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How to determine if a number is a prime with regex?

This page claims that this regular expression discovers non-prime numbers (and by counter-example: primes):

/^1?$|^(11+?)\1+$/

How does this find primes?

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marked as duplicate by kennytm, Pavel Shved, SilentGhost, dmckee, Roger Pate Jul 22 '10 at 22:57

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.

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This is not a dup. It's a different regexp and a different technique, and has better answers, to boot. –  bmargulies Jul 22 '10 at 22:03
    
@bmargulies: This is a dupe. The regex is the same, given the input restrictions on this question and that Java's String.matches method matches the regex against the entire string (so ^ and $ are implied), which it apparently does. –  Roger Pate Jul 22 '10 at 22:57
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@Rog - the upvoted answers over there never mention unary. –  bmargulies Jul 22 '10 at 23:33
    
@bmargulies: If you believe you can provide a better or more complete answer to that question, please, do so. I'd flag this question for merging, but the superficial differences in question text mean the answers need some editing (as is often the case), even though the questions are identical once you remove those superficial differences. –  Roger Pate Jul 23 '10 at 4:43
    
@Rog at this point I'll just trust the diamonds to merge cleverly. –  bmargulies Jul 23 '10 at 11:08

2 Answers 2

up vote 41 down vote accepted

I rather think the article explains it rather well, but I'll try my hand at it, as well.

Input is in unary form. 1 is 1, 2 is 11, 3 is 111, etc. Zero is an empty string.

The first part of the regex matches 0 and 1 as non-prime. The second is where the magic kicks in.

(11+?) starts by finding divisors. It starts by being defined as 11, or 2. \1 is a variable referring to that previously captured match, so \1+ determines if the number is divisible by that divisor. (111111 starts by assigning the variable to 11, and then determines that the remaining 1111 is 11 repeated, so 6 is divisible by 2.)

If the number is not divisible by two, the regex engine increments the divisor. (11+?) becomes 111, and we try again. If at any point the regex matches, the number has a divisor that yields no remainder, and so the number cannot be prime.

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13  
This is bloody brilliant. –  JSBձոգչ Jul 21 '10 at 3:28

Took me a minute to realize this is intended for numbers in base-1 (unary?)

Several people in this ycombinator discussion explain this quite well. Actually those explanations are more succinct than I think I can get, so I'll leave it to the link.

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