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EDIT

Thanks for the advice to make my question more clear :)

The Match is looking for 3 consecutive characters: Regex Match = *AaA*653219 Regex Match = AA*555*6219

The code is Asp.Net 4.0. Here is the whole function:

public ValidationResult ApplyValidationRules()
            {
                ValidationResult result = new ValidationResult();
                Regex regEx = new Regex(@"^(?=.*\d)(?=.*[a-zA-Z]).{8,20}$");

                bool valid = regEx.IsMatch(_Password);
                if (!valid)
                    result.Errors.Add("Passwords must be 8-20 characters in length, contain at least one alpha character and one numeric character");
                return result;

            }



_______________________________________

I've tried for over 3 hours to make this work, referencing the below with no luck =/

How can I find repeated characters with a regex in Java?

.net Regex for more than 2 consecutive letters

I have started with this for 8-20 characters a-Z 0-9 :

^(?=.*\d)(?=.*[a-zA-Z]).{8,20}$
As Regex regEx = new Regex(@"^(?=.*\d)(?=.*[a-zA-Z]).{8,20}$");

I've tried adding variations of the below with no luck:

/(.)\1{9,}/
.*([0-9A-Za-z])\\1+.*
((\\w)\\2+)+". 

Any help would be much appreciated!

share|improve this question
2  
Post a sample input and the expected matches. –  Blender May 23 '13 at 15:14
3  
What is the language? VB.NET? –  nhahtdh May 23 '13 at 15:14
    
Does this have to be a single regular expression? It sounds like you just need to check for strings that match [a-zA-Z0-9]{8,20} and also do not match .*(.)\1\1.* –  Ian Roberts May 23 '13 at 15:19

1 Answer 1

up vote 4 down vote accepted

http://regexr.com?34vo9

The regular expression:

^(?=.{8,20}$)(([a-z0-9])\2?(?!\2))+$

The first lookahead ((?=.{8,20}$)) checks the length of your string. The second portion does your double character and validity checking by:

(
  ([a-z0-9])      Matching a character and storing it in a back reference.
  \2?             Optionally match one more EXACT COPY of that character.
  (?!\2)          Make sure the upcoming character is NOT the same character.
)+                Do this ad nauseum.
$                 End of string.

Okay. I see you've added some additional requirements. My basic forumla still works, but we have to give you more of a step by step approach. SO:

^...$

Your whole regular expression will be dropped into start and end characters, for obvious reasons.

(?=.{n,m}$)

Length checking. Put this at the beginning of your regular expression with n as your minimum length and m as your maximum length.

(?=(?:[^REQ]*[REQ]){n,m})

Required characters. Place this at the beginning of your regular expression with REQ as your required character to require N to M of your character. YOu may drop the (?: ..){n,m} to require just one of that character.

(?:([VALID])\1?(?!\1))+

The rest of your expression. Replace VALID with your valid Characters. So, your Password Regex is:

^(?=.{8,20}$)(?=[^A-Za-z]*[A-Za-z])(?=[^0-9]*[0-9])(?:([\w\d*?!:;])\1?(?!\1))+$

'Splained:

^
  (?=.{8,20}$)                 8 to 20 characters
  (?=[^A-Za-z]*[A-Za-z])       At least one Alpha
  (?=[^0-9]*[0-9])             At least one Numeric
  (?:([\w\d*?!:;])\1?(?!\1))+  Valid Characters, not repeated thrice.
$

http://regexr.com?34vol Here's the new one in action.

share|improve this answer
    
Thanks Frankie :) –  TacRedline May 23 '13 at 15:37
    
@TacRedline You're Welcome. I've added instructions for a bake your own validator RegEx that should allow you to do all your extra stuff. This stuff gets pretty unreadable pretty fast though - you may want to compile it in parts for better self documentation, or provide a lot of Comments. Feel free to mark this answer as "accepted" if it answered your question. –  FrankieTheKneeMan May 23 '13 at 15:48

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