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Is it possible to solve the “A generic array of T is created for a varargs parameter” compiler warning?

Consider this is given:

interface A<T> { /*...*/ }
interface B<T> extends A<T> { /*...*/ }
class C { /*...*/ }
void foo(A<T>... a) { /*...*/ }

Now, some other code wants to use foo:

B<C> b1 /* = ... */;
B<C> b2 /* = ... */;
foo(b1, b2);

This gives me the warning

Type safety : A generic array of A is created for a varargs parameter

So I changed the call to this:

foo((A<C>) b1, (A<C>) b2);

This still gives me the same warning.

Why? How can I fix that?

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marked as duplicate by Matt Fenwick, martin clayton, Adam Wagner, beny23, ronalchn Sep 26 '12 at 23:45

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3 Answers

up vote 12 down vote accepted

All you can really do is suppress that warning with @SuppressWarnings("unchecked"). Java 7 will eliminate that warning for client code, moving it to the declaration of foo(A... a) rather than the call site. See the Project Coin proposal here.

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The mentioned Project Coin feature is now available - see @SafeVarargs in Java 7. –  George Hawkins Jul 17 '12 at 14:46
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Edit: Answer updated to reflect that question was updated to show A is indeed generic.

I would think that A must be a generic to get that error. Is A a generic in your project, but the code sample above leaves the generic decl out?

If so, Because A is generic, you can't work around warning cleanly. Varargs are implemented using an array and an array doesn't support generic arrays as explained here:

http://stackoverflow.com/questions/3096708/java-generics-and-varargs

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Yea it is. I guess I simplified the example too much. Will change that. –  Albert Oct 20 '10 at 19:48
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You can try this:

<T> void foo(T... a) { /*...*/ }
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