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Given these classes:

class Father {
  public Father getMe() {
    return this;
  }
}

class Child extends Father { .. }

I'm calling the public method of the Father class from the Child class:

Child c = new Child();
Child c1 = c.getMe();

So, this is not working, i have to use a cast to make it work :

Child c1 = (Child) c.getMe();

The question is: is there a better way to make it work without the cast? can be like this ?? :

public <T extends Father> T getMe() {
  return this;
}

Thanks in advance.

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1  
Your question is unclear. you don't need method getMe() as for Child c it always return the same c! –  Vladimir Ivanov Mar 24 '11 at 14:19
    
Yes, it looks like you cast Child, to be a Child... –  dantuch Mar 24 '11 at 14:21
    
Impossible but also most likely unnecessary. The usual way is to extract an interface from Father and Child with the common methods and have both classes implement them in their own way. Virtual functions basically. As a nice side effect the business logic stays inside the classes. –  LumpN Mar 24 '11 at 14:23
    
@Vladimir that's an excellent point although I think the jist of the question is still valid..."when a method returns a class's super class, do you always have to cast it to get the subclass?" –  Chris Thompson Mar 24 '11 at 14:24
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5 Answers

You should override getMe method with return type Child at Child class. This feauture is called as covariant return, it comes with jdk1.5 ..

class Child extends Father{  
       public Child getMe() {    
             return this;  
        }
   }

What about this solution?. It did not look elegant, you should cast to T at getThis method.. But there is no need to override getThis method at subclasses.. But unfortunately type safety is not enforced, one can define such a base object , Base<Child> baseChild = new Base<Child>(); Therefore I do not recommend this method..

class Base<T extends Base<T>> {
    public  T getThis() {

        return  (T) this;
    }
}

class Child extends Base<Child>{

}

Child child = new Child();
child.getThis(); // return type is Child
Base base = new Base();
base.getThis(); // return type is base
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2  
That works only when you call getMe() via a Child reference (which may or may not be enough). –  Péter Török Mar 24 '11 at 14:24
    
so, i have to override it in the Child class, like: super.getMe() ? –  Seby Mar 24 '11 at 14:29
    
@Péter Török: If you don't have Child reference, the compiler doesn't know if it is a Child object, so cast is necessary. –  Tadeusz Kopec Mar 24 '11 at 14:35
    
@Tadeusz, that is precisely the original problem. –  Péter Török Mar 24 '11 at 15:54
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This works :)))

Child c = new Child();
Child c2 = c; //same as c.getMe()
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No, there really isn't because Child is a subclass of Father, not the other way around. If you had

public Child getMe();

You could do

Father father = c.getMe();

with no problem because you can convert implicitly to a supertype, you can't do that the other way around. Basically, think of it this way. Every child is a father, in your case, but not every father is a child. Your second solution would work, although you would have to declare the generic type to be of type Child and that makes it not so much a question about inheritance and more about generics.

Ultimately, at the end of the day, as one of the commenters said, if you really need to know exactly which type the instance is, you may be doing something wrong. The real benefit of inheritance is the ability to decouple the pieces of your code. The client code doesn't care what the actual implementation is, it just knows what methods it needs to call to get something done. Granted, there are some instances where you do need to cast an object because you do need to know exactly what type it is, but that should be a rare occurrence. In this instance the value would be to define a method that takes a Father object as a parameter and understands how to work with the Father interface. All of the methods it would need would be defined as part of the Father class. Other code could create custom subclasses of Father that would allow them to extend the functionality of the class while still allowing them to work with the code designed around the Father interface.

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The canonical way to do this is by using the curiously recurring template pattern:

class Father<T extends Father> {
  T getMe() { return (T)this; }
}

class Child extends Father<Child> {}

Child child = new Child().getMe(); // OK now.

This accomplishes what you want. There are a couple of uncommon but valid use cases where a base class needs access to its derived type. One example is something like this:

class Cached<T extends Cached> {
  public static T create(String name) {
    T cached = sCache.get(name);
    if (cached != null) return cached;

    cached = // create new T...
    sCache.put(name, cached);
    return cached;
  }

  private static Map<String, T> sCache = new HashMap<String, T>();
}

This is a neat trick, but it comes with a cost: you've broken the subtype relation. Your Father class is no longer a superclass of Child because there is no simple Father class, just Father<T>. You may be able to do some clever wildcard hackery to get subtyping back when you need it, but you'll find it cumbersome. Depending on your problem, this may be a worthwhile trade-off.

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Java does not support covariance well.

This is the closest I get to something like this is: (but it's not practical)

public abstract class AFather<P extends AFather<P>> {
    public P getMe() { return (P)this; }
}
public class Father extends AFather<Father> {}
public abstract class AChild<P extends AChild<P>> extends AFather<P> {}
public class Child extends AChild<Child> {}

The most practical way I found of doing this is to overwride the method is the subclass:

public class Father {
    public Father getMe() { return this; }
}
public class Child extends Father {
    public Child getMe() { return (Child)super.getMe(); }
}

By the way, I don't know Scala well, but that language handles nice covariant and contravariant types.

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