1

Is specifying the inheritance relation of parameterized generic types not enough to ensure type safety? For example:

public class ListCastFunction<F, T extends F> implements Function<F, T> {
    public final T apply(final F from) {
        return (T) from;
    }
}

This still generates a compiler warning. If we know T extends F, is it really unchecked?

1 Answer 1

10

You're casting and F to a T, but since T extends F, you're explicitly downcasting. There's no way to guarantee that the F given in the method is a T. Suppose I do this, assuming that the implied parent-child relationships are made:

ListCastFunction<Animal, Mammal> lcf = new ListCastFunction<>;
Mammal i = lcf.apply(new Fish());

This would break when executed, because a Fish is not a Mammal, but it fits your code.

3
  • Thanks. Is there a explicitly require that the F given is a T without deliberately checking? Commented May 13, 2016 at 14:13
  • 1
    Use T in your declaration rather than F?
    – sisyphus
    Commented May 13, 2016 at 14:18
  • 1
    @CannonPalms the only way to guarantee that F is a T is if F extends T - and then you wouldn't need to cast - but you could also just use new ArrayList<F>(listOfT) too, with no need for ListCastFunction. Commented May 13, 2016 at 14:19

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