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Its hard to explain in word what I'm after but hopefully the code example below with the comments is sufficient. Basically I want the SubClass sc = new Subclass().method1() line to return the Subclass instance.

public class SuperClass {

    public SuperClass method1()
    {
       //do whatever
       return this
    }
}

public class SubClass extends SuperClass {

    //we inherit method 1

    //method2
    public SubClass method2()
    {
       //do whatever
       return this
    }
}

//succesfully returns instance of Sublass, but...
SubClass sc = new Subclass().method2() 

//...the following line returns an instance of SuperClass and not Sublass
//I want Sublass's instance, without having to using overides
//Is this possible?

SubClass sc = new Subclass().method1()

EDIT: ----------------------------usecase scenario-------------------------------

Message myMessage =  new ReverseTransactionMessageBuilder()
                    .policyNo(POLICY_NO) //on ReverseTransactionMessageBuilder
                    .audUserId(AUD_USER_ID) //on inherited MessageBuilder
                    .audDate(new Date()) //on inherited MessageBuilder
                    .processNo(EProcessConstants.FINANCE_MANUAL_ADJUSTMENT.getProcessCd()) //on inherited MessageBuilder
                    .serviceName("finance.ProcessReversalCmd") //on inherited MessageBuilder
                    .create(); //create is overridden so this is ReverseTransactionMessageBuilder

First thing youl notice is that sbrattla way allows me to call these .audDate () .xxx() methods in any order. With the class construct above you are forced to call the method on the sublcass last (or use a really ugly cast)

share|improve this question
    
Isn't it enough to cast it? –  default locale Sep 22 '11 at 10:03
    
I agree. It should work. –  fireshadow52 Sep 22 '11 at 10:08
    
No, not for the usecase that I intend to use it for –  n4rzul Sep 22 '11 at 10:08
1  
If you cast it to SubClass from SuperClass.method1(), doesn't that take away the entire point of having a superclass? If you, at a later point, decide to use SuperClass with another class (NewSubClass), then you'd still be stuck with SuperClass casting all instances to SubClass - and not to NewSubClass. I'd go for generics, where you have the chance to tell the superclass which type it should cast the returned object to. –  sbrattla Sep 22 '11 at 10:10
1  
Can you show your usecase please? Is it related to Fluent Interface? –  Miserable Variable Sep 22 '11 at 10:17

1 Answer 1

up vote 5 down vote accepted

You would need to do something like:

public class SuperClass<T> {

  public T method1() {
    return (T) this;
  }

}

public class SubClass extends SuperClass<SubClass> {

  public SubClass method2() {
    return (SubClass) this;
  }

}

You can read more about Java Generics in the "Generics Introduction", but briefly explained you're telling SuperClass to cast the returned instance to T which represents a type you define. In this case, it's SubClass.

share|improve this answer
    
Could you elaborate? –  n4rzul Sep 22 '11 at 10:02
    
You are the man. And thanks for the link too. –  n4rzul Sep 22 '11 at 10:10
2  
No worries. You're more than welcome to "accept" my answer if it was what you were looking for :-) –  sbrattla Sep 22 '11 at 10:12
    
You answered so quickly, I just had to wait a while before I could click accept. –  n4rzul Sep 22 '11 at 11:11

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