13

I want to define a class that implements the generic Comparable interface. While in my class I also defined a generic type element T. In order to implement the interface, I delegate the comparison to T. Here is my code:

public class Item<T extends Comparable<T>> implements Comparable<Item> {

    private int s;
    private T t;

    public T getT() {
        return t;
    }

    @Override
    public int compareTo(Item o) {
        return getT().compareTo(o.getT());
    }
}

When I try to compile it, I get the following error information:

Item.java:11: error: method compareTo in interface Comparable<T#2> cannot be applied to given types;
        return getT().compareTo(o.getT());
                     ^
  required: T#1
  found: Comparable
  reason: actual argument Comparable cannot be converted to T#1 by method invocation conversion
  where T#1,T#2 are type-variables:
    T#1 extends Comparable<T#1> declared in class Item
    T#2 extends Object declared in interface Comparable
1 error

Can anybody tell me why and how to fix it?

  • 2
    Not 100% sure, but should this: compareTo(Item o) be compareTo(Item<T> o)? – npinti Feb 4 '14 at 5:41
  • 2
    for best results use <T extends Comparable<? super T>> – newacct Feb 4 '14 at 21:32
  • You should select an answer for this question. – Ungeheuer Mar 27 '17 at 1:28
18

Item (without any type argument) is a raw type, so:

  1. We could pass any kind of Item to Item.compareTo. For example, this would compile:

    new Item<String>().compareTo(new Item<Integer>())
    
  2. The method o.getT() returns Comparable instead of T, which causes the compilation error.

    In the example under the 1st point, after passing Item<Integer> to Item.compareTo, we would then erroneously pass an Integer to String.compareTo. The compilation error prevents us from writing the code which does that.

I think you just need to remove the raw types:

public class Item<T extends Comparable<T>>
implements Comparable<Item<T>> {

    ...

    @Override
    public int compareTo(Item<T> o) {
        return getT().compareTo(o.getT());
    }
}
7

You're using raw types in your class definition (Item<T> is generic, but you're omitting the type parameter <T>), change it to:

class Item<T extends Comparable<T>> implements Comparable<Item<T>>

(Note the last <T>)

The compareTo method will then have to be changed as well:

public int compareTo(Item<T> o) { // again, use generics
    return getT().compareTo(o.getT());
}
1

I think, this makes more sense. I have compiled and tested the following :

class Item<E extends Comparable<E>> implements Comparable<E> {

 private int s;
 private E t;

 public E getE() {
     return t;
 }

 @Override
 public int compareTo(E e) {
     return getE().compareTo(e);
 }

 public int compareTo(Item<E> other)
    {
        return getE().compareTo(other.getE());
    }

 }

Notice that you now need to have two compareTo methods.

  • The asker wants items to be comparable (by comparing their values). – Njol Feb 4 '14 at 13:16
  • It's possible if T implements Comparable, which is the case here. – Njol Feb 5 '14 at 11:22
  • Ya, please have a look at the other solution that I have given now. – aditya Feb 5 '14 at 11:40
  • Your answer doesn't make much sense at all. "we are extending comparable and not implementing it." - one implements interfaces and extends classes. extends is used in generics for both cases though. "because we are using a generic type T, we must not override compareTo method" - generic types don't prevent us from implementing interfaces, e.g. ArrayList<T> implements List<T>. "T can be anything [...] Specifically, it has to be something that is Comparable" - T already is Comparable, in both the OP's code and your code, in particular it is comparable to itself. – Njol Feb 6 '14 at 14:30
  • 1
    That's certainly better. – Njol Feb 7 '14 at 9:10

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