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first of all sorry for the easy question, but i cannot figure out the easiest way to code my problem.

I have a directory with several different file but with common elements (the values_25,_26,_28, etc.) as:

xxxxx_25.txt
xxxxx_26.txt
xxxxx_27.txt
xxxxx_28.txt
yyyyy_25.txt
yyyyy_26.txt
yyyyy_27.txt
yyyyy_29.txt
mmmmm_25.txt
mmmmm_26.txt
mmmmm_27.txt
mmmmm_30.txt

I wish to get lists as

xxxxx_25.txt
yyyyy_25.txt
mmmmm_25.txt

xxxxx_26.txt
yyyyy_26.txt
mmmmm_26.txt

xxxxx_27.txt
yyyyy_27.txt
mmmmm_27.txt

xxxxx_28.txt

yyyyy_29.txt

mmmmm_30.txt
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I'm not sure this is well defined -- Why not group them all based on the fact that they all end in .txt? –  mgilson Jan 31 '13 at 15:17
    
@Gianni: next time, specify exactly what do you expect at the output - I do not know if you need flat list, or nested list, if ordering of prefixes does matter etc.. –  Jakub M. Jan 31 '13 at 15:37
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4 Answers

import re

list_with_file_names = 'xxxx_25.txt xxxxx_26.txt xxxxx_27.txt xxxxx_28.txt yyyyy_25.txt yyyyy_26.txt yyyyy_27.txt yyyyy_29.txt mmmmm_25.txt mmmmm_26.txt mmmmm_27.txt mmmmm_30.txt'.split()

def get_number_and_prefix(text):
    g = re.match('.*(\S+)(\d+)', text)
    return tuple([
        int(g.group(2)),
        g.group(1)])

nice_list = sorted(list_with_file_names, key=get_number_and_prefix)

Tuples returned from get_number_and_prefix will be sorted first by the number, and later by the prefix

If, instead, you want to group based on the number in filename, you can use something like this:

def update_dict_with_file(dict_, filename):
    g = re.match('.*(\d+)', filename)
    key = g.group(1)
    t = dict_.setdefault(key,[])
    t.append(filename)

mydict = {}
[update_dict_with_file(mydict, filename) 
 for filename in list_with_file_names]

mydict now contains numbers from file names as keys, and lists with file names as values

Edit

To summarise all the answers until now, all you need is to build a sorted list out of your list, using a key getter function that extracts whatever you want from your filenames. You can do it by either fancy one-liner with itertools + list comprehension, or a lengthier for loop (no yieldanywhere?). But, basically, they are all the same. No rocket science.

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This will do it:

list_of_files = [
    'xxxxx_25.txt',
    'xxxxx_26.txt',
    'xxxxx_27.txt',
    'xxxxx_28.txt',
    'yyyyy_25.txt',
    'yyyyy_26.txt',
    'yyyyy_27.txt',
    'yyyyy_29.txt',
    'mmmmm_25.txt',
    'mmmmm_26.txt',
    'mmmmm_27.txt',
    'mmmmm_30.txt',
    ]

import re
regex = re.compile('_([0-9]+)\.txt$')

def keyfn(name):
    match = regex.search(name)
    if match is None:
        return None
    else:
        return match.group(1)

import itertools
for (key, group) in itertools.groupby(sorted(list_of_files,key=keyfn),keyfn):
    print [x for x in group]

or if you want a list of lists as a result, replace the for loop with:

[x for g in itertools.groupby(sorted(list_of_files,key=keyfn),keyfn) for x in g[1]]
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#Considering your list of files is as follows
ur_file_list = """xxxxx_25.txt
xxxxx_26.txt
xxxxx_27.txt
xxxxx_28.txt
yyyyy_25.txt
yyyyy_26.txt
yyyyy_27.txt
yyyyy_29.txt
mmmmm_25.txt
mmmmm_26.txt
mmmmm_27.txt
mmmmm_30.txt"""
#Based on the pattern, you can get the key assuming, you need the part in the
#filename (without ext) after underscore. So this will give you the part without regex
key = lambda e: os.path.splitext(e)[0].split("_")[-1]
from itertools import groupby
#On a sorted list, group on the above key function
#And generate a list of these groups
[list(group) for _, group in groupby(sorted(ur_file_list.splitlines(), key = key), key = key)]
[['xxxxx_25.txt', 'yyyyy_25.txt', 'mmmmm_25.txt'], ['xxxxx_26.txt', 'yyyyy_26.txt', 'mmmmm_26.txt'], ['xxxxx_27.txt', 'yyyyy_27.txt', 'mmmmm_27.txt'], ['xxxxx_28.txt'], ['yyyyy_29.txt'], ['mmmmm_30.txt']]
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The use of collections.defaultdict comes in very handy for this task.

In [1]: import re; from collections import defaultdict

In [2]: filenames
Out[2]: 
['xxxxx_25.txt',
 'xxxxx_26.txt',
 'xxxxx_27.txt',
 'xxxxx_28.txt',
 'yyyyy_25.txt',
 'yyyyy_26.txt',
 'yyyyy_27.txt',
 'yyyyy_29.txt',
 'mmmmm_25.txt',
 'mmmmm_26.txt',
 'mmmmm_27.txt',
 'mmmmm_30.txt']

In [3]: d = defaultdict(list)

In [4]: for filename in filenames:
  ....:     m = re.search(r'_(\d+)\.txt$', filename)
  ....:     if m:
  ....:         d[m.group(1)].append(filename)

In [5]: [sorted(filename_list) for filename_list in d.values()]
Out[5]: 
[['xxxxx_25.txt', 'yyyyy_25.txt'],
 ['mmmmm_26.txt', 'xxxxx_26.txt', 'yyyyy_26.txt'],
 ['mmmmm_27.txt', 'yyyyy_27.txt'],
 ['xxxxx_28.txt'],
 ['yyyyy_29.txt'],
 ['mmmmm_30.txt']]
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