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I am trying to implement generics in Java using Comparable<T> interface.

public static <T> T[] sort(T[] a) {
    //need to compare 2 elements of a
}

Let's say, I want to override the compareTo method for the above type T in the Comparable interface. I.e. I need to compare two elements of my type T, how will I do it? I don't know what my T type will be.

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4  
Your title is rather ... generic. Please make it more specific to your question. –  Jacob Tomaw Nov 19 '10 at 20:55

3 Answers 3

up vote 8 down vote accepted

You need to set a type constraint on your method.

public static <T extends Comparable<? super T>> T[] sort (T[] a)
{
         //need to compare 2 elements of a
}

This forces the type T to have the compareTo(T other) method. This means you can do the following in your method:

if (a[i].compareTo(a[j]) > 0) }

}
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Thanks a lot.... –  user506710 Nov 19 '10 at 20:57
    
@user, to be honest, I don't remember why you need the extra ? super T. The method will work in most cases if you just use Comparable<T>. –  jjnguy Nov 19 '10 at 20:58
    
<? super T> stands for an unknown type that is a super-type of T, or possibly T itself. Likewise <? extends T> is an unknown sub-type of T, or again possibly T itself. –  eaj Nov 19 '10 at 21:03
    
The ? super T allows you to have: class Person implements Comparable<Person>; class Student extends Person; and do sort(new Student[] {}); –  meriton Nov 19 '10 at 21:03
1  
@jjnguy: ? super T also handles old classes that just implement raw Comparable correctly. If you make it T extends Comparable<T>, the method will be unusable with an array of such a class. –  ColinD Nov 19 '10 at 21:11

Old question but...

As jjnguy responded, you need to use:

public static <T extends Comparable<? super T>> T[] sort(T[] a) {
  ...
}

Consider the following:

public class A implements Comparable<A> {}
public class B extends A {}

The class B implicitly implements Comparable<A>, not Comparable<B>, hence your sort method could not be used on an array of B's if used Comparable<T> instead of Comparable<? super T>. To be more explicit:

public static <T extends Comparable<T>> T[] brokenSort(T[] a) {
   ...
}

would work just fine in the following case:

A[] data = new A[3];
...
data = brokenSort(A);

because in this case the type parameter T would be bound to A. The following would produce a compiler error:

B[] data = new B[3];
...
data = brokenSort(B);

because T cannot be bound to B since B does not implement Comparable<B>.

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Try using <T extends Comparable<T>> and then compareTo

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