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I'm hoping that someone can steer me in the right direction. I can't seem to find a proper solution to this issue anywhere.

I have an abstract class called Student. Three external classes extend Student. These are called Graduate, Undergraduate, and PartTime. In my main method, I would like to construct an object as either Graduate, Undergraduate, or PartTime based on some logic. For example:

if (something) { Graduate student = new Graduate(); }
else if (something { Undergraduate student = new Undergraduate(); }

If I try this, the compiler (I'm using Netbeans) complains that object student has already been defined. If I try this:

Student student;
if (something) { student = new Graduate(); }

student is unable to access any of the methods specific to Graduate.

Would anything change if I were to make the three extended classes inner static classes of Student?

Hopefully the issue is clear. Any suggestions about how I could solve this problem? Any suggestions are appreciated!

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2 Answers 2

You can do this:

Student student;
if (something) {
  Graduate graduate = new Graduate();
  graduate.visitMissisRobinson( );

  student = graduate;
}
else if (somethingElse) {
  Undergraduate undegradStudent = new Undergraduate();

  undegradStudent.declareMajor( );

  student = undegradStudent;
}

// now only do common methods of student
student.chargeTuition( );
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+1: this is what I was in the process of writing... :) –  Mac Jul 25 '12 at 22:59
    
You could also use explicit casts, but this is definitely cleaner. –  David Titarenco Jul 25 '12 at 22:59
    
I didn't think of using an intermediate. Thanks. –  user1550058 Jul 25 '12 at 23:30
    
This doesn't work: if (something) { Graduate graduate = new Graduate(); student = graduate; } As soon as I try to call a method specific to Graduate, the compiler asks me if it should create the method under Student. Any idea why this would be? –  user1550058 Jul 25 '12 at 23:43

If you want some more in depth reading regarding the subject look for some factory pattern :

Factory pattern

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