Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have the following code:

class A {
}

class B extends A {
    public void fB(){};
}

According to Java rule:

Case 1:

B b = new B();
A a = b;
((B)a).fB();

Case 2:

A a = new A();
B b = a;

According to Java rule, Case 1 is ok and Case 2 is not ok. Why Case 2 is not ok? And what this line ((B)a).fB(); actually does (I mean what happens inside)?

share|improve this question
4  
The question is wrong: objects of a subclass type can be and are implicitly cast to superclass type. It's the other way around that doesn't work. –  biziclop Mar 19 '12 at 13:18
    
You must think the other way around: The system cannot know whether A supports a features of B - A is just a subset of the features provided by B. –  home Mar 19 '12 at 13:24
    
Fixed the title for him. –  EJP Mar 19 '12 at 23:58

4 Answers 4

Why case 1 is OK and case 2 is not OK: Because a Dog is an Animal, but not every Animal is a Dog.

class Animal { }
class Dog extends Animal { }
class Cat extends Animal { }

Dog fifi = new Dog();
Cat tommy = new Cat();

// OK because Dogs and Cats are Animals
Animal pet1 = fifi;
Animal pet2 = tommy;

// Not OK because an Animal is not always a Dog
Dog doggy = pet2;

Note that casting does nothing to the object; in particular, it doesn't do any kind conversion of objects. Casting is only telling the compiler "I have this object here, and I know better than you what it is; I want you to treat it as type X and not give me any error messages".

So in a line like this:

Dog doggy = pet2;

the compiler will complain because it cannot be sure that pet2 is actually a Dog; it only knows that it is an Animal - and not all Animals are Dogs. You can do a cast to tell the compiler to not complain about this:

// Tell the compiler that you want it to treat pet2 as a Dog
Dog doggy = (Dog)pet2;

But when you run the program, Java will still check if pet2 is really a Dog, and if it isn't, you get a ClassCastException.

(And the question in your title is exactly the opposite of what you mean, as biziclop noticed).

share|improve this answer
    
Ok, that's clear. Just one more thing I want to ask: what is the purpose of doing thing such as: Animal pet1 = fifi;? –  ipkiss Mar 19 '12 at 14:21
    
If you have some operation you can perform with any Animal, then that can also be done with fifi. –  Louis Wasserman Mar 19 '12 at 18:53

Ok, think about 2 people: Doctor and Engineer. Doctor can treat, engineer can build. Both are persons.

Now here is your example.

Person p = new Person(); // somebody that does not know to do anything special.
Doctor d = (Doctor)p; // do you think that casting makes person that does not know anything to be a doctor?

Do you want to be treated by person that was "cast" to be a doctor you do you prefer the real Doctor?

I believe that the answer is clear. Each doctor is a person (case 1) but not each person is a doctor because not each person can treat. Exactly the same is relevant for class hierarchy too. Subclass inherits its super class' properties and probably adds its own. Therefore not any instance of superclass can be cast to subclass.

share|improve this answer

Case 1 is ok because with the (B)a part you are explicitly telling the compiler:

even if you only know that a is of type A I am telling you that it is of type B

so the object a is treated as if it were of type B

Case 2 is not ok because the compiler can't safely assign to b to a. It would be accepted if you wrote

A a = new A();
B b = (B)a;

but it would throw an Exception at runtime

share|improve this answer

Suppose case 2 is also working, then your compiler sees "b" as a object of class "B". Now you can say "b.fb()". But actually "b" is an object of "A"(Remember you assigned an object of class "A" to "b"). there is no function fb() in class "A". your application crashes!!

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.