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The following code is very strange:

 >>> words = "4324324 blahblah"
 >>> print re.findall(r'(\s)\w+', words)
 [' ']
 >>> print re.search(r'(\s)\w+', words).group()
 blahblah

The () operator seems to behave poorly with findall. Why is this? I need it for a csv file.

Edit for clarity: I want to display blahblah using findall.

I discovered that re.findall(r'\s(\w+)', words) does what I want, but have no idea why findall treats groups in this way.

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2 Answers 2

up vote 4 down vote accepted

One character off:

>>> print re.search(r'(\s)\w+', words).groups()
(' ',)
>>> print re.search(r'(\s)\w+', words).group(1)
' '

findall returns a list of all groups captured. You're getting a space back because that's what you capture. Stop capturing, and it works fine:

>>> print re.findall(r'\s\w+', words)
[' blahblah']

Use the csv module

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I think that should be .group(1). –  Andrew Clark Dec 14 '12 at 23:23
    
@F.J: Correct! Whoops –  Eric Dec 14 '12 at 23:23
    
I'm sorry, my question wasn't clear, I wanted findall to behave like search, not the other way around. I needed to return 'blahblah'. –  CornSmith Dec 14 '12 at 23:25
    
@CornSmith: Remove the grouping operator then –  Eric Dec 14 '12 at 23:27
    
Thanks :) the grouping was the issue. Edit: OHHHH so THAT'S how findall behaves! –  CornSmith Dec 14 '12 at 23:29

If you prefer to keep the capturing groups in your regex, but you still want to find the entire contents of each match instead of the groups, you can use the following:

[m.group() for m in re.finditer(r'(\s)\w+', words)]

For example:

>>> [m.group() for m in re.finditer(r'(\s)\w+', '4324324 blahblah')]
[' blahblah']
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This is a very handy trick, thanks. –  CornSmith Dec 18 '12 at 4:36

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