snprintf(message, msglen, "%s%s", desc, className);
        THROW_MSG(vmSymbols::java_lang_NoClassDefFoundError(), message);
      }
    }

    // Step 6
    this_oop->set_init_state(being_initialized);
    this_oop->set_init_thread(self);
  }

  // Step 7
838
  Klass* super_klass = this_oop->super();
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  if (super_klass != NULL && !this_oop->is_interface() && super_klass->should_be_initialized()) {
    super_klass->initialize(THREAD);
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    if (HAS_PENDING_EXCEPTION) {
      Handle e(THREAD, PENDING_EXCEPTION);
      CLEAR_PENDING_EXCEPTION;
      {
        EXCEPTION_MARK;
        this_oop->set_initialization_state_and_notify(initialization_error, THREAD); // Locks object, set state, and notify all waiting threads
        CLEAR_PENDING_EXCEPTION;   // ignore any exception thrown, superclass initialization error is thrown below
      }
850
      DTRACE_CLASSINIT_PROBE_WAIT(super__failed, InstanceKlass::cast(this_oop()), -1,wait);
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      THROW_OOP(e());
    }
  }

855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883
  if (this_oop->has_default_methods()) {
    // Step 7.5: initialize any interfaces which have default methods
    for (int i = 0; i < this_oop->local_interfaces()->length(); ++i) {
      Klass* iface = this_oop->local_interfaces()->at(i);
      InstanceKlass* ik = InstanceKlass::cast(iface);
      if (ik->has_default_methods() && ik->should_be_initialized()) {
        ik->initialize(THREAD);

        if (HAS_PENDING_EXCEPTION) {
          Handle e(THREAD, PENDING_EXCEPTION);
          CLEAR_PENDING_EXCEPTION;
          {
            EXCEPTION_MARK;
            // Locks object, set state, and notify all waiting threads
            this_oop->set_initialization_state_and_notify(
                initialization_error, THREAD);

            // ignore any exception thrown, superclass initialization error is
            // thrown below
            CLEAR_PENDING_EXCEPTION;
          }
          DTRACE_CLASSINIT_PROBE_WAIT(
              super__failed, InstanceKlass::cast(this_oop()), -1, wait);
          THROW_OOP(e());
        }
      }
    }
  }

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  // Step 8
  {
    assert(THREAD->is_Java_thread(), "non-JavaThread in initialize_impl");
    JavaThread* jt = (JavaThread*)THREAD;
888
    DTRACE_CLASSINIT_PROBE_WAIT(clinit, InstanceKlass::cast(this_oop()), -1,wait);
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    // Timer includes any side effects of class initialization (resolution,
    // etc), but not recursive entry into call_class_initializer().
891 892 893 894 895 896
    PerfClassTraceTime timer(ClassLoader::perf_class_init_time(),
                             ClassLoader::perf_class_init_selftime(),
                             ClassLoader::perf_classes_inited(),
                             jt->get_thread_stat()->perf_recursion_counts_addr(),
                             jt->get_thread_stat()->perf_timers_addr(),
                             PerfClassTraceTime::CLASS_CLINIT);
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    this_oop->call_class_initializer(THREAD);
  }

  // Step 9
  if (!HAS_PENDING_EXCEPTION) {
    this_oop->set_initialization_state_and_notify(fully_initialized, CHECK);
    { ResourceMark rm(THREAD);
      debug_only(this_oop->vtable()->verify(tty, true);)
    }
  }
  else {
    // Step 10 and 11
    Handle e(THREAD, PENDING_EXCEPTION);
    CLEAR_PENDING_EXCEPTION;
    {
      EXCEPTION_MARK;
      this_oop->set_initialization_state_and_notify(initialization_error, THREAD);
      CLEAR_PENDING_EXCEPTION;   // ignore any exception thrown, class initialization error is thrown below
    }
916
    DTRACE_CLASSINIT_PROBE_WAIT(error, InstanceKlass::cast(this_oop()), -1,wait);
917
    if (e->is_a(SystemDictionary::Error_klass())) {
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      THROW_OOP(e());
    } else {
      JavaCallArguments args(e);
921 922
      THROW_ARG(vmSymbols::java_lang_ExceptionInInitializerError(),
                vmSymbols::throwable_void_signature(),
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                &args);
    }
  }
926
  DTRACE_CLASSINIT_PROBE_WAIT(end, InstanceKlass::cast(this_oop()), -1,wait);
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}


// Note: implementation moved to static method to expose the this pointer.
931 932
void InstanceKlass::set_initialization_state_and_notify(ClassState state, TRAPS) {
  instanceKlassHandle kh(THREAD, this);
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  set_initialization_state_and_notify_impl(kh, state, CHECK);
}

936
void InstanceKlass::set_initialization_state_and_notify_impl(instanceKlassHandle this_oop, ClassState state, TRAPS) {
937
  oop init_lock = this_oop->init_lock();
938
  ObjectLocker ol(init_lock, THREAD, init_lock != NULL);
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  this_oop->set_init_state(state);
940
  this_oop->fence_and_clear_init_lock();
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  ol.notify_all(CHECK);
}

944 945
// The embedded _implementor field can only record one implementor.
// When there are more than one implementors, the _implementor field
946
// is set to the interface Klass* itself. Following are the possible
947 948
// values for the _implementor field:
//   NULL                  - no implementor
949
//   implementor Klass*    - one implementor
950 951 952
//   self                  - more than one implementor
//
// The _implementor field only exists for interfaces.
953
void InstanceKlass::add_implementor(Klass* k) {
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  assert(Compile_lock->owned_by_self(), "");
955
  assert(is_interface(), "not interface");
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  // Filter out my subinterfaces.
  // (Note: Interfaces are never on the subklass list.)
958
  if (InstanceKlass::cast(k)->is_interface()) return;
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  // Filter out subclasses whose supers already implement me.
  // (Note: CHA must walk subclasses of direct implementors
  // in order to locate indirect implementors.)
963 964
  Klass* sk = InstanceKlass::cast(k)->super();
  if (sk != NULL && InstanceKlass::cast(sk)->implements_interface(this))
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    // We only need to check one immediate superclass, since the
    // implements_interface query looks at transitive_interfaces.
    // Any supers of the super have the same (or fewer) transitive_interfaces.
    return;

970
  Klass* ik = implementor();
971 972
  if (ik == NULL) {
    set_implementor(k);
973
  } else if (ik != this) {
974 975
    // There is already an implementor. Use itself as an indicator of
    // more than one implementors.
976
    set_implementor(this);
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  }

  // The implementor also implements the transitive_interfaces
  for (int index = 0; index < local_interfaces()->length(); index++) {
981
    InstanceKlass::cast(local_interfaces()->at(index))->add_implementor(k);
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  }
}

985
void InstanceKlass::init_implementor() {
986 987 988
  if (is_interface()) {
    set_implementor(NULL);
  }
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}


992
void InstanceKlass::process_interfaces(Thread *thread) {
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  // link this class into the implementors list of every interface it implements
994
  Klass* this_as_klass_oop = this;
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  for (int i = local_interfaces()->length() - 1; i >= 0; i--) {
996 997
    assert(local_interfaces()->at(i)->is_klass(), "must be a klass");
    InstanceKlass* interf = InstanceKlass::cast(local_interfaces()->at(i));
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    assert(interf->is_interface(), "expected interface");
999
    interf->add_implementor(this_as_klass_oop);
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  }
}

1003
bool InstanceKlass::can_be_primary_super_slow() const {
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  if (is_interface())
    return false;
  else
    return Klass::can_be_primary_super_slow();
}

1010
GrowableArray<Klass*>* InstanceKlass::compute_secondary_supers(int num_extra_slots) {
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  // The secondaries are the implemented interfaces.
1012 1013
  InstanceKlass* ik = InstanceKlass::cast(this);
  Array<Klass*>* interfaces = ik->transitive_interfaces();
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  int num_secondaries = num_extra_slots + interfaces->length();
  if (num_secondaries == 0) {
1016 1017 1018
    // Must share this for correct bootstrapping!
    set_secondary_supers(Universe::the_empty_klass_array());
    return NULL;
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  } else if (num_extra_slots == 0) {
1020 1021 1022 1023
    // The secondary super list is exactly the same as the transitive interfaces.
    // Redefine classes has to be careful not to delete this!
    set_secondary_supers(interfaces);
    return NULL;
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  } else {
1025 1026 1027
    // Copy transitive interfaces to a temporary growable array to be constructed
    // into the secondary super list with extra slots.
    GrowableArray<Klass*>* secondaries = new GrowableArray<Klass*>(interfaces->length());
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    for (int i = 0; i < interfaces->length(); i++) {
1029
      secondaries->push(interfaces->at(i));
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    }
    return secondaries;
  }
}

1035
bool InstanceKlass::compute_is_subtype_of(Klass* k) {
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  if (k->is_interface()) {
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    return implements_interface(k);
  } else {
    return Klass::compute_is_subtype_of(k);
  }
}

1043 1044
bool InstanceKlass::implements_interface(Klass* k) const {
  if (this == k) return true;
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  assert(k->is_interface(), "should be an interface class");
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  for (int i = 0; i < transitive_interfaces()->length(); i++) {
1047
    if (transitive_interfaces()->at(i) == k) {
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      return true;
    }
  }
  return false;
}

1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065
bool InstanceKlass::is_same_or_direct_interface(Klass *k) const {
  // Verify direct super interface
  if (this == k) return true;
  assert(k->is_interface(), "should be an interface class");
  for (int i = 0; i < local_interfaces()->length(); i++) {
    if (local_interfaces()->at(i) == k) {
      return true;
    }
  }
  return false;
}

1066
objArrayOop InstanceKlass::allocate_objArray(int n, int length, TRAPS) {
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  if (length < 0) THROW_0(vmSymbols::java_lang_NegativeArraySizeException());
  if (length > arrayOopDesc::max_array_length(T_OBJECT)) {
1069
    report_java_out_of_memory("Requested array size exceeds VM limit");
1070
    JvmtiExport::post_array_size_exhausted();
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    THROW_OOP_0(Universe::out_of_memory_error_array_size());
  }
  int size = objArrayOopDesc::object_size(length);
1074
  Klass* ak = array_klass(n, CHECK_NULL);
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  KlassHandle h_ak (THREAD, ak);
  objArrayOop o =
    (objArrayOop)CollectedHeap::array_allocate(h_ak, size, length, CHECK_NULL);
  return o;
}

1081
instanceOop InstanceKlass::register_finalizer(instanceOop i, TRAPS) {
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  if (TraceFinalizerRegistration) {
    tty->print("Registered ");
    i->print_value_on(tty);
    tty->print_cr(" (" INTPTR_FORMAT ") as finalizable", (address)i);
  }
  instanceHandle h_i(THREAD, i);
  // Pass the handle as argument, JavaCalls::call expects oop as jobjects
  JavaValue result(T_VOID);
  JavaCallArguments args(h_i);
  methodHandle mh (THREAD, Universe::finalizer_register_method());
  JavaCalls::call(&result, mh, &args, CHECK_NULL);
  return h_i();
}

1096
instanceOop InstanceKlass::allocate_instance(TRAPS) {
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  bool has_finalizer_flag = has_finalizer(); // Query before possible GC
  int size = size_helper();  // Query before forming handle.

1100
  KlassHandle h_k(THREAD, this);
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  instanceOop i;

  i = (instanceOop)CollectedHeap::obj_allocate(h_k, size, CHECK_NULL);
  if (has_finalizer_flag && !RegisterFinalizersAtInit) {
    i = register_finalizer(i, CHECK_NULL);
  }
  return i;
}

1111
void InstanceKlass::check_valid_for_instantiation(bool throwError, TRAPS) {
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  if (is_interface() || is_abstract()) {
    ResourceMark rm(THREAD);
    THROW_MSG(throwError ? vmSymbols::java_lang_InstantiationError()
              : vmSymbols::java_lang_InstantiationException(), external_name());
  }
1117
  if (this == SystemDictionary::Class_klass()) {
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    ResourceMark rm(THREAD);
    THROW_MSG(throwError ? vmSymbols::java_lang_IllegalAccessError()
              : vmSymbols::java_lang_IllegalAccessException(), external_name());
  }
}

1124 1125
Klass* InstanceKlass::array_klass_impl(bool or_null, int n, TRAPS) {
  instanceKlassHandle this_oop(THREAD, this);
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  return array_klass_impl(this_oop, or_null, n, THREAD);
}

1129
Klass* InstanceKlass::array_klass_impl(instanceKlassHandle this_oop, bool or_null, int n, TRAPS) {
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  if (this_oop->array_klasses() == NULL) {
    if (or_null) return NULL;

    ResourceMark rm;
    JavaThread *jt = (JavaThread *)THREAD;
    {
      // Atomic creation of array_klasses
      MutexLocker mc(Compile_lock, THREAD);   // for vtables
      MutexLocker ma(MultiArray_lock, THREAD);

      // Check if update has already taken place
      if (this_oop->array_klasses() == NULL) {
1142
        Klass*    k = ObjArrayKlass::allocate_objArray_klass(this_oop->class_loader_data(), 1, this_oop, CHECK_NULL);
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        this_oop->set_array_klasses(k);
      }
    }
  }
  // _this will always be set at this point
1148
  ObjArrayKlass* oak = (ObjArrayKlass*)this_oop->array_klasses();
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  if (or_null) {
    return oak->array_klass_or_null(n);
  }
  return oak->array_klass(n, CHECK_NULL);
}

1155
Klass* InstanceKlass::array_klass_impl(bool or_null, TRAPS) {
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  return array_klass_impl(or_null, 1, THREAD);
}

1159 1160
void InstanceKlass::call_class_initializer(TRAPS) {
  instanceKlassHandle ik (THREAD, this);
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  call_class_initializer_impl(ik, THREAD);
}

static int call_class_initializer_impl_counter = 0;   // for debugging

1166 1167
Method* InstanceKlass::class_initializer() {
  Method* clinit = find_method(
1168 1169 1170 1171 1172
      vmSymbols::class_initializer_name(), vmSymbols::void_method_signature());
  if (clinit != NULL && clinit->has_valid_initializer_flags()) {
    return clinit;
  }
  return NULL;
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}

1175
void InstanceKlass::call_class_initializer_impl(instanceKlassHandle this_oop, TRAPS) {
1176 1177 1178 1179 1180 1181 1182
  if (ReplayCompiles &&
      (ReplaySuppressInitializers == 1 ||
       ReplaySuppressInitializers >= 2 && this_oop->class_loader() != NULL)) {
    // Hide the existence of the initializer for the purpose of replaying the compile
    return;
  }

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  methodHandle h_method(THREAD, this_oop->class_initializer());
  assert(!this_oop->is_initialized(), "we cannot initialize twice");
  if (TraceClassInitialization) {
    tty->print("%d Initializing ", call_class_initializer_impl_counter++);
    this_oop->name()->print_value();
    tty->print_cr("%s (" INTPTR_FORMAT ")", h_method() == NULL ? "(no method)" : "", (address)this_oop());
  }
  if (h_method() != NULL) {
    JavaCallArguments args; // No arguments
    JavaValue result(T_VOID);
    JavaCalls::call(&result, h_method, &args, CHECK); // Static call (no args)
  }
}


1198
void InstanceKlass::mask_for(methodHandle method, int bci,
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  InterpreterOopMap* entry_for) {
  // Dirty read, then double-check under a lock.
  if (_oop_map_cache == NULL) {
    // Otherwise, allocate a new one.
    MutexLocker x(OopMapCacheAlloc_lock);
    // First time use. Allocate a cache in C heap
    if (_oop_map_cache == NULL) {
      _oop_map_cache = new OopMapCache();
    }
  }
  // _oop_map_cache is constant after init; lookup below does is own locking.
  _oop_map_cache->lookup(method, bci, entry_for);
}


1214 1215
bool InstanceKlass::find_local_field(Symbol* name, Symbol* sig, fieldDescriptor* fd) const {
  for (JavaFieldStream fs(this); !fs.done(); fs.next()) {
1216 1217
    Symbol* f_name = fs.name();
    Symbol* f_sig  = fs.signature();
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    if (f_name == name && f_sig == sig) {
1219
      fd->reinitialize(const_cast<InstanceKlass*>(this), fs.index());
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      return true;
    }
  }
  return false;
}


1227
Klass* InstanceKlass::find_interface_field(Symbol* name, Symbol* sig, fieldDescriptor* fd) const {
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  const int n = local_interfaces()->length();
  for (int i = 0; i < n; i++) {
1230
    Klass* intf1 = local_interfaces()->at(i);
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    assert(intf1->is_interface(), "just checking type");
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    // search for field in current interface
1233
    if (InstanceKlass::cast(intf1)->find_local_field(name, sig, fd)) {
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      assert(fd->is_static(), "interface field must be static");
      return intf1;
    }
    // search for field in direct superinterfaces
1238
    Klass* intf2 = InstanceKlass::cast(intf1)->find_interface_field(name, sig, fd);
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    if (intf2 != NULL) return intf2;
  }
  // otherwise field lookup fails
  return NULL;
}


1246
Klass* InstanceKlass::find_field(Symbol* name, Symbol* sig, fieldDescriptor* fd) const {
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  // search order according to newest JVM spec (5.4.3.2, p.167).
  // 1) search for field in current klass
  if (find_local_field(name, sig, fd)) {
1250
    return const_cast<InstanceKlass*>(this);
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  }
  // 2) search for field recursively in direct superinterfaces
1253
  { Klass* intf = find_interface_field(name, sig, fd);
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    if (intf != NULL) return intf;
  }
  // 3) apply field lookup recursively if superclass exists
1257 1258
  { Klass* supr = super();
    if (supr != NULL) return InstanceKlass::cast(supr)->find_field(name, sig, fd);
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  }
  // 4) otherwise field lookup fails
  return NULL;
}


1265
Klass* InstanceKlass::find_field(Symbol* name, Symbol* sig, bool is_static, fieldDescriptor* fd) const {
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  // search order according to newest JVM spec (5.4.3.2, p.167).
  // 1) search for field in current klass
  if (find_local_field(name, sig, fd)) {
1269
    if (fd->is_static() == is_static) return const_cast<InstanceKlass*>(this);
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  }
  // 2) search for field recursively in direct superinterfaces
  if (is_static) {
1273
    Klass* intf = find_interface_field(name, sig, fd);
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    if (intf != NULL) return intf;
  }
  // 3) apply field lookup recursively if superclass exists
1277 1278
  { Klass* supr = super();
    if (supr != NULL) return InstanceKlass::cast(supr)->find_field(name, sig, is_static, fd);
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  }
  // 4) otherwise field lookup fails
  return NULL;
}


1285 1286
bool InstanceKlass::find_local_field_from_offset(int offset, bool is_static, fieldDescriptor* fd) const {
  for (JavaFieldStream fs(this); !fs.done(); fs.next()) {
1287
    if (fs.offset() == offset) {
1288
      fd->reinitialize(const_cast<InstanceKlass*>(this), fs.index());
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      if (fd->is_static() == is_static) return true;
    }
  }
  return false;
}


1296 1297
bool InstanceKlass::find_field_from_offset(int offset, bool is_static, fieldDescriptor* fd) const {
  Klass* klass = const_cast<InstanceKlass*>(this);
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  while (klass != NULL) {
1299
    if (InstanceKlass::cast(klass)->find_local_field_from_offset(offset, is_static, fd)) {
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      return true;
    }
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    klass = klass->super();
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  }
  return false;
}


1308
void InstanceKlass::methods_do(void f(Method* method)) {
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  int len = methods()->length();
  for (int index = 0; index < len; index++) {
1311
    Method* m = methods()->at(index);
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    assert(m->is_method(), "must be method");
    f(m);
  }
}

1317

1318
void InstanceKlass::do_local_static_fields(FieldClosure* cl) {
1319 1320
  for (JavaFieldStream fs(this); !fs.done(); fs.next()) {
    if (fs.access_flags().is_static()) {
1321
      fieldDescriptor& fd = fs.field_descriptor();
1322 1323
      cl->do_field(&fd);
    }
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  }
}


1328 1329
void InstanceKlass::do_local_static_fields(void f(fieldDescriptor*, TRAPS), TRAPS) {
  instanceKlassHandle h_this(THREAD, this);
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  do_local_static_fields_impl(h_this, f, CHECK);
}


1334
void InstanceKlass::do_local_static_fields_impl(instanceKlassHandle this_oop, void f(fieldDescriptor* fd, TRAPS), TRAPS) {
1335 1336
  for (JavaFieldStream fs(this_oop()); !fs.done(); fs.next()) {
    if (fs.access_flags().is_static()) {
1337
      fieldDescriptor& fd = fs.field_descriptor();
1338 1339
      f(&fd, CHECK);
    }
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  }
}


1344 1345 1346 1347
static int compare_fields_by_offset(int* a, int* b) {
  return a[0] - b[0];
}

1348 1349
void InstanceKlass::do_nonstatic_fields(FieldClosure* cl) {
  InstanceKlass* super = superklass();
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  if (super != NULL) {
    super->do_nonstatic_fields(cl);
  }
1353
  fieldDescriptor fd;
1354
  int length = java_fields_count();
1355
  // In DebugInfo nonstatic fields are sorted by offset.
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  int* fields_sorted = NEW_C_HEAP_ARRAY(int, 2*(length+1), mtClass);
1357
  int j = 0;
1358
  for (int i = 0; i < length; i += 1) {
1359
    fd.reinitialize(this, i);
1360 1361 1362 1363 1364 1365 1366 1367 1368 1369 1370
    if (!fd.is_static()) {
      fields_sorted[j + 0] = fd.offset();
      fields_sorted[j + 1] = i;
      j += 2;
    }
  }
  if (j > 0) {
    length = j;
    // _sort_Fn is defined in growableArray.hpp.
    qsort(fields_sorted, length/2, 2*sizeof(int), (_sort_Fn)compare_fields_by_offset);
    for (int i = 0; i < length; i += 2) {
1371
      fd.reinitialize(this, fields_sorted[i + 1]);
1372 1373 1374
      assert(!fd.is_static() && fd.offset() == fields_sorted[i], "only nonstatic fields");
      cl->do_field(&fd);
    }
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  }
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  FREE_C_HEAP_ARRAY(int, fields_sorted, mtClass);
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}


1380 1381
void InstanceKlass::array_klasses_do(void f(Klass* k, TRAPS), TRAPS) {
  if (array_klasses() != NULL)
1382
    ArrayKlass::cast(array_klasses())->array_klasses_do(f, THREAD);
1383 1384 1385
}

void InstanceKlass::array_klasses_do(void f(Klass* k)) {
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  if (array_klasses() != NULL)
1387
    ArrayKlass::cast(array_klasses())->array_klasses_do(f);
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1388 1389 1390
}

#ifdef ASSERT
1391
static int linear_search(Array<Method*>* methods, Symbol* name, Symbol* signature) {
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1392 1393
  int len = methods->length();
  for (int index = 0; index < len; index++) {
1394
    Method* m = methods->at(index);
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    assert(m->is_method(), "must be method");
    if (m->signature() == signature && m->name() == name) {
       return index;
    }
  }
  return -1;
}
#endif

1404
static int binary_search(Array<Method*>* methods, Symbol* name) {
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  int len = methods->length();
  // methods are sorted, so do binary search
  int l = 0;
  int h = len - 1;
  while (l <= h) {
    int mid = (l + h) >> 1;
1411
    Method* m = methods->at(mid);
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1412 1413 1414
    assert(m->is_method(), "must be method");
    int res = m->name()->fast_compare(name);
    if (res == 0) {
1415 1416 1417 1418 1419 1420 1421 1422 1423 1424
      return mid;
    } else if (res < 0) {
      l = mid + 1;
    } else {
      h = mid - 1;
    }
  }
  return -1;
}

1425
// find_method looks up the name/signature in the local methods array
1426 1427 1428 1429
Method* InstanceKlass::find_method(Symbol* name, Symbol* signature) const {
  return InstanceKlass::find_method(methods(), name, signature);
}

1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440
// find_instance_method looks up the name/signature in the local methods array
// and skips over static methods
Method* InstanceKlass::find_instance_method(
    Array<Method*>* methods, Symbol* name, Symbol* signature) {
  Method* meth = InstanceKlass::find_method(methods, name, signature);
  if (meth != NULL && meth->is_static()) {
      meth = NULL;
  }
  return meth;
}

1441
// find_method looks up the name/signature in the local methods array
1442 1443
Method* InstanceKlass::find_method(
    Array<Method*>* methods, Symbol* name, Symbol* signature) {
1444 1445 1446 1447 1448 1449 1450 1451 1452 1453
  int hit = find_method_index(methods, name, signature);
  return hit >= 0 ? methods->at(hit): NULL;
}

// Used directly for default_methods to find the index into the
// default_vtable_indices, and indirectly by find_method
// find_method_index looks in the local methods array to return the index
// of the matching name/signature
int InstanceKlass::find_method_index(
    Array<Method*>* methods, Symbol* name, Symbol* signature) {
1454 1455 1456 1457 1458
  int hit = binary_search(methods, name);
  if (hit != -1) {
    Method* m = methods->at(hit);
    // Do linear search to find matching signature.  First, quick check
    // for common case
1459
    if (m->signature() == signature) return hit;
1460 1461 1462
    // search downwards through overloaded methods
    int i;
    for (i = hit - 1; i >= 0; --i) {
1463
        Method* m = methods->at(i);
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1464 1465
        assert(m->is_method(), "must be method");
        if (m->name() != name) break;
1466
        if (m->signature() == signature) return i;
1467 1468 1469
    }
    // search upwards
    for (i = hit + 1; i < methods->length(); ++i) {
1470
        Method* m = methods->at(i);
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1471 1472
        assert(m->is_method(), "must be method");
        if (m->name() != name) break;
1473
        if (m->signature() == signature) return i;
D
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1474
    }
1475
    // not found
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1476
#ifdef ASSERT
1477 1478
    int index = linear_search(methods, name, signature);
    assert(index == -1, err_msg("binary search should have found entry %d", index));
D
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1479
#endif
1480
  }
1481
  return -1;
D
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1482
}
1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500
int InstanceKlass::find_method_by_name(Symbol* name, int* end) {
  return find_method_by_name(methods(), name, end);
}

int InstanceKlass::find_method_by_name(
    Array<Method*>* methods, Symbol* name, int* end_ptr) {
  assert(end_ptr != NULL, "just checking");
  int start = binary_search(methods, name);
  int end = start + 1;
  if (start != -1) {
    while (start - 1 >= 0 && (methods->at(start - 1))->name() == name) --start;
    while (end < methods->length() && (methods->at(end))->name() == name) ++end;
    *end_ptr = end;
    return start;
  }
  return -1;
}

1501
// lookup_method searches both the local methods array and all superclasses methods arrays
1502 1503
Method* InstanceKlass::uncached_lookup_method(Symbol* name, Symbol* signature) const {
  Klass* klass = const_cast<InstanceKlass*>(this);
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1504
  while (klass != NULL) {
1505
    Method* method = InstanceKlass::cast(klass)->find_method(name, signature);
D
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1506
    if (method != NULL) return method;
1507
    klass = InstanceKlass::cast(klass)->super();
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1508 1509 1510 1511
  }
  return NULL;
}

1512 1513 1514 1515
// lookup a method in the default methods list then in all transitive interfaces
// Do NOT return private or static methods
Method* InstanceKlass::lookup_method_in_ordered_interfaces(Symbol* name,
                                                         Symbol* signature) const {
1516
  Method* m = NULL;
1517 1518 1519 1520 1521 1522 1523 1524 1525 1526
  if (default_methods() != NULL) {
    m = find_method(default_methods(), name, signature);
  }
  // Look up interfaces
  if (m == NULL) {
    m = lookup_method_in_all_interfaces(name, signature);
  }
  return m;
}

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1527
// lookup a method in all the interfaces that this class implements
1528 1529
// Do NOT return private or static methods, new in JDK8 which are not externally visible
// They should only be found in the initial InterfaceMethodRef
1530
Method* InstanceKlass::lookup_method_in_all_interfaces(Symbol* name,
1531
                                                         Symbol* signature) const {
1532
  Array<Klass*>* all_ifs = transitive_interfaces();
D
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1533
  int num_ifs = all_ifs->length();
1534
  InstanceKlass *ik = NULL;
D
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1535
  for (int i = 0; i < num_ifs; i++) {
1536 1537
    ik = InstanceKlass::cast(all_ifs->at(i));
    Method* m = ik->lookup_method(name, signature);
1538
    if (m != NULL && m->is_public() && !m->is_static()) {
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1539 1540 1541 1542 1543 1544 1545
      return m;
    }
  }
  return NULL;
}

/* jni_id_for_impl for jfieldIds only */
1546
JNIid* InstanceKlass::jni_id_for_impl(instanceKlassHandle this_oop, int offset) {
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1547 1548 1549 1550 1551
  MutexLocker ml(JfieldIdCreation_lock);
  // Retry lookup after we got the lock
  JNIid* probe = this_oop->jni_ids() == NULL ? NULL : this_oop->jni_ids()->find(offset);
  if (probe == NULL) {
    // Slow case, allocate new static field identifier
1552
    probe = new JNIid(this_oop(), offset, this_oop->jni_ids());
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1553 1554 1555 1556 1557 1558 1559
    this_oop->set_jni_ids(probe);
  }
  return probe;
}


/* jni_id_for for jfieldIds only */
1560
JNIid* InstanceKlass::jni_id_for(int offset) {
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1561 1562
  JNIid* probe = jni_ids() == NULL ? NULL : jni_ids()->find(offset);
  if (probe == NULL) {
1563
    probe = jni_id_for_impl(this, offset);
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1564 1565 1566 1567
  }
  return probe;
}

1568 1569
u2 InstanceKlass::enclosing_method_data(int offset) {
  Array<jushort>* inner_class_list = inner_classes();
1570 1571 1572 1573 1574 1575 1576 1577 1578
  if (inner_class_list == NULL) {
    return 0;
  }
  int length = inner_class_list->length();
  if (length % inner_class_next_offset == 0) {
    return 0;
  } else {
    int index = length - enclosing_method_attribute_size;
    assert(offset < enclosing_method_attribute_size, "invalid offset");
1579
    return inner_class_list->at(index + offset);
1580 1581 1582
  }
}

1583
void InstanceKlass::set_enclosing_method_indices(u2 class_index,
1584
                                                 u2 method_index) {
1585
  Array<jushort>* inner_class_list = inner_classes();
1586 1587 1588 1589
  assert (inner_class_list != NULL, "_inner_classes list is not set up");
  int length = inner_class_list->length();
  if (length % inner_class_next_offset == enclosing_method_attribute_size) {
    int index = length - enclosing_method_attribute_size;
1590
    inner_class_list->at_put(
1591
      index + enclosing_method_class_index_offset, class_index);
1592
    inner_class_list->at_put(
1593 1594 1595
      index + enclosing_method_method_index_offset, method_index);
  }
}
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// Lookup or create a jmethodID.
1598 1599 1600 1601
// This code is called by the VMThread and JavaThreads so the
// locking has to be done very carefully to avoid deadlocks
// and/or other cache consistency problems.
//
1602
jmethodID InstanceKlass::get_jmethod_id(instanceKlassHandle ik_h, methodHandle method_h) {
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  size_t idnum = (size_t)method_h->method_idnum();
  jmethodID* jmeths = ik_h->methods_jmethod_ids_acquire();
  size_t length = 0;
  jmethodID id = NULL;

1608 1609 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626 1627 1628 1629 1630 1631 1632 1633 1634 1635 1636 1637 1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648
  // We use a double-check locking idiom here because this cache is
  // performance sensitive. In the normal system, this cache only
  // transitions from NULL to non-NULL which is safe because we use
  // release_set_methods_jmethod_ids() to advertise the new cache.
  // A partially constructed cache should never be seen by a racing
  // thread. We also use release_store_ptr() to save a new jmethodID
  // in the cache so a partially constructed jmethodID should never be
  // seen either. Cache reads of existing jmethodIDs proceed without a
  // lock, but cache writes of a new jmethodID requires uniqueness and
  // creation of the cache itself requires no leaks so a lock is
  // generally acquired in those two cases.
  //
  // If the RedefineClasses() API has been used, then this cache can
  // grow and we'll have transitions from non-NULL to bigger non-NULL.
  // Cache creation requires no leaks and we require safety between all
  // cache accesses and freeing of the old cache so a lock is generally
  // acquired when the RedefineClasses() API has been used.

  if (jmeths != NULL) {
    // the cache already exists
    if (!ik_h->idnum_can_increment()) {
      // the cache can't grow so we can just get the current values
      get_jmethod_id_length_value(jmeths, idnum, &length, &id);
    } else {
      // cache can grow so we have to be more careful
      if (Threads::number_of_threads() == 0 ||
          SafepointSynchronize::is_at_safepoint()) {
        // we're single threaded or at a safepoint - no locking needed
        get_jmethod_id_length_value(jmeths, idnum, &length, &id);
      } else {
        MutexLocker ml(JmethodIdCreation_lock);
        get_jmethod_id_length_value(jmeths, idnum, &length, &id);
      }
    }
  }
  // implied else:
  // we need to allocate a cache so default length and id values are good

  if (jmeths == NULL ||   // no cache yet
      length <= idnum ||  // cache is too short
      id == NULL) {       // cache doesn't contain entry
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    // This function can be called by the VMThread so we have to do all
    // things that might block on a safepoint before grabbing the lock.
    // Otherwise, we can deadlock with the VMThread or have a cache
    // consistency issue. These vars keep track of what we might have
    // to free after the lock is dropped.
    jmethodID  to_dealloc_id     = NULL;
    jmethodID* to_dealloc_jmeths = NULL;

    // may not allocate new_jmeths or use it if we allocate it
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    jmethodID* new_jmeths = NULL;
    if (length <= idnum) {
1661
      // allocate a new cache that might be used
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      size_t size = MAX2(idnum+1, (size_t)ik_h->idnum_allocated_count());
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      new_jmeths = NEW_C_HEAP_ARRAY(jmethodID, size+1, mtClass);
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      memset(new_jmeths, 0, (size+1)*sizeof(jmethodID));
1665 1666
      // cache size is stored in element[0], other elements offset by one
      new_jmeths[0] = (jmethodID)size;
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    }

1669
    // allocate a new jmethodID that might be used
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    jmethodID new_id = NULL;
    if (method_h->is_old() && !method_h->is_obsolete()) {
      // The method passed in is old (but not obsolete), we need to use the current version
1673
      Method* current_method = ik_h->method_with_idnum((int)idnum);
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      assert(current_method != NULL, "old and but not obsolete, so should exist");
1675
      new_id = Method::make_jmethod_id(ik_h->class_loader_data(), current_method);
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    } else {
      // It is the current version of the method or an obsolete method,
      // use the version passed in
1679
      new_id = Method::make_jmethod_id(ik_h->class_loader_data(), method_h());
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    }

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    if (Threads::number_of_threads() == 0 ||
        SafepointSynchronize::is_at_safepoint()) {
      // we're single threaded or at a safepoint - no locking needed
      id = get_jmethod_id_fetch_or_update(ik_h, idnum, new_id, new_jmeths,
                                          &to_dealloc_id, &to_dealloc_jmeths);
1687
    } else {
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      MutexLocker ml(JmethodIdCreation_lock);
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      id = get_jmethod_id_fetch_or_update(ik_h, idnum, new_id, new_jmeths,
                                          &to_dealloc_id, &to_dealloc_jmeths);
    }

    // The lock has been dropped so we can free resources.
    // Free up either the old cache or the new cache if we allocated one.
    if (to_dealloc_jmeths != NULL) {
      FreeHeap(to_dealloc_jmeths);
    }
    // free up the new ID since it wasn't needed
    if (to_dealloc_id != NULL) {
1700
      Method::destroy_jmethod_id(ik_h->class_loader_data(), to_dealloc_id);
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    }
  }
  return id;
}
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// Common code to fetch the jmethodID from the cache or update the
// cache with the new jmethodID. This function should never do anything
// that causes the caller to go to a safepoint or we can deadlock with
// the VMThread or have cache consistency issues.
//
1712
jmethodID InstanceKlass::get_jmethod_id_fetch_or_update(
1713 1714 1715 1716 1717 1718 1719 1720 1721 1722 1723
            instanceKlassHandle ik_h, size_t idnum, jmethodID new_id,
            jmethodID* new_jmeths, jmethodID* to_dealloc_id_p,
            jmethodID** to_dealloc_jmeths_p) {
  assert(new_id != NULL, "sanity check");
  assert(to_dealloc_id_p != NULL, "sanity check");
  assert(to_dealloc_jmeths_p != NULL, "sanity check");
  assert(Threads::number_of_threads() == 0 ||
         SafepointSynchronize::is_at_safepoint() ||
         JmethodIdCreation_lock->owned_by_self(), "sanity check");

  // reacquire the cache - we are locked, single threaded or at a safepoint
1724
  jmethodID* jmeths = ik_h->methods_jmethod_ids_acquire();
1725 1726
  jmethodID  id     = NULL;
  size_t     length = 0;
1727

1728 1729
  if (jmeths == NULL ||                         // no cache yet
      (length = (size_t)jmeths[0]) <= idnum) {  // cache is too short
1730
    if (jmeths != NULL) {
1731
      // copy any existing entries from the old cache
1732 1733
      for (size_t index = 0; index < length; index++) {
        new_jmeths[index+1] = jmeths[index+1];
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      }
1735
      *to_dealloc_jmeths_p = jmeths;  // save old cache for later delete
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    }
1737 1738
    ik_h->release_set_methods_jmethod_ids(jmeths = new_jmeths);
  } else {
1739
    // fetch jmethodID (if any) from the existing cache
1740
    id = jmeths[idnum+1];
1741
    *to_dealloc_jmeths_p = new_jmeths;  // save new cache for later delete
1742 1743
  }
  if (id == NULL) {
1744 1745 1746 1747
    // No matching jmethodID in the existing cache or we have a new
    // cache or we just grew the cache. This cache write is done here
    // by the first thread to win the foot race because a jmethodID
    // needs to be unique once it is generally available.
1748
    id = new_id;
1749 1750 1751 1752 1753

    // The jmethodID cache can be read while unlocked so we have to
    // make sure the new jmethodID is complete before installing it
    // in the cache.
    OrderAccess::release_store_ptr(&jmeths[idnum+1], id);
1754
  } else {
1755
    *to_dealloc_id_p = new_id; // save new id for later delete
1756
  }
1757 1758
  return id;
}
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1760 1761 1762 1763

// Common code to get the jmethodID cache length and the jmethodID
// value at index idnum if there is one.
//
1764
void InstanceKlass::get_jmethod_id_length_value(jmethodID* cache,
1765 1766 1767 1768 1769 1770 1771 1772 1773 1774 1775
       size_t idnum, size_t *length_p, jmethodID* id_p) {
  assert(cache != NULL, "sanity check");
  assert(length_p != NULL, "sanity check");
  assert(id_p != NULL, "sanity check");

  // cache size is stored in element[0], other elements offset by one
  *length_p = (size_t)cache[0];
  if (*length_p <= idnum) {  // cache is too short
    *id_p = NULL;
  } else {
    *id_p = cache[idnum+1];  // fetch jmethodID (if any)
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  }
}


// Lookup a jmethodID, NULL if not found.  Do no blocking, no allocations, no handles
1781
jmethodID InstanceKlass::jmethod_id_or_null(Method* method) {
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  size_t idnum = (size_t)method->method_idnum();
  jmethodID* jmeths = methods_jmethod_ids_acquire();
  size_t length;                                // length assigned as debugging crumb
  jmethodID id = NULL;
1786
  if (jmeths != NULL &&                         // If there is a cache
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      (length = (size_t)jmeths[0]) > idnum) {   // and if it is long enough,
    id = jmeths[idnum+1];                       // Look up the id (may be NULL)
  }
  return id;
}


//
// Walk the list of dependent nmethods searching for nmethods which
1796
// are dependent on the changes that were passed in and mark them for
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// deoptimization.  Returns the number of nmethods found.
//
1799
int InstanceKlass::mark_dependent_nmethods(DepChange& changes) {
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  assert_locked_or_safepoint(CodeCache_lock);
  int found = 0;
  nmethodBucket* b = _dependencies;
  while (b != NULL) {
    nmethod* nm = b->get_nmethod();
    // since dependencies aren't removed until an nmethod becomes a zombie,
    // the dependency list may contain nmethods which aren't alive.
    if (nm->is_alive() && !nm->is_marked_for_deoptimization() && nm->check_dependency_on(changes)) {
      if (TraceDependencies) {
        ResourceMark rm;
        tty->print_cr("Marked for deoptimization");
        tty->print_cr("  context = %s", this->external_name());
        changes.print();
        nm->print();
        nm->print_dependencies();
      }
      nm->mark_for_deoptimization();
      found++;
    }
    b = b->next();
  }
  return found;
}


//
// Add an nmethodBucket to the list of dependencies for this nmethod.
// It's possible that an nmethod has multiple dependencies on this klass
// so a count is kept for each bucket to guarantee that creation and
// deletion of dependencies is consistent.
//
1831
void InstanceKlass::add_dependent_nmethod(nmethod* nm) {
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  assert_locked_or_safepoint(CodeCache_lock);
  nmethodBucket* b = _dependencies;
  nmethodBucket* last = NULL;
  while (b != NULL) {
    if (nm == b->get_nmethod()) {
      b->increment();
      return;
    }
    b = b->next();
  }
  _dependencies = new nmethodBucket(nm, _dependencies);
}


//
// Decrement count of the nmethod in the dependency list and remove
// the bucket competely when the count goes to 0.  This method must
// find a corresponding bucket otherwise there's a bug in the
// recording of dependecies.
//
1852
void InstanceKlass::remove_dependent_nmethod(nmethod* nm) {
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  assert_locked_or_safepoint(CodeCache_lock);
  nmethodBucket* b = _dependencies;
  nmethodBucket* last = NULL;
  while (b != NULL) {
    if (nm == b->get_nmethod()) {
      if (b->decrement() == 0) {
        if (last == NULL) {
          _dependencies = b->next();
        } else {
          last->set_next(b->next());
        }
        delete b;
      }
      return;
    }
    last = b;
    b = b->next();
  }
#ifdef ASSERT
  tty->print_cr("### %s can't find dependent nmethod:", this->external_name());
  nm->print();
#endif // ASSERT
  ShouldNotReachHere();
}


#ifndef PRODUCT
1880
void InstanceKlass::print_dependent_nmethods(bool verbose) {
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  nmethodBucket* b = _dependencies;
  int idx = 0;
  while (b != NULL) {
    nmethod* nm = b->get_nmethod();
    tty->print("[%d] count=%d { ", idx++, b->count());
    if (!verbose) {
      nm->print_on(tty, "nmethod");
      tty->print_cr(" } ");
    } else {
      nm->print();
      nm->print_dependencies();
      tty->print_cr("--- } ");
    }
    b = b->next();
  }
}


1899
bool InstanceKlass::is_dependent_nmethod(nmethod* nm) {
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  nmethodBucket* b = _dependencies;
  while (b != NULL) {
    if (nm == b->get_nmethod()) {
      return true;
    }
    b = b->next();
  }
  return false;
}
#endif //PRODUCT


1912 1913
// Garbage collection

1914 1915 1916 1917 1918 1919
#ifdef ASSERT
template <class T> void assert_is_in(T *p) {
  T heap_oop = oopDesc::load_heap_oop(p);
  if (!oopDesc::is_null(heap_oop)) {
    oop o = oopDesc::decode_heap_oop_not_null(heap_oop);
    assert(Universe::heap()->is_in(o), "should be in heap");
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  }
}
1922 1923 1924 1925
template <class T> void assert_is_in_closed_subset(T *p) {
  T heap_oop = oopDesc::load_heap_oop(p);
  if (!oopDesc::is_null(heap_oop)) {
    oop o = oopDesc::decode_heap_oop_not_null(heap_oop);
1926 1927
    assert(Universe::heap()->is_in_closed_subset(o),
           err_msg("should be in closed *p " INTPTR_FORMAT " " INTPTR_FORMAT, (address)p, (address)o));
1928 1929 1930 1931 1932 1933 1934 1935 1936 1937 1938 1939 1940 1941 1942 1943 1944 1945 1946 1947 1948 1949 1950 1951 1952 1953 1954 1955 1956 1957 1958 1959 1960 1961 1962 1963 1964 1965 1966 1967 1968 1969 1970 1971 1972 1973 1974 1975 1976 1977 1978 1979 1980 1981 1982 1983 1984 1985 1986 1987 1988 1989 1990 1991 1992 1993 1994 1995 1996 1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 2007 2008 2009 2010 2011 2012 2013
  }
}
template <class T> void assert_is_in_reserved(T *p) {
  T heap_oop = oopDesc::load_heap_oop(p);
  if (!oopDesc::is_null(heap_oop)) {
    oop o = oopDesc::decode_heap_oop_not_null(heap_oop);
    assert(Universe::heap()->is_in_reserved(o), "should be in reserved");
  }
}
template <class T> void assert_nothing(T *p) {}

#else
template <class T> void assert_is_in(T *p) {}
template <class T> void assert_is_in_closed_subset(T *p) {}
template <class T> void assert_is_in_reserved(T *p) {}
template <class T> void assert_nothing(T *p) {}
#endif // ASSERT

//
// Macros that iterate over areas of oops which are specialized on type of
// oop pointer either narrow or wide, depending on UseCompressedOops
//
// Parameters are:
//   T         - type of oop to point to (either oop or narrowOop)
//   start_p   - starting pointer for region to iterate over
//   count     - number of oops or narrowOops to iterate over
//   do_oop    - action to perform on each oop (it's arbitrary C code which
//               makes it more efficient to put in a macro rather than making
//               it a template function)
//   assert_fn - assert function which is template function because performance
//               doesn't matter when enabled.
#define InstanceKlass_SPECIALIZED_OOP_ITERATE( \
  T, start_p, count, do_oop,                \
  assert_fn)                                \
{                                           \
  T* p         = (T*)(start_p);             \
  T* const end = p + (count);               \
  while (p < end) {                         \
    (assert_fn)(p);                         \
    do_oop;                                 \
    ++p;                                    \
  }                                         \
}

#define InstanceKlass_SPECIALIZED_OOP_REVERSE_ITERATE( \
  T, start_p, count, do_oop,                \
  assert_fn)                                \
{                                           \
  T* const start = (T*)(start_p);           \
  T*       p     = start + (count);         \
  while (start < p) {                       \
    --p;                                    \
    (assert_fn)(p);                         \
    do_oop;                                 \
  }                                         \
}

#define InstanceKlass_SPECIALIZED_BOUNDED_OOP_ITERATE( \
  T, start_p, count, low, high,             \
  do_oop, assert_fn)                        \
{                                           \
  T* const l = (T*)(low);                   \
  T* const h = (T*)(high);                  \
  assert(mask_bits((intptr_t)l, sizeof(T)-1) == 0 && \
         mask_bits((intptr_t)h, sizeof(T)-1) == 0,   \
         "bounded region must be properly aligned"); \
  T* p       = (T*)(start_p);               \
  T* end     = p + (count);                 \
  if (p < l) p = l;                         \
  if (end > h) end = h;                     \
  while (p < end) {                         \
    (assert_fn)(p);                         \
    do_oop;                                 \
    ++p;                                    \
  }                                         \
}


// The following macros call specialized macros, passing either oop or
// narrowOop as the specialization type.  These test the UseCompressedOops
// flag.
#define InstanceKlass_OOP_MAP_ITERATE(obj, do_oop, assert_fn)            \
{                                                                        \
  /* Compute oopmap block range. The common case                         \
     is nonstatic_oop_map_size == 1. */                                  \
  OopMapBlock* map           = start_of_nonstatic_oop_maps();            \
2014
  OopMapBlock* const end_map = map + nonstatic_oop_map_count();          \
2015 2016 2017
  if (UseCompressedOops) {                                               \
    while (map < end_map) {                                              \
      InstanceKlass_SPECIALIZED_OOP_ITERATE(narrowOop,                   \
2018
        obj->obj_field_addr<narrowOop>(map->offset()), map->count(),     \
2019 2020 2021 2022 2023 2024
        do_oop, assert_fn)                                               \
      ++map;                                                             \
    }                                                                    \
  } else {                                                               \
    while (map < end_map) {                                              \
      InstanceKlass_SPECIALIZED_OOP_ITERATE(oop,                         \
2025
        obj->obj_field_addr<oop>(map->offset()), map->count(),           \
2026 2027 2028 2029 2030 2031 2032 2033 2034
        do_oop, assert_fn)                                               \
      ++map;                                                             \
    }                                                                    \
  }                                                                      \
}

#define InstanceKlass_OOP_MAP_REVERSE_ITERATE(obj, do_oop, assert_fn)    \
{                                                                        \
  OopMapBlock* const start_map = start_of_nonstatic_oop_maps();          \
2035
  OopMapBlock* map             = start_map + nonstatic_oop_map_count();  \
2036 2037 2038 2039
  if (UseCompressedOops) {                                               \
    while (start_map < map) {                                            \
      --map;                                                             \
      InstanceKlass_SPECIALIZED_OOP_REVERSE_ITERATE(narrowOop,           \
2040
        obj->obj_field_addr<narrowOop>(map->offset()), map->count(),     \
2041 2042 2043 2044 2045 2046
        do_oop, assert_fn)                                               \
    }                                                                    \
  } else {                                                               \
    while (start_map < map) {                                            \
      --map;                                                             \
      InstanceKlass_SPECIALIZED_OOP_REVERSE_ITERATE(oop,                 \
2047
        obj->obj_field_addr<oop>(map->offset()), map->count(),           \
2048 2049 2050 2051 2052 2053 2054 2055 2056 2057 2058 2059 2060
        do_oop, assert_fn)                                               \
    }                                                                    \
  }                                                                      \
}

#define InstanceKlass_BOUNDED_OOP_MAP_ITERATE(obj, low, high, do_oop,    \
                                              assert_fn)                 \
{                                                                        \
  /* Compute oopmap block range. The common case is                      \
     nonstatic_oop_map_size == 1, so we accept the                       \
     usually non-existent extra overhead of examining                    \
     all the maps. */                                                    \
  OopMapBlock* map           = start_of_nonstatic_oop_maps();            \
2061
  OopMapBlock* const end_map = map + nonstatic_oop_map_count();          \
2062 2063 2064
  if (UseCompressedOops) {                                               \
    while (map < end_map) {                                              \
      InstanceKlass_SPECIALIZED_BOUNDED_OOP_ITERATE(narrowOop,           \
2065
        obj->obj_field_addr<narrowOop>(map->offset()), map->count(),     \
2066 2067 2068 2069 2070 2071 2072
        low, high,                                                       \
        do_oop, assert_fn)                                               \
      ++map;                                                             \
    }                                                                    \
  } else {                                                               \
    while (map < end_map) {                                              \
      InstanceKlass_SPECIALIZED_BOUNDED_OOP_ITERATE(oop,                 \
2073
        obj->obj_field_addr<oop>(map->offset()), map->count(),           \
2074 2075 2076 2077 2078 2079 2080
        low, high,                                                       \
        do_oop, assert_fn)                                               \
      ++map;                                                             \
    }                                                                    \
  }                                                                      \
}

2081
void InstanceKlass::oop_follow_contents(oop obj) {
2082
  assert(obj != NULL, "can't follow the content of NULL object");
2083
  MarkSweep::follow_klass(obj->klass());
2084 2085 2086 2087
  InstanceKlass_OOP_MAP_ITERATE( \
    obj, \
    MarkSweep::mark_and_push(p), \
    assert_is_in_closed_subset)
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}

2090
#if INCLUDE_ALL_GCS
2091
void InstanceKlass::oop_follow_contents(ParCompactionManager* cm,
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                                        oop obj) {
2093
  assert(obj != NULL, "can't follow the content of NULL object");
2094 2095 2096
  PSParallelCompact::follow_klass(cm, obj->klass());
  // Only mark the header and let the scan of the meta-data mark
  // everything else.
2097 2098 2099 2100
  InstanceKlass_OOP_MAP_ITERATE( \
    obj, \
    PSParallelCompact::mark_and_push(cm, p), \
    assert_is_in)
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}
2102
#endif // INCLUDE_ALL_GCS
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2104
// closure's do_metadata() method dictates whether the given closure should be
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2105 2106
// applied to the klass ptr in the object header.

2107 2108 2109 2110 2111 2112
#define if_do_metadata_checked(closure, nv_suffix)                    \
  /* Make sure the non-virtual and the virtual versions match. */     \
  assert(closure->do_metadata##nv_suffix() == closure->do_metadata(), \
      "Inconsistency in do_metadata");                                \
  if (closure->do_metadata##nv_suffix())

2113 2114
#define InstanceKlass_OOP_OOP_ITERATE_DEFN(OopClosureType, nv_suffix)        \
                                                                             \
2115
int InstanceKlass::oop_oop_iterate##nv_suffix(oop obj, OopClosureType* closure) { \
2116 2117
  SpecializationStats::record_iterate_call##nv_suffix(SpecializationStats::ik);\
  /* header */                                                          \
2118 2119
  if_do_metadata_checked(closure, nv_suffix) {                          \
    closure->do_klass##nv_suffix(obj->klass());                         \
2120 2121 2122 2123 2124 2125 2126 2127 2128 2129
  }                                                                     \
  InstanceKlass_OOP_MAP_ITERATE(                                        \
    obj,                                                                \
    SpecializationStats::                                               \
      record_do_oop_call##nv_suffix(SpecializationStats::ik);           \
    (closure)->do_oop##nv_suffix(p),                                    \
    assert_is_in_closed_subset)                                         \
  return size_helper();                                                 \
}

2130
#if INCLUDE_ALL_GCS
2131 2132
#define InstanceKlass_OOP_OOP_ITERATE_BACKWARDS_DEFN(OopClosureType, nv_suffix) \
                                                                                \
2133
int InstanceKlass::oop_oop_iterate_backwards##nv_suffix(oop obj,                \
2134 2135 2136
                                              OopClosureType* closure) {        \
  SpecializationStats::record_iterate_call##nv_suffix(SpecializationStats::ik); \
  /* header */                                                                  \
2137 2138
  if_do_metadata_checked(closure, nv_suffix) {                                  \
    closure->do_klass##nv_suffix(obj->klass());                                 \
2139 2140 2141 2142 2143 2144 2145 2146 2147
  }                                                                             \
  /* instance variables */                                                      \
  InstanceKlass_OOP_MAP_REVERSE_ITERATE(                                        \
    obj,                                                                        \
    SpecializationStats::record_do_oop_call##nv_suffix(SpecializationStats::ik);\
    (closure)->do_oop##nv_suffix(p),                                            \
    assert_is_in_closed_subset)                                                 \
   return size_helper();                                                        \
}
2148
#endif // INCLUDE_ALL_GCS
2149

2150 2151
#define InstanceKlass_OOP_OOP_ITERATE_DEFN_m(OopClosureType, nv_suffix) \
                                                                        \
2152
int InstanceKlass::oop_oop_iterate##nv_suffix##_m(oop obj,              \
2153 2154 2155
                                                  OopClosureType* closure, \
                                                  MemRegion mr) {          \
  SpecializationStats::record_iterate_call##nv_suffix(SpecializationStats::ik);\
2156 2157 2158 2159
  if_do_metadata_checked(closure, nv_suffix) {                           \
    if (mr.contains(obj)) {                                              \
      closure->do_klass##nv_suffix(obj->klass());                        \
    }                                                                    \
2160 2161 2162 2163 2164 2165
  }                                                                      \
  InstanceKlass_BOUNDED_OOP_MAP_ITERATE(                                 \
    obj, mr.start(), mr.end(),                                           \
    (closure)->do_oop##nv_suffix(p),                                     \
    assert_is_in_closed_subset)                                          \
  return size_helper();                                                  \
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}

ALL_OOP_OOP_ITERATE_CLOSURES_1(InstanceKlass_OOP_OOP_ITERATE_DEFN)
2169
ALL_OOP_OOP_ITERATE_CLOSURES_2(InstanceKlass_OOP_OOP_ITERATE_DEFN)
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ALL_OOP_OOP_ITERATE_CLOSURES_1(InstanceKlass_OOP_OOP_ITERATE_DEFN_m)
2171
ALL_OOP_OOP_ITERATE_CLOSURES_2(InstanceKlass_OOP_OOP_ITERATE_DEFN_m)
2172
#if INCLUDE_ALL_GCS
2173 2174
ALL_OOP_OOP_ITERATE_CLOSURES_1(InstanceKlass_OOP_OOP_ITERATE_BACKWARDS_DEFN)
ALL_OOP_OOP_ITERATE_CLOSURES_2(InstanceKlass_OOP_OOP_ITERATE_BACKWARDS_DEFN)
2175
#endif // INCLUDE_ALL_GCS
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2177
int InstanceKlass::oop_adjust_pointers(oop obj) {
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  int size = size_helper();
2179 2180 2181 2182
  InstanceKlass_OOP_MAP_ITERATE( \
    obj, \
    MarkSweep::adjust_pointer(p), \
    assert_is_in)
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  return size;
}

2186
#if INCLUDE_ALL_GCS
2187
void InstanceKlass::oop_push_contents(PSPromotionManager* pm, oop obj) {
2188 2189 2190 2191 2192 2193
  InstanceKlass_OOP_MAP_REVERSE_ITERATE( \
    obj, \
    if (PSScavenge::should_scavenge(p)) { \
      pm->claim_or_forward_depth(p); \
    }, \
    assert_nothing )
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2194 2195
}

2196 2197
int InstanceKlass::oop_update_pointers(ParCompactionManager* cm, oop obj) {
  int size = size_helper();
2198 2199 2200
  InstanceKlass_OOP_MAP_ITERATE( \
    obj, \
    PSParallelCompact::adjust_pointer(p), \
2201 2202 2203
    assert_is_in)
  obj->update_header(cm);
  return size;
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}

2206
#endif // INCLUDE_ALL_GCS
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2208 2209
void InstanceKlass::clean_implementors_list(BoolObjectClosure* is_alive) {
  assert(is_loader_alive(is_alive), "this klass should be live");
2210 2211
  if (is_interface()) {
    if (ClassUnloading) {
2212
      Klass* impl = implementor();
2213
      if (impl != NULL) {
2214
        if (!impl->is_loader_alive(is_alive)) {
2215
          // remove this guy
2216 2217 2218 2219 2220
          Klass** klass = adr_implementor();
          assert(klass != NULL, "null klass");
          if (klass != NULL) {
            *klass = NULL;
          }
2221
        }
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2222 2223 2224
      }
    }
  }
2225
}
2226

2227 2228 2229 2230 2231 2232 2233 2234 2235
void InstanceKlass::clean_method_data(BoolObjectClosure* is_alive) {
  for (int m = 0; m < methods()->length(); m++) {
    MethodData* mdo = methods()->at(m)->method_data();
    if (mdo != NULL) {
      for (ProfileData* data = mdo->first_data();
           mdo->is_valid(data);
           data = mdo->next_data(data)) {
        data->clean_weak_klass_links(is_alive);
      }
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2236 2237 2238 2239
      ParametersTypeData* parameters = mdo->parameters_type_data();
      if (parameters != NULL) {
        parameters->clean_weak_klass_links(is_alive);
      }
2240 2241
    }
  }
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2242 2243
}

2244 2245 2246 2247 2248 2249 2250

static void remove_unshareable_in_class(Klass* k) {
  // remove klass's unshareable info
  k->remove_unshareable_info();
}

void InstanceKlass::remove_unshareable_info() {
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  Klass::remove_unshareable_info();
2252 2253 2254 2255
  // Unlink the class
  if (is_linked()) {
    unlink_class();
  }
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2256
  init_implementor();
2257 2258 2259 2260 2261 2262 2263 2264 2265 2266 2267 2268 2269 2270 2271 2272 2273 2274 2275 2276 2277 2278 2279 2280 2281

  constants()->remove_unshareable_info();

  for (int i = 0; i < methods()->length(); i++) {
    Method* m = methods()->at(i);
    m->remove_unshareable_info();
  }

  // do array classes also.
  array_klasses_do(remove_unshareable_in_class);
}

void restore_unshareable_in_class(Klass* k, TRAPS) {
  k->restore_unshareable_info(CHECK);
}

void InstanceKlass::restore_unshareable_info(TRAPS) {
  Klass::restore_unshareable_info(CHECK);
  instanceKlassHandle ik(THREAD, this);

  Array<Method*>* methods = ik->methods();
  int num_methods = methods->length();
  for (int index2 = 0; index2 < num_methods; ++index2) {
    methodHandle m(THREAD, methods->at(index2));
    m()->link_method(m, CHECK);
2282 2283
    // restore method's vtable by calling a virtual function
    m->restore_vtable();
2284 2285 2286 2287 2288 2289 2290 2291 2292 2293 2294 2295 2296 2297 2298 2299
  }
  if (JvmtiExport::has_redefined_a_class()) {
    // Reinitialize vtable because RedefineClasses may have changed some
    // entries in this vtable for super classes so the CDS vtable might
    // point to old or obsolete entries.  RedefineClasses doesn't fix up
    // vtables in the shared system dictionary, only the main one.
    // It also redefines the itable too so fix that too.
    ResourceMark rm(THREAD);
    ik->vtable()->initialize_vtable(false, CHECK);
    ik->itable()->initialize_itable(false, CHECK);
  }

  // restore constant pool resolved references
  ik->constants()->restore_unshareable_info(CHECK);

  ik->array_klasses_do(restore_unshareable_in_class, CHECK);
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2300 2301
}

2302
static void clear_all_breakpoints(Method* m) {
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2303 2304 2305
  m->clear_all_breakpoints();
}

2306 2307 2308 2309 2310 2311 2312 2313 2314 2315 2316 2317 2318 2319 2320 2321 2322

void InstanceKlass::notify_unload_class(InstanceKlass* ik) {
  // notify the debugger
  if (JvmtiExport::should_post_class_unload()) {
    JvmtiExport::post_class_unload(ik);
  }

  // notify ClassLoadingService of class unload
  ClassLoadingService::notify_class_unloaded(ik);
}

void InstanceKlass::release_C_heap_structures(InstanceKlass* ik) {
  // Clean up C heap
  ik->release_C_heap_structures();
  ik->constants()->release_C_heap_structures();
}

2323
void InstanceKlass::release_C_heap_structures() {
2324 2325 2326 2327 2328

  // Can't release the constant pool here because the constant pool can be
  // deallocated separately from the InstanceKlass for default methods and
  // redefine classes.

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2329 2330 2331 2332 2333 2334 2335 2336 2337 2338 2339 2340 2341 2342 2343 2344
  // Deallocate oop map cache
  if (_oop_map_cache != NULL) {
    delete _oop_map_cache;
    _oop_map_cache = NULL;
  }

  // Deallocate JNI identifiers for jfieldIDs
  JNIid::deallocate(jni_ids());
  set_jni_ids(NULL);

  jmethodID* jmeths = methods_jmethod_ids_acquire();
  if (jmeths != (jmethodID*)NULL) {
    release_set_methods_jmethod_ids(NULL);
    FreeHeap(jmeths);
  }

2345 2346 2347 2348 2349 2350 2351 2352 2353
  // Deallocate MemberNameTable
  {
    Mutex* lock_or_null = SafepointSynchronize::is_at_safepoint() ? NULL : MemberNameTable_lock;
    MutexLockerEx ml(lock_or_null, Mutex::_no_safepoint_check_flag);
    MemberNameTable* mnt = member_names();
    if (mnt != NULL) {
      delete mnt;
      set_member_names(NULL);
    }
2354 2355
  }

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  // release dependencies
  nmethodBucket* b = _dependencies;
  _dependencies = NULL;
  while (b != NULL) {
    nmethodBucket* next = b->next();
    delete b;
    b = next;
  }

  // Deallocate breakpoint records
  if (breakpoints() != 0x0) {
    methods_do(clear_all_breakpoints);
    assert(breakpoints() == 0x0, "should have cleared breakpoints");
  }

  // deallocate information about previous versions
  if (_previous_versions != NULL) {
    for (int i = _previous_versions->length() - 1; i >= 0; i--) {
      PreviousVersionNode * pv_node = _previous_versions->at(i);
      delete pv_node;
    }
    delete _previous_versions;
    _previous_versions = NULL;
  }

  // deallocate the cached class file
2382 2383 2384
  if (_cached_class_file != NULL) {
    os::free(_cached_class_file, mtClass);
    _cached_class_file = NULL;
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  }
2386 2387 2388 2389 2390 2391

  // Decrement symbol reference counts associated with the unloaded class.
  if (_name != NULL) _name->decrement_refcount();
  // unreference array name derived from this class name (arrays of an unloaded
  // class can't be referenced anymore).
  if (_array_name != NULL)  _array_name->decrement_refcount();
2392
  if (_source_debug_extension != NULL) FREE_C_HEAP_ARRAY(char, _source_debug_extension, mtClass);
2393 2394 2395

  assert(_total_instanceKlass_count >= 1, "Sanity check");
  Atomic::dec(&_total_instanceKlass_count);
2396 2397
}

2398
void InstanceKlass::set_source_debug_extension(char* array, int length) {
2399 2400 2401 2402 2403 2404 2405 2406 2407 2408 2409 2410 2411 2412 2413
  if (array == NULL) {
    _source_debug_extension = NULL;
  } else {
    // Adding one to the attribute length in order to store a null terminator
    // character could cause an overflow because the attribute length is
    // already coded with an u4 in the classfile, but in practice, it's
    // unlikely to happen.
    assert((length+1) > length, "Overflow checking");
    char* sde = NEW_C_HEAP_ARRAY(char, (length + 1), mtClass);
    for (int i = 0; i < length; i++) {
      sde[i] = array[i];
    }
    sde[length] = '\0';
    _source_debug_extension = sde;
  }
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2414 2415
}

2416
address InstanceKlass::static_field_addr(int offset) {
2417
  return (address)(offset + InstanceMirrorKlass::offset_of_static_fields() + cast_from_oop<intptr_t>(java_mirror()));
2418 2419 2420
}


2421
const char* InstanceKlass::signature_name() const {
2422 2423 2424 2425 2426 2427 2428 2429 2430 2431 2432 2433
  int hash_len = 0;
  char hash_buf[40];

  // If this is an anonymous class, append a hash to make the name unique
  if (is_anonymous()) {
    assert(EnableInvokeDynamic, "EnableInvokeDynamic was not set.");
    intptr_t hash = (java_mirror() != NULL) ? java_mirror()->identity_hash() : 0;
    sprintf(hash_buf, "/" UINTX_FORMAT, (uintx)hash);
    hash_len = (int)strlen(hash_buf);
  }

  // Get the internal name as a c string
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2434 2435
  const char* src = (const char*) (name()->as_C_string());
  const int src_length = (int)strlen(src);
2436 2437 2438 2439

  char* dest = NEW_RESOURCE_ARRAY(char, src_length + hash_len + 3);

  // Add L as type indicator
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2440 2441
  int dest_index = 0;
  dest[dest_index++] = 'L';
2442 2443 2444

  // Add the actual class name
  for (int src_index = 0; src_index < src_length; ) {
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2445 2446
    dest[dest_index++] = src[src_index++];
  }
2447 2448 2449 2450 2451 2452 2453

  // If we have a hash, append it
  for (int hash_index = 0; hash_index < hash_len; ) {
    dest[dest_index++] = hash_buf[hash_index++];
  }

  // Add the semicolon and the NULL
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2454 2455 2456 2457 2458 2459
  dest[dest_index++] = ';';
  dest[dest_index] = '\0';
  return dest;
}

// different verisons of is_same_class_package
2460 2461 2462
bool InstanceKlass::is_same_class_package(Klass* class2) {
  Klass* class1 = this;
  oop classloader1 = InstanceKlass::cast(class1)->class_loader();
H
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2463
  Symbol* classname1 = class1->name();
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2464

H
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2465
  if (class2->oop_is_objArray()) {
2466
    class2 = ObjArrayKlass::cast(class2)->bottom_klass();
D
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2467 2468
  }
  oop classloader2;
H
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2469
  if (class2->oop_is_instance()) {
2470
    classloader2 = InstanceKlass::cast(class2)->class_loader();
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2471
  } else {
H
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2472
    assert(class2->oop_is_typeArray(), "should be type array");
D
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2473 2474
    classloader2 = NULL;
  }
H
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2475
  Symbol* classname2 = class2->name();
D
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2476

2477
  return InstanceKlass::is_same_class_package(classloader1, classname1,
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2478 2479 2480
                                              classloader2, classname2);
}

2481 2482 2483
bool InstanceKlass::is_same_class_package(oop classloader2, Symbol* classname2) {
  Klass* class1 = this;
  oop classloader1 = InstanceKlass::cast(class1)->class_loader();
H
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2484
  Symbol* classname1 = class1->name();
D
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2485

2486
  return InstanceKlass::is_same_class_package(classloader1, classname1,
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2487 2488 2489 2490 2491
                                              classloader2, classname2);
}

// return true if two classes are in the same package, classloader
// and classname information is enough to determine a class's package
2492
bool InstanceKlass::is_same_class_package(oop class_loader1, Symbol* class_name1,
2493
                                          oop class_loader2, Symbol* class_name2) {
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2494 2495
  if (class_loader1 != class_loader2) {
    return false;
2496 2497
  } else if (class_name1 == class_name2) {
    return true;                // skip painful bytewise comparison
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2498 2499 2500
  } else {
    ResourceMark rm;

2501
    // The Symbol*'s are in UTF8 encoding. Since we only need to check explicitly
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2502 2503
    // for ASCII characters ('/', 'L', '['), we can keep them in UTF8 encoding.
    // Otherwise, we just compare jbyte values between the strings.
2504 2505
    const jbyte *name1 = class_name1->base();
    const jbyte *name2 = class_name2->base();
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2506

2507 2508
    const jbyte *last_slash1 = UTF8::strrchr(name1, class_name1->utf8_length(), '/');
    const jbyte *last_slash2 = UTF8::strrchr(name2, class_name2->utf8_length(), '/');
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2509 2510 2511 2512 2513 2514 2515 2516 2517 2518 2519 2520 2521 2522 2523 2524 2525 2526 2527 2528 2529 2530 2531 2532 2533 2534 2535 2536 2537 2538 2539 2540 2541 2542 2543

    if ((last_slash1 == NULL) || (last_slash2 == NULL)) {
      // One of the two doesn't have a package.  Only return true
      // if the other one also doesn't have a package.
      return last_slash1 == last_slash2;
    } else {
      // Skip over '['s
      if (*name1 == '[') {
        do {
          name1++;
        } while (*name1 == '[');
        if (*name1 != 'L') {
          // Something is terribly wrong.  Shouldn't be here.
          return false;
        }
      }
      if (*name2 == '[') {
        do {
          name2++;
        } while (*name2 == '[');
        if (*name2 != 'L') {
          // Something is terribly wrong.  Shouldn't be here.
          return false;
        }
      }

      // Check that package part is identical
      int length1 = last_slash1 - name1;
      int length2 = last_slash2 - name2;

      return UTF8::equal(name1, length1, name2, length2);
    }
  }
}

2544 2545 2546
// Returns true iff super_method can be overridden by a method in targetclassname
// See JSL 3rd edition 8.4.6.1
// Assumes name-signature match
2547 2548 2549
// "this" is InstanceKlass of super_method which must exist
// note that the InstanceKlass of the method in the targetclassname has not always been created yet
bool InstanceKlass::is_override(methodHandle super_method, Handle targetclassloader, Symbol* targetclassname, TRAPS) {
2550 2551 2552 2553 2554 2555 2556 2557 2558 2559 2560
   // Private methods can not be overridden
   if (super_method->is_private()) {
     return false;
   }
   // If super method is accessible, then override
   if ((super_method->is_protected()) ||
       (super_method->is_public())) {
     return true;
   }
   // Package-private methods are not inherited outside of package
   assert(super_method->is_package_private(), "must be package private");
2561
   return(is_same_class_package(targetclassloader(), targetclassname));
2562
}
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2563

2564
/* defined for now in jvm.cpp, for historical reasons *--
2565
Klass* InstanceKlass::compute_enclosing_class_impl(instanceKlassHandle self,
2566
                                                     Symbol*& simple_name_result, TRAPS) {
2567 2568 2569 2570 2571
  ...
}
*/

// tell if two classes have the same enclosing class (at package level)
2572 2573 2574
bool InstanceKlass::is_same_package_member_impl(instanceKlassHandle class1,
                                                Klass* class2_oop, TRAPS) {
  if (class2_oop == class1())                       return true;
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2575
  if (!class2_oop->oop_is_instance())  return false;
2576 2577 2578 2579 2580 2581 2582 2583 2584 2585 2586 2587 2588
  instanceKlassHandle class2(THREAD, class2_oop);

  // must be in same package before we try anything else
  if (!class1->is_same_class_package(class2->class_loader(), class2->name()))
    return false;

  // As long as there is an outer1.getEnclosingClass,
  // shift the search outward.
  instanceKlassHandle outer1 = class1;
  for (;;) {
    // As we walk along, look for equalities between outer1 and class2.
    // Eventually, the walks will terminate as outer1 stops
    // at the top-level class around the original class.
2589
    bool ignore_inner_is_member;
2590
    Klass* next = outer1->compute_enclosing_class(&ignore_inner_is_member,
2591
                                                    CHECK_false);
2592 2593 2594 2595 2596 2597 2598 2599
    if (next == NULL)  break;
    if (next == class2())  return true;
    outer1 = instanceKlassHandle(THREAD, next);
  }

  // Now do the same for class2.
  instanceKlassHandle outer2 = class2;
  for (;;) {
2600
    bool ignore_inner_is_member;
2601
    Klass* next = outer2->compute_enclosing_class(&ignore_inner_is_member,
2602
                                                    CHECK_false);
2603 2604 2605 2606 2607 2608 2609 2610 2611 2612 2613 2614
    if (next == NULL)  break;
    // Might as well check the new outer against all available values.
    if (next == class1())  return true;
    if (next == outer1())  return true;
    outer2 = instanceKlassHandle(THREAD, next);
  }

  // If by this point we have not found an equality between the
  // two classes, we know they are in separate package members.
  return false;
}

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2616
jint InstanceKlass::compute_modifier_flags(TRAPS) const {
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  jint access = access_flags().as_int();

  // But check if it happens to be member class.
2620
  instanceKlassHandle ik(THREAD, this);
2621 2622 2623 2624 2625 2626 2627 2628 2629 2630 2631 2632 2633 2634
  InnerClassesIterator iter(ik);
  for (; !iter.done(); iter.next()) {
    int ioff = iter.inner_class_info_index();
    // Inner class attribute can be zero, skip it.
    // Strange but true:  JVM spec. allows null inner class refs.
    if (ioff == 0) continue;

    // only look at classes that are already loaded
    // since we are looking for the flags for our self.
    Symbol* inner_name = ik->constants()->klass_name_at(ioff);
    if ((ik->name() == inner_name)) {
      // This is really a member class.
      access = iter.inner_access_flags();
      break;
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    }
  }
  // Remember to strip ACC_SUPER bit
  return (access & (~JVM_ACC_SUPER)) & JVM_ACC_WRITTEN_FLAGS;
}

2641
jint InstanceKlass::jvmti_class_status() const {
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  jint result = 0;

  if (is_linked()) {
    result |= JVMTI_CLASS_STATUS_VERIFIED | JVMTI_CLASS_STATUS_PREPARED;
  }

  if (is_initialized()) {
    assert(is_linked(), "Class status is not consistent");
    result |= JVMTI_CLASS_STATUS_INITIALIZED;
  }
  if (is_in_error_state()) {
    result |= JVMTI_CLASS_STATUS_ERROR;
  }
  return result;
}

2658
Method* InstanceKlass::method_at_itable(Klass* holder, int index, TRAPS) {
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  itableOffsetEntry* ioe = (itableOffsetEntry*)start_of_itable();
  int method_table_offset_in_words = ioe->offset()/wordSize;
  int nof_interfaces = (method_table_offset_in_words - itable_offset_in_words())
                       / itableOffsetEntry::size();

  for (int cnt = 0 ; ; cnt ++, ioe ++) {
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    // If the interface isn't implemented by the receiver class,
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    // the VM should throw IncompatibleClassChangeError.
    if (cnt >= nof_interfaces) {
2668
      THROW_NULL(vmSymbols::java_lang_IncompatibleClassChangeError());
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    }

2671
    Klass* ik = ioe->interface_klass();
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    if (ik == holder) break;
  }

2675 2676
  itableMethodEntry* ime = ioe->first_method_entry(this);
  Method* m = ime[index].method();
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  if (m == NULL) {
2678
    THROW_NULL(vmSymbols::java_lang_AbstractMethodError());
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  }
  return m;
}

2683 2684 2685 2686 2687 2688 2689 2690 2691 2692 2693 2694 2695 2696 2697 2698 2699 2700 2701 2702 2703 2704 2705 2706 2707 2708 2709 2710 2711 2712 2713 2714 2715 2716 2717 2718

#if INCLUDE_JVMTI
// update default_methods for redefineclasses for methods that are
// not yet in the vtable due to concurrent subclass define and superinterface
// redefinition
// Note: those in the vtable, should have been updated via adjust_method_entries
void InstanceKlass::adjust_default_methods(Method** old_methods, Method** new_methods,
                                           int methods_length, bool* trace_name_printed) {
  // search the default_methods for uses of either obsolete or EMCP methods
  if (default_methods() != NULL) {
    for (int j = 0; j < methods_length; j++) {
      Method* old_method = old_methods[j];
      Method* new_method = new_methods[j];

      for (int index = 0; index < default_methods()->length(); index ++) {
        if (default_methods()->at(index) == old_method) {
          default_methods()->at_put(index, new_method);
          if (RC_TRACE_IN_RANGE(0x00100000, 0x00400000)) {
            if (!(*trace_name_printed)) {
              // RC_TRACE_MESG macro has an embedded ResourceMark
              RC_TRACE_MESG(("adjust: klassname=%s default methods from name=%s",
                             external_name(),
                             old_method->method_holder()->external_name()));
              *trace_name_printed = true;
            }
            RC_TRACE(0x00100000, ("default method update: %s(%s) ",
                                  new_method->name()->as_C_string(),
                                  new_method->signature()->as_C_string()));
          }
        }
      }
    }
  }
}
#endif // INCLUDE_JVMTI

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// On-stack replacement stuff
2720
void InstanceKlass::add_osr_nmethod(nmethod* n) {
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2721 2722 2723 2724 2725
  // only one compilation can be active
  NEEDS_CLEANUP
  // This is a short non-blocking critical region, so the no safepoint check is ok.
  OsrList_lock->lock_without_safepoint_check();
  assert(n->is_osr_method(), "wrong kind of nmethod");
2726
  n->set_osr_link(osr_nmethods_head());
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  set_osr_nmethods_head(n);
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2728 2729
  // Raise the highest osr level if necessary
  if (TieredCompilation) {
2730
    Method* m = n->method();
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    m->set_highest_osr_comp_level(MAX2(m->highest_osr_comp_level(), n->comp_level()));
  }
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2733 2734
  // Remember to unlock again
  OsrList_lock->unlock();
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  // Get rid of the osr methods for the same bci that have lower levels.
  if (TieredCompilation) {
    for (int l = CompLevel_limited_profile; l < n->comp_level(); l++) {
      nmethod *inv = lookup_osr_nmethod(n->method(), n->osr_entry_bci(), l, true);
      if (inv != NULL && inv->is_in_use()) {
        inv->make_not_entrant();
      }
    }
  }
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2745 2746 2747
}


2748
void InstanceKlass::remove_osr_nmethod(nmethod* n) {
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  // This is a short non-blocking critical region, so the no safepoint check is ok.
  OsrList_lock->lock_without_safepoint_check();
  assert(n->is_osr_method(), "wrong kind of nmethod");
  nmethod* last = NULL;
  nmethod* cur  = osr_nmethods_head();
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2754
  int max_level = CompLevel_none;  // Find the max comp level excluding n
2755
  Method* m = n->method();
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2756 2757
  // Search for match
  while(cur != NULL && cur != n) {
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2758 2759 2760 2761
    if (TieredCompilation) {
      // Find max level before n
      max_level = MAX2(max_level, cur->comp_level());
    }
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2762
    last = cur;
2763
    cur = cur->osr_link();
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2764
  }
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2765
  nmethod* next = NULL;
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2766
  if (cur == n) {
I
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2767
    next = cur->osr_link();
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2768 2769
    if (last == NULL) {
      // Remove first element
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2770
      set_osr_nmethods_head(next);
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2771
    } else {
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2772
      last->set_osr_link(next);
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2773 2774
    }
  }
2775
  n->set_osr_link(NULL);
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2776 2777 2778 2779 2780 2781 2782 2783 2784
  if (TieredCompilation) {
    cur = next;
    while (cur != NULL) {
      // Find max level after n
      max_level = MAX2(max_level, cur->comp_level());
      cur = cur->osr_link();
    }
    m->set_highest_osr_comp_level(max_level);
  }
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2785 2786 2787 2788
  // Remember to unlock again
  OsrList_lock->unlock();
}

2789
nmethod* InstanceKlass::lookup_osr_nmethod(const Method* m, int bci, int comp_level, bool match_level) const {
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2790 2791 2792
  // This is a short non-blocking critical region, so the no safepoint check is ok.
  OsrList_lock->lock_without_safepoint_check();
  nmethod* osr = osr_nmethods_head();
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2793
  nmethod* best = NULL;
D
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2794 2795
  while (osr != NULL) {
    assert(osr->is_osr_method(), "wrong kind of nmethod found in chain");
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    // There can be a time when a c1 osr method exists but we are waiting
    // for a c2 version. When c2 completes its osr nmethod we will trash
    // the c1 version and only be able to find the c2 version. However
    // while we overflow in the c1 code at back branches we don't want to
    // try and switch to the same code as we are already running

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    if (osr->method() == m &&
        (bci == InvocationEntryBci || osr->osr_entry_bci() == bci)) {
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2804 2805 2806 2807 2808 2809 2810 2811 2812 2813 2814 2815 2816 2817 2818 2819
      if (match_level) {
        if (osr->comp_level() == comp_level) {
          // Found a match - return it.
          OsrList_lock->unlock();
          return osr;
        }
      } else {
        if (best == NULL || (osr->comp_level() > best->comp_level())) {
          if (osr->comp_level() == CompLevel_highest_tier) {
            // Found the best possible - return it.
            OsrList_lock->unlock();
            return osr;
          }
          best = osr;
        }
      }
D
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2820
    }
2821
    osr = osr->osr_link();
D
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2822 2823
  }
  OsrList_lock->unlock();
I
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2824 2825 2826
  if (best != NULL && best->comp_level() >= comp_level && match_level == false) {
    return best;
  }
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2827 2828 2829
  return NULL;
}

2830
void InstanceKlass::add_member_name(int index, Handle mem_name) {
2831 2832
  jweak mem_name_wref = JNIHandles::make_weak_global(mem_name);
  MutexLocker ml(MemberNameTable_lock);
2833
  assert(0 <= index && index < idnum_allocated_count(), "index is out of bounds");
2834 2835 2836
  DEBUG_ONLY(No_Safepoint_Verifier nsv);

  if (_member_names == NULL) {
2837
    _member_names = new (ResourceObj::C_HEAP, mtClass) MemberNameTable(idnum_allocated_count());
2838
  }
2839 2840 2841 2842 2843 2844 2845 2846 2847 2848 2849 2850 2851
  _member_names->add_member_name(index, mem_name_wref);
}

oop InstanceKlass::get_member_name(int index) {
  MutexLocker ml(MemberNameTable_lock);
  assert(0 <= index && index < idnum_allocated_count(), "index is out of bounds");
  DEBUG_ONLY(No_Safepoint_Verifier nsv);

  if (_member_names == NULL) {
    return NULL;
  }
  oop mem_name =_member_names->get_member_name(index);
  return mem_name;
2852 2853
}

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2854 2855 2856
// -----------------------------------------------------------------------------------------------------
// Printing

2857 2858
#ifndef PRODUCT

2859 2860
#define BULLET  " - "

2861 2862 2863 2864
static const char* state_names[] = {
  "allocated", "loaded", "linked", "being_initialized", "fully_initialized", "initialization_error"
};

2865 2866 2867 2868 2869 2870 2871 2872 2873 2874 2875 2876
static void print_vtable(intptr_t* start, int len, outputStream* st) {
  for (int i = 0; i < len; i++) {
    intptr_t e = start[i];
    st->print("%d : " INTPTR_FORMAT, i, e);
    if (e != 0 && ((Metadata*)e)->is_metaspace_object()) {
      st->print(" ");
      ((Metadata*)e)->print_value_on(st);
    }
    st->cr();
  }
}

2877 2878 2879 2880 2881 2882 2883 2884 2885 2886 2887 2888 2889 2890 2891 2892 2893 2894 2895 2896 2897 2898 2899 2900 2901 2902 2903 2904 2905 2906 2907 2908 2909 2910
void InstanceKlass::print_on(outputStream* st) const {
  assert(is_klass(), "must be klass");
  Klass::print_on(st);

  st->print(BULLET"instance size:     %d", size_helper());                        st->cr();
  st->print(BULLET"klass size:        %d", size());                               st->cr();
  st->print(BULLET"access:            "); access_flags().print_on(st);            st->cr();
  st->print(BULLET"state:             "); st->print_cr(state_names[_init_state]);
  st->print(BULLET"name:              "); name()->print_value_on(st);             st->cr();
  st->print(BULLET"super:             "); super()->print_value_on_maybe_null(st); st->cr();
  st->print(BULLET"sub:               ");
  Klass* sub = subklass();
  int n;
  for (n = 0; sub != NULL; n++, sub = sub->next_sibling()) {
    if (n < MaxSubklassPrintSize) {
      sub->print_value_on(st);
      st->print("   ");
    }
  }
  if (n >= MaxSubklassPrintSize) st->print("(%d more klasses...)", n - MaxSubklassPrintSize);
  st->cr();

  if (is_interface()) {
    st->print_cr(BULLET"nof implementors:  %d", nof_implementors());
    if (nof_implementors() == 1) {
      st->print_cr(BULLET"implementor:    ");
      st->print("   ");
      implementor()->print_value_on(st);
      st->cr();
    }
  }

  st->print(BULLET"arrays:            "); array_klasses()->print_value_on_maybe_null(st); st->cr();
  st->print(BULLET"methods:           "); methods()->print_value_on(st);                  st->cr();
2911
  if (Verbose || WizardMode) {
2912
    Array<Method*>* method_array = methods();
2913
    for (int i = 0; i < method_array->length(); i++) {
2914 2915 2916
      st->print("%d : ", i); method_array->at(i)->print_value(); st->cr();
    }
  }
2917 2918 2919 2920 2921 2922 2923 2924 2925 2926 2927
  st->print(BULLET"method ordering:   "); method_ordering()->print_value_on(st);      st->cr();
  st->print(BULLET"default_methods:   "); default_methods()->print_value_on(st);      st->cr();
  if (Verbose && default_methods() != NULL) {
    Array<Method*>* method_array = default_methods();
    for (int i = 0; i < method_array->length(); i++) {
      st->print("%d : ", i); method_array->at(i)->print_value(); st->cr();
    }
  }
  if (default_vtable_indices() != NULL) {
    st->print(BULLET"default vtable indices:   "); default_vtable_indices()->print_value_on(st);       st->cr();
  }
2928 2929 2930 2931 2932 2933 2934 2935 2936 2937 2938 2939 2940 2941 2942 2943 2944 2945 2946
  st->print(BULLET"local interfaces:  "); local_interfaces()->print_value_on(st);      st->cr();
  st->print(BULLET"trans. interfaces: "); transitive_interfaces()->print_value_on(st); st->cr();
  st->print(BULLET"constants:         "); constants()->print_value_on(st);         st->cr();
  if (class_loader_data() != NULL) {
    st->print(BULLET"class loader data:  ");
    class_loader_data()->print_value_on(st);
    st->cr();
  }
  st->print(BULLET"host class:        "); host_klass()->print_value_on_maybe_null(st); st->cr();
  if (source_file_name() != NULL) {
    st->print(BULLET"source file:       ");
    source_file_name()->print_value_on(st);
    st->cr();
  }
  if (source_debug_extension() != NULL) {
    st->print(BULLET"source debug extension:       ");
    st->print("%s", source_debug_extension());
    st->cr();
  }
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2947 2948 2949 2950
  st->print(BULLET"class annotations:       "); class_annotations()->print_value_on(st); st->cr();
  st->print(BULLET"class type annotations:  "); class_type_annotations()->print_value_on(st); st->cr();
  st->print(BULLET"field annotations:       "); fields_annotations()->print_value_on(st); st->cr();
  st->print(BULLET"field type annotations:  "); fields_type_annotations()->print_value_on(st); st->cr();
2951
  {
2952 2953 2954 2955 2956 2957 2958 2959 2960 2961 2962
    bool have_pv = false;
    PreviousVersionWalker pvw(Thread::current(), (InstanceKlass*)this);
    for (PreviousVersionNode * pv_node = pvw.next_previous_version();
         pv_node != NULL; pv_node = pvw.next_previous_version()) {
      if (!have_pv)
        st->print(BULLET"previous version:  ");
      have_pv = true;
      pv_node->prev_constant_pool()->print_value_on(st);
    }
    if (have_pv) st->cr();
  } // pvw is cleaned up
2963 2964 2965 2966 2967 2968 2969 2970 2971

  if (generic_signature() != NULL) {
    st->print(BULLET"generic signature: ");
    generic_signature()->print_value_on(st);
    st->cr();
  }
  st->print(BULLET"inner classes:     "); inner_classes()->print_value_on(st);     st->cr();
  st->print(BULLET"java mirror:       "); java_mirror()->print_value_on(st);       st->cr();
  st->print(BULLET"vtable length      %d  (start addr: " INTPTR_FORMAT ")", vtable_length(), start_of_vtable());  st->cr();
2972
  if (vtable_length() > 0 && (Verbose || WizardMode))  print_vtable(start_of_vtable(), vtable_length(), st);
2973
  st->print(BULLET"itable length      %d (start addr: " INTPTR_FORMAT ")", itable_length(), start_of_itable()); st->cr();
2974
  if (itable_length() > 0 && (Verbose || WizardMode))  print_vtable(start_of_itable(), itable_length(), st);
2975 2976 2977 2978 2979 2980 2981 2982 2983 2984 2985 2986 2987 2988 2989 2990 2991 2992 2993 2994 2995
  st->print_cr(BULLET"---- static fields (%d words):", static_field_size());
  FieldPrinter print_static_field(st);
  ((InstanceKlass*)this)->do_local_static_fields(&print_static_field);
  st->print_cr(BULLET"---- non-static fields (%d words):", nonstatic_field_size());
  FieldPrinter print_nonstatic_field(st);
  ((InstanceKlass*)this)->do_nonstatic_fields(&print_nonstatic_field);

  st->print(BULLET"non-static oop maps: ");
  OopMapBlock* map     = start_of_nonstatic_oop_maps();
  OopMapBlock* end_map = map + nonstatic_oop_map_count();
  while (map < end_map) {
    st->print("%d-%d ", map->offset(), map->offset() + heapOopSize*(map->count() - 1));
    map++;
  }
  st->cr();
}

#endif //PRODUCT

void InstanceKlass::print_value_on(outputStream* st) const {
  assert(is_klass(), "must be klass");
2996
  if (Verbose || WizardMode)  access_flags().print_on(st);
2997 2998 2999 3000 3001
  name()->print_value_on(st);
}

#ifndef PRODUCT

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3002
void FieldPrinter::do_field(fieldDescriptor* fd) {
3003
  _st->print(BULLET);
3004
   if (_obj == NULL) {
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3005 3006 3007 3008 3009 3010 3011 3012 3013
     fd->print_on(_st);
     _st->cr();
   } else {
     fd->print_on_for(_st, _obj);
     _st->cr();
   }
}


3014
void InstanceKlass::oop_print_on(oop obj, outputStream* st) {
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3015 3016
  Klass::oop_print_on(obj, st);

3017
  if (this == SystemDictionary::String_klass()) {
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3018 3019 3020 3021 3022 3023 3024
    typeArrayOop value  = java_lang_String::value(obj);
    juint        offset = java_lang_String::offset(obj);
    juint        length = java_lang_String::length(obj);
    if (value != NULL &&
        value->is_typeArray() &&
        offset          <= (juint) value->length() &&
        offset + length <= (juint) value->length()) {
3025
      st->print(BULLET"string: ");
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3026 3027 3028 3029 3030 3031 3032
      Handle h_obj(obj);
      java_lang_String::print(h_obj, st);
      st->cr();
      if (!WizardMode)  return;  // that is enough
    }
  }

3033
  st->print_cr(BULLET"---- fields (total size %d words):", oop_size(obj));
3034 3035
  FieldPrinter print_field(st, obj);
  do_nonstatic_fields(&print_field);
D
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3036

3037
  if (this == SystemDictionary::Class_klass()) {
3038 3039 3040
    st->print(BULLET"signature: ");
    java_lang_Class::print_signature(obj, st);
    st->cr();
3041
    Klass* mirrored_klass = java_lang_Class::as_Klass(obj);
3042
    st->print(BULLET"fake entry for mirror: ");
3043
    mirrored_klass->print_value_on_maybe_null(st);
D
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3044
    st->cr();
3045
    Klass* array_klass = java_lang_Class::array_klass(obj);
3046
    st->print(BULLET"fake entry for array: ");
3047
    array_klass->print_value_on_maybe_null(st);
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3048
    st->cr();
3049 3050
    st->print_cr(BULLET"fake entry for oop_size: %d", java_lang_Class::oop_size(obj));
    st->print_cr(BULLET"fake entry for static_oop_field_count: %d", java_lang_Class::static_oop_field_count(obj));
3051 3052 3053
    Klass* real_klass = java_lang_Class::as_Klass(obj);
    if (real_klass != NULL && real_klass->oop_is_instance()) {
      InstanceKlass::cast(real_klass)->do_local_static_fields(&print_field);
3054
    }
3055
  } else if (this == SystemDictionary::MethodType_klass()) {
3056
    st->print(BULLET"signature: ");
3057
    java_lang_invoke_MethodType::print_signature(obj, st);
3058
    st->cr();
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3059 3060 3061
  }
}

3062 3063
#endif //PRODUCT

3064
void InstanceKlass::oop_print_value_on(oop obj, outputStream* st) {
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3065 3066 3067
  st->print("a ");
  name()->print_value_on(st);
  obj->print_address_on(st);
3068
  if (this == SystemDictionary::String_klass()
3069 3070 3071 3072 3073 3074 3075 3076
      && java_lang_String::value(obj) != NULL) {
    ResourceMark rm;
    int len = java_lang_String::length(obj);
    int plen = (len < 24 ? len : 12);
    char* str = java_lang_String::as_utf8_string(obj, 0, plen);
    st->print(" = \"%s\"", str);
    if (len > plen)
      st->print("...[%d]", len);
3077 3078
  } else if (this == SystemDictionary::Class_klass()) {
    Klass* k = java_lang_Class::as_Klass(obj);
3079 3080 3081 3082 3083 3084 3085
    st->print(" = ");
    if (k != NULL) {
      k->print_value_on(st);
    } else {
      const char* tname = type2name(java_lang_Class::primitive_type(obj));
      st->print("%s", tname ? tname : "type?");
    }
3086
  } else if (this == SystemDictionary::MethodType_klass()) {
3087
    st->print(" = ");
3088
    java_lang_invoke_MethodType::print_signature(obj, st);
3089 3090 3091
  } else if (java_lang_boxing_object::is_instance(obj)) {
    st->print(" = ");
    java_lang_boxing_object::print(obj, st);
3092
  } else if (this == SystemDictionary::LambdaForm_klass()) {
3093 3094 3095 3096 3097
    oop vmentry = java_lang_invoke_LambdaForm::vmentry(obj);
    if (vmentry != NULL) {
      st->print(" => ");
      vmentry->print_value_on(st);
    }
3098 3099
  } else if (this == SystemDictionary::MemberName_klass()) {
    Metadata* vmtarget = java_lang_invoke_MemberName::vmtarget(obj);
3100 3101 3102 3103 3104 3105 3106 3107
    if (vmtarget != NULL) {
      st->print(" = ");
      vmtarget->print_value_on(st);
    } else {
      java_lang_invoke_MemberName::clazz(obj)->print_value_on(st);
      st->print(".");
      java_lang_invoke_MemberName::name(obj)->print_value_on(st);
    }
3108
  }
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3109 3110
}

3111
const char* InstanceKlass::internal_name() const {
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3112 3113 3114
  return external_name();
}

3115 3116 3117 3118 3119 3120 3121 3122 3123 3124 3125 3126 3127 3128 3129 3130 3131 3132 3133 3134 3135 3136 3137 3138 3139 3140 3141 3142 3143 3144 3145 3146 3147 3148 3149 3150 3151 3152 3153 3154 3155 3156 3157 3158 3159
#if INCLUDE_SERVICES
// Size Statistics
void InstanceKlass::collect_statistics(KlassSizeStats *sz) const {
  Klass::collect_statistics(sz);

  sz->_inst_size  = HeapWordSize * size_helper();
  sz->_vtab_bytes = HeapWordSize * align_object_offset(vtable_length());
  sz->_itab_bytes = HeapWordSize * align_object_offset(itable_length());
  sz->_nonstatic_oopmap_bytes = HeapWordSize *
        ((is_interface() || is_anonymous()) ?
         align_object_offset(nonstatic_oop_map_size()) :
         nonstatic_oop_map_size());

  int n = 0;
  n += (sz->_methods_array_bytes         = sz->count_array(methods()));
  n += (sz->_method_ordering_bytes       = sz->count_array(method_ordering()));
  n += (sz->_local_interfaces_bytes      = sz->count_array(local_interfaces()));
  n += (sz->_transitive_interfaces_bytes = sz->count_array(transitive_interfaces()));
  n += (sz->_fields_bytes                = sz->count_array(fields()));
  n += (sz->_inner_classes_bytes         = sz->count_array(inner_classes()));
  sz->_ro_bytes += n;

  const ConstantPool* cp = constants();
  if (cp) {
    cp->collect_statistics(sz);
  }

  const Annotations* anno = annotations();
  if (anno) {
    anno->collect_statistics(sz);
  }

  const Array<Method*>* methods_array = methods();
  if (methods()) {
    for (int i = 0; i < methods_array->length(); i++) {
      Method* method = methods_array->at(i);
      if (method) {
        sz->_method_count ++;
        method->collect_statistics(sz);
      }
    }
  }
}
#endif // INCLUDE_SERVICES

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3160 3161 3162
// Verification

class VerifyFieldClosure: public OopClosure {
3163 3164 3165 3166 3167
 protected:
  template <class T> void do_oop_work(T* p) {
    oop obj = oopDesc::load_decode_heap_oop(p);
    if (!obj->is_oop_or_null()) {
      tty->print_cr("Failed: " PTR_FORMAT " -> " PTR_FORMAT, p, (address)obj);
D
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3168 3169 3170 3171
      Universe::print();
      guarantee(false, "boom");
    }
  }
3172 3173 3174
 public:
  virtual void do_oop(oop* p)       { VerifyFieldClosure::do_oop_work(p); }
  virtual void do_oop(narrowOop* p) { VerifyFieldClosure::do_oop_work(p); }
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3175 3176
};

3177
void InstanceKlass::verify_on(outputStream* st, bool check_dictionary) {
3178
#ifndef PRODUCT
3179
  // Avoid redundant verifies, this really should be in product.
3180 3181 3182
  if (_verify_count == Universe::verify_count()) return;
  _verify_count = Universe::verify_count();
#endif
3183 3184 3185 3186 3187 3188 3189

  // Verify Klass
  Klass::verify_on(st, check_dictionary);

  // Verify that klass is present in SystemDictionary if not already
  // verifying the SystemDictionary.
  if (is_loaded() && !is_anonymous() && check_dictionary) {
3190 3191 3192 3193 3194 3195
    Symbol* h_name = name();
    SystemDictionary::verify_obj_klass_present(h_name, class_loader_data());
  }

  // Verify vtables
  if (is_linked()) {
3196
    ResourceMark rm;
3197 3198 3199 3200 3201 3202 3203 3204 3205 3206 3207 3208 3209 3210 3211 3212 3213 3214 3215 3216 3217 3218 3219 3220 3221 3222 3223
    // $$$ This used to be done only for m/s collections.  Doing it
    // always seemed a valid generalization.  (DLD -- 6/00)
    vtable()->verify(st);
  }

  // Verify first subklass
  if (subklass_oop() != NULL) {
    guarantee(subklass_oop()->is_klass(), "should be klass");
  }

  // Verify siblings
  Klass* super = this->super();
  Klass* sib = next_sibling();
  if (sib != NULL) {
    if (sib == this) {
      fatal(err_msg("subclass points to itself " PTR_FORMAT, sib));
    }

    guarantee(sib->is_klass(), "should be klass");
    guarantee(sib->super() == super, "siblings should have same superklass");
  }

  // Verify implementor fields
  Klass* im = implementor();
  if (im != NULL) {
    guarantee(is_interface(), "only interfaces should have implementor set");
    guarantee(im->is_klass(), "should be klass");
H
hseigel 已提交
3224
    guarantee(!im->is_interface() || im == this,
3225 3226 3227 3228 3229 3230 3231 3232
      "implementors cannot be interfaces");
  }

  // Verify local interfaces
  if (local_interfaces()) {
    Array<Klass*>* local_interfaces = this->local_interfaces();
    for (int j = 0; j < local_interfaces->length(); j++) {
      Klass* e = local_interfaces->at(j);
H
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3233
      guarantee(e->is_klass() && e->is_interface(), "invalid local interface");
3234 3235 3236 3237 3238 3239 3240 3241
    }
  }

  // Verify transitive interfaces
  if (transitive_interfaces() != NULL) {
    Array<Klass*>* transitive_interfaces = this->transitive_interfaces();
    for (int j = 0; j < transitive_interfaces->length(); j++) {
      Klass* e = transitive_interfaces->at(j);
H
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3242
      guarantee(e->is_klass() && e->is_interface(), "invalid transitive interface");
3243 3244 3245 3246 3247 3248 3249 3250 3251 3252 3253 3254 3255 3256 3257 3258 3259 3260 3261 3262 3263
    }
  }

  // Verify methods
  if (methods() != NULL) {
    Array<Method*>* methods = this->methods();
    for (int j = 0; j < methods->length(); j++) {
      guarantee(methods->at(j)->is_method(), "non-method in methods array");
    }
    for (int j = 0; j < methods->length() - 1; j++) {
      Method* m1 = methods->at(j);
      Method* m2 = methods->at(j + 1);
      guarantee(m1->name()->fast_compare(m2->name()) <= 0, "methods not sorted correctly");
    }
  }

  // Verify method ordering
  if (method_ordering() != NULL) {
    Array<int>* method_ordering = this->method_ordering();
    int length = method_ordering->length();
    if (JvmtiExport::can_maintain_original_method_order() ||
3264
        ((UseSharedSpaces || DumpSharedSpaces) && length != 0)) {
3265 3266 3267 3268 3269 3270 3271 3272 3273 3274 3275 3276 3277 3278 3279
      guarantee(length == methods()->length(), "invalid method ordering length");
      jlong sum = 0;
      for (int j = 0; j < length; j++) {
        int original_index = method_ordering->at(j);
        guarantee(original_index >= 0, "invalid method ordering index");
        guarantee(original_index < length, "invalid method ordering index");
        sum += original_index;
      }
      // Verify sum of indices 0,1,...,length-1
      guarantee(sum == ((jlong)length*(length-1))/2, "invalid method ordering sum");
    } else {
      guarantee(length == 0, "invalid method ordering length");
    }
  }

3280 3281 3282 3283 3284 3285 3286 3287 3288 3289 3290 3291 3292
  // Verify default methods
  if (default_methods() != NULL) {
    Array<Method*>* methods = this->default_methods();
    for (int j = 0; j < methods->length(); j++) {
      guarantee(methods->at(j)->is_method(), "non-method in methods array");
    }
    for (int j = 0; j < methods->length() - 1; j++) {
      Method* m1 = methods->at(j);
      Method* m2 = methods->at(j + 1);
      guarantee(m1->name()->fast_compare(m2->name()) <= 0, "methods not sorted correctly");
    }
  }

3293 3294 3295 3296 3297 3298 3299 3300 3301 3302 3303 3304
  // Verify JNI static field identifiers
  if (jni_ids() != NULL) {
    jni_ids()->verify(this);
  }

  // Verify other fields
  if (array_klasses() != NULL) {
    guarantee(array_klasses()->is_klass(), "should be klass");
  }
  if (constants() != NULL) {
    guarantee(constants()->is_constantPool(), "should be constant pool");
  }
3305 3306 3307
  const Klass* host = host_klass();
  if (host != NULL) {
    guarantee(host->is_klass(), "should be klass");
3308 3309 3310 3311
  }
}

void InstanceKlass::oop_verify_on(oop obj, outputStream* st) {
D
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3312 3313
  Klass::oop_verify_on(obj, st);
  VerifyFieldClosure blk;
3314
  obj->oop_iterate_no_header(&blk);
D
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3315 3316
}

3317

3318 3319 3320 3321
// JNIid class for jfieldIDs only
// Note to reviewers:
// These JNI functions are just moved over to column 1 and not changed
// in the compressed oops workspace.
3322
JNIid::JNIid(Klass* holder, int offset, JNIid* next) {
3323 3324 3325 3326 3327
  _holder = holder;
  _offset = offset;
  _next = next;
  debug_only(_is_static_field_id = false;)
}
D
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3328 3329


3330 3331 3332 3333 3334 3335 3336 3337
JNIid* JNIid::find(int offset) {
  JNIid* current = this;
  while (current != NULL) {
    if (current->offset() == offset) return current;
    current = current->next();
  }
  return NULL;
}
D
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3338 3339

void JNIid::deallocate(JNIid* current) {
3340 3341 3342 3343 3344 3345 3346
  while (current != NULL) {
    JNIid* next = current->next();
    delete current;
    current = next;
  }
}

D
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3347

3348
void JNIid::verify(Klass* holder) {
3349
  int first_field_offset  = InstanceMirrorKlass::offset_of_static_fields();
3350
  int end_field_offset;
3351
  end_field_offset = first_field_offset + (InstanceKlass::cast(holder)->static_field_size() * wordSize);
D
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3352

3353 3354 3355
  JNIid* current = this;
  while (current != NULL) {
    guarantee(current->holder() == holder, "Invalid klass in JNIid");
D
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3356
#ifdef ASSERT
3357 3358 3359 3360 3361 3362
    int o = current->offset();
    if (current->is_static_field_id()) {
      guarantee(o >= first_field_offset  && o < end_field_offset,  "Invalid static field offset in JNIid");
    }
#endif
    current = current->next();
D
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3363
  }
3364 3365 3366 3367
}


#ifdef ASSERT
3368 3369
void InstanceKlass::set_init_state(ClassState state) {
  bool good_state = is_shared() ? (_init_state <= state)
3370 3371
                                               : (_init_state < state);
  assert(good_state || state == allocated, "illegal state transition");
3372
  _init_state = (u1)state;
3373
}
D
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3374 3375 3376 3377 3378
#endif


// RedefineClasses() support for previous versions:

3379 3380 3381 3382 3383 3384 3385 3386 3387 3388 3389 3390 3391 3392 3393 3394 3395 3396 3397 3398 3399 3400 3401 3402 3403 3404 3405 3406 3407 3408 3409 3410 3411 3412 3413 3414 3415 3416 3417 3418 3419 3420 3421 3422 3423 3424 3425 3426 3427 3428 3429 3430 3431 3432 3433 3434 3435 3436 3437 3438 3439 3440 3441 3442 3443 3444 3445 3446 3447 3448 3449 3450 3451 3452 3453 3454 3455 3456 3457 3458 3459 3460 3461 3462 3463 3464 3465 3466 3467 3468 3469 3470
// Purge previous versions
static void purge_previous_versions_internal(InstanceKlass* ik, int emcp_method_count) {
  if (ik->previous_versions() != NULL) {
    // This klass has previous versions so see what we can cleanup
    // while it is safe to do so.

    int deleted_count = 0;    // leave debugging breadcrumbs
    int live_count = 0;
    ClassLoaderData* loader_data = ik->class_loader_data() == NULL ?
                       ClassLoaderData::the_null_class_loader_data() :
                       ik->class_loader_data();

    // RC_TRACE macro has an embedded ResourceMark
    RC_TRACE(0x00000200, ("purge: %s: previous version length=%d",
      ik->external_name(), ik->previous_versions()->length()));

    for (int i = ik->previous_versions()->length() - 1; i >= 0; i--) {
      // check the previous versions array
      PreviousVersionNode * pv_node = ik->previous_versions()->at(i);
      ConstantPool* cp_ref = pv_node->prev_constant_pool();
      assert(cp_ref != NULL, "cp ref was unexpectedly cleared");

      ConstantPool* pvcp = cp_ref;
      if (!pvcp->on_stack()) {
        // If the constant pool isn't on stack, none of the methods
        // are executing.  Delete all the methods, the constant pool and
        // and this previous version node.
        GrowableArray<Method*>* method_refs = pv_node->prev_EMCP_methods();
        if (method_refs != NULL) {
          for (int j = method_refs->length() - 1; j >= 0; j--) {
            Method* method = method_refs->at(j);
            assert(method != NULL, "method ref was unexpectedly cleared");
            method_refs->remove_at(j);
            // method will be freed with associated class.
          }
        }
        // Remove the constant pool
        delete pv_node;
        // Since we are traversing the array backwards, we don't have to
        // do anything special with the index.
        ik->previous_versions()->remove_at(i);
        deleted_count++;
        continue;
      } else {
        RC_TRACE(0x00000200, ("purge: previous version @%d is alive", i));
        assert(pvcp->pool_holder() != NULL, "Constant pool with no holder");
        guarantee (!loader_data->is_unloading(), "unloaded classes can't be on the stack");
        live_count++;
      }

      // At least one method is live in this previous version, clean out
      // the others or mark them as obsolete.
      GrowableArray<Method*>* method_refs = pv_node->prev_EMCP_methods();
      if (method_refs != NULL) {
        RC_TRACE(0x00000200, ("purge: previous methods length=%d",
          method_refs->length()));
        for (int j = method_refs->length() - 1; j >= 0; j--) {
          Method* method = method_refs->at(j);
          assert(method != NULL, "method ref was unexpectedly cleared");

          // Remove the emcp method if it's not executing
          // If it's been made obsolete by a redefinition of a non-emcp
          // method, mark it as obsolete but leave it to clean up later.
          if (!method->on_stack()) {
            method_refs->remove_at(j);
          } else if (emcp_method_count == 0) {
            method->set_is_obsolete();
          } else {
            // RC_TRACE macro has an embedded ResourceMark
            RC_TRACE(0x00000200,
              ("purge: %s(%s): prev method @%d in version @%d is alive",
              method->name()->as_C_string(),
              method->signature()->as_C_string(), j, i));
          }
        }
      }
    }
    assert(ik->previous_versions()->length() == live_count, "sanity check");
    RC_TRACE(0x00000200,
      ("purge: previous version stats: live=%d, deleted=%d", live_count,
      deleted_count));
  }
}

// External interface for use during class unloading.
void InstanceKlass::purge_previous_versions(InstanceKlass* ik) {
  // Call with >0 emcp methods since they are not currently being redefined.
  purge_previous_versions_internal(ik, 1);
}


// Potentially add an information node that contains pointers to the
D
duke 已提交
3471
// interesting parts of the previous version of the_class.
3472
// This is also where we clean out any unused references.
3473 3474 3475 3476
// Note that while we delete nodes from the _previous_versions
// array, we never delete the array itself until the klass is
// unloaded. The has_been_redefined() query depends on that fact.
//
3477
void InstanceKlass::add_previous_version(instanceKlassHandle ikh,
3478
       BitMap* emcp_methods, int emcp_method_count) {
D
duke 已提交
3479
  assert(Thread::current()->is_VM_thread(),
3480
         "only VMThread can add previous versions");
D
duke 已提交
3481 3482 3483 3484 3485

  if (_previous_versions == NULL) {
    // This is the first previous version so make some space.
    // Start with 2 elements under the assumption that the class
    // won't be redefined much.
Z
zgu 已提交
3486
    _previous_versions =  new (ResourceObj::C_HEAP, mtClass)
D
duke 已提交
3487 3488 3489
                            GrowableArray<PreviousVersionNode *>(2, true);
  }

3490 3491
  ConstantPool* cp_ref = ikh->constants();

D
duke 已提交
3492
  // RC_TRACE macro has an embedded ResourceMark
3493 3494 3495 3496 3497 3498 3499 3500 3501 3502 3503 3504 3505
  RC_TRACE(0x00000400, ("adding previous version ref for %s @%d, EMCP_cnt=%d "
                        "on_stack=%d",
    ikh->external_name(), _previous_versions->length(), emcp_method_count,
    cp_ref->on_stack()));

  // If the constant pool for this previous version of the class
  // is not marked as being on the stack, then none of the methods
  // in this previous version of the class are on the stack so
  // we don't need to create a new PreviousVersionNode. However,
  // we still need to examine older previous versions below.
  Array<Method*>* old_methods = ikh->methods();

  if (cp_ref->on_stack()) {
3506 3507
    PreviousVersionNode * pv_node = NULL;
    if (emcp_method_count == 0) {
3508
      // non-shared ConstantPool gets a reference
3509 3510 3511 3512 3513
      pv_node = new PreviousVersionNode(cp_ref, NULL);
      RC_TRACE(0x00000400,
          ("add: all methods are obsolete; flushing any EMCP refs"));
    } else {
      int local_count = 0;
3514
      GrowableArray<Method*>* method_refs = new (ResourceObj::C_HEAP, mtClass)
3515 3516 3517 3518 3519 3520 3521 3522 3523 3524 3525
          GrowableArray<Method*>(emcp_method_count, true);
      for (int i = 0; i < old_methods->length(); i++) {
        if (emcp_methods->at(i)) {
            // this old method is EMCP. Save it only if it's on the stack
            Method* old_method = old_methods->at(i);
            if (old_method->on_stack()) {
              method_refs->append(old_method);
            }
          if (++local_count >= emcp_method_count) {
            // no more EMCP methods so bail out now
            break;
3526
          }
D
duke 已提交
3527 3528
        }
      }
3529
      // non-shared ConstantPool gets a reference
3530
      pv_node = new PreviousVersionNode(cp_ref, method_refs);
3531 3532
    }
    // append new previous version.
3533
    _previous_versions->append(pv_node);
3534
  }
D
duke 已提交
3535

3536 3537
  // Since the caller is the VMThread and we are at a safepoint, this
  // is a good time to clear out unused references.
D
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3538 3539 3540 3541

  RC_TRACE(0x00000400, ("add: previous version length=%d",
    _previous_versions->length()));

3542 3543
  // Purge previous versions not executing on the stack
  purge_previous_versions_internal(this, emcp_method_count);
D
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3544 3545 3546 3547

  int obsolete_method_count = old_methods->length() - emcp_method_count;

  if (emcp_method_count != 0 && obsolete_method_count != 0 &&
3548 3549
      _previous_versions->length() > 0) {
    // We have a mix of obsolete and EMCP methods so we have to
D
duke 已提交
3550 3551 3552 3553 3554
    // clear out any matching EMCP method entries the hard way.
    int local_count = 0;
    for (int i = 0; i < old_methods->length(); i++) {
      if (!emcp_methods->at(i)) {
        // only obsolete methods are interesting
3555
        Method* old_method = old_methods->at(i);
3556 3557
        Symbol* m_name = old_method->name();
        Symbol* m_signature = old_method->signature();
D
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3558

3559 3560 3561 3562
        // we might not have added the last entry
        for (int j = _previous_versions->length() - 1; j >= 0; j--) {
          // check the previous versions array for non executing obsolete methods
          PreviousVersionNode * pv_node = _previous_versions->at(j);
D
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3563

3564
          GrowableArray<Method*>* method_refs = pv_node->prev_EMCP_methods();
D
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3565 3566 3567 3568 3569 3570 3571 3572 3573 3574 3575 3576 3577 3578
          if (method_refs == NULL) {
            // We have run into a PreviousVersion generation where
            // all methods were made obsolete during that generation's
            // RedefineClasses() operation. At the time of that
            // operation, all EMCP methods were flushed so we don't
            // have to go back any further.
            //
            // A NULL method_refs is different than an empty method_refs.
            // We cannot infer any optimizations about older generations
            // from an empty method_refs for the current generation.
            break;
          }

          for (int k = method_refs->length() - 1; k >= 0; k--) {
3579
            Method* method = method_refs->at(k);
D
duke 已提交
3580

3581 3582
            if (!method->is_obsolete() &&
                method->name() == m_name &&
D
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3583 3584 3585
                method->signature() == m_signature) {
              // The current RedefineClasses() call has made all EMCP
              // versions of this method obsolete so mark it as obsolete
3586
              // and remove the reference.
D
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3587 3588 3589 3590 3591
              RC_TRACE(0x00000400,
                ("add: %s(%s): flush obsolete method @%d in version @%d",
                m_name->as_C_string(), m_signature->as_C_string(), k, j));

              method->set_is_obsolete();
3592 3593
              // Leave obsolete methods on the previous version list to
              // clean up later.
D
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3594 3595 3596 3597 3598 3599 3600
              break;
            }
          }

          // The previous loop may not find a matching EMCP method, but
          // that doesn't mean that we can optimize and not go any
          // further back in the PreviousVersion generations. The EMCP
3601
          // method for this generation could have already been deleted,
D
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3602
          // but there still may be an older EMCP method that has not
3603
          // been deleted.
D
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3604 3605 3606 3607 3608 3609 3610 3611 3612 3613 3614 3615
        }

        if (++local_count >= obsolete_method_count) {
          // no more obsolete methods so bail out now
          break;
        }
      }
    }
  }
} // end add_previous_version()


3616 3617 3618
// Determine if InstanceKlass has a previous version.
bool InstanceKlass::has_previous_version() const {
  return (_previous_versions != NULL && _previous_versions->length() > 0);
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} // end has_previous_version()

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Method* InstanceKlass::method_with_idnum(int idnum) {
  Method* m = NULL;
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  if (idnum < methods()->length()) {
3625
    m = methods()->at(idnum);
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  }
  if (m == NULL || m->method_idnum() != idnum) {
    for (int index = 0; index < methods()->length(); ++index) {
3629
      m = methods()->at(index);
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      if (m->method_idnum() == idnum) {
        return m;
      }
    }
3634 3635
    // None found, return null for the caller to handle.
    return NULL;
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  }
  return m;
}

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jint InstanceKlass::get_cached_class_file_len() {
  return VM_RedefineClasses::get_cached_class_file_len(_cached_class_file);
}

unsigned char * InstanceKlass::get_cached_class_file_bytes() {
  return VM_RedefineClasses::get_cached_class_file_bytes(_cached_class_file);
}

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// Construct a PreviousVersionNode entry for the array hung off
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// the InstanceKlass.
PreviousVersionNode::PreviousVersionNode(ConstantPool* prev_constant_pool,
3652
  GrowableArray<Method*>* prev_EMCP_methods) {
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  _prev_constant_pool = prev_constant_pool;
  _prev_EMCP_methods = prev_EMCP_methods;
}


// Destroy a PreviousVersionNode
PreviousVersionNode::~PreviousVersionNode() {
  if (_prev_constant_pool != NULL) {
3662
    _prev_constant_pool = NULL;
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  }

  if (_prev_EMCP_methods != NULL) {
    delete _prev_EMCP_methods;
  }
}

// Construct a helper for walking the previous versions array
3671 3672
PreviousVersionWalker::PreviousVersionWalker(Thread* thread, InstanceKlass *ik) {
  _thread = thread;
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  _previous_versions = ik->previous_versions();
  _current_index = 0;
  _current_p = NULL;
3676
  _current_constant_pool_handle = constantPoolHandle(thread, ik->constants());
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}


// Return the interesting information for the next previous version
// of the klass. Returns NULL if there are no more previous versions.
3682
PreviousVersionNode* PreviousVersionWalker::next_previous_version() {
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  if (_previous_versions == NULL) {
    // no previous versions so nothing to return
    return NULL;
  }

3688 3689
  _current_p = NULL;  // reset to NULL
  _current_constant_pool_handle = NULL;
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  int length = _previous_versions->length();

  while (_current_index < length) {
    PreviousVersionNode * pv_node = _previous_versions->at(_current_index++);

3696 3697 3698 3699 3700
    // Save a handle to the constant pool for this previous version,
    // which keeps all the methods from being deallocated.
    _current_constant_pool_handle = constantPoolHandle(_thread, pv_node->prev_constant_pool());
    _current_p = pv_node;
    return pv_node;
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  }

  return NULL;
} // end next_previous_version()