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^[a-zA-Z0-9]*[a-zA-Z0-9 _][a-zA-Z0-9]{2,24}$

That's what I have right now.

I want to require an alphanumeric first; allow for alphanumerics, underscores, hyphens, periods, and spaces; require that it end with an alphanumeric. But I only want to allow as many as 3 of those special characters.

I'm primarily confused about how to limit the number of the special characters.

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give some example valid and invalid data –  Paul Sullivan Feb 1 '13 at 15:05
    
If you're allowing as many as 3 special characters, do they have to be in a row, or 3 total? So is something like A-B-A valid? –  CorrugatedAir Feb 1 '13 at 15:19
    
3 total. They can be consecutive or spread out. They just can't start or end the string. –  David Feb 1 '13 at 15:21

3 Answers 3

up vote 2 down vote accepted

You can also use this regex:

/^(?!(?:[a-z\d]*[_. -]){4})[a-z\d][\w. -]{0,22}[a-z\d]$/i

The look-ahead (?!(?:[a-z\d]*[_. -]){4}) is to check that there are less than 4 appearances of invalid characters. If there are 4 or more, then the pattern inside the negative look-ahead would match, and make the look-ahead fail.

Since the string must start and end with alphanumeric, and the length is at least 2, it is possible to specify [a-z\d] as start and end of the string. The rest of the character in between can contain any of [a-zA-Z0-9_. -] repeated 0 to 22 times, since 2 characters are already use for the starting ending alphanumeric.

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Hmm, I've never seen a look-ahead inside a negative look-ahead. That's pretty slick. What's the difference between ?: and ?= ? –  iamnotmaynard Feb 1 '13 at 15:40
    
So close. As far as I can tell the only problem with your solution is that HTML5's regex checker is case-sensitive and does not respond to the /i flag. So it's necessary to drop it and manually specify uppercase letters as valid. This means that the pattern should be ^(?!(?:[a-zA-Z\d]*[_. -]){4})[a-zA-Z\d][\w. -]{2,22}[a-zA-Z\d]$ Thanks, nhahtdh. –  David Feb 1 '13 at 16:03
    
@iamnotmaynard: That's not look-ahead inside negative look-ahead. It's just simply a negative look-ahead (?!pattern), with a non-capturing group (?:pattern) repeating 4 times. –  nhahtdh Feb 1 '13 at 16:29
    
For some reason I wasn't familiar with that. Thanks for teaching me something. –  iamnotmaynard Feb 1 '13 at 17:02

Okay, this should be the last edit: Didn't think about the total character limit. Added look-ahead (assuming your flavor of regex supports it).

There may be a better way than this, but it's not coming to me (maybe using lookaheads). Here's what I can think of:

^(?=^.{2,24}$)[a-zA-Z0-9]+([a-zA-Z0-9]*[_\-. ]){0,3}[a-zA-Z0-9]+$

It's not too pretty but it should work.

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Can be simplified to ^[a-zA-Z0-9]+(([a-zA-Z0-9]*[_\-. ]){0,3}[a-zA-Z0-9]+)?$, and the length check can be done separately. –  nhahtdh Feb 1 '13 at 15:22
    
True, if needed (or preferred for style or just to keep the regex from getting to messy). –  iamnotmaynard Feb 1 '13 at 15:23
^[a-zA-Z0-9]+[ _.-]?[a-zA-Z0-9]*[ _.-]?[a-zA-Z0-9]*[ _.-]?[a-zA-Z0-9]+$

There's probably a better way to do this, but I think you could just have the invalid characters be optional, appearing at most three times, with the other valid characters showing up 0 or more times in between them

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