据我所知,我想在互斥锁上调用wait(),当我希望当前线程停止工作,直到另一个线程在同一个互斥对象上调用notify()。这似乎没有用。
我正在尝试打印线程1-10。然后等待另一个线程打印11-20。然后第一个线程将再次打印21-30
Main.java
public class Main {
public static void main(String[] args) throws InterruptedException {
Object mutex = 1;
Thread child1 = new Thread(new Child1(mutex));
Thread child2 = new Thread(new Child2(mutex));
child1.start();
child2.start();
}
}
Child1.java
public class Child1 implements Runnable {
Object mutex;
public Child1(Object mutex){
this.mutex = mutex;
}
public void run() {
synchronized (mutex) {
for(int c = 0; c < 10; c++){
System.out.println(c+1);
}
try {
wait();
} catch (InterruptedException e) {
// TODO Auto-generated catch block
e.printStackTrace();
}
}
for(int c = 20; c < 31; c++){
System.out.println(c+1);
}
}
}
Child2.java
public class Child2 implements Runnable {
Object mutex;
public Child2(Object mutex) {
this.mutex = mutex;
}
public void run() {
synchronized (mutex) {
for (int c = 11; c < 21; c++) {
System.out.println(c);
}
notify();
}
}
}
输出
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17Exception in thread "Thread-0"
18
19
20
Exception in thread "Thread-1" java.lang.IllegalMonitorStateException
at java.lang.Object.wait(Native Method)
at java.lang.Object.wait(Object.java:502)
at task42.Child1.run(Child1.java:18)
at java.lang.Thread.run(Thread.java:745)
java.lang.IllegalMonitorStateException
at java.lang.Object.notify(Native Method)
at task42.Child2.run(Child2.java:15)
at java.lang.Thread.run(Thread.java:745)
我错过了什么?
答案 0 :(得分:7)
您必须将mutex引用添加到wait()和notify();也就是说,将wait()更改为mutex.wait(),将notify()更改为mutex.notify()。
如果没有这个,您打算在this上等待/通知(method()相当于this.method())
以下是您的代码,并进行了相应的更改:
Child1.java
public class Child1 implements Runnable {
Object mutex;
public Child1(Object mutex){
this.mutex = mutex;
}
public void run() {
synchronized (mutex) {
for(int c = 0; c < 10; c++){
System.out.println(c+1);
}
try {
mutex.wait(); // Changed here
} catch (InterruptedException e) {
// TODO Auto-generated catch block
e.printStackTrace();
}
}
for(int c = 20; c < 31; c++){
System.out.println(c+1);
}
}
}
Child2.java
public class Child2 implements Runnable {
Object mutex;
public Child2(Object mutex) {
this.mutex = mutex;
}
public void run() {
synchronized (mutex) {
for (int c = 11; c < 21; c++) {
System.out.println(c);
}
mutex.notify(); // Changed here
}
}
}
答案 1 :(得分:2)
您的代码在几个方面失败。
首先,不能保证第一个线程也会先运行。 (特别是在多核上,很有可能两者并行运行)。因此,如果第二个线程首先进入synchronized Child2.run()块,它将在第一个线程处于等待状态之前调用mutex.notify()。因此,第一个主题将永远保留在mutex.wait()。
其次,wait() / notify()不被认为直接用作线程握手机制。只有在第二个线程调用wait() 之前第一个线程调用notify() 时,这才有效。通常,你不能。
相反,wait()应该用于等待某个条件变为真。该条件通常由另一个线程更改,该线程通过调用notifyAll()来通知等待线程。所以握手机制是条件,而不是wait / notify:
// 1st thread:
synchronized (lock) {
while (!condition) {
lock.wait();
}
// continue
}
// 2nd thread:
synchronized {
condition = true;
lock.notifyAll();
}
wait() / notify()或notifyAll()的任何其他使用模式都是错误的!同样非常重要的是总是在循环中调用wait(),因为线程可能会偶然醒来 - 即使没有notify()或notifyAll()。
使用wait()/notifyAll()
因此,在您的情况下,您可以将wait()和notifyAll()与阶段变量结合使用:
public class Mutex {
static final Object lock = new Object();
static int stage = 1;
static void first() throws InterruptedException {
synchronized (lock) {
// we're already in stage 1
for(int i = 0; i < 10; ++i) System.out.println(i);
// enter stage 2
stage = 2;
lock.notifyAll();
// wait for stage 3
while (stage != 3) { lock.wait(); }
// now we're in stage 3
for(int i = 20; i < 30; ++i) System.out.println(i);
}
}
static void second() throws InterruptedException {
synchronized (lock) {
// wait for stage 2
while (stage != 2) { lock.wait(); }
// now we're in stage 2
for(int i = 20; i < 30; ++i) System.out.println(i);
// enter stage 3
stage = 3;
lock.notifyAll();
}
}
public static void main(String[] args) {
new Thread(new Runnable() {
public void run() {
try {
Mutex.first();
} catch (InterruptedException ex) { }
}
}).start();
new Thread(new Runnable() {
public void run() {
try {
Mutex.second();
} catch (InterruptedException ex) { }
}
}).start();
}
}