author | stefank |
Mon, 01 Oct 2012 13:29:11 +0200 | |
changeset 13922 | ab7d352debe6 |
parent 13728 | 882756847a04 |
child 13975 | 2f7431485cfa |
permissions | -rw-r--r-- |
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/* |
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* Copyright (c) 2003, 2012, Oracle and/or its affiliates. All rights reserved. |
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* DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER. |
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* |
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* This code is free software; you can redistribute it and/or modify it |
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* under the terms of the GNU General Public License version 2 only, as |
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* published by the Free Software Foundation. |
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* |
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* This code is distributed in the hope that it will be useful, but WITHOUT |
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* ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or |
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* FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License |
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* version 2 for more details (a copy is included in the LICENSE file that |
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* accompanied this code). |
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* |
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* You should have received a copy of the GNU General Public License version |
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* 2 along with this work; if not, write to the Free Software Foundation, |
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* Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA. |
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* |
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* Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA |
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* or visit www.oracle.com if you need additional information or have any |
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* questions. |
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* |
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*/ |
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#ifndef SHARE_VM_PRIMS_JVMTIREDEFINECLASSES_HPP |
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#define SHARE_VM_PRIMS_JVMTIREDEFINECLASSES_HPP |
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#include "jvmtifiles/jvmtiEnv.hpp" |
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#include "memory/oopFactory.hpp" |
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#include "memory/resourceArea.hpp" |
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#include "oops/objArrayKlass.hpp" |
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#include "oops/objArrayOop.hpp" |
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#include "prims/jvmtiRedefineClassesTrace.hpp" |
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#include "runtime/vm_operations.hpp" |
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// Introduction: |
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// |
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// The RedefineClasses() API is used to change the definition of one or |
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// more classes. While the API supports redefining more than one class |
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// in a single call, in general, the API is discussed in the context of |
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// changing the definition of a single current class to a single new |
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// class. For clarity, the current class is will always be called |
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// "the_class" and the new class will always be called "scratch_class". |
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// |
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// The name "the_class" is used because there is only one structure |
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// that represents a specific class; redefinition does not replace the |
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// structure, but instead replaces parts of the structure. The name |
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// "scratch_class" is used because the structure that represents the |
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// new definition of a specific class is simply used to carry around |
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// the parts of the new definition until they are used to replace the |
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// appropriate parts in the_class. Once redefinition of a class is |
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// complete, scratch_class is thrown away. |
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// |
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// |
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// Implementation Overview: |
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// |
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// The RedefineClasses() API is mostly a wrapper around the VM op that |
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// does the real work. The work is split in varying degrees between |
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// doit_prologue(), doit() and doit_epilogue(). |
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// |
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// 1) doit_prologue() is called by the JavaThread on the way to a |
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// safepoint. It does parameter verification and loads scratch_class |
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// which involves: |
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// - parsing the incoming class definition using the_class' class |
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// loader and security context |
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// - linking scratch_class |
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// - merging constant pools and rewriting bytecodes as needed |
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// for the merged constant pool |
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// - verifying the bytecodes in scratch_class |
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// - setting up the constant pool cache and rewriting bytecodes |
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// as needed to use the cache |
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// - finally, scratch_class is compared to the_class to verify |
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// that it is a valid replacement class |
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// - if everything is good, then scratch_class is saved in an |
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// instance field in the VM operation for the doit() call |
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// |
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// Note: A JavaThread must do the above work. |
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// |
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// 2) doit() is called by the VMThread during a safepoint. It installs |
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// the new class definition(s) which involves: |
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// - retrieving the scratch_class from the instance field in the |
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// VM operation |
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// - house keeping (flushing breakpoints and caches, deoptimizing |
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// dependent compiled code) |
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// - replacing parts in the_class with parts from scratch_class |
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// - adding weak reference(s) to track the obsolete but interesting |
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// parts of the_class |
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// - adjusting constant pool caches and vtables in other classes |
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// that refer to methods in the_class. These adjustments use the |
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// SystemDictionary::classes_do() facility which only allows |
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// a helper method to be specified. The interesting parameters |
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// that we would like to pass to the helper method are saved in |
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// static global fields in the VM operation. |
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// - telling the SystemDictionary to notice our changes |
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// |
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// Note: the above work must be done by the VMThread to be safe. |
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// |
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// 3) doit_epilogue() is called by the JavaThread after the VM op |
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// is finished and the safepoint is done. It simply cleans up |
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// memory allocated in doit_prologue() and used in doit(). |
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// |
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// |
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// Constant Pool Details: |
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// |
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// When the_class is redefined, we cannot just replace the constant |
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// pool in the_class with the constant pool from scratch_class because |
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// that could confuse obsolete methods that may still be running. |
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// Instead, the constant pool from the_class, old_cp, is merged with |
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// the constant pool from scratch_class, scratch_cp. The resulting |
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// constant pool, merge_cp, replaces old_cp in the_class. |
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// |
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// The key part of any merging algorithm is the entry comparison |
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// function so we have to know the types of entries in a constant pool |
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// in order to merge two of them together. Constant pools can contain |
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// up to 12 different kinds of entries; the JVM_CONSTANT_Unicode entry |
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// is not presently used so we only have to worry about the other 11 |
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// entry types. For the purposes of constant pool merging, it is |
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// helpful to know that the 11 entry types fall into 3 different |
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// subtypes: "direct", "indirect" and "double-indirect". |
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// |
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// Direct CP entries contain data and do not contain references to |
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// other CP entries. The following are direct CP entries: |
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// JVM_CONSTANT_{Double,Float,Integer,Long,Utf8} |
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// |
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// Indirect CP entries contain 1 or 2 references to a direct CP entry |
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// and no other data. The following are indirect CP entries: |
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// JVM_CONSTANT_{Class,NameAndType,String} |
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// |
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// Double-indirect CP entries contain two references to indirect CP |
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// entries and no other data. The following are double-indirect CP |
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// entries: |
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// JVM_CONSTANT_{Fieldref,InterfaceMethodref,Methodref} |
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// |
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// When comparing entries between two constant pools, the entry types |
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// are compared first and if they match, then further comparisons are |
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// made depending on the entry subtype. Comparing direct CP entries is |
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// simply a matter of comparing the data associated with each entry. |
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// Comparing both indirect and double-indirect CP entries requires |
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// recursion. |
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// |
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// Fortunately, the recursive combinations are limited because indirect |
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// CP entries can only refer to direct CP entries and double-indirect |
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// CP entries can only refer to indirect CP entries. The following is |
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// an example illustration of the deepest set of indirections needed to |
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// access the data associated with a JVM_CONSTANT_Fieldref entry: |
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// |
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// JVM_CONSTANT_Fieldref { |
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// class_index => JVM_CONSTANT_Class { |
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// name_index => JVM_CONSTANT_Utf8 { |
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// <data-1> |
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// } |
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// } |
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// name_and_type_index => JVM_CONSTANT_NameAndType { |
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// name_index => JVM_CONSTANT_Utf8 { |
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// <data-2> |
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// } |
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// descriptor_index => JVM_CONSTANT_Utf8 { |
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// <data-3> |
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// } |
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// } |
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// } |
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// |
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// The above illustration is not a data structure definition for any |
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// computer language. The curly braces ('{' and '}') are meant to |
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// delimit the context of the "fields" in the CP entry types shown. |
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// Each indirection from the JVM_CONSTANT_Fieldref entry is shown via |
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// "=>", e.g., the class_index is used to indirectly reference a |
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// JVM_CONSTANT_Class entry where the name_index is used to indirectly |
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// reference a JVM_CONSTANT_Utf8 entry which contains the interesting |
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// <data-1>. In order to understand a JVM_CONSTANT_Fieldref entry, we |
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// have to do a total of 5 indirections just to get to the CP entries |
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// that contain the interesting pieces of data and then we have to |
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// fetch the three pieces of data. This means we have to do a total of |
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// (5 + 3) * 2 == 16 dereferences to compare two JVM_CONSTANT_Fieldref |
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// entries. |
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// |
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// Here is the indirection, data and dereference count for each entry |
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// type: |
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// |
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// JVM_CONSTANT_Class 1 indir, 1 data, 2 derefs |
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// JVM_CONSTANT_Double 0 indir, 1 data, 1 deref |
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// JVM_CONSTANT_Fieldref 2 indir, 3 data, 8 derefs |
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// JVM_CONSTANT_Float 0 indir, 1 data, 1 deref |
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// JVM_CONSTANT_Integer 0 indir, 1 data, 1 deref |
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// JVM_CONSTANT_InterfaceMethodref 2 indir, 3 data, 8 derefs |
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// JVM_CONSTANT_Long 0 indir, 1 data, 1 deref |
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// JVM_CONSTANT_Methodref 2 indir, 3 data, 8 derefs |
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// JVM_CONSTANT_NameAndType 1 indir, 2 data, 4 derefs |
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// JVM_CONSTANT_String 1 indir, 1 data, 2 derefs |
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// JVM_CONSTANT_Utf8 0 indir, 1 data, 1 deref |
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// |
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// So different subtypes of CP entries require different amounts of |
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// work for a proper comparison. |
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// |
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// Now that we've talked about the different entry types and how to |
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// compare them we need to get back to merging. This is not a merge in |
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// the "sort -u" sense or even in the "sort" sense. When we merge two |
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// constant pools, we copy all the entries from old_cp to merge_cp, |
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// preserving entry order. Next we append all the unique entries from |
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// scratch_cp to merge_cp and we track the index changes from the |
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// location in scratch_cp to the possibly new location in merge_cp. |
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// When we are done, any obsolete code that is still running that |
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// uses old_cp should not be able to observe any difference if it |
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// were to use merge_cp. As for the new code in scratch_class, it is |
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// modified to use the appropriate index values in merge_cp before it |
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// is used to replace the code in the_class. |
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// |
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// There is one small complication in copying the entries from old_cp |
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// to merge_cp. Two of the CP entry types are special in that they are |
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// lazily resolved. Before explaining the copying complication, we need |
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// to digress into CP entry resolution. |
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// |
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// JVM_CONSTANT_Class entries are present in the class file, but are not |
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// stored in memory as such until they are resolved. The entries are not |
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// resolved unless they are used because resolution is expensive. During class |
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// file parsing the entries are initially stored in memory as |
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// JVM_CONSTANT_ClassIndex and JVM_CONSTANT_StringIndex entries. These special |
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// CP entry types indicate that the JVM_CONSTANT_Class and JVM_CONSTANT_String |
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// entries have been parsed, but the index values in the entries have not been |
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// validated. After the entire constant pool has been parsed, the index |
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// values can be validated and then the entries are converted into |
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// JVM_CONSTANT_UnresolvedClass and JVM_CONSTANT_String |
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// entries. During this conversion process, the UTF8 values that are |
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// indirectly referenced by the JVM_CONSTANT_ClassIndex and |
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// JVM_CONSTANT_StringIndex entries are changed into Symbol*s and the |
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// entries are modified to refer to the Symbol*s. This optimization |
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// eliminates one level of indirection for those two CP entry types and |
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// gets the entries ready for verification. Verification expects to |
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// find JVM_CONSTANT_UnresolvedClass but not JVM_CONSTANT_Class entries. |
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// |
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// Now we can get back to the copying complication. When we copy |
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// entries from old_cp to merge_cp, we have to revert any |
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// JVM_CONSTANT_Class entries to JVM_CONSTANT_UnresolvedClass entries |
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// or verification will fail. |
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// |
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// It is important to explicitly state that the merging algorithm |
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// effectively unresolves JVM_CONSTANT_Class entries that were in the |
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// old_cp when they are changed into JVM_CONSTANT_UnresolvedClass |
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// entries in the merge_cp. This is done both to make verification |
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// happy and to avoid adding more brittleness between RedefineClasses |
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// and the constant pool cache. By allowing the constant pool cache |
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// implementation to (re)resolve JVM_CONSTANT_UnresolvedClass entries |
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// into JVM_CONSTANT_Class entries, we avoid having to embed knowledge |
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// about those algorithms in RedefineClasses. |
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// |
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// Appending unique entries from scratch_cp to merge_cp is straight |
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// forward for direct CP entries and most indirect CP entries. For the |
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// indirect CP entry type JVM_CONSTANT_NameAndType and for the double- |
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// indirect CP entry types, the presence of more than one piece of |
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// interesting data makes appending the entries more complicated. |
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// |
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// For the JVM_CONSTANT_{Double,Float,Integer,Long,Utf8} entry types, |
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// the entry is simply copied from scratch_cp to the end of merge_cp. |
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// If the index in scratch_cp is different than the destination index |
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// in merge_cp, then the change in index value is tracked. |
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// |
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// Note: the above discussion for the direct CP entries also applies |
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// to the JVM_CONSTANT_UnresolvedClass entry types. |
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// |
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// For the JVM_CONSTANT_Class entry types, since there is only |
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// one data element at the end of the recursion, we know that we have |
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// either one or two unique entries. If the JVM_CONSTANT_Utf8 entry is |
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// unique then it is appended to merge_cp before the current entry. |
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// If the JVM_CONSTANT_Utf8 entry is not unique, then the current entry |
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// is updated to refer to the duplicate entry in merge_cp before it is |
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// appended to merge_cp. Again, any changes in index values are tracked |
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// as needed. |
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// |
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// Note: the above discussion for JVM_CONSTANT_Class entry |
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// types is theoretical. Since those entry types have already been |
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// optimized into JVM_CONSTANT_UnresolvedClass entry types, |
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// they are handled as direct CP entries. |
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// |
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// For the JVM_CONSTANT_NameAndType entry type, since there are two |
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// data elements at the end of the recursions, we know that we have |
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// between one and three unique entries. Any unique JVM_CONSTANT_Utf8 |
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// entries are appended to merge_cp before the current entry. For any |
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// JVM_CONSTANT_Utf8 entries that are not unique, the current entry is |
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// updated to refer to the duplicate entry in merge_cp before it is |
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// appended to merge_cp. Again, any changes in index values are tracked |
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// as needed. |
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// |
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// For the JVM_CONSTANT_{Fieldref,InterfaceMethodref,Methodref} entry |
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// types, since there are two indirect CP entries and three data |
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// elements at the end of the recursions, we know that we have between |
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// one and six unique entries. See the JVM_CONSTANT_Fieldref diagram |
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// above for an example of all six entries. The uniqueness algorithm |
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// for the JVM_CONSTANT_Class and JVM_CONSTANT_NameAndType entries is |
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// covered above. Any unique entries are appended to merge_cp before |
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// the current entry. For any entries that are not unique, the current |
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// entry is updated to refer to the duplicate entry in merge_cp before |
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// it is appended to merge_cp. Again, any changes in index values are |
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// tracked as needed. |
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// |
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// |
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// Other Details: |
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// |
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// Details for other parts of RedefineClasses need to be written. |
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// This is a placeholder section. |
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// |
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// |
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// Open Issues (in no particular order): |
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// |
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// - How do we serialize the RedefineClasses() API without deadlocking? |
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// |
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// - SystemDictionary::parse_stream() was called with a NULL protection |
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// domain since the initial version. This has been changed to pass |
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// the_class->protection_domain(). This change has been tested with |
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// all NSK tests and nothing broke, but what will adding it now break |
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// in ways that we don't test? |
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// |
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// - GenerateOopMap::rewrite_load_or_store() has a comment in its |
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// (indirect) use of the Relocator class that the max instruction |
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// size is 4 bytes. goto_w and jsr_w are 5 bytes and wide/iinc is |
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// 6 bytes. Perhaps Relocator only needs a 4 byte buffer to do |
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// what it does to the bytecodes. More investigation is needed. |
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// |
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// - How do we know if redefine_single_class() and the guts of |
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// InstanceKlass are out of sync? I don't think this can be |
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// automated, but we should probably order the work in |
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// redefine_single_class() to match the order of field |
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// definitions in InstanceKlass. We also need to add some |
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// comments about keeping things in sync. |
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// |
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// - set_new_constant_pool() is huge and we should consider refactoring |
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// it into smaller chunks of work. |
|
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// |
|
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// - The exception table update code in set_new_constant_pool() defines |
|
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// const values that are also defined in a local context elsewhere. |
|
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// The same literal values are also used in elsewhere. We need to |
|
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// coordinate a cleanup of these constants with Runtime. |
|
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// |
|
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class VM_RedefineClasses: public VM_Operation { |
|
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private: |
|
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// These static fields are needed by SystemDictionary::classes_do() |
|
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// facility and the adjust_cpool_cache_and_vtable() helper: |
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static Array<Method*>* _old_methods; |
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static Array<Method*>* _new_methods; |
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static Method** _matching_old_methods; |
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static Method** _matching_new_methods; |
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static Method** _deleted_methods; |
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static Method** _added_methods; |
1 | 344 |
static int _matching_methods_length; |
345 |
static int _deleted_methods_length; |
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static int _added_methods_length; |
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static Klass* _the_class_oop; |
1 | 348 |
|
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// The instance fields are used to pass information from |
|
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// doit_prologue() to doit() and doit_epilogue(). |
|
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jint _class_count; |
|
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const jvmtiClassDefinition *_class_defs; // ptr to _class_count defs |
|
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// This operation is used by both RedefineClasses and |
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// RetransformClasses. Indicate which. |
|
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JvmtiClassLoadKind _class_load_kind; |
|
357 |
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// _index_map_count is just an optimization for knowing if |
|
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// _index_map_p contains any entries. |
|
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int _index_map_count; |
|
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intArray * _index_map_p; |
|
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// ptr to _class_count scratch_classes |
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Klass** _scratch_classes; |
1 | 364 |
jvmtiError _res; |
365 |
||
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// Performance measurement support. These timers do not cover all |
|
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// the work done for JVM/TI RedefineClasses() but they do cover |
|
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// the heavy lifting. |
|
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elapsedTimer _timer_rsc_phase1; |
|
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elapsedTimer _timer_rsc_phase2; |
|
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elapsedTimer _timer_vm_op_prologue; |
|
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||
373 |
// These routines are roughly in call order unless otherwise noted. |
|
374 |
||
375 |
// Load the caller's new class definition(s) into _scratch_classes. |
|
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// Constant pool merging work is done here as needed. Also calls |
|
377 |
// compare_and_normalize_class_versions() to verify the class |
|
378 |
// definition(s). |
|
379 |
jvmtiError load_new_class_versions(TRAPS); |
|
380 |
||
381 |
// Verify that the caller provided class definition(s) that meet |
|
382 |
// the restrictions of RedefineClasses. Normalize the order of |
|
383 |
// overloaded methods as needed. |
|
384 |
jvmtiError compare_and_normalize_class_versions( |
|
385 |
instanceKlassHandle the_class, instanceKlassHandle scratch_class); |
|
386 |
||
387 |
// Swap annotations[i] with annotations[j] |
|
388 |
// Used by compare_and_normalize_class_versions() when normalizing |
|
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// overloaded methods or changing idnum as when adding or deleting methods. |
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void swap_all_method_annotations(int i, int j, instanceKlassHandle scratch_class, TRAPS); |
1 | 391 |
|
392 |
// Figure out which new methods match old methods in name and signature, |
|
393 |
// which methods have been added, and which are no longer present |
|
394 |
void compute_added_deleted_matching_methods(); |
|
395 |
||
396 |
// Change jmethodIDs to point to the new methods |
|
397 |
void update_jmethod_ids(); |
|
398 |
||
399 |
// In addition to marking methods as obsolete, this routine |
|
400 |
// records which methods are EMCP (Equivalent Module Constant |
|
401 |
// Pool) in the emcp_methods BitMap and returns the number of |
|
402 |
// EMCP methods via emcp_method_count_p. This information is |
|
403 |
// used when information about the previous version of the_class |
|
404 |
// is squirreled away. |
|
405 |
void check_methods_and_mark_as_obsolete(BitMap *emcp_methods, |
|
406 |
int * emcp_method_count_p); |
|
407 |
void transfer_old_native_function_registrations(instanceKlassHandle the_class); |
|
408 |
||
409 |
// Unevolving classes may point to methods of the_class directly |
|
410 |
// from their constant pool caches, itables, and/or vtables. We |
|
411 |
// use the SystemDictionary::classes_do() facility and this helper |
|
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// to fix up these pointers. |
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static void adjust_cpool_cache_and_vtable(Klass* k_oop, ClassLoaderData* initiating_loader, TRAPS); |
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static void adjust_array_vtable(Klass* k_oop); |
1 | 415 |
|
416 |
// Install the redefinition of a class |
|
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void redefine_single_class(jclass the_jclass, |
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Klass* scratch_class_oop, TRAPS); |
1 | 419 |
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// Increment the classRedefinedCount field in the specific InstanceKlass |
1 | 421 |
// and in all direct and indirect subclasses. |
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void increment_class_counter(InstanceKlass *ik, TRAPS); |
1 | 423 |
|
424 |
// Support for constant pool merging (these routines are in alpha |
|
425 |
// order): |
|
426 |
void append_entry(constantPoolHandle scratch_cp, int scratch_i, |
|
427 |
constantPoolHandle *merge_cp_p, int *merge_cp_length_p, TRAPS); |
|
428 |
int find_new_index(int old_index); |
|
429 |
bool is_unresolved_class_mismatch(constantPoolHandle cp1, int index1, |
|
430 |
constantPoolHandle cp2, int index2); |
|
431 |
void map_index(constantPoolHandle scratch_cp, int old_index, int new_index); |
|
432 |
bool merge_constant_pools(constantPoolHandle old_cp, |
|
433 |
constantPoolHandle scratch_cp, constantPoolHandle *merge_cp_p, |
|
434 |
int *merge_cp_length_p, TRAPS); |
|
435 |
jvmtiError merge_cp_and_rewrite(instanceKlassHandle the_class, |
|
436 |
instanceKlassHandle scratch_class, TRAPS); |
|
437 |
u2 rewrite_cp_ref_in_annotation_data( |
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AnnotationArray* annotations_typeArray, int &byte_i_ref, |
1 | 439 |
const char * trace_mesg, TRAPS); |
440 |
bool rewrite_cp_refs(instanceKlassHandle scratch_class, TRAPS); |
|
441 |
bool rewrite_cp_refs_in_annotation_struct( |
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AnnotationArray* class_annotations, int &byte_i_ref, TRAPS); |
1 | 443 |
bool rewrite_cp_refs_in_annotations_typeArray( |
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AnnotationArray* annotations_typeArray, int &byte_i_ref, TRAPS); |
1 | 445 |
bool rewrite_cp_refs_in_class_annotations( |
446 |
instanceKlassHandle scratch_class, TRAPS); |
|
447 |
bool rewrite_cp_refs_in_element_value( |
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AnnotationArray* class_annotations, int &byte_i_ref, TRAPS); |
1 | 449 |
bool rewrite_cp_refs_in_fields_annotations( |
450 |
instanceKlassHandle scratch_class, TRAPS); |
|
451 |
void rewrite_cp_refs_in_method(methodHandle method, |
|
452 |
methodHandle * new_method_p, TRAPS); |
|
453 |
bool rewrite_cp_refs_in_methods(instanceKlassHandle scratch_class, TRAPS); |
|
454 |
bool rewrite_cp_refs_in_methods_annotations( |
|
455 |
instanceKlassHandle scratch_class, TRAPS); |
|
456 |
bool rewrite_cp_refs_in_methods_default_annotations( |
|
457 |
instanceKlassHandle scratch_class, TRAPS); |
|
458 |
bool rewrite_cp_refs_in_methods_parameter_annotations( |
|
459 |
instanceKlassHandle scratch_class, TRAPS); |
|
460 |
void rewrite_cp_refs_in_stack_map_table(methodHandle method, TRAPS); |
|
461 |
void rewrite_cp_refs_in_verification_type_info( |
|
462 |
address& stackmap_addr_ref, address stackmap_end, u2 frame_i, |
|
463 |
u1 frame_size, TRAPS); |
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464 |
void set_new_constant_pool(ClassLoaderData* loader_data, |
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465 |
instanceKlassHandle scratch_class, |
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466 |
constantPoolHandle scratch_cp, int scratch_cp_length, TRAPS); |
1 | 467 |
|
468 |
void flush_dependent_code(instanceKlassHandle k_h, TRAPS); |
|
469 |
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470 |
static void check_class(Klass* k_oop, ClassLoaderData* initiating_loader, TRAPS) PRODUCT_RETURN; |
1 | 471 |
|
472 |
static void dump_methods() PRODUCT_RETURN; |
|
473 |
||
474 |
public: |
|
475 |
VM_RedefineClasses(jint class_count, |
|
476 |
const jvmtiClassDefinition *class_defs, |
|
477 |
JvmtiClassLoadKind class_load_kind); |
|
478 |
VMOp_Type type() const { return VMOp_RedefineClasses; } |
|
479 |
bool doit_prologue(); |
|
480 |
void doit(); |
|
481 |
void doit_epilogue(); |
|
482 |
||
483 |
bool allow_nested_vm_operations() const { return true; } |
|
484 |
jvmtiError check_error() { return _res; } |
|
485 |
||
486 |
// Modifiable test must be shared between IsModifiableClass query |
|
487 |
// and redefine implementation |
|
488 |
static bool is_modifiable_class(oop klass_mirror); |
|
489 |
}; |
|
7397 | 490 |
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491 |
|
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492 |
// Helper class to mark and unmark metadata used on the stack as either handles |
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493 |
// or executing methods, so that it can't be deleted during class redefinition |
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494 |
// and class unloading. |
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495 |
class MetadataOnStackMark : public StackObj { |
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496 |
NOT_PRODUCT(static bool _is_active;) |
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497 |
public: |
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498 |
MetadataOnStackMark(); |
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499 |
~MetadataOnStackMark(); |
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500 |
static void record(Metadata* m); |
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501 |
}; |
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502 |
|
7397 | 503 |
#endif // SHARE_VM_PRIMS_JVMTIREDEFINECLASSES_HPP |