从内存结构来看
这次所讲述的是运行时数据区的最后一个部分
从线程共享与否的角度来看
ThreadLocal:如何保证多个线程在并发环境下的安全性?典型应用就是数据库连接管理,以及独立会话管理
栈、堆、方法区的交互关系
方法区的位置
方法区的基本理解
方法区主要存放的是 Class,而堆中主要存放的是实例化的对象
代码示例
一个简单的Demo
public class HeapDemo {
public static void main(String[] args) throws InterruptedException {
System.out.println("start");
Thread.sleep(1000000);
System.out.println("end");
}
}
一共加载了1600多个类
方法区演进过程
方法区的大小不必是固定的,JVM可以根据应用的需要动态调整。
JDK7 之前版本设置永久代大小
JDK8 版本设置元空间大小
代码示例
/**
* 测试设置方法区大小参数的默认值
*
* jdk7及以前:
* -XX:PermSize=100m -XX:MaxPermSize=100m
*
* jdk8及以后:
* -XX:MetaspaceSize=100m -XX:MaxMetaspaceSize=100m
*
*/
public class MethodAreaDemo {
public static void main(String[] args) {
System.out.println("start...");
try {
Thread.sleep(1000000);
} catch (InterruptedException e) {
e.printStackTrace();
}
System.out.println("end...");
}
}
VM参数:-XX:MetaspaceSize=100m -XX:MaxMetaspaceSize=100m
CMD 命令查看设置的元空间大小
方法区 OOM 举例
OOMTest 类继承 ClassLoader 类,获得 defineClass() 方法,可自己进行类的加载
/**
* jdk6/7中:
* -XX:PermSize=5m -XX:MaxPermSize=5m
*
* jdk8中:
* -XX:MetaspaceSize=5m -XX:MaxMetaspaceSize=5m
*
*/
public class OOMTest extends ClassLoader {
public static void main(String[] args) {
int j = 0;
try {
OOMTest test = new OOMTest();
for (int i = 0; i < 10000; i++) {
//创建ClassWriter对象,用于生成类的二进制字节码
ClassWriter classWriter = new ClassWriter(0);
//指明版本号,修饰符,类名,包名,父类,接口
classWriter.visit(Opcodes.V1_6, Opcodes.ACC_PUBLIC, "Class" + i, null, "java/lang/Object", null);
//返回byte[]
byte[] code = classWriter.toByteArray();
//类的加载
test.defineClass("Class" + i, code, 0, code.length);//Class对象
j++;
}
} finally {
System.out.println(j);
}
}
}
如何解决 OOM?
《深入理解Java虚拟机》书中对方法区(Method Area)存储内容描述如下:它用于存储已被虚拟机加载的类型信息、常量、静态变量、即时编译器编译后的代码缓存等。
类型信息
对每个加载的类型(类class、接口interface、枚举enum、注解annotation),JVM必须在方法区中存储以下类型信息:
域(Field)信息
JVM必须在方法区中保存类型的所有域的相关信息以及域的声明顺序
方法(Method)信息
JVM必须保存所有方法的以下信息,同域信息一样包括声明顺序:
代码示例
/**
* 测试方法区的内部构成
*/
public class MethodInnerStrucTest extends Object implements Comparable<String>, Serializable {
//属性
public int num = 10;
private static String str = "测试方法的内部结构";
//构造器没写
//方法
public void test1() {
int count = 20;
System.out.println("count = " + count);
}
public static int test2(int cal) {
int result = 0;
try {
int value = 30;
result = value / cal;
} catch (Exception e) {
e.printStackTrace();
}
return result;
}
@Override
public int compareTo(String o) {
return 0;
}
}
javap -v -p MethodInnerStrucTest.class > Text.txt
类型信息
public class com.atguigu.java.MethodInnerStrucTest
extends java.lang.Object
implements java.lang.Comparable<java.lang.String>, java.io.Serializable
域信息
public int num;
descriptor: I
flags: ACC_PUBLIC
private static java.lang.String str;
descriptor: Ljava/lang/String;
flags: ACC_PRIVATE, ACC_STATIC
方法信息
public void test1();
descriptor: ()V
flags: ACC_PUBLIC
Code:
stack=3, locals=2, args_size=1
0: bipush 20
2: istore_1
3: getstatic #3 // Field java/lang/System.out:Ljava/io/PrintStream;
6: new #4 // class java/lang/StringBuilder
9: dup
10: invokespecial #5 // Method java/lang/StringBuilder."<init>":()V
13: ldc #6 // String count =
15: invokevirtual #7 // Method java/lang/StringBuilder.append:(Ljava/lang/String;)Ljava/lang/StringBuilder;
18: iload_1
19: invokevirtual #8 // Method java/lang/StringBuilder.append:(I)Ljava/lang/StringBuilder;
22: invokevirtual #9 // Method java/lang/StringBuilder.toString:()Ljava/lang/String;
25: invokevirtual #10 // Method java/io/PrintStream.println:(Ljava/lang/String;)V
28: return
LineNumberTable:
line 17: 0
line 18: 3
line 19: 28
LocalVariableTable:
Start Length Slot Name Signature
0 29 0 this Lcom/atguigu/java/MethodInnerStrucTest;
3 26 1 count I
non-final 类型的类变量
全局常量:static final
代码示例
如下代码所示,即使我们把order设置为null,也不会出现空指针异常 这更加表明了 static 类型的字段和方法随着类的加载而加载,并不属于特定的类实例
/**
* non-final的类变量
*/
public class MethodAreaTest {
public static void main(String[] args) {
Order order = null;
order.hello();
System.out.println(order.count);
}
}
class Order {
public static int count = 1;
public static final int number = 2;
public static void hello() {
System.out.println("hello!");
}
}
// 程序运行结果
hello!
1
反编译,查看字节码指令,可以发现 count只有数据类型(初始化0),而number 的值2已经写死在字节码文件中了
运行时常量池 VS 常量池
常量池
一个有效的字节码文件中除了包含类的版本信息、字段、方法以及接口等描述符信息外,还包含一项信息就是常量池表(Constant Pool Table),包括各种字面量和对类型、域和方法的符号引用
为什么需要常量池?
比如代码:
public class SimpleClass {
public void sayHello() {
System.out.println("hello");
}
}
常量池可以实现:数量值、字符串值、类引用、字段引用、方法引用
代码示例
/**
* 测试方法区的内部构成
*/
public class MethodInnerStrucTest extends Object implements Comparable<String>, Serializable {
//属性
public int num = 10;
private static String str = "测试方法的内部结构";
//构造器没写
//方法
public void test1() {
int count = 20;
System.out.println("count = " + count);
}
public static int test2(int cal) {
int result = 0;
try {
int value = 30;
result = value / cal;
} catch (Exception e) {
e.printStackTrace();
}
return result;
}
@Override
public int compareTo(String o) {
return 0;
}
}
public void test1();
descriptor: ()V
flags: ACC_PUBLIC
Code:
stack=3, locals=2, args_size=1
0: bipush 20
2: istore_1
3: getstatic #3 // Field java/lang/System.out:Ljava/io/PrintStream;
6: new #4 // class java/lang/StringBuilder
9: dup
10: invokespecial #5 // Method java/lang/StringBuilder."<init>":()V
13: ldc #6 // String count =
15: invokevirtual #7 // Method java/lang/StringBuilder.append:(Ljava/lang/String;)Ljava/lang/StringBuilder;
18: iload_1
19: invokevirtual #8 // Method java/lang/StringBuilder.append:(I)Ljava/lang/StringBuilder;
22: invokevirtual #9 // Method java/lang/StringBuilder.toString:()Ljava/lang/String;
25: invokevirtual #10 // Method java/io/PrintStream.println:(Ljava/lang/String;)V
28: return
LineNumberTable:
line 20: 0
line 21: 3
line 22: 28
LocalVariableTable:
Start Length Slot Name Signature
0 29 0 this Lcom/atguigu/java/MethodInnerStrucTest;
3 26 1 count I
常量池
符号引用可以理解为公共方法,可以供多个服务调用
Constant pool:
#1 = Methodref #18.#52 // java/lang/Object."<init>":()V
#2 = Fieldref #17.#53 // com/atguigu/java/MethodInnerStrucTest.num:I
#3 = Fieldref #54.#55 // java/lang/System.out:Ljava/io/PrintStream;
#4 = Class #56 // java/lang/StringBuilder
#5 = Methodref #4.#52 // java/lang/StringBuilder."<init>":()V
#6 = String #57 // count =
#7 = Methodref #4.#58 // java/lang/StringBuilder.append:(Ljava/lang/String;)Ljava/lang/StringBuilder;
#8 = Methodref #4.#59 // java/lang/StringBuilder.append:(I)Ljava/lang/StringBuilder;
#9 = Methodref #4.#60 // java/lang/StringBuilder.toString:()Ljava/lang/String;
#10 = Methodref #61.#62 // java/io/PrintStream.println:(Ljava/lang/String;)V
#11 = Class #63 // java/lang/Exception
#12 = Methodref #11.#64 // java/lang/Exception.printStackTrace:()V
#13 = Class #65 // java/lang/String
#14 = Methodref #17.#66 // com/atguigu/java/MethodInnerStrucTest.compareTo:(Ljava/lang/String;)I
#15 = String #67 // 测试方法的内部结构
#16 = Fieldref #17.#68 // com/atguigu/java/MethodInnerStrucTest.str:Ljava/lang/String;
#17 = Class #69 // com/atguigu/java/MethodInnerStrucTest
#18 = Class #70 // java/lang/Object
#19 = Class #71 // java/lang/Comparable
#20 = Class #72 // java/io/Serializable
#21 = Utf8 num
#22 = Utf8 I
#23 = Utf8 str
#24 = Utf8 Ljava/lang/String;
#25 = Utf8 <init>
#26 = Utf8 ()V
#27 = Utf8 Code
#28 = Utf8 LineNumberTable
#29 = Utf8 LocalVariableTable
#30 = Utf8 this
#31 = Utf8 Lcom/atguigu/java/MethodInnerStrucTest;
#32 = Utf8 test1
#33 = Utf8 count
#34 = Utf8 test2
#35 = Utf8 (I)I
#36 = Utf8 value
#37 = Utf8 e
#38 = Utf8 Ljava/lang/Exception;
#39 = Utf8 cal
#40 = Utf8 result
#41 = Utf8 StackMapTable
#42 = Class #63 // java/lang/Exception
#43 = Utf8 compareTo
#44 = Utf8 (Ljava/lang/String;)I
#45 = Utf8 o
#46 = Utf8 (Ljava/lang/Object;)I
#47 = Utf8 <clinit>
#48 = Utf8 Signature
#49 = Utf8 Ljava/lang/Object;Ljava/lang/Comparable<Ljava/lang/String;>;Ljava/io/Serializable;
#50 = Utf8 SourceFile
#51 = Utf8 MethodInnerStrucTest.java
#52 = NameAndType #25:#26 // "<init>":()V
#53 = NameAndType #21:#22 // num:I
#54 = Class #73 // java/lang/System
#55 = NameAndType #74:#75 // out:Ljava/io/PrintStream;
#56 = Utf8 java/lang/StringBuilder
#57 = Utf8 count =
#58 = NameAndType #76:#77 // append:(Ljava/lang/String;)Ljava/lang/StringBuilder;
#59 = NameAndType #76:#78 // append:(I)Ljava/lang/StringBuilder;
#60 = NameAndType #79:#80 // toString:()Ljava/lang/String;
#61 = Class #81 // java/io/PrintStream
#62 = NameAndType #82:#83 // println:(Ljava/lang/String;)V
#63 = Utf8 java/lang/Exception
#64 = NameAndType #84:#26 // printStackTrace:()V
#65 = Utf8 java/lang/String
#66 = NameAndType #43:#44 // compareTo:(Ljava/lang/String;)I
#67 = Utf8 测试方法的内部结构
#68 = NameAndType #23:#24 // str:Ljava/lang/String;
#69 = Utf8 com/atguigu/java/MethodInnerStrucTest
#70 = Utf8 java/lang/Object
#71 = Utf8 java/lang/Comparable
#72 = Utf8 java/io/Serializable
#73 = Utf8 java/lang/System
#74 = Utf8 out
#75 = Utf8 Ljava/io/PrintStream;
#76 = Utf8 append
#77 = Utf8 (Ljava/lang/String;)Ljava/lang/StringBuilder;
#78 = Utf8 (I)Ljava/lang/StringBuilder;
#79 = Utf8 toString
#80 = Utf8 ()Ljava/lang/String;
#81 = Utf8 java/io/PrintStream
#82 = Utf8 println
#83 = Utf8 (Ljava/lang/String;)V
#84 = Utf8 printStackTrace
常量池、可以看做是一张表,虚拟机指令根据这张常量表找到要执行的类名、方法名、参数类型、字面量等类型
运行时常量池
代码示例
public class MethodAreaDemo {
public static void main(String[] args) {
int x = 500;
int y = 100;
int a = x / y;
int b = 50;
System.out.println(a + b);
}
}
图解字节码指令执行流程
JDK 版本 | 演变细节 |
---|---|
JDK1.6及以前 | 有永久代(permanent generation),静态变量存储在永久代上 |
JDK1.7 | 有永久代,但已经逐步 “去永久代”,字符串常量池,静态变量移除,保存在堆中 |
JDK1.8 | 无永久代,类型信息,字段,方法,常量保存在本地内存的元空间,但字符串常量池、静态变量仍然在堆中 |
JDK6
方法区由永久代实现,使用 JVM 虚拟机内存
JDK7
方法区由永久代实现,使用 JVM 虚拟机内存
JDK8
方法区由元空间实现,使用物理机本地内存
永久代为什么要被元空间替代?
官方文档:
由于类的元数据分配在本地内存中,元空间的最大可分配空间就是系统可用内存空间,这项改动是很有必要的,原因有:
代码示例1:
/**
* 结论:
* 静态变量在jdk6/7存在与永久代中,在jdk8存在于堆中
* 静态引用对应的对象实体始终都存在堆空间
*
* jdk7:
* -Xms200m -Xmx200m -XX:PermSize=300m -XX:MaxPermSize=300m -XX:+PrintGCDetails
* jdk 8:
* -Xms200m -Xmx200m -XX:MetaspaceSize=300m -XX:MaxMetaspaceSize=300m -XX:+PrintGCDetails
*/
public class StaticFieldTest {
private static byte[] arr = new byte[1024 * 1024 * 100];//100MB
public static void main(String[] args) {
System.out.println(StaticFieldTest.arr);
}
}
[B@4554617c
Heap
PSYoungGen total 59904K, used 5171K [0x00000000fbd80000, 0x0000000100000000, 0x0000000100000000)
eden space 51712K, 10% used [0x00000000fbd80000,0x00000000fc28ceb0,0x00000000ff000000)
from space 8192K, 0% used [0x00000000ff800000,0x00000000ff800000,0x0000000100000000)
to space 8192K, 0% used [0x00000000ff000000,0x00000000ff000000,0x00000000ff800000)
ParOldGen total 136704K, used 102400K [0x00000000f3800000, 0x00000000fbd80000, 0x00000000fbd80000)
object space 136704K, 74% used [0x00000000f3800000,0x00000000f9c00010,0x00000000fbd80000)
Metaspace used 3473K, capacity 4496K, committed 4864K, reserved 1056768K
class space used 381K, capacity 388K, committed 512K, reserved 1048576K
代码示例2:
/**
* 《深入理解Java虚拟机》中的案例:
* staticObj、instanceObj、localObj存放在哪里?
*/
public class StaticObjTest {
static class Test {
static ObjectHolder staticObj = new ObjectHolder();
ObjectHolder instanceObj = new ObjectHolder();
void foo() {
ObjectHolder localObj = new ObjectHolder();
System.out.println("done");
}
}
private static class ObjectHolder {
}
public static void main(String[] args) {
Test test = new StaticObjTest.Test();
test.foo();
}
}
方法区垃圾收集
常量的回收
类的回收
判定一个常量是否“废弃”还是相对简单,而要判定一个类型是否属于“不再被使用的类”的条件就比较苛刻了。需要同时满足下面三个条件:
Java虚拟机被允许对满足上述三个条件的无用类进行回收,这里说的仅仅是“被允许”,而并不是和对象一样,没有引用了就必然会回收。关于是否要对类型进行回收,HotSpot虚拟机提供了-Xnoclassgc参数进行控制,还可以使用-verbose:class 以及 -XX:+TraceClass-Loading、-XX:+TraceClassUnLoading查看类加载和卸载信息
在大量使用反射、动态代理、CGLib等字节码框架,动态生成JSP以及OSGi这类频繁自定义类加载器的场景中,通常都需要Java虚拟机具备类型卸载的能力,以保证不会对方法区造成过大的内存压力。