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I want to know whether creating a new thread in Java triggers a cache flush. Suppose I do something like this, in this sequence:

  1. A thread runs and sets a variable X.
  2. The thread creates a new thread.
  3. The new thread accesses X.

My question is this: is the new thread, either at the time it is created or at the time it begins execution, guaranteed to see the update made to X by the old thread in step 1? I understand that if the old thread changes the value of X in the future, it is not guaranteed that the new thread will see these changes. That's fine. I just want to know whether the new thread will see the right values when it starts without need for explicit synchronization.

When I first decided to look into this topic, I thought a simple google search would immediately reveal the answer, but for some reason, I can't find any result that addresses this question.

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Why rely on such obscure guarantees (if they exist at all) if you can just make the variable in question volatile? –  delnan Dec 14 '11 at 19:44
@delnan: there's nothing obscure here. This behaviour is clearly specified in Java language specification. –  Peter Štibraný Dec 14 '11 at 19:50
Now a more obscure guarantee question might be: "A writes X; B created; C reads X" -- is the behavior of this defined? :-) –  user166390 Dec 14 '11 at 19:58
@pst: not sure how B is related. In this case, C is guaranteed to see either default value OR value written by A, but it's not specified which one. (Assuming there were no other writes to X, and that "A writes X" and "C reads X" actions are not synchronized by any other means, e.g. by using volatile). –  Peter Štibraný Dec 14 '11 at 20:00
@pst: there is synchronization when creating a thread and when waiting for (joining) a thread. –  ninjalj Dec 14 '11 at 20:12

1 Answer 1

up vote 9 down vote accepted

Yes, it is.

In java, there is 'happens-before' relation that specifies what memory effects are visible between two actions. If "A happens-before B", then action B is guaranteed to see all changes done by action A.

Starting a thread creates 'happens-before' relation between "thread.start()" call and all code that executes on new thread. New thread is therefore guaranteed to see memory effect of changing variable X on first thread.

For quick overview of happens-before relation, see Memory Visibility part of java.util.concurrent package overview. In your case, interesting bits are:

  • Each action in a thread happens-before every action in that thread that comes later in the program's order.
  • A call to start on a thread happens-before any action in the started thread.

More links if you are curious:

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A nice answer, however, reading through this synopsis makes it unclear to me if this is defined: Threads exist, A, B, variable X is unknown. A writes X; B creates C; C reads X. Note that C was created by B and not A -- thus there is no happens-before with A and C? (Please note that this is not what the original question asks, which this question does answer, just musing! :-) –  user166390 Dec 14 '11 at 20:05
@pst: yes, you're right. There is no happens-before between "A writes X" and "C reads X" actions in this case. –  Peter Štibraný Dec 14 '11 at 20:07
@PeterŠtibraný: you mean that there is happens-before between "B creates C" and "C reads X", but not between "A writes X" and any other action in B or C. –  ninjalj Dec 14 '11 at 20:09
@ninjalj: sorry, yes, edited :) –  Peter Štibraný Dec 14 '11 at 20:10
For reference, I checked the specific part of the linked doc that notes the synchronization of Thread.start(): "Synchronization actions induce the synchronized-with relation on actions, defined as follows: - An action that starts a thread synchronizes-with the first action in the thread it starts." [from 17.4.4] –  Trevor Freeman Dec 14 '11 at 21:01

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