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Alright, long story short, what I overall am attempting to do, is test the level of randomness in a series of multiple thousands of " previously generated seemingly "random" numbers.

I've already written something that will test for the probability of numbers with great success, however, the next step is identifying repeating or recurring patterns.

I'd prefer to get this part done in javascript, so as to avoid having to teach myself another language for the time being.

Now, obviously, I could just use regex and punch in some random sequences myself, but that is not ideal, and would take an infinite amount of time to get the results I'm after.

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What have you tried? –  zellio Sep 28 '11 at 4:57
    
You are trying to determine if random numbers are random? Is this even possible? –  Rusty Fausak Sep 28 '11 at 4:59
    
Would you consider 1186787119789711879791189798711 to have a repeating 11? What do you define as a "repeating pattern"? –  John Kurlak Sep 28 '11 at 5:03
    
Seems like you are asking for an advanced math algorithm you don't have. Not sure this is the place to find it, but good luck. –  Martin Jespersen Sep 28 '11 at 5:04
1  
Well in that case you are out of luck. Any problem involving infinity has a solution that involves infinity. –  Martin Jespersen Sep 28 '11 at 5:17

1 Answer 1

Ah, I missed a number of your comments above. I believe this is what you're looking for:

function findLongestMatch(StringOfNumbers) {
    var matches = StringOfNumbers.match(/(.{2,})(?=.*?\1)/g);
    if (!matches) { return null; }

    var longestMatch = matches[0];
    var longestMatchLength = longestMatch.length;
    for (matchIndex = 1; matchIndex < matches.length; matchIndex++) {
      if (matches[matchIndex].length > longestMatchLength) {
        longestMatch = matches[matchIndex];
        longestMatchLength = longestMatch.length;
      }
    }
    return longestMatch;
}

It'll be slow, but it'll get the job done.

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@GMan I've editted my response to incorporate your feedback above. I believe I've got what you're looking for now. –  Anthony DiSanti Sep 28 '11 at 6:01
    
That seems to be almost exactly what I was looking for. –  GMan Sep 28 '11 at 8:18
    
Please let me know if there's anything I can do to finish it off for you. Also, if you like the answer, I'd greatly appreciate it if you could mark it as the accepted answer. Good luck! –  Anthony DiSanti Sep 28 '11 at 10:56

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