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 have the following types of strings.

BILL SMITH (USA)
WINTHROP (FR)
LORD AT WAR (GB)
KIM SMITH

With these strings, I have the following constraints: 1. all caps 2. can be 2 to 18 charters long 3. should not have any white spaces or carriage returns at the end 4. the country abbreviation inside the parens should be excluded 5. some of the names will not have the country in parens and they should be matched too

After applying my regular expression I'd like to get the following:

BILL SMITH (USA)  => BILL SMITH
WINTHROP (FR) => WINTHROP
LORD AT WAR (GB) = LORD AT WAR
KIM SMITH => KIM SMITH

I came up with the following regular expression but I'm not getting any matches:

String.scan(\([A-Z \s*]{1,18})(^?!(\([A-Z]{1,3}\)))\)

I been banging my head on this for a while so if anyone can point error I'd appreciated it.

UPDATE:

I've gotten some great responses, however, so far none of the regular expression solutions have met all the constraints. The tricky part seems to be that some of the string has the country in parenthesis and some don't. In one case strings without the country was not being matched and in another it was returning the correct string along with the country abbreviation without the parenthesis. (See the comments on the second response.) One point of clarification: All of the strings that I will be matching will be the start point of the string. Not sure if that helps or not. Thanks again for all your help.

share|improve this question
    
Your regex is not quoted properly, you probably need to quote it like /regex/. –  Qtax Mar 11 '12 at 16:46

3 Answers 3

up vote 1 down vote accepted

The biggest error is that you wrote (^?!...) where you meant (?=...). The former means "an optional start-of-line anchor, followed by !, followed by ..., inside a capture group"; the latter means "a position in the string that is followed by ...". Fixing that, as well as makin a few other tweaks, and adding the requirement that the initial string end with a letter, we get:

[A-Z\s]{1,17}[A-Z])(?=\s*\([A-Z]{1,3}\)

Update based on OP comments: Since this will always match at the start of a string, you can use \A to "anchor" your pattern to the start of the string. You can then get rid of the lookahead assertion. This:

\A[A-Z][A-Z\s]{0,16}[A-Z]

matches start-of-string, followed by an uppercase letter, followed by up to 16 characters that are either uppercase letters or whitespace characters, followed by an uppercase letter.

share|improve this answer
    
This still matches if there is whitespace at the beginning or end. –  louism Mar 11 '12 at 16:40
    
@louism: I think you've misunderstood the nature of that requirement. –  ruakh Mar 11 '12 at 16:41
    
THANKS! This works for all my cases except the one that I neglected to include. How would the regex change if some of the names didn't have the country in parens (i.e. BILL SMITH) –  Mutuelinvestor Mar 11 '12 at 16:44
1  
@Mutuelinvestor: You're welcome! And -- in that case, you can actually just remove the whole (?=\s*\([A-Z]{1,3}\)) part of the pattern, since that's just there to require that BILL SMITH is followed by (USA). –  ruakh Mar 11 '12 at 16:48
    
This gives me two matches on all the others. For example instead of just getting BILL SMITH, I'm getting BILL SMITH and USA. –  Mutuelinvestor Mar 11 '12 at 16:52

Here's one solution:

^((?:[A-Z]|\s){2,18}+?)(?:\s\([A-Z]+\))?$

See it on Rubular. Note that it counts 18 characters before the parenthesis - not sure how you want it to behave specificically. If you want to make sure the whole line isn't more than 18 characters, I suggest you just do unless line.length < 18 ... Similarly, if you want to make sure there is no whitespace at the end, I recommend you use line.strip. That'll greatly reduce the complexity of the Regexp you need and make your code more readable.

Edit: also works when no parentheses are used after the name.

share|improve this answer
    
worked great. Can also do A-z in the second part if you ever get lower case in the country abbrev's –  Michael Durrant Mar 11 '12 at 16:40
    
Note that the OP doesn't want the match to include the \([A-Z]+\) part. –  ruakh Mar 11 '12 at 16:40
    
It wasn't that part that was being matched, it was the alternation group. Changed it to a non-capturing group. –  louism Mar 11 '12 at 16:47
    
Your current version includes whitespace at the end of the capture group. (And I don't think the OP is trying to use a capture group, anyway. Note that the use of capture-groups completely changes the return-value of scan: suddenly it will return an array of arrays of strings instead of just an array of strings.) –  ruakh Mar 11 '12 at 16:54

You can also just use gsub to remove the part(s) you don't want. To remove everything in parenthesis you could do:

str.gsub(/\s*\([^)]*\)/, '')
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.