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Consider a generic min method in a static utility which is meant to return the minimum element in a set . Why do we need to declare it as

 public static <T extends Comparable<? super T>> T min(Set<? extends T> producerSet)

What will be the problem if we instead declare it as

public static <T extends Comparable<T>> T min(Set<? extends T> producerSet)

What flexibility is the wild card type in the type parameter giving me here ?

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3  
Drive-by comment: this is probably somewhere in Angelika Langer's generics FAQ because everything is. (When it comes to generics questions that document is mandatory reading.) –  millimoose Feb 21 '13 at 15:29
6  
Heck, it's in the generics tutorial: docs.oracle.com/javase/tutorial/extra/generics/morefun.html - an example is that if you have the classes Animal implements Comparable<Animal>, and Cat extends Animal, if you didn't use ? super T then you couldn't call min() on a List<Cat> because it'd require that the item type be comparable to exactly itself, while you only need it to be comparable to itself or a supertype. –  millimoose Feb 21 '13 at 15:32

1 Answer 1

This covers the case where T is a subclass of an implementor of Comparable. Consider the following:

public static class A implements Comparable<A> {

   public int compareTo(A o) {
      return 0;
   }
}
public static class B extends A {}

public static <T extends Comparable<T>> T min(Set<? extends T> producerSet) {
   return null;
}

public static void main(String[] args) {
   Set<B> set = new HashSet<B>();
   min(set); // incompatible with method signature
}
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