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I'm trying to search for a string that has 6 digits, but no more, other chars may follow. This is the regex I use \d{6}[^\d] For some reason it doesn't catch the digits which \d{6} do catch.

Update

Now I'm using the regex (\d{6}\D*)$ which do makes sence. But I can't get it to work anyways.

Update 2 - solution

I should of course grouped the \d{6} with parentheses. Doh! Otherwise it includes the none-digit and tries to make a date with that.

End of update

What I'm trying to achive (as a rather dirty hack) is to find a datestring in the header of a openoffice document in either of the following formats: YYMMDD, YYYY-MM-DD or YYYYMMDD. If it finds one of these (and only one) it set the mtime and atime of that file to that date. Try to create a odt-file in /tmp with 100101 in the header and run this script (sample file to download: http://db.tt/9aBaIqqa). It should'nt according to my tests change the mtime/atime. But it will change them if you remove the \D in the script below.

This is all of my source:

import zipfile
import re
import glob
import time
import os

class OdfExtractor:
    def __init__(self,filename):
        """
        Open an ODF file.
        """
        self._odf = zipfile.ZipFile(filename)

    def getcontent(self): 
        # Read file with header
        return self._odf.read('styles.xml')

if __name__ == '__main__':
    filepattern = '/tmp/*.odt'

    # Possible date formats I've used
    patterns = [('\d{6}\D', '%y%m%d'), ('\d{4}-\d\d-\d\d', '%Y-%m-%d'), ('\d{8}', '%Y%m%d')]

    # go thru all those files
    for f in glob.glob(filepattern):
        # Extract data
        odf = OdfExtractor(f)

        # Create a list for all dates that will be found
        findings = []

        # Try finding date matches
        contents = odf.getcontent()
        for p in patterns:
            matches = re.findall(p[0], contents)
            for m in matches:
                try:
                    # Collect regexp matches that really are dates
                    findings.append(time.strptime(m, p[1]))
                except ValueError:
                    pass

        print f
        if len(findings) == 1: # Don't change if multiple dates was found in file
            print 'ändrar till:', findings[0]
            newtime = time.mktime(findings[0])
            os.utime(f, (newtime, newtime))
        print '-' * 8
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  • 6
    Define "it doesn't work." Fails to compile or throws exception? Misses things that should match? Catches things that shouldn't? Please post a case that shows the error. – djechlin May 29 '12 at 18:08
  • @djechlin Sorry. I hav'nt been programming much for a few months. And I hav'nt asking questions on SO for that time either. I should have asked the question better. I try to make the question a little bit more complete... – Niclas Nilsson May 29 '12 at 18:15
  • @djechlin I hope it is clear enough... – Niclas Nilsson May 29 '12 at 18:54
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You can use \D (capital D) to match any non-digit character.

regex:

\d{6}\D

raw string: (are you sure you are escaping the string correctly?)

ex = r"\d{6}\D"

string:

ex = '\\d{6}\\D'
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  • This does exactly what the OP already has so it won't solve the issue. – djechlin May 29 '12 at 18:09
  • That was an better and more obvoius way to do this. But it did'nt work. However I found another error in the script which made it work as I excepted. – Niclas Nilsson May 29 '12 at 18:14
  • But even so the problem bothers me :-/ – Niclas Nilsson May 29 '12 at 18:33
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Try this instead:

r'(\d{6}\D*)$'

(six digits followed by 0 or more non-digits).

Edit: added a "must match to end of string" qualifier.

Edit2: Oh, for Pete's sake:

import re

test_strings = [
    ("12345", False),
    ("123456", True),
    ("1234567", False),
    ("123456abc", True),
    ("123456ab9", False)
]

outp = [
    "  good, matched",
    "FALSE POSITIVE",
    "FALSE NEGATIVE",
    "  good, no match"
]

pattern = re.compile(r'(\d{6}\D*)$')
for s,expected in test_strings:
    res = pattern.match(s)
    print outp[2*(res is None) + (expected is False)]

returns

  good, no match
  good, matched
  good, no match
  good, matched
  good, no match
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  • But would'nt that catch 20120529 as 201205? I don't want that. – Niclas Nilsson May 29 '12 at 18:17
  • Thanks alot for all your help! My mistake was a lot more obvious. :-/ See my update. – Niclas Nilsson May 29 '12 at 19:14
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I was pretty stupid. If I add an \D to the end of the search the search will of course return that none digit also which I did'nt want. I had to add parenthesis to the part I really wanted. I feel pretty stupid for not catching this with a simple print statement after loop. I really need to code more frequently.

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