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I need a regex that tests a string for a

  • minimum of 14 characters - valid are A-Za-z0-9#,.-_
  • minimum of 6 letters within that 14
  • minimum of 2 numbers within that 14

Is there a way I can wrap this up in one regular expression (currently I have a javascript and php function that does three separate tests, one that it is 14 total, another that there is at least two numbers, and another that there is at least 6 letters.

So the following would be valid:

  • blabla2bla2f54a (valid >14 total, with at least 6 letters, at least 2 numbers)
  • thisIsNotValidAtAll (invalid because less than 2 numbers)
share|improve this question
1  
Is this possible in Javascript? My gut is thinking that this is possible in Perl. Look ahead syntax for regular expression perhaps??? –  Yzmir Ramirez Apr 3 '11 at 2:42
1  
Keep your working solution. Compacting this into one regex is hardly doable without expliciting the required content as permutations. Assertions in PCRE fall flat because they must be fixed length. –  mario Apr 3 '11 at 2:42
    
Hmmmm, interesting. I'm reasonably comfortable with regular expressions but I just thought I was missing something - that there was a solution that I simply wasn't seeing. Looks like there mightn't be, or not a viable one –  Chris Apr 3 '11 at 2:45
    
This is easily done in a single JavaScript regex. See my answer below... –  ridgerunner Apr 3 '11 at 3:43
    
possible duplicate of PHP regular expression: string must contain to types of characters –  ircmaxell Apr 14 '12 at 15:51

4 Answers 4

up vote 12 down vote accepted

Easy! First lets look at a commented version in PHP:

$re = '/# Match 14+ char password with min 2 digits and 6 letters.
    ^                       # Anchor to start of string.
    (?=(?:.*?[A-Za-z]){6})  # minimum of 6 letters.
    (?=(?:.*?[0-9]){2})     # minimum of 2 numbers.
    [A-Za-z0-9#,.\-_]{14,}  # Match minimum of 14 characters.
    $                       # Anchor to end of string.
    /x';

Here is the JavaScript version:

var re = /^(?=(?:.*?[A-Za-z]){6})(?=(?:.*?[0-9]){2})[A-Za-z0-9#,.\-_]{14,}$/;

Addendum 20121130:

I noticed that this answer recently got an upvote. This uses a more outdated expression so I figured it was time to update it with a better one...

a more efficient expression:

By getting rid of the dot-star altogether and greedily applying a more precise expression, (a negated char class), an even more efficient solution results:

$re = '/# Match 14+ char password with min 2 digits and 6 letters.
    ^                              # Anchor to start of string.
    (?=(?:[^A-Za-z]*[A-Za-z]){6})  # minimum of 6 letters.
    (?=(?:[^0-9]*[0-9]){2})        # minimum of 2 numbers.
    [A-Za-z0-9#,.\-_]{14,}         # Match minimum of 14 characters.
    $                              # Anchor to end of string.
    /x';

Here is the new JavaScript version:

var re = /^(?=(?:[^A-Za-z]*[A-Za-z]){6})(?=(?:[^0-9]*[0-9]){2})[A-Za-z0-9#,.\-_]{14,}$/;

Edit: Added #,.-_ to list of valid chars.
Edit: Changed the greedy to lazy star.
Edit 20121130: Added alternate version with the lazy-dot-star replaced with a more efficient greedy application of a more precise expression.

share|improve this answer
    
@ridgerunner I like it, and I pretty much understand it. I;m going to have to do a bit more reading on positive look ahead's I think. One question though, why is a minimum of 2/6 done as {2}/{6}, not {2,}/{6,}? –  Chris Apr 3 '11 at 3:52
2  
@Cris: Since each requirement is only a minimum, once the minimum number is matched, there is no need to match any more (so why bother - just extra unnecessary work). –  ridgerunner Apr 3 '11 at 3:58
    
@ridgerunner - just one more question, to include #,.-_ as per the question, I would just need to include them in the final clause [A-Za-z0-9#,\.-_]{14,0}, correct? –  Chris Apr 3 '11 at 3:59
    
@ridgerunner, is it possible to match #,.-_ 0 or more times :)? –  webarto Apr 3 '11 at 4:01
1  
@ridgerunner I see you removed the lazy star, you should probably put it back in as it saves a lot of backtracking and speeds things up quite a bit. Here is a testcase showing the difference: jsperf.com/regexquestionmarktest –  david Apr 3 '11 at 5:17

I would recommend multiple checks, writing a single regex for this would be ugly. Multiple checks also allows you to know what criteria wasn't met.

$input = 'blabla2bla2f54a';
$errors=array();
if (!preg_match('/^[A-Za-z0-9#,.\-_]*$/', $input))
    $errors[] = 'Invalid characters';
if (strlen($input) < 14)
    $errors[] = 'Not long enough';
if (strlen(preg_replace('/[^0-9]/','',$input)) < 2)
    $errors[] = 'Not enough numbers';
if (strlen(preg_replace('/[^A-Za-z]/','',$input)) < 6)
    $errors[] = 'Not enough letters';

if (count($errors) > 0) //Didn't work
{
    echo implode($errors,'<BR/>');
}
share|improve this answer
echo preg_match("/(?=.*[#,.-_])((?=.*\d{2,})(?=.*[a-zA-Z]{6,}).{14,})/", $string);

Output:

blabla2bla2f54a (1)
thisIsNotValidAtAll (0)
share|improve this answer
    
Should those be {2,}, {6,}, and {14,} since its "or more"? This is using the If-Then-Else syntax, right? regular-expressions.info/conditional.html –  Yzmir Ramirez Apr 3 '11 at 2:47
    
My bad. Thanks. –  webarto Apr 3 '11 at 2:47
    
@webarto seems very close, but doesn't work for aaa2aaaaaaaaaaaaa2aaa but does work for aaa2aaaaaaaaaaaaa22aaa. It seems the positive look ahead requires that there is 2 in sequence? –  Chris Apr 3 '11 at 2:52
    
Give me a minute, I'll figure it out :) –  webarto Apr 3 '11 at 2:57
    
@Chris, yes it looks in sequence, I can't get it work non sequential if it's possible at all. –  webarto Apr 3 '11 at 3:47

No, that's not possible, because in fact you want to do three individual checks. You can't wrap them up in one expression that returns true or false. The problem is, that you have two equal checks that you would need to combine via an AND-operator, whicht is not possible. But what we can do is building a super-size RegExp that recognizes every possible case. But hat kind of RegExp is senseless, because it would take a long time to apply this test on your string. I would recommend you doing three separated tests:

var result = string.replace(/[A-Za-z]{6}/, "").replace(/[0-9]{2}/, "").replace(/[A-Za-z0-9#,\.\-]{6}/, "").length == 0 ? true : false; // By shortening our sting we're saving time on later chained replacement methods
share|improve this answer
    
Oh sorry, totally forgot about the use of (?=...). It's possible. webarto is right. –  silvinci Apr 3 '11 at 3:17

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