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Is there a way to declare array elements volatile in Java? I.e.

volatile int[] a = new int[10];

declares the array reference volatile, but the array elements (e.g. a[1]) are still not volatile. So I'm looking for something like

volatile int[] a = new volatile int[10];

but it doesn't work that way. Is it possible at all?

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@Kanagavelu Sugumar: AtomicReference is a wrapped volatile, with some extra methods (getAndSet etc.). –  Joonas Pulakka Mar 11 at 7:54

2 Answers 2

up vote 15 down vote accepted

use AtomicIntegerArray or AtomicLongArray

The AtomicIntegerArray class implements an int array whose individual fields can be accessed with volatile semantics, via the class's get() and set() methods. Calling arr.set(x, y) from one thread will then guarantee that another thread calling arr.get(x) will read the value y (until another value is read to position x).

See:

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I wonder why there are specific AtomicArrays for int and long, but not for other primitive types... But of course the rest of the primitives could be faked by using their wrappers in an AtomicReferenceArray. –  Joonas Pulakka Feb 10 '10 at 11:26
    
I think AtomicIntegerArray and AtomicLongArray are optimized to work with integer and long respectively. –  uthark Feb 10 '10 at 11:44
1  
@JoonasPulakka for other primitive types you can also convert them to int or long using e.g. Float.floatToIntBits(float). This avoids the need of boxing when using AtomicReferenceArray. –  Didier L 2 days ago

No, you can't make array elements volatile. See also http://jeremymanson.blogspot.com/2009/06/volatile-arrays-in-java.html .

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Actually you can, but with additional efforts. –  uthark Feb 10 '10 at 11:00
    
Technically that's still not making the elements volatile, but the array operations are volatile. Since int for this case is a primitive, it essentially has the same behavior, but this could not be easily extended for non-primitive arrays. –  Marcus Jan 14 at 21:59

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