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I have a RegEx to check the finite repetition of alphabets as well as for numbers in two separate RegEx, but I am trying to combine to one RegEx but it is always returning true.

// Alphabetes testing:
/([a-z])\1{4,}/.test("sd0") => false
/([a-z])\1{4,}/.test("adsssssd0") => true
// Numeric testing:
/([0-9])\1{3,}/.test("sd00000ds") => true
/([0-9])\1{3,}/.test("sd00s00ds") => false
/(([a-z])\1{4,})|(([0-9])\1{3,})/.test("sd0sds0sds") => true // always true

Thanks.

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Why not simply /([a-z]{3,})|([0-9]{3,})/? Not sure why you need back references. –  dfsq Feb 21 '13 at 7:25
    
Perhaps it is because of my english, but I don't understand what you're trying to do :( –  Oscar Mederos Feb 21 '13 at 7:27
    
I do want return true only if a same char is repetitive more than 3 times. –  underscore Feb 21 '13 at 7:27
    
hmm.. what about ([a-z0-9])\1{3,}? –  Oscar Mederos Feb 21 '13 at 7:28
    
This is fine. but I want variable length of repetition. Alphas can be > 3. and numbers can be > 5 –  underscore Feb 21 '13 at 8:02

4 Answers 4

up vote 2 down vote accepted

Just use

([a-z0-9])\1{3,}

See it here on Regexr

The problem of your expression is the numbering of the capturing groups. They are numbered in the order of the opening brackets

(([a-z])\1{3,})|(([0-9])\1{3,})
12              34

So, with your back reference you are always refereing to (([a-z])\1{3,}). I am not sure what should happen, if you refer to a group inside the group itself (recursive). It looks like it matches every single character (Regexr)

Update:

If there are different length requirements, then you need to use an alternation, but you need to refer to different groups in your alternatives!

(?:([a-z])\1{4,}|([0-9])\2{3,})

(?: is a non capturing group ==> it does not count in the backreferences

See it here on Regexr

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So, I should use two RegEx and no other option for my scenario. –  underscore Feb 21 '13 at 8:06
    
We could not see in your question, that there are different length requirements for letters and digits! –  stema Feb 21 '13 at 8:10
    
Oops! my mistake @stema –  underscore Feb 21 '13 at 8:12
1  
Yes, JavaScript's handling of backreferences is truly bizarre. It's thoroughly discussed in this blog post. –  Alan Moore Feb 21 '13 at 8:14
    
@codelover, I updated my answer. –  stema Feb 21 '13 at 8:17

What about the following regex?

([a-z0-9])\1{3,}

If what you need is match whenever 3 or more digits/letters are consecutively repeated, that will work.

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You're checking for EITHER alphabetic OR numeric character sets. sd0sds0sds returns true because of the sds in the middle and at the end.

If you want the string to match BOTH conditions - there should be a three-character letter set and a three-character number set, I don't think this can be done using a single regular expression.

If you want the string to allow a three-character set of either letters or numbers, then the other answers are appropriate (without the backreference):

[a-z0-9]{3}
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Your last regex has a mistake:

(([a-z])\1{4,})|(([0-9])\1{3,})

Twice you use the \1 reference, but \1 refers to the first block in parenthesis which actually is

([a-z])\1{4,})|(([0-9])\1{3,}

Your regex actually works when you correct the reference numbering

(([a-z])\2{4,})|(([0-9])\4{3,})

See it in action: http://regexr.com?33rnk

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