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I was wonder how you would go about exiting a method early. If this was a void type, I would just do "return", however since this is an int type, it wants me to return an integer. How do I return to main without returning any integers. Thanks.

public static int binarysearch(String[] myArray, String target, int first, int last)
{
    int index;

    if  (first > last)
    {
        index = -1;
        System.out.println("That is not in the array");
        // Return to main here
    }
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There is only two ways to exit this method, either return an integer or throw an exception. –  sbk Aug 28 '13 at 22:47
    
Is this an exceptional case? That is, does your method have as part of its contract that first must be <= last? If that is the case, then you might consider throwing an exception here, probably IllegalArgumentException. –  shoover Aug 28 '13 at 22:49
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2 Answers

You can't return from a method without a return value, in the traditional sense.

You can either return -1; and declare in your documentation that -1 represents a failed search, or you can throw an exception. If you throw an exception, though, you'll need to catch it. You can read more about that in the linked article.

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1  
...unless the exception you throw is a RuntimeException –  sbk Aug 28 '13 at 22:53
    
That's true, but this is an error that can be expected at compile time, so it shouldn't be a RuntimeException. –  wjl Aug 28 '13 at 22:55
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A couple of options.... 1. break; 2. return a value that you know would not be returned from a valid result. Eg 99999999 or -34

Those would be simple choices....

Edit Of course break would only exit the loop. So youd still need to return a known value.

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2  
break; will not exit the method. It is used to exit loops. –  wjl Aug 28 '13 at 22:49
    
True. I meant it could be used to jump out and return a given known value. Admittedly not explained very well. –  Phill Healey Aug 28 '13 at 22:52
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