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^.*(?=.{15,})(?=.*\\d)(?=.*[a-z])(?=.*[A-Z])(?=.*[!@#$%^&*+=]).*$

This is the regex I am currently using which will evaluate on 1 of each: upper,lower,digit, and specials of my choosing. The question I have is how do I make it check for 2 of each of these? Also I ask because it is seemingly difficult to write a test case for this as I do not know if it is only evaluating the first set of criteria that it needs. This is for a password, however the requirement is that it needs to be in regex form based on the package we are utilizing.

EDIT

Well as it stands in my haste to validate the expression I forgot to validate my string length. Thanks to Ken and Gumbo on helping me with this.

This is the code I am executing:

I do apologize as regex is not my area.

The password I am using is the following string "$$QiouWER1245", the behavior I am experiencing at the moment is that it randomly chooses to pass or fail. Any thoughts on this?

Pattern pattern = Pattern.compile(regEx);
Matcher match = pattern.matcher(password);  
while(match.find()){
    System.out.println(match.group()); 
}

From what I see if it evaluates to true it will throw the value in password back to me else it is an empty string.

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4 Answers

up vote 2 down vote accepted

Try this:

"^(?=(?:\\D*\\d){2})(?=(?:[^a-z]*[a-z]){2})(?=(?:[^A-Z]*[A-Z]){2})(?=(?:[^!@#$%^&*+=]*[!@#$%^&*+=]){2}).{15,}$"

Here non-capturing groups (?:…) are used to group the conditions and repeat them. I’ve also used the complements of each character class for optimization instead of the universal ..

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Thanks Gumbo, however this does fail based on the small amount of evaluation code I have. It could be that my evaluation is wrong. –  Woot4Moo Mar 1 '10 at 16:39
    
I saw that you edited your post Gumbo, and as such I have tried out that latest change. As it stands the string is looking for 4 instead of 2 uppers,lowers,digits,and specials –  Woot4Moo Mar 1 '10 at 17:00
    
This is the proper solution thanks Gumbo! –  Woot4Moo Mar 1 '10 at 17:07
    
@Woot4Moo: I’ve just added quotes. ;-) –  Gumbo Mar 1 '10 at 17:14
    
apologies on missing it the first time then, it has been quite the day... –  Woot4Moo Mar 1 '10 at 17:18
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Personally, I think a password policy that forces use of all three character classes is not very helpful. You can get the same degree of randomness by letting people make longer passwords. Users will tend to get frustrated and write passwords down if they have to abide by too many password rules (which make the passwords too difficult to remember). I recommend counting bits of entropy and making sure they're greater than 60 (usually requires a 10-14 character password). Entropy per character would depend roughly on the number of characters, the range of character sets they use, and maybe how often they switch between character sets (I would guess that passwords like HEYthere are more predictable than heYThEre).

Another note: do you plan not to count the symbols to the right of the keyboard (period, comma, angle brackets, etc.)?

If you still have to find groups of two characters, why not just repeat each pattern? For example, make (?=.\d) into (?=.\d.*\d).

For your test cases, if you are worried that it would only check the first criteria, then write a test case that makes sure each of the following passwords fails (because one and only one of the criteria is not met in each case): Just for fun I reversed the order of expectation of each character set, though it probably won't make a difference unless someone removes/forgets the ?= at some future date.

!@#TESTwithoutnumbers
TESTwithoutsymbols123
&*(testwithoutuppercase456
+_^TESTWITHOUTLOWERCASE3498

I should point out that technically none of these passwords should be acceptable because they use dictionary words, which have about 2 bits of entropy per character instead of something more like 6. However, I realize that it's difficult to write a (maintainable and efficient) regular expression to check for dictionary words.

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As a software tester, I have to take requirements back to someone and explain why they're insufficient or wrong. Do you have any ability to present an alternate solution or alternate requirements? –  Kimball Robinson Mar 1 '10 at 17:14
    
No I do not have that ability, nor do i foresee anyone on the team having that ability in the near future for a myriad of reasons. –  Woot4Moo Mar 1 '10 at 17:19
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If I understand your question correctly, you want at least 15 characters, and to require at least 2 uppercase characters, at least 2 lowercase characters, at least 2 digits, and at least 2 special characters. In that case you could it like this:

^.*(?=.{15,})(?=.*\d.*\d)(?=.*[a-z].*[a-z])(?=.*[A-Z].*[A-Z])(?=.*[!@#$%^&*+=].*[!@#$%^&*+=]).*$

BTW, your original regex had an extra backslash before the \d

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That requirement is correct, the extra backslash is for escaping it in my test string in Java land. –  Woot4Moo Mar 1 '10 at 16:46
    
@Woot4Moo: Doesn’t the second backslash come from a string declaration like "…\\d…"? –  Gumbo Mar 1 '10 at 16:49
    
@gumbo yes it does. –  Woot4Moo Mar 1 '10 at 16:51
    
@Ken I edited my post to show the password I am using, is there any chance you could help me write a test case to prove it works? It seems to be fairly random as to whether it works or not. –  Woot4Moo Mar 1 '10 at 16:53
1  
@Ken Oh my sweet jeebus I can't believe I just did that to myself. –  Woot4Moo Mar 1 '10 at 17:04
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I'm not sure that one big regex is the right way to go here. It already looks far too complicated and will be very difficult to change in the future.

My suggestion is to structure the code in the following way:

  • check that the string has 2 lower case characters
    • return failure if not found or continue
  • check that the string has 2 upper case characters
    • return failure if not found or continue
  • etc.

This will also allow you to pass out a return code or errors string specifying why the password was not accepted and the code will be much simpler.

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That would be the ideal, however I have to use a regex based on the package we are using. –  Woot4Moo Mar 1 '10 at 16:47
    
What package are you using and why do you need to use it? –  a'r Mar 1 '10 at 16:59
    
I'm writing installers that use regex validation on complex strings. InstallBuilder –  Woot4Moo Mar 1 '10 at 17:10
    
Is it the BitRock InstallBuilder? If so, then can you not just specify multiple validation rules, eg. /[A-Z].*[A-Z]/, /[a-z].*[a-z]/ and /[0-9].*[0-9]/, etc. etc. –  a'r Mar 1 '10 at 17:29
    
They have a regular expression validator, thanks for the opinion though. –  Woot4Moo Mar 1 '10 at 19:37
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