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I have been banging my head against this for some time now: I want to capture all [a-z]+[0-9]? character sequences excluding strings such as sin|cos|tan etc. So having done my regex homework the following regex should work:

(?:(?!(sin|cos|tan)))\b[a-z]+[0-9]?

As you see I am using negative lookahead along with alternation - the \b after the non-capturing group closing parenthesis is critical to avoid matching the in of sin etc. The regex makes sense and as a matter of fact I have tried it with RegexBuddy and Java as the target implementation and get the wanted result but it doesn't work using Java Matcher and Pattern objects! Any thoughts?

cheers

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Note: I don't think you need ?: when you use ?!. –  Mark Byers Feb 3 '10 at 10:26
    
the ?: is for not capturing the groups with backreferences, it's there for perfomance and shouldn't be trouble. But i have tried without it to no avail –  nvrs Feb 3 '10 at 10:30
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if you posted some sample inputs and what you expect from the output in each case, I think more people would be in a position to help. –  ninesided Feb 3 '10 at 10:33
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@nvrs: regarding the ?: - zero-width assertions are not captured by default. As far as the regex engine is concerned, (?:(?!(sin|cos|tan))) is a complex way of saying (?!sin|cos|tan). –  Tomalak Feb 3 '10 at 10:36
    
@ninesided: You are right. I am actually trying to parse a mathematical equation and extract the variables. The variables could be any string with characters [a-z] followed by an optional single digit. e.g. x1 + yvar2 however i want to exclude some strings such as log,sin,etc since they are bound by implemented functions by my lib. –  nvrs Feb 3 '10 at 10:42

3 Answers 3

up vote 6 down vote accepted

The \b is in the wrong place. It would be looking for a word boundary that didn't have sin/cos/tan before it. But a boundary just after any of those would have a letter at the end, so it would have to be an end-of-word boundary, which is can't be if the next character is a-z.

Also, the negative lookahead would (if it worked) exclude strings like cost, which I'm not sure you want if you're just filtering out keywords.

I suggest:

\b(?!sin\b|cos\b|tan\b)[a-z]+[0-9]?\b

Or, more simply, you could just match \b[a-z]+[0-9]?\b and filter out the strings in the keyword list afterwards. You don't always have to do everything in regex.

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Matches cos1 but it should not (if I understood the requirement correctly). –  Tomalak Feb 3 '10 at 10:47
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@Tomalak: No, the negative lookahead is meant to match full words, not prefixes. If there were a trig function called cos1, it would be listed as such: (?!(?:sin|cos1?|tan)\b) –  Alan Moore Feb 3 '10 at 11:16
    
Yeah, the requirements aren't wholly clear, but that was my guess. –  bobince Feb 3 '10 at 11:32
    
@bobince: Thanks, you were right about the the positioniong of \b. Of course the original regex would match (although not completely correct according to the equirements i described) most of what i wanted if i hand't forgotten to escape the \b for java i.e. \\b. Now i think how ridiculous \\\\ will look when you want to include a literal \ in the regex... –  nvrs Feb 3 '10 at 11:38
    
Yeah, backslashes easily get out of hand in nested escaping contexts! It's a pity Java doesn't have the ‘raw strings’ some languages use to get around the problem. (Or regex literals like in JS, though I personally find that a bit ugly.) –  bobince Feb 3 '10 at 12:17

So you want [a-z]+[0-9]? (a sequence of at least one letter, optionally followed by a digit), unless that letter sequence resembles one of sin cos tan?

\b(?!(sin|cos|tan)(?=\d|\b))[a-z]+\d?\b

results:

cos   - no match
cosy  - full match
cos1  - no match
cosy1 - full match
bla9  - full match
bla99 - no match
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Hi, thanks for replying but i still dont get any matches. I see that based on what i said you added matches such as cosy etc. which is correct but using: Pattern p = Pattern.compile("\b(?!(sin|cos|tan)(?=[^a-z]|\b))[a-z]+[0-9]?\b"); Matcher m = f.matcher(stringToMatch); i get no matches at all! –  nvrs Feb 3 '10 at 11:04
    
In Java strings backslashes need to be escaped. I have shown the pure regex. Of course you need to adapt it to the string escaping rules of your programming language yourself. –  Tomalak Feb 3 '10 at 12:10

i forgot to escape the \b for java so \b should be \\b and it now works. cheers

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When posting regex questions, it's a good idea to include the regex exactly as it appears in your source code; \bfoo\b looks fine, but "\bfoo\b" is likely to raise questions, even from people who don't speak Java and aren't sure how its string literals work. –  Alan Moore Feb 3 '10 at 19:49
    
Also, did you try having RegexBuddy generate the Java source code? (That's the "Use" tab, in case you don't know.) I've never liked auto-generated source code, but I sometimes use "Use" to remind myself about the escaping rules for languages I'm not fluent in. –  Alan Moore Feb 3 '10 at 20:03

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