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If I write this line in Java:

JOptionPane.showInputDialog(null, "Write something");

Which method will be called?

  • showInputDialog(Component parent, Object message)
  • showInputDialog(Object message, Object initialSelectionValue)

I can test it. But in other cases similar to this, I want to know what happens.

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1  
That's actually a good question, even if it is contrived (you'd never want to call the first, as it's identical to JOptionPane.showInputDialog("Write something"); –  Powerlord Oct 9 '09 at 19:00

3 Answers 3

up vote 42 down vote accepted

The most specific method will be called - in this case

showInputDialog(Component parent, Object message)

This generally comes under the "Determine Method Signature" step of overload resolution in the spec (15.12.2), and in particular "Choosing the Most Specific Method".

Without getting into the details (which you can read just as well in the spec as here), the introduction gives a good summary:

If more than one member method is both accessible and applicable to a method invocation, it is necessary to choose one to provide the descriptor for the run-time method dispatch. The Java programming language uses the rule that the most specific method is chosen.

The informal intuition is that one method is more specific than another if any invocation handled by the first method could be passed on to the other one without a compile-time type error.

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3  
What about calling f(null) when the methods f(Integer i) and f(String s) are defined? Neither seems more specific than the other. –  Stephan202 Oct 9 '09 at 19:05
    
+1 - I was wrong. –  ChssPly76 Oct 9 '09 at 19:09
    
@Stephan202: In Eclipse, I get The method f(Integer) is ambiguous for the type ExampleClass This was with static methods –  Powerlord Oct 9 '09 at 19:14
    
@R. Bemrose: judging by Bill's answer, this will also hold true for non-static methods. Thanks for testing! –  Stephan202 Oct 9 '09 at 19:15

In your particular case the more specific method will be called. In general, though, there are some cases where the method signature can be ambiguous. Consider the following:

public class Main {

    public static void main(String[] args) {
        Main m = new Main();
        m.testNullArgument(null);
    }

    private void testNullArgument( Object o )
    {
        System.out.println("An Object was passed...");
    }

    private void testNullArgument( Integer i )
    {
        System.out.println("An Integer was passed...");
    }

    private void testNullArgument( String s )
    {
        System.out.println("A String was passed...");
    }
}

In this case, the compiler can't decide between the method that takes an Integer and the method that takes a String. When I try to compile that, I get

reference to testNullArgument is ambiguous, both method testNullArgument(java.lang.Integer) in testnullargument.Main and method testNullArgument(java.lang.String) in testnullargument.Main match
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2  
+1, this answers the question I posed under Jon's post. –  Stephan202 Oct 9 '09 at 19:12
2  
That makes sense. Integer and String are both "equal" in terms of specificity while Object is the parent of both, so it's more vague. Now, if you removed the String method, the Integer one would be called. –  Thomas Owens Oct 9 '09 at 19:14
1  
@Thomas: That's correct. It looks like it doesn't matter how far down different branches of the inheritance tree the two ambiguous classes are either, since String directly extends Object, while Integer extends Number. –  Bill the Lizard Oct 9 '09 at 20:10

Neither. You'll get a compiler error asking you to clarify what method you want to call. You can do so by explicitly casting the first argument:

showInputDialog((Object) null, "Write something");

or

showInputDialog((Component) null, "Write something");

Update I should have known - never doubt Jon Skeet. The problem I've referred to above only occurs when it's impossible to determine which method is more specific. Here's a test case:

public class Test {

  public void doSomething(String arg1, Object arg2) {
    System.out.println("String, Object");
  }

  public void doSomething(Object arg1, String arg2) {
    System.out.println("Object, String");
  }

  public static void main(String[] args) {
    Test test = new Test();
    test.doSomething(null, null);
  }
}

The above will give a compiler error.

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1  
Tested and there is no compiler error. –  JCasso Oct 9 '09 at 19:05
    
@jcasso - I see a compiler error on the "doSomething" line, saying "The method doSomething(String, Object) is ambiguous for the type " –  CPerkins Oct 9 '09 at 19:15
1  
@CPerkins - yes, jcasso's comment refers to my original (incorrect) response where I said that showInputDialog() would throw a compiler error whereas it would not. –  ChssPly76 Oct 9 '09 at 19:16

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