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I'm working on a certain program and I need to have it do different things if the file in question is a flac file, or an mp3 file. Could I just use this?

if m == *.mp3
elif m == *.flac

I'm not sure whether it will work.

EDIT: When I use that, it tells me invalid syntax. So what do I do?

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use python re module (regex) for matching – kefeizhou May 5 '11 at 14:38
@kefeizhou: Oh god no, not for simple matches. – orlp May 5 '11 at 14:39

5 Answers 5

up vote 68 down vote accepted

Assuming m is a string, you can use endswith:

if m.endswith('.mp3'):
elif m.endswith('.flac'):

To be case-insensitive, and to eliminate a potentially large else-if chain:

m.lower().endswith(('.png', '.jpg', '.jpeg'))

(Thanks to Wilhem Murdoch for the list of args to endswith)

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thanks it works – wkoomson May 5 '11 at 14:38
Better use m.lower().endswith(). – Tim Pietzcker May 5 '11 at 14:40
I know this is about a year old, but I thought I'd add that instead of a massive if/elif block, you can provide a tuple of suffixes: m.lower().endswith(('.png', '.jpg', '.jpeg')) – Wilhelm Murdoch May 2 '12 at 3:44
ext = m.rpartition('.')[-1]; if ext == will be much more efficient – volcano Jan 6 '14 at 17:03
@WilhelmMurdoch i nearly did not see your comment, glad I did. – Flaudre Jun 30 at 4:28

os.path provides many functions for manipulating paths/filenames. (docs)

os.path.splitext takes a path and splits the file extension from the end of it.

import os

filepaths = ["/folder/soundfile.mp3", "folder1/folder/soundfile.flac"]

for fp in filepaths:
    # Split the extension from the path and normalise it to lowercase.
    ext = os.path.splitext(fp)[-1].lower()

    # Now we can simply use == to check for equality, no need for wildcards.
    if ext == ".mp3":
        print fp, "is an mp3!"
    elif ext == ".flac":
        print fp, "is a flac file!"
        print fp, "is an unknown file format."


/folder/soundfile.mp3 is an mp3!
folder1/folder/soundfile.flac is a flac file!
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this is better than the accepted answer ... – BlueTrin Nov 1 '12 at 20:37
This method ignores leading periods so /.mp3 is not considered an mp3 file. This is however the way a leading space should be treated. E.g .gitignore is not a file format – kon psych Jan 28 at 22:28

Look at module fnmatch. That will do what you're trying to do.

import fnmatch
import os

for file in os.listdir('.'):
    if fnmatch.fnmatch(file, '*.txt'):
        print file
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or perhaps:

from glob import glob
for files in glob('path/*.mp3'): 
  do something
for files in glob('path/*.flac'): 
  do something else
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import shutil, os

source = ['test_sound.flac','ts.mp3']

for files in source:
  fileName,fileExtension = os.path.splitext(files)

  if fileExtension==".flac" :
    print 'This file is flac file %s' %files
  elif  fileExtension==".mp3":
    print 'This file is mp3 file %s' %files
    print 'Format is not valid'
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