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So I have code similar to this

synchronized(objectOne){ do stuff }
synchronized(objectTwo){ do stuff }

The problem with this is the program will wait for the lock on objectOne, even if the lock for objectTwo is available. What I'm trying to do is say: try to lock both objectOne and objectTwo, and whichever lock you get first do the stuff for that lock. I've come up with a solution but I think it's rather hacky and I'm wondering if anybody has any better ideas.

Here's my idea: Start 2 threads, each one waiting on a lock and then the main thread will wait on a CountDownLatch. So you end up with something like this:

CountDownLatch latch = new CountDownLatch(2);

new Thread(new Runnable(){
public void run(){
    synchronized(objectOne) { do stuff }
    latch.countDown();
}).start();

new Thread(new Runnable(){
public void run(){
    synchronized(objectTwo) { do stuff }
    latch.countDown();
}).start();

latch.await();
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1  
That sounds like a reasonable approach to me. –  ArtB Nov 15 '12 at 1:51
    
I cant tell by the code posted, but in my experience, a class that locks on two different objects should almost always be split into two classes, with the locking encapsulated inside the two classes, not by the class that aggregates them –  Nate Nov 15 '12 at 1:57
    
you are using two different locks so the thread B may not see the memory changes by the thread A, I suspect there will be no happens-before here. –  Boris Treukhov Nov 15 '12 at 5:17
    
also it's not clear why you can't implement an ordering policies, for example order the lock acquiring by their System.identityHashCode() values to avoid deadlocking. –  Boris Treukhov Nov 15 '12 at 5:24

4 Answers 4

I think you should use Lock which provides you with the method boolean tryLock().

Returns: true if the lock was acquired and false otherwise

Proceed with do stuff when you have at least one of the locks.

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So are you suggesting something like repeatedly trying both locks until you get either one, encapsulated by some busy waiting loop? –  user1825426 Nov 15 '12 at 3:16

You might want to have 2 queues of jobs, 2 threads each polling a queue and execute the jobs.

For jobs related to objectOne, you put it in queue#1; jobs related to objectTwo in queue#2.

worker1.queue.put( new Runnable(){ public void run() { do stuff } } );
worker2.queue.put( new Runnable(){ public void run() { do stuff } } );

----

class Worker extends Thread

    BlockingQueue<Runnable> queue = new LinkedBlockingQueue<>();

    public void run()
        while(true)
            queue.take().run();
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Depending on the amount of stuff it could be more overhead to spin off multiple threads to do stuff. It might just be best to do stuff in a single thread if stuff is a fast enough operation. You will have to time it to know.

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I kind of like your hack, at least if it's a one-off situation. That said...

If you're doing this sort of thing a lot and want something "less hacky", I'd suggest ExecutorService#invokeAll(). This takes a list of Callables, executes them on a thread pool and blocks until they're all done.

Sketch:

ExecutorService es = Executors.newCachedThreadPool(); // for example...
List<Future<Void>> results = es.invokeAll(new ArrayList {{ 
        add(new Callable<Void> { 
            public Void call() { synchronized(objectOne) { do stuff } }
        });
        add(new Callable<Void> { 
            public Void call() { synchronized(objectTwo) { do stuff } }
        });
    }});
// both Callables are done when you get here

This obviously assumes that it's ok to call these methods from different threads at this point in your app. If for some reason you need to call both from the same thread, I think you're doomed to use tryLock and busy-wait as discussed in Bhesh Gurung's answer.

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