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I need to use python to extract the date from filenames. The date is in the following format:

month-day-year.somefileextension

Examples:

10-12-2011.zip
somedatabase-10-04-2011.sql.tar.gz

The best way to extract this would be using regular expressions?

I have some code:

import re
m = re.search('(?<=-)\w+', 'derer-10-12-2001.zip')
print m.group(0)

The code will print '10'. Some clue on how to print the date?

Best Regards,

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3 Answers 3

up vote 4 down vote accepted

Assuming the date is always in the format: [MM]-[DD]-[YYYY].

re.search("([0-9]{2}\-[0-9]{2}\-[0-9]{4})", fileName)
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You want to use a capture group.

m = re.search('\b(\d{2}-\d{2}-\d{4})\.', 'derer-10-12-2001.zip')
print m.group(1)

Should print 10-12-2001.

You could get away with a more terse regex, but ensuring that it is preceded by a - and followed by a . provides some minimal protection against double-matches with funky filenames, or malformed filenames that shouldn't match at all.

EDIT: I replaced the initial - with a \b, which matches any border between an alphanumeric and a non-alphanumeric. That way it will match whether there is a hyphen or the beginning of the string preceding the date.

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1  
your regexp doesn't match if the filename begins with a date (as in the first example). one way to fix that would be to replace the initial hyphen in your pattern with (?:^|-). –  ekhumoro Oct 11 '11 at 20:00
    
Huh, you are right. I didn't even notice that example. Editing now. –  Chriszuma Oct 11 '11 at 20:02

well the \w+ you put in matches one or more word characters following a hypen, so that's the expected result. What you want to do is use a lookaround on either side, matching numbers and hyphens that occur between the first hyphen and a period:

re.search(r'(?<=-)[\d-]+(?=\.)', name).group(0)

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