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I'm trying to understand what's wrong with this regex pattern:

'/^[a-z0-9-_\.]*[a-z0-9]+[a-z0-9-_\.]*{4,20}$/i'

What I'm trying to do is to validate the username. Allowed chars are alphanumeric, dash, underscore, and dot. The restriction I'm trying to implement is to have at least one alphanumeric character so the user will not be allowed to have a nickname like this one: _-_.

The function I'm using right now is:

function validate($pattern, $string){
    return (bool) preg_match($pattern, $string);
}

Thanks.

EDIT

As @mario said, yes,t here is a problem with *{4,20}. What I tried to do now is to add ( ) but this isn't working as excepted:

'/^([a-z0-9-_\.]*[a-z0-9]+[a-z0-9-_\.]*){4,20}$/i'

Now it matches 'aa--aa' but it doesn't match 'aa--' and '--aa'. Any other suggestions?

EDIT

Maybe someone wants to deny not nice looking usernames like "_..-a". This regex will deny to have consecutive non alphanumeric chars:

/^(?=.{4,20}$)[a-z0-9]{0,1}([a-z0-9._-][a-z0-9]+)*[a-z0-9.-_]{0,1}$/i

In this case _-this-is-me-_ will not match, but _this-is-me_ will match.

Have a nice day and thanks to all :)

share|improve this question
    
did you try debugging with something like regexpal.com ? –  Doug T. Apr 10 '11 at 1:58
    
Thanks for suggestion. I'll give it a try –  s3v3n Apr 10 '11 at 1:59
2  
Some people might consider it a cop-out, for but for things like this (that are easy to express without regular expressions) I personally prefer to stay awake from regex. Why not just loop through the characters, checking that they are all valid characters and at least one is alphanumeric? –  Brandon Bohrer Apr 10 '11 at 2:03
    
could be that you are using lowercase a-z and always writing you usernames starting with uppercase? could you post some example data? –  FRoZeN Apr 10 '11 at 2:04
1  
@mightyuhu is correct, its saying "from 0 to unlimited times" and "from 4 to 20 times" which is illigal syntax –  FRoZeN Apr 10 '11 at 2:24

6 Answers 6

up vote 5 down vote accepted

Don't try to cram it all into one regex. Make your life simpler and use a two step-approach:

return (bool)
 preg_match('/^[a-z0-9_.-]{4,20}$/', $s) && preg_match('/\w/', $s);

The mistake in your regex probably was the mixup of * and {n,m}. You can have only one of those quantifiers, not *{4,20} both after another.


Very well, here is the cumbersome solution to what you want:

 preg_match('/^(?=.{4})(?!.{21})[\w.-]*[a-z][\w-.]*$/i', $s)

The assertions assert the length, and the second part ensures that at least one letter is present.

share|improve this answer
    
See my comment on Johnsyweb's answer to see why I can't (and dont want) to split it into 2 checks. And yes, now I clearly see that the problem is the mix of * and {4,20}. See edit. –  s3v3n Apr 10 '11 at 2:22
    
@s3v3n: This is a great demonstration of the points that I make in my answer -- the two regular expressions are clear and easy to understand. @mario doesn't take advantage of the opportunity to provide tailored feedback to the user depending on which check fails, but you can! –  Johnsyweb Apr 10 '11 at 2:23
1  
@s3v3n: See update for the complex workaround. I'd still say this is not what you should be doing though. –  mario Apr 10 '11 at 2:32
    
Yes, that definetly works! I added 0-9, because as I said it can contain at least one number alphanumeric, so one number is enough. –  s3v3n Apr 10 '11 at 2:35
2  
@s3v3n: Interesting. I didn't know you can do that. PCRE is elsewhise rigidly against variable-length assertions. But beware that [\w] also matches the underscore in contrast to [a-z0-9]. –  mario Apr 10 '11 at 3:24

Try this one instead:

'/[a-z0-9-_\.]*[a-z0-9]{1,20}[a-z0-9-_\.]*$/i'
share|improve this answer
    
I said not to start a letter or a digit, what actually does your regex, but contain at least one letter or digit, that's why i put [a-z0-9]+ in the midle. –  s3v3n Apr 10 '11 at 2:06
    
ah now i'm getting your problem. see edit –  mightyuhu Apr 10 '11 at 2:12
    
Yes, this would do the trick, the only remaining problem would be to check the lenght of the username. –  s3v3n Apr 10 '11 at 2:16
    
Since when is strlen out of the question? –  Cyclone Apr 10 '11 at 2:19
    
Since I'm using a class with patterns. –  s3v3n Apr 10 '11 at 2:23

It is clear to me that you should split this into two checks!

Firstly check that they are using all valid characters. If they're not, then you can tell them that they are using invalid characters.

Then check that they have at least one alpha-numeric character. If they're not, then you can tell them that they must.

Two distinct advantages here: more meaningful feedback to the user and cleaner code to read and maintain.

share|improve this answer
    
This will add complexity. Yes, that's not the end of the world, but this isn't really suck a complex regex to split it. And as I said before, I have a class Validator that will contain patterns, and I really don't want to complicate the things and implement 2 step validations there. –  s3v3n Apr 10 '11 at 2:13
1  
@s3v3n: I respectfully disagree. This will remove complexity. You've already complicated things here as proven by the facts that your regular expression doesn't do what you want it to and you are "trying to understand what's wrong". –  Johnsyweb Apr 10 '11 at 2:18
1  
I agree with Johnsyweb. What if you want to validate a file input next? its hard to find regexes for upload errors, 0-byte files etc. you are restricting yourself too much by that architecture. it might works now but what if you want to go deeper? –  mightyuhu Apr 10 '11 at 2:42

Its probably just a matter if finetuning, you could try something like this:

if (preg_match('/^[a-zA-Z0-9]+[_.-]{0,1}[a-zA-Z0-9]+$/m', $subject)) {
    # Successful match
} else {
    # Match attempt failed
}

Matches:

  • a_b <- you might not want this.
  • ysername
  • Username
  • 1254_2367
  • fg3123as

Non-Matches:

  • l__asfg
  • AHA_ar3f!
  • sAD_ASF_#"#T_
  • "#%"&#"E
  • __-.asd
  • username
  • 1___

Non-matches you might want to be matches:

  • 1_5_2
  • this_is_my_name
share|improve this answer
    
Actually I am saying that it should match from the begining of string. Putting the ^ inside the square brackets will have the effect of negation. –  s3v3n Apr 10 '11 at 2:02
    
Also, as I said I'm trying to match not only alphanumeric, but also some more chars. The problem is to deny absence of at least one alphanumeric character. –  s3v3n Apr 10 '11 at 2:05
    
yeah my bad i notice i wasnt clear enough in my answer, and edited it. –  FRoZeN Apr 10 '11 at 2:20
    
Actually after seeing this I liked the ideea to deny having more -, . or - together :) –  s3v3n Apr 10 '11 at 3:21
    
the last ideea will work with this: /^(?=.{4,20}$)[a-z0-9]{0,1}([a-z0-9._-][a-z0-9]+)*[a-z0-9.-_]{0,1}$/i. ( \w matches unwanted - ) –  s3v3n Apr 10 '11 at 3:36

Here is a simple, single regex solution (verbose):

$re = '/ # Match password having at least one alphanum.
    ^                   # Anchor to start of string.
    (?=.*?[A-Za-z0-9])  # At least one alphanum.
    [\w\-.]{4,20}       # Match from 4 to 20 valid chars.
    \z                  # Anchor to end of string.
    /x';

In Action (short form):

function validate($string){
    $re = '/^(?=.*?[A-Za-z0-9])[\w\-.]{4,20}\z/';
    return (bool) preg_match($re, $string);
}
share|improve this answer

Try this:

^[a-zA-Z][-\w.]{0,22}([a-zA-Z\d]|(?<![-.])_)$

From related question: Create one RegEx to validate a username.

share|improve this answer
    
As a first step this checks if the username starts with a letter, that's not exactly what I'm trying to do. –  s3v3n Apr 10 '11 at 2:07

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