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I have the following string:

fname="VDSKBLAG00120C02 (10).gif"

How can I extract the value 10 from the string fname (using re)?

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up vote 6 down vote accepted
regex = re.compile(r"(?<=\()\d+(?=\))")
value = int(re.search(regex, fname).group(0))

Explanation:

(?<=\() # Assert that the previous character is a (
\d+     # Match one or more digits
(?=\))  # Assert that the next character is a )
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2  
Seems a bit overcomplicated. Why not just \((\d+)\)? – Daniel Roseman Jan 21 '13 at 11:28
    
@DanielRoseman: Make a proper answer please. I prefer that solution too. – Janus Troelsen Jan 21 '13 at 11:30
    
Using Daniels method: int(re.compile(r"\((\d+)\)").search("VDSKBLAG00120C02 (10).gif").group(1)) – Janus Troelsen Jan 21 '13 at 11:32
    
@DanielRoseman: I guess it's a matter of preference. This regex corresponds directly to the OP's requirements: "Match a number if it's surrounded by parentheses". Your regex says "Match a pair of parentheses surrounding a number", and you then need to extract the number from that. Both work the same in the end. – Tim Pietzcker Jan 21 '13 at 11:36
1  
The advantage is that you can use the same expression for searching and for replacing. – georg Jan 21 '13 at 11:43

A simpler regex is \((\d+)\):

regex = re.compile(r'\((\d+)\)')
value = int(re.search(regex, fname).group(1))
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Personally, I'd use this regex:

^.*\(\d+\)(?:\.[^().]+)?$

With this, I can pick the last number in parentheses, just before the extension (if any). It won't go and pick any random number in parentheses if there is any in the middle of the file name. For example, it should correctly pick out 2 from SomeFilmTitle.(2012).RippedByGroup (2).avi. The only drawback is that, it won't be able to differentiate when the number is right before the extension: SomeFilmTitle (2012).avi.

I make assumption that the extension of the file, if any, should not contain ().

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