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I have the following regular expression to detect mentions and extract them into string:

preg_match_all('/(?<=^|\s)@([^@\s]+)/'

this works well for detecting strings like this:

@ajksdh
@kajshd123
@12398asdd

however I wanted to make an exception so that it doesn't detect mention strings that end with 'rb', so the following shouldn't be matched

@72rb
@80rb

so the format is some numbers followed by 'rb'. Is this even possible?

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(?<=^|\s)@(?![^@\s]+rb)([^@\s]+) – Crayon Violent Jun 16 '14 at 0:06
    
By the way, as a regex maniac, I have to ask: rb doesn't stand for RegexBuddy (famous regex software) by any chance, does it? – zx81 Jun 16 '14 at 3:13

Step 1

To exclude strings ending with rb, just add a closing boundary and a negative lookbehind:

(?<=^|\s)@([^@\s]+)(?<!rb)\b

See demo

Step 2

What this is missing is that the [^@\s] does not really define what you want (I am guessing). At the moment, it is matching newlines, for instance, and Japanese characters. This is probably closer to what you want:

(?<=^|\s)@((?:(?!@)\w)+)(?<!rb)\b

See demo

Fine-Tuning

If instead of just \w you want to allow more characters, let me know which, and we can tune this. For instance, to allow all ASCII characters except space, we could use:

(?<=^|\s)@((?:(?!@)[!-~])+)(?<!rb)\b
share|improve this answer
    
What is |\s in your lookbehind means? But there isn't a space after @ symbol. – Avinash Raj Jun 16 '14 at 1:08
    
@AvinashRaj I haven't touched the (?<=^|\s), that is from adit's original regex. It is a do-it-yourself boundary: presumably, he wants to make sure that the @ he matches is either preceded by a whitespace character or sits at the beginning of the line. – zx81 Jun 16 '14 at 1:43
    
Hey adit, following up on this, did this answer solve it, or is the problem still troubling you? – zx81 Jun 17 '14 at 5:12

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