Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Im have a nice regular expression builder that looks like this:

string numberOfDigits = "2";
string numberOfCaps = "2";
string numberOfChars = "3";
string numberOfNonAlpha = "3";
string minLength = "10";

string rexExString = "^(?=.*\\d{" + numberOfDigits + "})(?=.*[A-Z]{" + numberOfCaps + "})(?=.*[a-z]{" + numberOfChars + "})(?=.*[!@#$%^&*()]{" + numberOfNonAlpha + "}).{" + minLength + ",}$";

output will then be:

^(?=.*\d{2})(?=.*[A-Z]{2})(?=.*[a-z]{3})(?=.*[!@#$%^&*()]{3}).{10,}$

This way I can specify how many digits, chars, nonalpha etc i want for my password. I want to keep it this way. The only problem is it also accept spaces, and i dont want that for my passwords.

My question

How to not allow spaces in my regex, but keep it in the format so i can specify the variables as in the example above.

^(?=.*\d{2})(?=.*[A-Z]{2})(?=.*[a-z]{3})(?=.*[!@#$%^&*()]{3}).{10,}$
share|improve this question
1  
Your regex forces 2 digits to occur together, similarly for the other checks - is that really what you want? Most password policies just insist on the number of characters, not where they occur. –  Damien_The_Unbeliever Oct 26 '11 at 10:00
    
You shouldn't use \d. You should use [0-9]. \d matches non-european digits msdn.microsoft.com/en-us/library/w1c0s6bb.aspx –  xanatos Oct 26 '11 at 10:02

3 Answers 3

up vote 1 down vote accepted

The problem are not the spaces in your format the problem is that you allow ALL characters with your .{10,} at the end.

Try this instead

\S{10,}

\S is not a whitespace (same as [^\s])

Btw. are you aware that you want to have 2 digits in a sequence with (?=.*\d{2}) and not two digits overall? That means Foo1bar2 would not be accepted.

What about simplifying this?

Putting all your requirements into one regular expression is a bit hard. Especially if you want to allow a configurable amount of digits to be distributed among the password and not in a sequence.

Why not split this verification process a bit.

You can as first step just check for ^\S{10,}$ to ensure that there are at least 10 non whitespace characters in the password.

Then you could count the types of characters, e.g. like this:

MatchCollection uppercase = Regex.Matches(s, @"\p{Lu}");
MatchCollection lowercase = Regex.Matches(s, @"\p{Ll}");
MatchCollection digits = Regex.Matches(s, @"\p{N}");
MatchCollection nonAlpha = Regex.Matches(s, @"[\p{N}\p{L}]");

Console.WriteLine("Upper: " + uppercase.Count);
Console.WriteLine("Lower: " + lowercase.Count);
Console.WriteLine("Digits: " + digits.Count);
Console.WriteLine("NonAlpha: " + nonAlpha.Count);

Just match one character of the class you want and then get the amount of those characters using the count() method of the MatchCollection.

I used the Unicode properties here (the \p{...}), you can change that easily to the character classes you want. Here is an overview over the Unicode properties on regular-expressions.info

You can then get the amount of each character type and compare it to the number you require of that specific type.

This would be a much more readable and maintainable function.

share|improve this answer
    
@Vincent Van Eijsden, I updated my answer. –  stema Oct 26 '11 at 10:37
    
thanks, i really copy and pasted the whole thing together, your way of dealing with it is ideal for my sitiuation, thanks. –  Vincent Van Eijsden Oct 26 '11 at 10:54

Instead of using .{10,}$ in the end you could specify that there should be atleast 10 non-space characters \S{10,}$.

\S{" + minLength + ",}$

Note the uppercase S.

share|improve this answer
Regex rx = new Regex(@"^((?<N>[0-9])|(?<CU>[A-Z])|(?<CL>[a-z])|(?<NA>[!@#$%&*()^])| )*$(?<-N>){3}(?<-CU>){1}(?<-CL>){2}(?<-NA>){4}");

This regex uses balancing groups to "accumulate" the various types of characters. It will reject characters not in (those groups plus space). So for example è would be rejected. If you want to change it, replace the | ) with |.)

At the end of the string ($) it checks if there are enough characters in all the various "stacks". Clearly where you see {3}, {1}, {2}, {4} you'll have to put your numbers.

Note that the interesting thing of this Regex is that it will work for 1!A!a!2!b3. If you want the various classes of characters to be contiguous (so 123Abc!!!!) then this Regex isn't "good".

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.