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I'm looking for substring starting with @ and ending with the first \s occurrence. It's necessary to have @ at the beginning of the string or after space.

Example: @one bla bla bla @two @three@four #@five

Result: @one, @two, @three@four

I end up with this re: ((?<=\s)|(?<=^))@[^\s]+ which works fine in sublime text 2, but returns empty strings in python.

python code:

re.findall(r'((?<=^)|(?<=\s))@[^\s]+', '@one bla bla bla @two @three@four #@five')
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How are you using this regex in Python? –  Blender Dec 21 '12 at 6:42
    
You don't need a lookbehind in the first branch. ^ is already a zero-width assertion. –  Jan Dvorak Dec 21 '12 at 6:45

2 Answers 2

up vote 0 down vote accepted

Your capturing group isn't capturing the text that you are really looking for:

(?:(?<=^)|(?<=\s))(@[^\s]+)

Now, it works:

>>> re.findall(r'(?:(?<=^)|(?<=\s))(@[^\s]+)', '@one bla bla bla @two @three@four #@five')
['@one', '@two', '@three@four']
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It's worth mentioning that the reason for this behavior is that if capturing groups are present, findall returns them instead of returning the entire match (even though it does return the entire match if there are no groups). This is documented but it always seems to surprise people. –  BrenBarn Dec 21 '12 at 6:48
    
@BrenBarn: Huh, I didn't know that. Thanks. –  Blender Dec 21 '12 at 6:50
    
yep. that worked. thanks a lot –  qubblr Dec 21 '12 at 6:52

if you are willing not to use reg expr you could try:

>>> s ="@one bla bla bla @two @three@four #@five"
>>> filter(lambda x:x.startswith('@'), s.split())
['@one', '@two', '@three@four']

This actually should be much faster...

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great! this solution works ~ 2 times faster actually –  qubblr Dec 21 '12 at 14:45

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