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.

I need to validate VARCHAR field. conditions are: field must contain atleast 2 AlphaNumeric characters

so please any one give the Regular Expression for the above conditions

i wrote below Expression but it will check atleast 2 letters are alphanumeric. and if my input will have other than alphanumeric it is nt validating.

'^[a-zA-Z0-9]{2,}$'

please help.........

share|improve this question
    
So à, ü and ß are not meant to be considered alphanumeric? –  Tim Pietzcker Jan 20 '10 at 9:38

5 Answers 5

up vote 5 down vote accepted
[a-zA-Z0-9].*[a-zA-Z0-9]

The easy way: At least two alnum's anywhere in the string.


Answer to comments
I never did (nor intended to do) any benchmarking. Therefore - and given that we know nothing of OP's environment - I am not one to judge whether a non-greedy version ([a-zA-Z0-9].*?[a-zA-Z0-9]) will be more efficient. I do believe, however, that the performance impact is totally negligible :)

share|improve this answer
1  
better do .*? - this will keep the regex from backtracking, and probably faster (it will find the minimal substring instead of the maximal). –  Kobi Jan 20 '10 at 8:52
    
thank uuuuuuuuuu very much its working fineeeeeeeeeeeeeeeeeeeeee... I want to learn how to write Regular Expression... so if u hve any links r books could u forward.... Thank u –  mitsubishi montero Jan 20 '10 at 8:56
    
@Kobi Thank you. Edited my answer. @OP regular-expressions.info –  jensgram Jan 20 '10 at 8:56
    
Martin Fowler wrote, "If you make an optimization and don't measure to confirm the performance increase, all you know for certain is that you've made your code harder to read." People have begun to repeat the folk myth that .*? avoids backtracking, which is true in a sense, but it goes through the same process in the other direction, which you might call forwardtracking. –  Greg Bacon Jan 20 '10 at 14:16
    
@kobi, you clearly don't understand how an NFA regex engine works, in this case lazy will be slower for almost every possible target string. –  Paul Creasey Jan 20 '10 at 16:08

I would probably use this regular expression:

[a-zA-Z0-9][^a-zA-Z0-9]*[a-zA-Z0-9]
share|improve this answer
    
it would fail for this : ab( –  Aadith Jan 20 '10 at 9:04
1  
@Aadith: Not it definitely wouldn’t. The non-alphanumeric expression in the middle is quantified with zero or more (*). –  Gumbo Jan 20 '10 at 9:10
4  
@Aadith: Since there is no assertion about the start and the end of the string (marked with ^ and $ respectively), the match can be at any position in the string. –  Gumbo Jan 20 '10 at 9:41
1  
@Aadith: The asker already used a regular expression with ^ and $. So I supposed that he isn’t using a language that requires regular expressions to describe the whole string (like XML Schema) but allows regular expression to describe just parts of the string. –  Gumbo Jan 20 '10 at 11:46
1  
@Aadith: Matching checks whether a regex matches a string entirely (e.g. re.match() in Python); searching checks whether a regex matches a part of a string (re.search()). In some languages there is only a search command, in that case, you can force to match the entire string by surrounding the regex with ^ and $ or (better) \A and \Z. –  Tim Pietzcker Jan 20 '10 at 17:53

How broad is your definition of alphanumeric? For US ASCII, see the answers above. For a more cosmopolitan view, use one of

[[:alnum:]].*[[:alnum:]]

or

[^\W_].*[^\W_]

The latter works because \w matches a "word character," alphanumerics and underscore. Use a double-negative to exclude the underscore: "not not-a-word-character and not underscore."

share|improve this answer

As simple as

'\w.*\w'
share|improve this answer
3  
\w includes the underscore which is ... not quite alphanumeric. –  Joey Jan 20 '10 at 8:48
    
Yup. Although \w may match _ (depending on the implementation, I assume). –  jensgram Jan 20 '10 at 8:48
    
Hmm, at least I'm not the only one to see this :) –  jensgram Jan 20 '10 at 8:49

In response to a comment, here's a performance comparison for the greedy [a-zA-Z0-9].*[a-zA-Z0-9] and the non-greedy [a-zA-Z0-9].*?[a-zA-Z0-9].

The greedy version will find the first alphanumeric, match all the way to the end, and backtrack to the last alphanumeric, finding the longest possible match. For a long string, it is the slowest version. The non greedy version finds the first alphanumeric, and tries not to match the following symbols until another alphanumeric is found (that is, for every letter it matches the empty string, tries to match [a-zA-Z0-9], fails, and matches .).

Benchmarking (empirical results):
In case the alphanumeric are very far away, the greedy version is faster (even faster than Gumbo's version).
In case the alphanumerics are close to each other, the greedy version is significantly slower.

The test: http://jsbin.com/eletu/4
Compares 3 versions:

[a-zA-Z0-9].*?[a-zA-Z0-9]
[a-zA-Z0-9][^a-zA-Z0-9]*[a-zA-Z0-9]
[a-zA-Z0-9].*[a-zA-Z0-9]

Conclusion: none. As always, you should check against typical data.

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.