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Which constructor is chosen when passing null?

I recently came across this curiosity while coding a few days back and can't seem to figure out why the following happens:

Given the class below

public class RandomObject{
    public RandomObject(Object o){
        System.out.println(1);
    }
    public RandomObject(String[] s){ 
        System.out.println(2);
    }
}

When the call new RandomObject(null); is made the output is always 2 regardless of the order in which the constructors were created. Why does null refer to the string array rather than the object?

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marked as duplicate by guido, Brian Roach, Sameer, Aleksander Blomskøld, Bohemian Jan 25 '13 at 9:13

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
@guido the other question involves 2 non-Objects here the case with Object is a different one –  Karthik T Jan 25 '13 at 5:00

2 Answers 2

up vote 14 down vote accepted

The key here is that Object is the super type of String[]

Java uses the most specific available method to resolve such cases. Null can be passed to both methods without compilation errors so Java has to find the most specific method here. The version with String[] is more specific - therefore it will be chosen for execution.

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Someone else has had this question earlier, check this post

If there are two cases to choose from, the compiler will first try to pick the more specific case. In this case, String will be picked over Object.

In the other question it was String str instead of String[] s

Thus, since String[] is a more specific datatype than its super type Object, it is picked.

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the difference between here and there, is not String[] instead of String, but Object instead of AnObject –  guido Jan 25 '13 at 5:06
1  
@guido This post and my comment to you talks about 2 different links. Please read the link in the first line of this post –  Karthik T Jan 25 '13 at 5:07

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