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How can I get a reference to a Subclass's Class from a Superclass method?

E.g.,

public class MySuper {
  public void myMethod(){
    // here i need a reference to MySub1.class or MySub2.class
    // depending on the class of the instance that invoked this method
  }
}

public class MySub1 extends MySuper {
  public String myString;
}
public class MySub2 extends MySuper {
  public int myInt;
}
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Has the object are already initialized or we need to initialize the object as and when we receive the argument. –  Bhavik Ambani May 7 '12 at 19:14

3 Answers 3

up vote 2 down vote accepted

Sounds like you just want:

Class<?> clazz = getClass();

Or more explicitly:

Class<?> clazz = this.getClass();

Note that it won't be the class containing the code that invoked the method - it'll be the class of the object that the method was invoked on. If you want the class of the caller, that's a whole different matter.

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thanks. let's say I need to iterate through the fields of the Subclass (and populate them from JSON or XML or something)... Will I be able to use reflection on clazz to myString for MySub1 instances and myInt for MySub2 instances? –  momo May 7 '12 at 19:16
    
@BigMoMo: Yes. Although personally I'd probably write a virtual method in MySuper to perform the serialization, and make subclasses override it to add their extra fields. I like doing serialization manually, unless you're using entirely autogenerated classes (such as with Protocol Buffers). Your mileage may vary. –  Jon Skeet May 7 '12 at 19:18
    
thanks, that's what I needed. The super has a generic serializer that just grabs primitives, which is overriden by subclasses that have non-primitive serialization. –  momo May 7 '12 at 19:29

If you call getClass() you get the class of the instance.

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MySub1 sub1 = new MySub1();
sub1.getClass(); // returns the MySub1.
sub1.getClass().getSuperclass(); // returns MySuper 

I hope this is what you need.

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i guess he wants the reverse of this...subclass from a superclass –  raddykrish May 7 '12 at 19:16

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