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Is there any regex (!) which can test if a string contains 3 digits ( never-mind the order) ?

(at least 3 digits. also I be happy to see the exact 3 solution.( if you're kind ))

example :

abk2d5k6 //3 digits
abk25k6d //same here //3 digits

my fail tries :

.+?(?=\d){3}

Thanks.

(only regex solutions please , for learning purpose.).

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2  
There is. What have you tried? –  Jan Dvorak Nov 25 '12 at 9:16
1  
Also, at most three, at least three or exactly three? –  Jan Dvorak Nov 25 '12 at 9:16
    
@JanDvorak Ive tried a lot. (believe me). I tried with positive look ahead but got stuck with \d+ ( the plus thing. - cause the plus wants it to be sequential). for your second question , lets say at least 3. ( sorry for not clarify it). –  Royi Namir Nov 25 '12 at 9:19
    
@RoyiNamir: If you've tried things, show what you've tried, why you thought that was the way to go, and the results you were getting that weren't what you expected. –  T.J. Crowder Nov 25 '12 at 9:24
    
@T.J.Crowder Edited. –  Royi Namir Nov 25 '12 at 9:28
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3 Answers

up vote 11 down vote accepted

Well, for the learning purpose, I suggest to read through this very comprehensive tutorial.

Otherwise, the JavaScript regex would probably look something like this:

if you want to make sure that there are at least three digits:

/^(?:\D*\d){3}/

Or if you want to make sure that there are exactly three digits:

/^(?:\D*\d){3}\D*$/

\D is any non-digit character. * allows 0 or more of those. \d is any digit character. {3} repeats the subpattern 3 times. And ^ and $ mark the start and end of the string, respectively.

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No need to use non-capturing ;-) –  Jan Dvorak Nov 25 '12 at 9:17
6  
@JanDvorak there is never a need to use non-capturing. It's always just an optimization. And I guess it's better practice to only use capturing when there is need for it, instead of the other way round. –  m.buettner Nov 25 '12 at 9:18
1  
Funny we still call them "regular" expressions, isn't it? –  Kos Nov 25 '12 at 9:20
    
@Kos what do you mean? Sure there are non-regular constructs in pretty much every regex engine, but how does this apply to this answer? –  m.buettner Nov 25 '12 at 9:21
1  
@JanDvorak or balancing groups or recursion ;) –  m.buettner Nov 25 '12 at 9:21
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You could also do something like this:

str.match(/\d/g).length >= 3

This is dead simple, and very clearly shows the intent without a complicated regex.

This isn't tuned for speed though.

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1  
Although the question states that it's asking specifically for a regex for learning purposes, I really like the simplicity of this one. +1! –  m.buettner Nov 25 '12 at 9:29
    
It still uses a regex though, but only technically. I provided it only for an alternate use of regex to solve the same problem. –  tjameson Nov 25 '12 at 9:30
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Given your comment that you want "at least" three digits, I don't think it needs to be any more complicated than:

/\d.*\d.*\d/

...which is a digit, then zero or more of anything, then another digit, then zero or more of anything, then another digit. As I haven't anchored either end, there's an implicit "zero or more of anything" at both ends.

console.log(!!"abk2d5k6".match(/\d.*\d.*\d/));  // true
console.log(!!"abk25k6d".match(/\d.*\d.*\d/));  // true
console.log(!!"abkd5k6".match(/\d.*\d.*\d/));   // false (I removed a digit)
console.log(!!"abk2k6d".match(/\d.*\d.*\d/));   // false (I removed a digit)

or

/(\d.*){3}/

console.log(!!"abk2d5k6".match(/(\d.*){3}/));  // true
console.log(!!"abk25k6d".match(/(\d.*){3}/));  // true
console.log(!!"abkd5k6".match(/(\d.*){3}/));   // false (I removed a digit)
console.log(!!"abk2k6d".match(/(\d.*){3}/));   // false (I removed a digit)

or at m.buettner points out in the comments below, rather than . you can use \D (not a digit):

/\d\D*\d\D*\d/

or

/(\d\D*){3}/

display(!!"abk2d5k6".match(/\d\D*\d\D*\d/));  // true
display(!!"abk25k6d".match(/\d\D*\d\D*\d/));  // true
display(!!"abkd5k6".match(/\d\D*\d\D*\d/));   // false (I removed a digit)
display(!!"abk2k6d".match(/\d\D*\d\D*\d/));   // false (I removed a digit)

display(!!"abk2d5k6".match(/(\d\D*){3}/));  // true
display(!!"abk25k6d".match(/(\d\D*){3}/));  // true
display(!!"abkd5k6".match(/(\d\D*){3}/));   // false (I removed a digit)
display(!!"abk2k6d".match(/(\d\D*){3}/));   // false (I removed a digit)

Basically, no need for anchors if it's an "at least" match.

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