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I know the behavior, but I am not 100% sure on why this occurs.
I understand that there is no polymorphism for instance variables in java. The variables are resolved statically by the compiler.
But in the following I am confused on something:

class Animal{  
   String name = "Animal";  
   public void display(){  
    System.out.println("My name is "+ name);  
   }  
}  

public class Dog extends Animal {   
   String name = "Dog";   

   public static void main(String[] args) {  
        Animal a = new Dog();  
        Dog d = new Dog();  
        System.out.println(a.name);//Line 1  
        a.display();//Line 2   
        d.display();//Line 3  
   }  
}  

I undertand that in Line 1 it will display Animal as it is the static type of a (resolved by compiler).
What confuses me is why Line 3 will also display My name is Animal?
The method will be tried to be called on Dog since this is the actual object at runtime and since it is not overidden the method will be found in the parent class Animal.
What I don't get is why the name of the parent class is used inside the method display if the actual object operated on is a Dog. Doesn't it hide the parent's name variable? It does not seem to me like it is statically resolved since the type is Dog. Isn't it part of the oject's memory layout?
It is like inside display only the parent's variable is visible. Why?

Update:

The answers by @Razvan and @LouisWasserman have been helpful.
I have 1 last question after these:
The point from both seems to be the following:
From @Razyan
System.out.println("My name is "+ this.name); //<-- note the this
From @Louis
That the this refers to Animal and that the implementation of display() is in the Animal class.

So far ok. But how are these points consistent with the fact that if I modify display() as follows:

class Animal{  
   String name = "Animal";  
   public void display(){  
    System.out.println("Current class is "+ this.getClass().getName());  
    System.out.println("My name is "+ name);  
   }  
}  

Then the result of:

 Dog d = new Dog();  
 d.display();  

Current class is Dog
My name is animal

I was expecting that this inside the display would be Animal as I understood the answers here. But it is not. Why?

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2  
But the method display is called in the scope of the parent class Animal, and in this scope, the name has been assigned "Animal". There is no hiding there, hiding would come around if you overrided the method display in the subclass Dog. –  Alexandre Dupriez Aug 20 '12 at 21:59
    
So the actual Dog's object memory layout has both variables?I though the "hiding" made only 1 available –  Cratylus Aug 20 '12 at 22:01
    
I do not know what you mean by memory layout, but yes, a Dog object has basically two name attributes: this.name and super.name. –  Alexandre Dupriez Aug 20 '12 at 22:02
    
The Animal.name field is still the only one visible from the Animal class itself. The Dog.name field is the one used by the Dog method implementations. –  Louis Wasserman Aug 20 '12 at 22:03
    
You might want to look at this related question –  Don Roby Aug 20 '12 at 22:05

2 Answers 2

up vote 8 down vote accepted

When you invoke d.display() the Animal.display() is called, since you don't override it in the Dog class.

So an imaginary implementation of Dog.display() would be something like:

 public void display(){  
    super.display();
 }

And the implementation of Animal.display() is:

 public void display(){  
    System.out.println("My name is "+ this.name); //<-- note the this
 } 

The Animal.display() method is not even aware of the existence of an object Dog and consequently of its name variable

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So when you hide the parent variable, both are kept as part of the object and visible to the corresponding scope/methods? –  Cratylus Aug 20 '12 at 22:05
    
@Cratylus, there is storage for both fields for the object instance -- one for Animal.name, and one for Dog.name. –  oldrinb Aug 20 '12 at 22:08
    
@veer:So the each field is visible to specific scope only? –  Cratylus Aug 20 '12 at 22:09
    
@Cratylus: Animal.name is visible from both scopes, since it's public; however, since Animal has no clue there is a subclass named Dog with a name field, the name symbol is resolved as a reference to the local Animal.name field. In Dog, similarly, name will resolve to Dog.name; that being said, you can also access Animal.name using super.name :-) –  oldrinb Aug 20 '12 at 22:11
    
@veer:Animal has no clue there is a subclass named Dog with a name field. But the compiler resolves this.And the current static type is actually a Dog.I am not sure I follow how this mechanism works –  Cratylus Aug 20 '12 at 22:13

This might be a more useful way of thinking about it: the fact that the variables have the same name doesn't matter in the slightest. This code will behave exactly the same as

class Animal{  
   String foo = "Animal";  
   public void display(){  
    System.out.println("My name is "+ foo);  
   }  
}  

public class Dog extends Animal {   
   String bar = "Dog";   

   public static void main(String[] args) {  
        Animal a = new Dog();  
        Dog d = new Dog();  
        System.out.println(a.foo);//Line 1  
        a.display();//Line 2   
        d.display();//Line 3  
   }
}

The point is, the field name in the Dog class is treated as completely, utterly separate from the field name in Animal, in terms of which is seen by which methods. When you refer to a.name directly, it only knows that a is an Animal, so it uses the name field from the Animal class.

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But the static type in this case d.display is Dog.So the compiler knows it is a Dog and knows it has a name.The actual operation is not overriden, but I can not follow the mechanism here as to why there is a scope. d has been resolved to a Dog.The display is inherited but operated on a Dog.So I can't follow the mechanism here.Why is there a scope?Hasn't the variable been resolved by the static type? –  Cratylus Aug 20 '12 at 22:17
    
Yes, d is known to be a Dog, but the implementation of display() is in the Animal class, which doesn't know anything about the name field in the Dog class -- it only knows about the name field in the Animal class. The code I've written above is exactly equivalent to the code you wrote; can you see why it works that way there? –  Louis Wasserman Aug 20 '12 at 22:44
    
+1, and this is a good way of looking at it. If you have a reference of type Animal, its fields will resolve non-polymorphically to a field on Animal. If a subtype of Animal has a field that happens to have the same name, it doesn't factor in at all. –  yshavit Aug 20 '12 at 23:54
    
@LouisWasserman:Could you please see update in OP? –  Cratylus Aug 21 '12 at 10:56

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