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I just noticed that overriding methods does behave different than overriding fields. Considering the following snippet:

public class Bar {
  int v =1;

  public void printAll(){
    System.out.println(v);
    printV();
  }

  public void printV(){
    System.out.println("v is " + v);
  }
}

public class Foo extends Bar {
  int v = 4;

  public static void main(String[] args) {
    Foo foo = new Foo();
    foo.printAll();
 }

 public void printV() {
   System.out.println("The value v is  " + v);
 }
}

It result in the output:
1
The value v is 4

So it seems that the method printV in bar is overridden by foo.printV while the field v is not overwritten in bar. Does anyone know a reason for this difference?

Thanks.

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there is no such thing as field overriding in java. the output is correct. –  Ravi Bhatt Aug 15 '12 at 14:23

2 Answers 2

up vote 8 down vote accepted

I just noticed that overriding methods does behave different than overriding fields.

There's no such thing as "overriding fields". You can shadow fields, but you can't override them. Fields aren't polymorphic. See section 6.4.1 of the Java Language Specification for more details.

Note that in general, fields should almost always be private anyway, which means you wouldn't be aware of this in the first place.

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2  
+1 fields of the same name can be different types in sub-classes, methods can only return more restrictive types in sub-classes. –  Peter Lawrey Aug 15 '12 at 14:23

When you are calling foo.printAll(); It is calling the function of the base class which is printing the value 1. Then you are calling printV.This time since the inherited class has a function of the same name, it is overridden and printV of Foo is called.

The value of v depends on from which class you are printing the value.

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