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I have come across a curious situation involving static generic methods. This is the code:

class Foo<E>
{
    public static <E> Foo<E> createFoo()
    {
        // ...
    }
}

class Bar<E>
{
    private Foo<E> member;

    public Bar()
    {
        member = Foo.createFoo();
    }
}

How come I don't have to specify any type arguments in the expression Foo.createFoo()? Is this some kind of type inference? If I want to be explicit about it, how can I specify the type argument?

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3  
I would recommend you to change type parameter E of createFoo method. Because , type parameter E of class Foo is different than type parameter E of method createFoo(). –  Gursel Koca Mar 14 '11 at 11:41

1 Answer 1

up vote 46 down vote accepted

Yes, this is type inference based on the target of the assignment, as per JLS section 15.12.2.28. To be explicit, you'd call something like:

Foo.<String>createFoo();
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1  
Or, as in my case: Foo.<E>createFoo(); Thank you :) –  FredOverflow Mar 14 '11 at 11:37
2  
How come this also works without the assignment? That is, the statement Foo.createFoo(); compiles just fine...? Is this due to type erasure? –  FredOverflow Mar 14 '11 at 11:39
2  
@FredOverflow without assignment E is "inferred" to be Object –  irreputable Mar 14 '11 at 18:28
3  
This is ugly as hell. –  Paulo Torrens May 16 at 20:11
3  
@PauloTorrens: Yup, I certainly prefer the C# syntax. But hey, it works... –  Jon Skeet May 16 at 20:16

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