标签:except this void tool lap tail sdn new 线程
本来是看到另一篇博文中的题目,觉得博主实现的方式有点问题,故尝试自己实现,还望大家指教。
http://blog.csdn.net/u014039577/article/details/48623721
问题描述
启动3个线程打印递增的数字, 线程1先打印1,2,3,4,5, 然后是线程2打印6,7,8,9,10, 然后是线程3打印11,12,13,14,15. 接着再由线程1打印16,17,18,19,20....以此类推, 直到打印到75. 程序的输出结果应该为:
线程1: 1
线程1: 2
线程1: 3
线程1: 4
线程1: 5
线程2: 6
线程2: 7
线程2: 8
线程2: 9
线程2: 10
...
线程3: 71
线程3: 72
线程3: 73
线程3: 74
线程3: 75
实现代码:
public class WaitNotifyDemo1 { private int num; //输出数字 private int runThreadNum; //当前运行线程编号 public WaitNotifyDemo1(int num, int runThreadNum){ this.num = num; this.runThreadNum = runThreadNum; } /** * 打印线程 */ static class PrintThread extends Thread{ private int threadNum; //当前运行线程编号 private WaitNotifyDemo1 demo; //锁对象 public PrintThread(int threadNum, WaitNotifyDemo1 demo){ this.threadNum = threadNum; this.demo = demo; } @Override public void run() { synchronized (demo) { try{ for(int i=1; i<=5; i++){ while(true){ if(threadNum == demo.runThreadNum){ break; } else{ //如果当前线程不是接下来要运行的线程,进入等待池 demo.wait(); } } for(int j=1; j<=5; j++){ System.out.println("线程"+threadNum+":"+(++demo.num)); } demo.runThreadNum = demo.runThreadNum%3 +1; //计算之后运行的线程编号 demo.notifyAll(); //唤醒所有等待池中的线程 } } catch(Exception e){ e.printStackTrace(); } } } } public static void main(String[] args) { WaitNotifyDemo1 demo = new WaitNotifyDemo1(0,1); new PrintThread(1,demo).start(); new PrintThread(2,demo).start(); new PrintThread(3,demo).start(); } }
标签:except this void tool lap tail sdn new 线程
原文地址:http://www.cnblogs.com/trust-freedom/p/5983622.html