15

Either in Javadoc as well as the code itself, Comparator interface defines:

 int compare(T o1, T o2);
 boolean equals(Object obj);

But then this gives no probs compilating:

 Comparator a = new Comparator() {      
     @Override public int compare(Object o1, Object o2) {
        //..
     }
 };

But this does:

 Comparator a = new Comparator() {      
     @Override public boolean equals(Object comparator) {
        //..
     }
 };

How its done for the interface for allowing us not to override method?

24

First of all JavaDocs explain clearly that you should implements this method:

Additionally, this method can return true only if the specified object is also a comparator and it imposes the same ordering as this comparator. Thus, comp1.equals(comp2)implies that sgn(comp1.compare(o1, o2))==sgn(comp2.compare(o1, o2)) for every object reference o1 and o2.

But later:

Note that it is always safe not to override Object.equals(Object).

How is it possible not to override equals(), even though it is part of an interface? Because this method is already implemented for each and every object in Java (in Object class).

The declaration in the interface is there only to emphasise the importance of equals() with regards to Comparator by adding extra JavaDoc explanation.

BTW if your comparator is stateless you should have only one instance of it - in which case the default equal() implementation is just fine.

  • I had read the second part, but I mean, is an interace extending also object like a normal newable instance then? Or do you mean an interface is aware of what methods could be already implemented in any object so it does not force them? – Whimusical Aug 1 '12 at 11:28
  • 4
    @user1352530 actually, neither. Interface is not aware of Object. But when you are implementing an interface, you always inherit, directly or indirectly, from Object. This means you already inherited equals() and others, so the compiler is not complaining. On the other hand note that when you have an instance of any interface, you can still call any Object method on it, not barely methods of that particular interface. – Tomasz Nurkiewicz Aug 1 '12 at 11:31
0

Beczuse every object already implements equals().

In reality specifying equals() again in the Comparator interface definition accomplishes precisely nothing except giving a chance to document the contract and its relationship with compareTo().

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