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I have the following sentence

#bb John can #20 jiang stone [voila]

I want my C# regex to give me 5 matches to my groups

#bb
John Can
20
jiang stone
voila

Of which the tokens in #bb and voila positions are optional.

I used the following regex expression which works nicely in a sentence that doesn't have the first #bb - for e.g.

John can #20 jiang stone [voila]

gives me 4 correct tokens with the expression

@"(.*)#(\d+)(.*\s)(?:\[(.*)\])?"

Yet when I extend this with

@"(?:#[a-zA-Z])?(.*)#(\d+)(.*\s)(?:\[(.*)\])?"

It doesn't work. The #bb in the beginning of the sentence isn't matched as a separate token - instead I get a match as

b John Can

I've tried several variations but none give me an optional match to the first #.. match. What I want is that this can be #{1 or 2 characters} and this can be optional. I can have it, or it might be missing, in which case the rest should return the tokens.

What's wrong with my regex?

Thanks for your help

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1 Answer 1

up vote 4 down vote accepted

This:

#[a-zA-Z]

means a # followed by a single ASCII letter. You want this:

#[a-zA-Z]{1,2}

in order to allow one or two ASCII letters.

In addition, this:

(?:...)

means a non-capturing group. If you want a token to show up in your results, you need to wrap it in capturing parentheses:

(...)

So, putting it together:

@"((?:#[a-zA-Z]{1,2})?)(.*)#(\d+)(.*\s)(?:\[(.*)\])?"

(Note: it's not obvious to me how you want the whitespace to be handled; you may need to tweak the above a bit for your needs. Note, in particular, that if there's whitespace between the first two tokens, the above pattern will treat it as being part of the second token.)

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Perfect! You appear to be a god among regexers, good sir. Am learning it, struggling on the way. –  jeremy Mar 25 '12 at 2:57
    
I seem have to reacted too quickly -- need a bit more help. When I use more than 1 word in the last section - i.e. instead of [voila] if I say [voila there] then the last token breaks...any idea what I should do to capture the full sentence? –  jeremy Mar 25 '12 at 3:12
    
@jeremy: One possibility to try is changing (.*\s) to (.*?\s). The *? notation is like the * notation, but whereas the * notation is "greedy" -- it wants to match as much as it can, and it only backtracks if it has to -- the *? notation is "reluctant" -- it wants to match as little as it can. Alternatively, if you know that the "jiang stone" token will never contain [, you can change (.*\s) to ([^\[]*\s) so that it never swallows [. –  ruakh Mar 25 '12 at 3:18
    
Yep, that solves it (I used ([^[]*\s)! Thanks much. Of course I need to now sit and learn how it works etc. –  jeremy Mar 25 '12 at 3:26

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