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I have this code will work in multithreaded application. I know that immutable object is thread safe because its state cannot be changed. And if we have volatile reference, if is changed with e.g. MyImmutableObject state = MyImmutableObject.newInstance(oldState, newArgs); i.e. if a thread wants to update the state it must create new immutable object initializing it with the old state and some new state arguments) and this will be visible to all other threads. But the question is, if a thread2 starts long operation with the state, in the middle of which thread1 updates the state with new instance, what will happen? Thread2 will use reference to the old object state i.e. it will use inconsistent state? Or thread2 will see the change made by thread1 because the reference to state is volatile, and in this case thread1 can use in the first part of its long operation the old state and in the second part the new state, which is incorrect?

State state = cache.get(); //t1 
Result result1 = DoSomethingWithState(state); //t1 
        State state = cache.get(); //t2
    ->longOperation1(state); //t1
        Result result2 = DoSomethingWithState(state); //t2
             ->longOperation1(state); //t2
   ->longOperation2(state);//t1
cache.update(result1); //t1 
             ->longOperation2(state);//t2
        cache.update(result2);//t2

Result DoSomethingWithState(State state) {
    longOperation1(state);
    //Imaging Thread1 finish here and update state, when Thread2 is going to execute next method
    longOperation2(state);
return result;
}

class cache {
     private volatile State state = State.newInstance(null, null);

    update(result) {
        this.state = State.newInstance(result.getState, result.getNewFactors);

    get(){
       return state;
    }

 }
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Please don't cross post forums.oracle.com/forums/messageview.jspa?messageID=9751573 –  Peter Lawrey Jul 24 '11 at 6:55

2 Answers 2

up vote 1 down vote accepted

But the reference is volatile, isn't it making visible the new object state … to the other threads?

No. While a write to a volatile field happens-before every subsequent read of that field, the other thread must re-read that field to get the new value.

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How this can be accomplished? –  dimitar Jul 24 '11 at 7:28
    
I don't understand the problem well enough to propose a correct solution. It's not clear to me how the long operations are related or why there are two threads or what it means to update() an immutable object. –  trashgod Jul 24 '11 at 9:23
    
Let say i have a process executors, which must use shared state and eventually modify it after finish. Every process is started in new thread, the process logic is stateless, the state is cached in in-memory cache. Every process is doing some work based on the state. According the state the process logic can resolve different cases and the result of these cases is the new update of the state. After finishing the process logic i construct new immutable object from the current state and the result. –  dimitar Jul 24 '11 at 9:34
    
Then you'll have to synchronize access to the shared state. See Java Concurrency in Practice. –  trashgod Jul 24 '11 at 9:41
    
So in this case i can run 2 threads to execute the process logic, they both get the latest immutable state, but the one who finish last will simply override the change of the other. Both threads will never see the change of the other, even the reference is volatile, which basicly means that the access to the volatile private property is lightweight synchronization. Any copied reference will not see changes to the private property. –  dimitar Jul 24 '11 at 9:46

What you describe is not thread safe, despite the fact that you are using immutable objects. thread2 continues to act on the object it originally obtained a reference to, even if thread1 assigns a new value of state concurrently. In java, object references are passed by value. So when the state argument to DoSomethingWithState() or longOperation1() gets passed, the method sees only the object reference that was passed, not the changing values later. If you want this kind of code to be thread safe, you need to synchronize all methods that act on the singleton state object.

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But the reference is volatile, is'n it making visible the new object state (at which the volatile reference is pointing) to the other threads. –  dimitar Jul 23 '11 at 22:26
    
@dimitar: In java, object references are passed by value. This means that DoSomethingWithState() gets a copy of the object reference. If you change the reference in another scope after that, DoSomethingWithState() isn't affected. –  Asaph Jul 23 '11 at 22:43
    
Yes i know that, it thread1 changes the cache reference to point to ne object value, the copy of the reference in DoSomethingWithState will still point to the old object value. So the volatile reference is not always 100% visible to all threads, only for threads which re-read the state. –  dimitar Jul 24 '11 at 7:32
    
So what is the best way to keep thread safe my state, and not to break logic, because i don't want different threads to work with different sate. –  dimitar Jul 24 '11 at 7:33

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