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For the following code why does it print A, B? I would expect it to print B, B. Also, does the method call performed by the JVM is evaluated dynamically or statically?

public class Main {
    class A {

    }

    class B extends A {

    }

    public void call(A a) {
        System.out.println("I'm A");
    }

    public void call(B a) {
        System.out.println("I'm B");
    }


    public static void main(String[] args) {

        Main m = new Main();
        m.runTest();
    }

    void runTest() {
        A a = new B();
        B b = new B();

        call(a);
        call(b);
    }

}
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3 Answers 3

up vote 13 down vote accepted

Overloading is determined statically by the compiler. Overriding is done at execution time, but that isn't a factor here.

The static type of a is A, so the first method call is resolved to call(A a).

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Thank you, so what is evaluated dynamically? –  Maxim Veksler Jan 5 '10 at 14:05
    
@Maxim Veksler: Overriding - that is determined by the actual type of the target object, rather than the compile-time type. –  Jon Skeet Jan 5 '10 at 14:05
    
Thank you very much Jon. –  Maxim Veksler Jan 5 '10 at 14:12
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Since your object is known by its type A at that moment, the method with argument A is invoked. So yes, it's determined statically.

That's in order to avoid ambiguities. Your B is also an A - but both methods can't be invoked at the same time.

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B is a subclass of A. Since you instanciate a B, but assign it to a variable typed A, all B specifics will be 'lost', hence call(a) will be dispatched to call(A, a) and print 'A'.

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That's a bit misleading. The object called a still retains "all of its B specifics" - calling a.getClass().getSimpleName() for example would return "B". It's just that as Jon pointed out, the overload is determined by the type of the reference, at compile time. The compiler doesn't "know" in this context that a is actually an instance of B, so it compiles the call to the call(A a) method. But a still is an instance of B. –  Andrzej Doyle Jan 5 '10 at 14:14
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