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I have the question about the code below.

Could you please tell me why exactly does compiler refuse to accept ty.add(new A());? After all A is a superclass of B (i. e., that corresponds to the requirements).

Error message is the following:

C.java:15: error: no suitable method found for add(A)
                ty.add(new A());
                  ^
    method List.add(int,CAP#1) is not applicable
      (actual and formal argument lists differ in length)
    method List.add(CAP#1) is not applicable
      (actual argument A cannot be converted to CAP#1 by method invocation conversion)
  where CAP#1 is a fresh type-variable:
    CAP#1 extends Object super: B from capture of ? super B
1 error

And here is the code (C.java):

import java.util.ArrayList;
import java.util.List;

class A
    {
    }
class B extends A
    {
    }
class C extends B
    {
    public static void main(String args[])
        {
        List<? super B> ty = new ArrayList<A>();
        ty.add(new A());
        ty.add(new B());
        ty.add(new C());
        }
    }
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3 Answers 3

up vote 1 down vote accepted

Well, if you just want to add subclass objects, then just declare your list as:

List<A> list = new ArrayList<A>();
list.add(new A());  // fine
list.add(new B());  // fine

The problem with your original list declaration is, compiler doesn't know what actual ArrayList type is being referred to by List<? super B>. For example, consider what all types of list are capture-convertible by List<? super B>:

  • List<A> => A is super class of B
  • List<B> => ? super B can capture B
  • List<Object> => Object is super class of B

So, adding a new A() might be valid in 1st and 3rd list, but it's not valid for List<B>. That is why compiler doesn't allow you to add new A(). However, declaring the list as List<? super A> would work fine. But, again just go withList<A>, that is what you want here.

The whole point of creating a list like - List<? extends X> or List<? super X> is to allow you to bind different concrete parameterized instantiation of List<E> to a single reference.


References:

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Thanks, it's much clearer now. –  Cybex Oct 10 '13 at 20:45
    
@Cybex You're welcome :) –  Rohit Jain Oct 10 '13 at 20:46
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You are misunderstanding what ? super B means. It means it's a class, unknown at compile time, that is B or a superclass of B. The compiler only knows that B objects could be added, after all, it could be an ArrayList<B>. So it must disallow adding an A.

To allow adding an A, consider List<? super A> or List<A> for the type of ty.

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Thanks for your answer. Yeah, I really misinterpreted super in this case. –  Cybex Oct 10 '13 at 20:46
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? in this case is an existential quantifier, not a universal one. List< ? super B > should be read as for some unknown T such that B <: T, List< T >. Which means you can only add B instances or, paradoxically, any subclass of B, like C instances.

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Thanks. Indeed, paradoxically is the very suitable word. –  Cybex Oct 10 '13 at 20:47
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