6

I have the following Java program that I was expecting to not compile, but it did:

class Test {
    public static void f() {
    }

    void m() {
            Test.<String>f();
    }
}

Why does javac allow calling a non-parameterized method in this way?

My Java compiler version is: javac 1.7.0_75

  • 2
    Which JDK version are you using? It does not compile to me (JDK 1.5 and1.6) – Albert Feb 18 '15 at 13:10
  • @Albert Oh, I am using Java 7. I will edit the description with my JDK version. – user11171 Feb 18 '15 at 13:16
  • From where you got this stuff ⁿ|ⁿ – AJ. Feb 18 '15 at 13:28
5

The explicit type parameter is simply ignored.

This is stated in JLS, Section 15.12.2.1:

  • If the method invocation includes explicit type arguments, and the member is a generic method, then the number of type arguments is equal to the number of type parameters of the method.

This clause implies that a non-generic method may be potentially applicable to an invocation that supplies explicit type arguments. Indeed, it may turn out to be applicable. In such a case, the type arguments will simply be ignored.

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