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I have a problem in matching password using following regex.

^[A-Za-z\d[\!\@\#\$\%\^\&\*\(\)\_\+]{1,}]{6,}$

In above expression I want user to enter at least one special anywhere with remaining characters should be alphanumeric. The password length can't be less than six.

But the above expression is allowing user to enter not any special character. Could anyone please tell me how can I restrict the user to enter at least one special character?

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2  
Just out of curiosity, why would anyone not allow more than one special character in a password? –  Juhana May 16 '13 at 6:26
1  
Putting in arbitrary restrictions that force someone to use a password that is less strong than they would like is rarely a good idea. –  Damien_The_Unbeliever May 16 '13 at 6:35
    
Sorry, the exact requirement is to have at least one special character anywhere. I have edited my post. –  Stardust May 16 '13 at 6:50
    
Whilst it may be possible in a single regex, I'd recommend making the length check and the special character checks separate. Otherwise, I think you end up with a massive ((special character followed by at least 5 other characters)|(1 alpha, a special character, followed by at least 4 other characters)|(2 alpha, a special character, followed by at least 3 other characters)... –  Damien_The_Unbeliever May 16 '13 at 7:05

2 Answers 2

up vote 6 down vote accepted

How about:

^(?=[\w!@#$%^&*()+]{6,})(?:.*[!@#$%^&*()+]+.*)$

explanation:

The regular expression:

(?-imsx:^(?=[\w!@#0^&*()+]{6,})(?:.*[!@#0^&*()+]+.*)$)

matches as follows:

NODE                     EXPLANATION
----------------------------------------------------------------------
(?-imsx:                 group, but do not capture (case-sensitive)
                         (with ^ and $ matching normally) (with . not
                         matching \n) (matching whitespace and #
                         normally):
----------------------------------------------------------------------
  ^                        the beginning of the string
----------------------------------------------------------------------
  (?=                      look ahead to see if there is:
----------------------------------------------------------------------
    [\w!@#0^&*()+]{6,}       any character of: word characters (a-z,
                             A-Z, 0-9, _), '!', '@', '#', '0', '^',
                             '&', '*', '(', ')', '+' (at least 6
                             times (matching the most amount
                             possible))
----------------------------------------------------------------------
  )                        end of look-ahead
----------------------------------------------------------------------
  (?:                      group, but do not capture:
----------------------------------------------------------------------
    .*                       any character except \n (0 or more times
                             (matching the most amount possible))
----------------------------------------------------------------------
    [!@#0^&*()+]+            any character of: '!', '@', '#', '0',
                             '^', '&', '*', '(', ')', '+' (1 or more
                             times (matching the most amount
                             possible))
----------------------------------------------------------------------
    .*                       any character except \n (0 or more times
                             (matching the most amount possible))
----------------------------------------------------------------------
  )                        end of grouping
----------------------------------------------------------------------
  $                        before an optional \n, and the end of the
                           string
----------------------------------------------------------------------
)                        end of grouping
----------------------------------------------------------------------
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Thanks for your help. –  Stardust May 16 '13 at 9:58
    
@Stardust : You're welcome. –  M42 May 16 '13 at 9:59

Instead of complicating your regex, how about iterating over the chars and counting the special ones

count = 0
for char in string:
    if isspecial(char):
        count = count+1

if count > 1:
    reject()
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