4

I currently have a method that is supposed to take two strings and then check if one string exists as a substring in other. It doesn't check both ways so the way in which I pass my strings to the method determines what string is looked for in the other.

Currently I am getting a stackoverflow error.

public boolean checkMatch(String text, String regex, int i){

    int regexL = regex.length();

        if(i == regexL){
            return true;
        }   

        System.out.println(text.charAt(i) + " " + regex.charAt(i));

        if(text.charAt(i) == regex.charAt(i)){
            return checkMatch(text, regex, i++);
        }
        else if(text.charAt(i) != regex.charAt(i)){

            if(text.substring(1) == ""){
                return false;
            }               
            else if(text.substring(1) != ""){
                return checkMatch(text.substring(1), regex, 0);
            }
        }
        return false;

}

I am running a test using my first name as an example.

@Test public void test_52() {
    assertEquals(true, checkMatch("Samual", "mu", 0));
}

the console looks like this after it overflows.

S m

a m

m m

m m

m m

etc

Where am I going wrong? Am I iterating wrong? The stack trace shows that it seems to be getting caught on this line.

return checkMatch(text, regex, i++);

But the defect point is rarely the point of failure. Sorry for the wall of text and code.

2
  • So what values are being passed? I mean, the actual values - what are they? Why does this prevent state from being advanced? Commented Mar 11, 2014 at 6:32
  • You can also replace the body of checkMatch with this single line code return text.indexOf(regex)==i;
    – makata
    Commented Mar 11, 2014 at 6:51

3 Answers 3

9

I don't know if the rest is correct, but here is one error: i++increments i after it was evaluated. You call your function with the same value every time. You probably mean ++i.

4
  • I think he may even want i+1. Commented Mar 11, 2014 at 6:32
  • 1
    It's the same in this setting, but I agree it might avoid this kind of bug.
    – Drunix
    Commented Mar 11, 2014 at 6:34
  • Wow, that just worked, my test passed instantly after I made that small fix. I'm curious as to how I never have run into this error before? Thank you so much.
    – SHolmes
    Commented Mar 11, 2014 at 6:34
  • @SHolmes Don't forget to accept this answer if you found it solved your problem. :)
    – Jason C
    Commented Mar 11, 2014 at 6:47
3

You have:

return checkMatch(text, regex, i++);

You mean:

return checkMatch(text, regex, ++i);

Or:

return checkMatch(text, regex, i + 1);

The problem with i++ there is post-increment evaluates to i before the increment, so you're just getting stuck without advancing i, and eventually the recursion overflows the stack.

Had you printed i in your debugging output, the problem may have been clearer.

0

You can just use the indexOf method:

 System.out.println("Samual".indexOf("mu") > 0);

Output:

true
1
  • This is surely the right way to do it in production code, but it appeared to me that the OP was doing this for educational purposes.
    – Drunix
    Commented Mar 11, 2014 at 7:26

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