93

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?

  • 7
    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
  • @GurselKoca He could explicitly do member = Foo.<E>createFoo(); requiring them to be the same as compile time. – George Xavier Jun 20 at 20:47
156

Yes, this is type inference based on the target of the assignment, as per JLS section 15.12.2.8. To be explicit, you'd call something like:

Foo.<String>createFoo();
  • 3
    Or, as in my case: Foo.<E>createFoo(); Thank you :) – fredoverflow Mar 14 '11 at 11:37
  • 7
    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
  • 9
    @FredOverflow without assignment E is "inferred" to be Object – irreputable Mar 14 '11 at 18:28
  • 2
    New link location would probably be: docs.oracle.com/javase/specs/jls/se8/html/… – Joanis Nov 27 '14 at 20:07
  • 2
    A different way to specify the type of E would be to define createFoo() take an argument of type Class<E> (so it would be createFoo(Class<E> type)), and call it with createFoo(String.class) – g.rocket Apr 16 '15 at 2:24

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.