Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I want to write a little script for managing a bunch of files I got. Those files have complex and different name but they all contain a number somewhere in their name. I want to take that number, place it in front of the file name so they can be listed logically in my filesystem.

I got a list of all those files using os.listdir but I'm struggling to find a way to locate the numbers in those files. I've checked regular expression but I'm unsure if it's the right way to do this!

example:

import os
files = os.litdir(c:\\folder)
files
['xyz3.txt' , '2xyz.txt', 'x1yz.txt']`

So basically, what I ultimately want is:

1xyz.txt
2xyz.txt
3xyz.txt

where I am stuck so far is to find those numbers (1,2,3) in the list files

share|improve this question
3  
Show what you've got so far. Include both your regular expression and some example file names that you're trying to process. –  sizzzzlerz Nov 21 '12 at 21:45

2 Answers 2

up vote 2 down vote accepted

This (untested) snippet should show the regexp approach. The search method of compiled patterns is used to look for the number. If found, the number is moved to the front of the file name.

import os, re

NUM_RE = re.compile(r'\d+')

for name in os.listdir('.'):
    match = NUM_RE.search(name)
    if match is None or match.start() == 0:
        continue  # no number or number already at start
    newname = match.group(0) + name[:match.start()] + name[match.end():]
    print 'renaming', name, 'to', newname
    #os.rename(name, newname)

If this code is used in production and not as homework assignment, a useful improvement would be to parse match.group(0) as an integer and format it to include a number of leading zeros. That way foo2.txt would become 02foo.txt and get sorted before 12bar.txt. Implementing this is left as an exercise to the reader.

share|improve this answer

Assuming that the numbers in your file names are integers (untested code):

def rename(dirpath, filename):
    inds = [i for i,char in filename if char in '1234567890']
    ints = filename[min(inds):max(inds)+1]
    newname = ints + filename[:min(inds)] + filename[max(inds)+1:]
    os.rename(os.path.join(dirpath, filename), os.path.join(dirpath, newname))

def renameFilesInDir(dirpath):
    """ Apply your renaming scheme to all files in the directory specified by dirpath """

    dirpath, dirnames, filenames = os.walk(dirpath):
    for filename in filenames:
        rename(dirpath, filename)
    for dirname in dirnames:
        renameFilesInDir(os.path.join(dirpath, dirname))

Hope this helps

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.