Java并发案例04---生产者消费者问题03--使用ReentrantLock

/**
 * 面试题:写一个固定容量同步容器,拥有put和get方法,以及getCount方法,
 * 能够支持2个生产者线程以及10个消费者线程的阻塞调用
 * 
 * 使用wait和notify/notifyAll来实现
 * 
 * 使用Lock和Condition来实现
 * 对比两种方式,Condition的方式可以更加精确的指定哪些线程被唤醒
 * 
 * @author maple
 */
//同步互斥,等待队列, 基于AQS
package yxxy.c_021;

import java.util.LinkedList;
import java.util.concurrent.TimeUnit;
import java.util.concurrent.locks.Condition;
import java.util.concurrent.locks.Lock;
import java.util.concurrent.locks.ReentrantLock;

public class MyContainer2<T> {
	final private LinkedList<T> lists = new LinkedList<>();
	final private int MAX = 10; //最多10个元素
	private int count = 0;
	
	private Lock lock = new ReentrantLock();
	private Condition producer = lock.newCondition();
	private Condition consumer = lock.newCondition();
	
	public void put(T t) {
		try {
			lock.lock();
			while(lists.size() == MAX) { //想想为什么用while而不是用if?
				producer.await();
			}
			
			lists.add(t);
			++count;
			consumer.signalAll(); //通知消费者线程进行消费
		} catch (InterruptedException e) {
			e.printStackTrace();
		} finally {
			lock.unlock();
		}
	}
	
	public T get() {
		T t = null;
		try {
			lock.lock();
			while(lists.size() == 0) {
				consumer.await();
			}
			t = lists.removeFirst();
			count --;
			producer.signalAll(); //通知生产者进行生产
		} catch (InterruptedException e) {
			e.printStackTrace();
		} finally {
			lock.unlock();
		}
		return t;
	}
	
	public static void main(String[] args) {
		MyContainer2<String> c = new MyContainer2<>();
		//启动消费者线程
		for(int i=0; i<10; i++) {
			new Thread(()->{
				for(int j=0; j<5; j++) System.out.println(c.get());
			}, "c" + i).start();
		}
		
		try {
			TimeUnit.SECONDS.sleep(2);
		} catch (InterruptedException e) {
			e.printStackTrace();
		}
		
		//启动生产者线程
		for(int i=0; i<2; i++) {
			new Thread(()->{
				for(int j=0; j<25; j++) c.put(Thread.currentThread().getName() + " " + j);
			}, "p" + i).start();
		}
	}
}




posted @ 2017-11-06 11:15  枫叶maple  阅读(161)  评论(0编辑  收藏  举报