4

I have the following test code.

import java.util.concurrent.ExecutorService;
import java.util.concurrent.Executors;
import java.util.concurrent.FutureTask;

class  MyTask extends FutureTask<String>{
    @Override
    protected void done() {
        System.out.println("Done");
    }

    public MyTask(Runnable runnable) {
        super(runnable,null);
    }
}

public class FutureTaskTest {

    public static void main(String[] args)  {
        ExecutorService executor = Executors.newSingleThreadExecutor();
        FutureTask<String> future = new MyTask(new Runnable() {
            public void run() {
                System.out.println("Running");
            }
        });

        executor.submit(future);

        try {
            future.get();
        } catch (Exception ex ) {
            ex.printStackTrace();
        }
        executor.shutdownNow();

    }
}

This works fine - the overridden 'done' methond in MyTask is called when the task is done. But how does the executor know how to call that ?

The executor only have these submit methods:

public <T> Future<T> submit(Callable<T> task);
public Future<?> submit(Runnable task);

Internally it seems 'submit' wraps the callable/runnable in a new FutureTask(). As far as the executor is concerned I've submitted a Runnable or Callable - from what I gather from these 2 signatures. How does it know I submitted a FutureTask and know how to call my overridden done() ?

7

From the executor's point of view, you've submitted a Runnable task. The run method of this task (implemented by FutureTask) is what calls done at the appropriate time. The executor doesn't make any direct call to done.

1

The executor doesn't call done(). done() gets called by FutureTask when the call to run() is complete.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.