9

In other words I want to know if changing variable before interrupt is always visible when interrupt is detected inside interrupted thread. E.g.

private int sharedVariable;

public static void interruptTest() {
    Thread someThread = new Thread(() -> {
        try {
            Thread.sleep(5000);
        } catch (InterruptedException e) {
            // Is it here guaranteed that changes before interrupt are always visible here?
            System.out.println(sharedVariable);
        }
    });
    someThread.start();
    Thread.sleep(1000);
    sharedVariable = 10;
    someThread.interrupt();
}

I tried to find answer in Java language specification and in Summary page of the java.util.concurrent package mentioned in Java tutorial but interrupt was not mentioned.

I know about volatile and other synchronize primitives but do I need them?

6
  • I haven't been able to find the information except in "Java Concurrency in Practice" (See Interruption rule in what-when-how.com/Tutorial/topic-355vueju/…). But i's the bible, so it's most probably correct. It would be nice if @BrianGoetz confirmed, and explained why it's not in the javadoc/JLS (unless I missed it, of course).
    – JB Nizet
    Jul 23, 2017 at 20:03
  • If i were to rephrase the question, you are effectively asking if by calling Thread.interrupt(), one could guarantee that the latest state of "sharedVariable" be used from within "someThread" without using the documented ways of achieving happens-before and sharing state(using locks, atomic variables or volatile). And the answer to that would be no. So yes, i think you would need to make it volatile or use locking.
    – Curious
    Jul 23, 2017 at 20:17
  • 1
    @jay - interruption is a documented way of establishing happens-before.
    – BeeOnRope
    Jul 24, 2017 at 4:01
  • @BeeOnRope thank you for pointing it out. Agreed that the interruption of thread T2 by T1 has a happens before relationship between them. But does that guarantee a happens before between the lines "sharedVariable = 10" and "someThread.interrupt()"? Due to a lack of synchronised-with mechanism between those 2 lines, i'm still inclined to think that OP requires to make "sharedVariable" volatile or use locking.
    – Curious
    Jul 25, 2017 at 21:03
  • Yes, there is a happens before relationship between each statement in source order, such as between sharedVariable = 10; and someThread.interrupt(); above. Otherwise, happens-before would pretty useless, it wouldn't guarantee anything about the rest of the code, and those are the guarantees you want. A typical example is setting all the fields of an object during construction, then publishing that object via a volatile reference. Another thread reading the volatile reference is guaranteed that all the fields are also set. Without this everything would need to be volatile!
    – BeeOnRope
    Jul 25, 2017 at 21:28

1 Answer 1

7

Yes, interrupting a thread T2 from a thread T1 creates a happens-before relationship between T1 and T2, as described in the JLS 17.4.4. Synchronization Order:

If thread T1 interrupts thread T2, the interrupt by T1 synchronizes-with any point where any other thread (including T2) determines that T2 has been interrupted (by having an InterruptedException thrown or by invoking Thread.interrupted or Thread.isInterrupted).

Now that only implies that T1 synchronizes-with the detection of the interrupt T2, while you asked about happens-before. Luckily the former implies the latter from 17.4.5. Happens-before Order:

Two actions can be ordered by a happens-before relationship. If one action happens-before another, then the first is visible to and ordered before the second.

If we have two actions x and y, we write hb(x, y) to indicate that x happens-before y.

  • ...
  • If an action x synchronizes-with a following action y, then we also have hb(x, y).

So you are safe to access sharedVariable knowing that it has (at least) the value written by T1, even without volatile.

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