(原创)Callable、FutureTask中阻塞超时返回的坑点

时间:2023-03-09 14:31:12
(原创)Callable、FutureTask中阻塞超时返回的坑点

直接上代码

import java.util.concurrent.Callable;

public class MyCallable implements Callable<String> {

    private long waitTime;

    public MyCallable(int timeInMillis){

        this.waitTime=timeInMillis;

    }

    @Override

    public String call() throws Exception {

        Thread.sleep(waitTime);

        return Thread.currentThread().getName();

    }

}

结果阻塞的代码

import java.util.concurrent.ExecutionException;

import java.util.concurrent.ExecutorService;

import java.util.concurrent.Executors;

import java.util.concurrent.FutureTask;

import java.util.concurrent.TimeUnit;

import java.util.concurrent.TimeoutException;

public class FutureTaskExample {

    public static void main(String[] args) {

        MyCallable callable1 = new MyCallable();

        MyCallable callable2 = new MyCallable();

        FutureTask<String> futureTask1 = new FutureTask<String>(callable1);

        FutureTask<String> futureTask2 = new FutureTask<String>(callable2);

        ExecutorService executor = Executors.newFixedThreadPool();

        executor.execute(futureTask1);

        executor.execute(futureTask2);

        while (true)

        {

            try {

                if(futureTask1.isDone() && futureTask2.isDone()){

                    System.out.println("Done");

                    //shut down executor service

                    executor.shutdown();

                    return;

                }

                if(!futureTask1.isDone()){

                //阻塞futureTask1

                System.out.println("FutureTask1 output="+futureTask1.get());

                }

                if(!futureTask2.isDone()){

                //阻塞futureTask2

                System.out.println("FutureTask2 output="+futureTask2.get());

                }

            } catch (InterruptedException | ExecutionException e) {

                e.printStackTrace();

            }catch(Exception e){

                //do nothing

            }

        }

    }

}

运行结果很简单,必须是:

FutureTask1 output=pool-1-thread-1
FutureTask2 output=pool-1-thread-2
Done

如果改为阻塞超时,先猜猜输出结果是什么。注意第37行代码有超时处理。

 import java.util.concurrent.ExecutionException;

 import java.util.concurrent.ExecutorService;

 import java.util.concurrent.Executors;

 import java.util.concurrent.FutureTask;

 import java.util.concurrent.TimeUnit;

 import java.util.concurrent.TimeoutException;

 public class FutureTaskExample {

     public static void main(String[] args) {

         MyCallable callable1 = new MyCallable();

         MyCallable callable2 = new MyCallable();

         FutureTask<String> futureTask1 = new FutureTask<String>(callable1);

         FutureTask<String> futureTask2 = new FutureTask<String>(callable2);

         ExecutorService executor = Executors.newFixedThreadPool();

         executor.execute(futureTask1);

         executor.execute(futureTask2);

         while (true)

         {

             try {

                 if(futureTask1.isDone() && futureTask2.isDone()){

                     System.out.println("Done");

                     //shut down executor service

                     executor.shutdown();

                     return;

                 }

                 if(!futureTask1.isDone()){

                 //阻塞futureTask1

                 System.out.println("FutureTask1 output="+futureTask1.get());

                 }

                 System.out.println("Waiting for FutureTask2 to complete");

                 String s = futureTask2.get(500L, TimeUnit.MILLISECONDS); //阻塞500毫秒

                 if(s !=null){

                     System.out.println("FutureTask2 output="+s);

                 }

                 else{

                     System.out.println("FutureTask2 output is null");

                 }

             } catch (InterruptedException | ExecutionException e) {

                 e.printStackTrace();

             }catch(Exception e){

                 //do nothing

             }

         }

     }

 }

如果说是这样的结果,那就错了

FutureTask1 output=pool-1-thread-1
Waiting for FutureTask2 to complete
FutureTask2 output is null
Waiting for FutureTask2 to complete
FutureTask2 output is null
FutureTask2 output=pool-1-thread-2
Done

最终输出

FutureTask1 output=pool-1-thread-1
Waiting for FutureTask2 to complete
Waiting for FutureTask2 to complete
FutureTask2 output=pool-1-thread-2
Done

说明了一件事,即在超时期限内,如果未能获取线程返回值,futureTask2.get(500L, TimeUnit.MILLISECONDS) 将不对继续执行后面的代码,而是进行下一次的while操作了(并不是返回null),while的下一次循环,直到获取到了返回结果,String s才得以赋值,代码继续进行。

所以要慎用get(long timeout, TimeUnit unit)。

传统的理解是错误的:

get(long timeout, TimeUnit unit)用来获取执行结果,如果在指定时间内,还没获取到结果,就直接返回null。

大神 海子 曾对这个问题有质疑,认为会抛出异常,并赋空值,见:

http://www.cnblogs.com/dolphin0520/p/3949310.html#3318489

我尝试修改代码

String s="aa";

        while (true)

        {

            try {

                if(futureTask1.isDone() && futureTask2.isDone()){

                    System.out.println("Done");

                    //shut down executor service

                    executor.shutdown();

                    return;

                }

                if(!futureTask1.isDone()){

                //阻塞futureTask1

                System.out.println("FutureTask1 output="+futureTask1.get());

                }

                System.out.println("Waiting for FutureTask2 to complete");

                s = futureTask2.get(500L, TimeUnit.MILLISECONDS); //阻塞500毫秒

                if(s !=null){

                    System.out.println("FutureTask2 output="+s);

                }

                else{

                    System.out.println("FutureTask2 output is null");

                }

            } catch (InterruptedException | ExecutionException e) {

                e.printStackTrace();

            }catch(Exception e){

                System.out.println("s is:"+s);

                //do nothing

            }

        }

s的预设值那里有改变:String s="aa";也没发现变为null,是没发生赋值。在异常中s也没有被赋空值。

所以在使用get(long timeout, TimeUnit unit)的时候,变量初始最好能给一个空值,这样就不会产生奇怪的结果,这也是合理的编程习惯。