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Im using NetBeans IDE (If that matters, although it does the same thing in Eclipse) and when I run this program:

public class wordscramble {

    public static void main(String[] args) {

        String[][] words =  new String [5][];

        String[] MILK = words[0] = new String[] {"M","I","L","K"};
        String[] CLOTH = words[1] = new String[] {"C","L","O","T","H"};
        String[] GARLIC = words[3] = new String[] {"G","A","R","L","I","C"};
        String[] SLEEP = words[4] = new String[] {"S","L","E","E","P"};


        System.out.println(words[0]);

    }
}

I get this error in the console:

[Ljava.lang.String;@38e609c9

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marked as duplicate by Ziyao Wei, artbristol, Lion, Paul Bellora, jlordo Jun 6 '13 at 19:24

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.

3  
This is not an error. I've answered this several times already, but I won't do it again even for ~60 rep. – Ziyao Wei Jun 6 '13 at 19:21
3  
And here's it (shameless promotion): Array returning memory allocation instead of value in Java – Ziyao Wei Jun 6 '13 at 19:22
    
What you see the output is actually a String representation of an object. If you want to display the elements held by an array, either iterate through the array using a loop or use Arrays.asList(arrayObj) or Arrays.toString(arrayObj). – Lion Jun 6 '13 at 19:27
    
Sorry Everyone I didn't know what to search for. Didn't mean to post a duplicate. – Col1107 Jun 6 '13 at 19:29
up vote 1 down vote accepted

This is not an error, this is the result of your array toString method.

Instead use Arrays.toString(array) or Arrays.deepToString(array) for arrays within arrays.

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This is expected behavior. It is printing memory location information about your reference variable. In order to print your String array follow this: Simplest way to print an array in Java

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All arrays are Object's and the default toString() method of the Object is as follows:

public String toString() {
return getClass().getName() + "@" + Integer.toHexString(hashCode());
}

System.out.println() will print any object by calling toString() implicitly.

This is no error.

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