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I have two classes:

public class ClassA {
    public void method(Number n) {
        System.out.println("ClassA: " + n + " " + n.getClass());
    }
}

and:

public class ClassB extends ClassA {            
    public void method(Integer d) {
        System.out.println("ClassB: " + d + " " + d.getClass());
    }
}

But when I run:

ClassA a = new ClassB(); 
a.method(3);

I get:

ClassA: 3 class java.lang.Integer

My question is, why isn't ClassB's method being used? a is an instance of ClassB, and ClassB's method() has an Integer parameter...

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9 Answers 9

up vote 21 down vote accepted

My question is, why isn't ClassB's method being used?

Not true. The method used is ClassB's method, which it inherited from ClassA.


I think the main reason behind the confusion here is the fact that the method actually is not overridden, instead it is overloaded. Although Integer is a subtype of Number, since method parameter is invariant in Java, the method public void method(Integer d) doesn't override the method public void method(Number n). So, ClassB ends up having two (overloaded) methods.

Static binding is used for overloaded methods, and the method with most specific parameter type is chosen by the compiler. But in this case, why does the compiler pick public void method(Number n) instead of public void method(Integer d). That's because of the fact that the reference that you are using to invoke the method is of type ClassA.

ClassA a = new ClassB(); //instance is of ClassB (runtime info)
a.method(3);             //but the reference of type ClassA (compiletime info)

The only method that ClassA has is public void method(Number n), so that's what the compiler picks up. Remember, here the expected argument type is Number, but the actual argument, the integer 3, passed is auto-boxed to the type Integer. And the reason that it works is because the method argument is covariant in Java.

Now, I think it's clear why it prints

ClassA: 3 class java.lang.Integer

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I feel like this might be the reason, could you expand a little on your last paragraph? –  Fede Rico Oct 11 '12 at 4:47
    
@FedeRico: I updated it, hope it helps you understand what's going on. –  Bhesh Gurung Oct 11 '12 at 4:54
    
I think that this answer (so far) has been the clearest as to what is going on. The key here is that the binding for a method invocation is resolved during compilation and is dependent upon the declared type of the variable. The declared type is ClassA and therefore the method ClassB#method(Integer) is unavailable for selection. See docs.oracle.com/javase/specs/jls/se7/html/… - under the bullet point "In all other cases, the qualified name has the form FieldName . Identifier." –  lifelongcoug Oct 11 '12 at 5:06
    
@BheshGurung Perfect. I was confused as I had only seen examples where both methods had the exact same signature, so then the sub-method would override the super-method and get called instead (even with a ClassB instance in a ClassA variable). Thank you and everyone else for your help! –  Fede Rico Oct 11 '12 at 5:10
    
How do you reconcile your mutually contradictory statements that he is 'not overloading the method' but also has 'actually overloaded the method'? –  EJP Oct 11 '12 at 9:49

Your issue stems from the fact that (as quoted from the official Java tutorials on Inheritance):

In a subclass, you can overload the methods inherited from the superclass. Such overloaded methods neither hide nor override the superclass methods—they are new methods, unique to the subclass.`

Refer to the official Java tutorials for more details: http://docs.oracle.com/javase/tutorial/java/IandI/override.html

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Yes, I read this article before posting this, I still cant't understand why B's method isn't being used, as it has an Integer parameter which is more suited for the value being used, 3. –  Fede Rico Oct 11 '12 at 4:12
    
Agreed. But, consider that in your case the Number and Integer method arguments are considered to be two completely different signatures - meaning that ClassB (the inherited class) has those methods available to it when called. Or as @rbhawsar said, number 3 is automatically boxed to Integer in his reply –  jrd1 Oct 11 '12 at 4:30
    
I understand this, at the moment method() is called, the variable "a", of class ClassB, has two methods "available" for use, one receiving an Integer, and another one inherited from ClassA that receives a Number. What I don't (unfortunately) understand is why, having the Integer-cast-"3", ClassB's method(Integer d) isn't being used (even if the other one is also available). –  Fede Rico Oct 11 '12 at 4:36
    
@FedeRico: Overload resolution is done at compile time, not at run-time! Since, at compile time, the type of a is ClassA, there is only one method "available" for use. –  Heinzi Oct 11 '12 at 5:10

a is of type ClassA so the methods in ClassB will not be visible to instance a unless it is declared as ClassB

ClassB a = new ClassB(); 

will produce your expected output. Number is the supertype of Integer. So whatever you pass in will be autoboxed to appropriate subtype and the method in ClassA will be called. Try passing

a.method(3.0f) // Float
a.method(3.0) // Double
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because number 3 is automatically boxed to Integer.

please see the link below: http://www.javabeat.net/articles/print.php?article_id=31

General Rule: Arguments are implicitly widened to match method parameters. It's not legal to widen from one wrapper class to another.

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Yes, but the method using an Integer argument is in ClassB, that's why I don't understand why ClassA method is being used. –  Fede Rico Oct 11 '12 at 4:17
1  
ClassB has both the methods. as per inheritance. and since you have created the object of B method of B is called. because its decided at runtime which method will be called. –  rbhawsar Oct 11 '12 at 4:18
    
So "3" is automatically boxed to Integer, which is then sent to the method taking Number as a parameter, instead of Integer? Why would this happen? –  Fede Rico Oct 11 '12 at 4:24
    
The reason is all the wrapper classes like BigDecimal, BigInteger, Byte, Double, Float,Integer, Long, Short extend Number class and its not valid to say Integer IS-A Long. –  rbhawsar Oct 11 '12 at 4:29

Because Number and Integer in the arguments creates two different method signatures. So, class B just has two different methods that are available to use.

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Since the two operations have different argument (parameter) types (Even though they are subclasses) they are considered different (Unlike C) you did not override the first method with the second one. Instead you ended up with class B which now has two methods

 public void method(Number n)  and
 public void method(Integer n)

by default when you did a.method(3) 3 was casted to an Integer object. You can verify this by calling

a.method((Number)3);      //this would call the second method/operation.

You can also verify this by using reflection to iterate on class B's methods.

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  class ClassA
  {
     public void method( Number n )
     {
        System.out.println( "ClassA: " + n + " " + n.getClass() );
     }// void method( Number n )

  }// class ClassA

  public class ClassB
     extends
        ClassA
  {
     public void method( Integer d )
     {
        System.out.println( "ClassB: " + d + " " + d.getClass() );
     }// void method( Integer d )

     public static void main( String[] args )
     {
        ClassB b = new ClassB(); 
        ClassA a = b; 
        a.method( new Integer( 3 )); // 1. ClassA: 3 class java.lang.Integer
        b.method( new Integer( 4 )); // 2. ClassB: 4 class java.lang.Integer
        b.method( new Float( 5.6 )); // 3. ClassA: 5.6 class java.lang.Float
     }// void main( String[] args )

  }// class ClassB
  1. Since the two methods are NOT overloaded and the instance is of class a, no dispatch occurs from A to B
  2. B has a best match method, then it's chosen
  3. B can't handle a parameter of type Float, so A method is chosen
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Is there a reason both methods are not being overloaded? (they have different signatures) –  Fede Rico Oct 11 '12 at 4:40
    
Yes, because they have different signatures. A signature is the name of the function plus the types of the parameters (the type of returned value is ignored). –  Aubin Oct 11 '12 at 5:05

To clear I added, show() method in both classA and classB.

public void show() {
        System.out.println(getClass());
    }

I call like this,

    // Case 1       
    ClassA a = new ClassB();
    a.method(3);// ClassA: 3 class java.lang.Integer
    a.show(); // class ClassB

    // Case 2       
    ClassB b = new ClassB();
    b.method(3);// ClassB: 3 class java.lang.Integer
    b.show(); // class ClassB

Here method(Number n) and method(Integer d) have different signatures. It is not overriding. It is overloading.

But show() method is method overriding.

In case 1, Only methods of class A are accessible with object a. a is type classA, methods in classB are not visible. That's why your classA method is called. But for show() method as it is overridden method, class B's show() method is called.

In case 2, Both methods of class A and B are accessible with object b as ClassB extends ClassA.

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You had the following code

Class A a = new ClassB(); 
a.method(3);

But imagine you have a method where "a" and "3" are passed to you as a parameter and you still execute the same code

public void foo(A a, Number n)
{
    a.method(n);
}

The compiler does not know whether you are going to pass Class A or Class B (or Number or Integer). It must still resolve the method so it can do type checking for the return value from a.method

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