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I'm new to the Java world and I have some problems figuring out how Java decides which method to call when there is polymorphism. Can you help me figure out how it works with this example? I tried the code and saw the results. I am more interested in why does it work this way.

class A {
    void redef(A a) { System.out.println("[A]"); }
}

class B extends A {
    //@Override
    void redef(B b) { System.out.println("[B]"); }
}

class C extends B {
}

public class Surcharge {
    static void surcharge(A a) { System.out.println("[A]"); }
    static void surcharge(B b) { System.out.println("[B]"); }

    public static void main(String[] argv) {

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

        A ab = new B();
        C c = new C();

        ab.redef(c); //?
        surcharge(a); //?
        surcharge(b); //?
        surcharge(c); //?
        surcharge(ab); //?
    }
}
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2  
why don't you narrow your question down to the behavior here that doesn't make sense to you? as it stands this is too much like, "Here, do my homework for me". –  Nathan Hughes Mar 19 '13 at 14:59
    
Additionally, you may want to give the FAQ a read. You should always include what you've tried along with any research you've done in your question. –  Zach Latta Mar 19 '13 at 15:05

1 Answer 1

up vote 0 down vote accepted

When a method is overloaded (like all your methods here), Java uses the method which matches the most closely with the declared type of the argument.

In the first example, the object (ab) being of declared type A, the compiler only knows about the method redef(A a), so it's chosen.

Note that the method redef(B) does NOT override the method redef(A), since its signature doesn't match. You would have a compile error if you uncommented the @Override annotation.

In the second example, only sucharge(A a) matches with the declared type of the argument (A), so this one is chosen.

In the third example, surcharge(B b) matches the declared type of the argument (B) more closely, so it's chosen.

Same for the fourth example.

In the last example, only surcharge(A a) applies to the declared type of the argument (A), so it's chosen.

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