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Why is System.out.println(super) not permitted?

System.out.println(this);

This is OK and this.toString() is called and printed automatically. Of course, instance variable is OK instead of this.

However, this and super can be used in same way as I know.

System.out.println(super);

So why does this fail? I think it's supposed to call super.toString() implicitly. I have read Java specification document, but I haven't found the reason.

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2  
How does it fail? Is it a compilation error? A runtime exception? or unexpected behavior? (e.g. System.out.println(super) prints the same thing as this.toString()) –  Jean Hominal Jul 22 '11 at 5:46
    
The problem is that compile error occurred from second case using 'super'. Error message is " '.' expected " and it looks like a syntax error. –  JaycePark Jul 22 '11 at 5:49
    
"It's a simple question." Note that "What is the meaning of life?" is a simple question. It is the answer that is harder. ;) –  Andrew Thompson Jul 22 '11 at 6:02
    
@Andrew I got it. I didn't recognize that, lol. The answers are interesting and useful for me. Thanks. –  JaycePark Jul 22 '11 at 6:09

4 Answers 4

up vote 3 down vote accepted

Implementing a standalone variant of super that breaks virtual method dispatch would be an extremely bad idea.

Let's think about it for a while.

abstract class Base {
    abstract String Description();
    String toString() { return "Base"; }
}
class Derived extends Base {
    String Description() { return "Derived description"; }
    String toString() { return "Derived"; }

    static void use(Base instance) {
        System.out.println(instance.toString());
        System.out.println(instance.Description());
    }
}

Now, let us take your suggestion and suppose that super is valid and does what you suggest; then we may write in Derived:

class Derived extends Base {
    // Previous declarations omitted.
    void useSuper() { Derived.use(super); }
    void useThis() { Derived.use(this); }

    static void main() {
        Derived instance = new Derived();
        instance.useThis();
        instance.useSuper();
    }
}

Now, if I understood you, you suggest that the main function should print in order:

  • the implementation of toString() from Derived: "Derived".
  • the implementation of Description() from Derived: "Derived description"
  • the implementation of toString() from Base: "Base".
  • the implementation of Description() from Base: It does not exist. And the two solutions I can think of leads to bigger problems:
    • Raise an exception: congratulations, you can now break any program which relies on abstract methods actually being implemented without even thinking about it. (How would you know that a function will call the abstract method?)
    • Return the implementation from Derived: breaks consistency.

In short, such a use of the word super conceptually breaks object-oriented programming.

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Thanks, I think your answer is very clear based on OOP. –  JaycePark Jul 22 '11 at 7:16

Check the grammar at http://java.sun.com/docs/books/jls/second_edition/html/syntax.doc.html

The super keywords must always be followed by SuperSuffix, which cannot be empty.

So super can never stand alone as an expression.

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for one second I was thinking it was possible so I was written a small program to test it :S –  Jaime Hablutzel Jul 23 '11 at 23:32

this refers to your current object. super refers to the super class, the class your current object directly inherits from (or it can be the super's constructor). So

System.out.println(this)

prints your object's toString() method, but

System.out.println(super)

fails because super is NOT an object (and thus has no toString() method).

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1  
To further clarify, super refers to a class, which does have a toString() method, but the method is not static; it cannot be invoked at the class level. It needs to be called on an object, like this. –  Steven Noto Jul 22 '11 at 5:51
    
If you think about it, even is super was an object, it would be the same object as this. –  evil otto Jul 22 '11 at 5:54

Super is relevant for calling of static methods only. If you call non-static method using super that is actually reference to your object itself, i.e. to this. For example you can say System.out.println(super.toString()). This will work and will run the toString() of actual class.

I think this is the reason that passing super as argument to other method is forbidden.

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No, calling non-static method using super will also work. toString is not a static method, and calling super.toString() will correctly call the the ancestor class's toString(). –  Raze Jul 22 '11 at 5:55
    
I said that it works. But it calls the toString() of actual class, not its super class! –  AlexR Jul 22 '11 at 5:56
3  
Pretty sure that's false. You might want to actually test this on simple classes, I did and got that it called the super class's method. –  Jodaka Jul 22 '11 at 6:03
    
That's what I did to be sure. I created class A and class B extends A. Class B has method foo() that calls super.toString() and gets toString() of B. This is called metamorphism, man, the basics of OOP. –  AlexR Jul 22 '11 at 6:14
    
Did you override the toString() of B? And I believe it is polymorphism, not metamorphism. –  Jean Hominal Jul 22 '11 at 6:21

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