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Alright so I just want to confirm something.

I am creating a wrapper class for java's Properties class and I came a cross a little question.

if I have

public static void set(String key, Object value) { _p.set(key, value.toString()); }

and

public static void set(String key, SomeClass value) { _p.set(key, value.SomeMethod().toString()); }

is the Object overload called only when none of the other overloads suffice?

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2  
boolean does not derive from Object, since it is a primitive –  amit May 10 '12 at 11:00
    
I know what a primitive is. Could have just as easily been Boolean. –  Qix May 10 '12 at 11:00
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3 Answers

up vote 3 down vote accepted

Java will choose the most specific match, in your case a boolean will be automatically converted using auto-boxing boolean <-> Boolean. If you use any other type like String the Object variant will be used.

The Details you find in the Java Language Specification see 8.4.9 Overloading

Added in response to comment:

You can easily test the behaviour with some code like:

class A {
    public void print(Object o) {
        System.out.println("A.print " + o);
    }

    public static void main(String[] args) {
        B b = new B();
        A a = new A();
        b.print("test b");
        a.print("test a");
        ((A) b).print("test a or b");
    }
}

class B extends A {
    public void print(Object o) {
        System.out.println("B.print " + o);
    }
}

Prints:

B.print test b
A.print test a
B.print test a or b

I hope now it is more clear what happens.

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1  
Java will choose the most specific match. –  EJP May 10 '12 at 11:06
    
Alright, so the latest applicable derivative is used. Thanks! –  Qix May 10 '12 at 11:06
    
@EJP thanks I changed that –  stacker May 10 '12 at 11:07
    
@Di-0xide That's not what I said, and it's not correct. What I said is correct. See the JLS. You won't find waffle like 'latest applicable derivative' in there. –  EJP May 10 '12 at 11:07
    
So for example if there were two classes A and B, where B extended A, and I had a method that was overloaded with one parameter of types Object, A, and B. Which is called when I call it with an object of type A? Which is called when I call with type B? Which is called when I call it with a type C that extends A? –  Qix May 10 '12 at 13:47
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It depends on the type of the reference you pass to this method. E.g.

Objeyt myObject = Boolean.TRUE;
YourClass.set("foo", myObject);

will not invoke the method with the Boolean in its parameter list. It will choose the Object version.

See e.g. the constructor for java.util.TreeSet(Collection c) in your jdk. Similar stuff is going on there as well (it checks if the collection is actually a SortedSet, but there is a constructor for SortedSet).

Try

public class A {

    public void method(String str) {
        System.out.println("foo");
    }

    public void method(Object obj) {
        System.out.println("bar");
    }

    public static void main(String[] args) {
        A a = new A();
        Object obj = "A String";
        a.method(obj);
    }

}

This prints bar. Strange but true :)

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+1 for the type of reference. –  Qix May 10 '12 at 13:48
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This is a very dangerous pattern to use and is actually advised against explicitly in Effective Java. The problem is that the method signature resolution happens statically, at compile time, so it doesn't depend on the actual type of arguments at runtime, only their declared type.

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I figured as much. I had changed it to specific types (no Object types) before I even asked the question, but the question was still on my mind. –  Qix May 10 '12 at 13:48
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