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I apologize for the non-descriptive title, but I couldn't think of a better one.

I am trying to write a script that parses a sub string from some file names.

So, for example, here is one such file name:

[Anime-Koi] GJ-bu - 07 [h264-720p][A8557259].mkv-00_07_33_00001.jpg

(This is quite obviously a screenshot from an anime.)

What I want from this name is the GJ-bu - 07 substring.

I know very little about regular expressions so I have been scratching my head trying to come up with a regular expression to do that.

I thought that finding the inverse of an expression would be really easy so I came up with:

'(\[[a-zA-Z0-9_-]*\]?[.a-zA-Z0-9_-]*)'

Python's findall() for the above returns:

['[Anime-Koi]', '[h264-720p]', '[A8557259].mkv-00_07_33_00001.jpg']

Unfortunately, I could not figure out how to get the inverse and no matter how hard I scratch my brain, I can't come up with a regular expression that does what I need.

So, uhh, could you guys help me come up with an expression that returns GJ-bu - 07?

I know I could cheat and just do this:

f = "[Anime-Koi] GJ-bu - 07 [h264-720p][A8557259].mkv-00_07_33_00001.jpg"
reg_ex = r'(\[[a-zA-Z0-9_-]*\]?[.a-zA-Z0-9_-]*)'
p = re.compile(reg_ex)
l = p.findall(f)
for st in l:
    f = f.replace(st, '')

but that's cheating so I'd rather not do that.

Thanks for your time.

( Note: I am using Python 2.7 for this, but I have no qualms with using 3.2, though I doubt it makes a difference here.)

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3 Answers 3

up vote 1 down vote accepted

try this:

p = re.compile('\[.*\](\s.*\s)\[.*\].*\.jpg')
l = p.findall("[Anime-Koi] GJ-bu - 07 [h264-720p][A8557259].mkv-00_07_33_00001.jpg")
print l
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Try this (s is the input).

re.search(r'(?:^|\s)([^[]*)(?=(?:\s|$))', s).group(1)

It essentially means, a space followed by any number of non [ characters, and then a space.

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+1 for explanation, although I'm not sure we can assume the spaces are always there? –  Junuxx Mar 5 '13 at 1:39
    
added checks for start or end of string –  FakeRainBrigand Mar 5 '13 at 1:45
    
This is really nice. Very clean to. But yeaeh, as @Junuxx said, I can't always a space. I found an example that had an underscore instead (though I think most have a space though). (Also, thanks for the explanation it helped!). –  zermy Mar 5 '13 at 1:48
1  
In this part (?:^|\s) replace \s with [\s_] to be spaces or underscores. RegEx has limitations. If you want perfect, you'll need to very clearly define your input. It can't just figure it out, unless you give it a patern. –  FakeRainBrigand Mar 5 '13 at 1:53
1  
@eyquem's solution requires that there be something in brackets, before and after, the text you're trying to match. They also must be separated by spaces. Try removing [Anime-Koi] from the string, and that code will fail. –  FakeRainBrigand Mar 5 '13 at 2:02
import re

pat = '\[.+?\] *(.+?) *\[.+?\]'
reg = re.compile(pat)

ss = '[Anime-Koi] GJ-bu - 07 [h264-720p][A8557259].mkv-00_07_33_00001.jpg'

print reg.findall(ss)
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