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I have the following regex in c sharp to check if supplied password is

  • more than 10 characters
  • should have at least one lowercase character
  • should have at least one Uppercase character
  • Should have either a number or a special character

Regex.IsMatch(password, "^.*(?=.{10,})(?=.*[0-9]|[@#$%^&+=])(?=.*[a-z])(?=.*[A-Z]).*$")

Why wouldn't the above work?

its taking abcdefgh123 but not abcdefgh&+

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2  
According to your rules, it shouldn't be accepting any of your examples. –  jjnguy Jan 6 '11 at 18:00
1  
It might be easier with 3 separate regex checks and a length check. But why do you want to implement restrictions like this in the first place? 10 characters is a lot. –  finnw Jan 6 '11 at 18:02
2  
Since you are testing multiple properties of the password, I would advice you to split it up into several regexen. This will also help you tell the user the reason that the password is not accepted. –  Christian Madsen Jan 6 '11 at 18:05
    
You could use the regex (tweaked slightly) from this answer... –  ircmaxell Jan 6 '11 at 18:06
    
@jjnguy WHy wouldn't it work? –  chuckyCheese Jan 6 '11 at 18:06

5 Answers 5

up vote 10 down vote accepted

Personally I'd do a separate check for the length and then one check for each of the character requirements. I don't like to use overly complicated regular expressions when things can be done in a more readable manner.

if (password.Length > 10 && 
    Regex.IsMatch(password, "[a-b]") && 
    Regex.IsMatch(password, "[A-Z]") && 
    Regex.IsMatch(password, "[0-9@#$%^&+=]"))
{
    //Valid password
}
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+1 for readability. Maintaining code with unreadable regexen is extremely expensive - especially since most programmers have a faint (if any) understanding of regular expressions. –  Christian Madsen Jan 6 '11 at 18:16
    
Should mention that although more readable, this implementation is slightly slower than a single regex statement because password will get evaluated 3 times rather than once. But depending on the situation performance may not be a consideration. –  k rey Jan 6 '11 at 18:17
    
Very simple and elegant. Thanks! Exactly what I need –  chuckyCheese Jan 6 '11 at 19:05

The problem is probably in (?=.*[0-9]|[@#$%^&+=]), which means .*[0-9] OR [@#$%^&+=] - it should be .*[0-9@#$%^&+=].

Also, you don't really need .* twice in your regex, and can use .{10,} as the main expression, so this should be the same:

^(?=.*[0-9@#$%^&+=])(?=.*[a-z])(?=.*[A-Z]).{10,}$
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I think you just need an additional paren around the "number or symbol" bit

^.*(?=.{10,})(?=.*([0-9]|[@#$%^&+=]))(?=.*[a-z])(?=.*[A-Z]).*$

http://regexr.com?2srhm

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If you want a code solution, an alternative might be:

if (password.Length >= 10 &&
    password.Any(Char.IsLower) &&
    password.Any(Char.IsUpper) &&
    password.Any(c=>Char.IsDigit(c) || Char.IsSymbol(c)))
    {

    }

Note that these functions include Unicode characters. Which is awesome for a password. If that's a problem, you may use:

if (password.Length >= 10 &&
    password.Any(c => (c >= 'a') && (c <= 'z')) &&
    password.Any(c => (c >= 'A') && (c <= 'Z')) &&
    password.Any(c => Char.IsDigit(c) || "@#$%^&+=".Contains(c)))
{

}
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This should work:
/^(?=.{10,})(?=.*[[:lower:]])(?=.*[[:upper:]])(?=.*[0-9@#$%^&+=])/

Expanded:

 /^  
   (?= .{10,} )
   (?= .*[[:lower:]] )
   (?= .*[[:upper:]] )
   (?= .*[0-9@#$%^&+=] )
  /x;

Edit - added 0-9, missed that requirement

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