Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

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?

share|improve this question
    
use python re module (regex) for matching – kefeizhou May 5 '11 at 14:38
9  
@kefeizhou: Oh god no, not for simple matches. – orlp May 5 '11 at 14:39
up vote 95 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)

share|improve this answer
19  
Better use m.lower().endswith(). – Tim Pietzcker May 5 '11 at 14:40
48  
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
1  
ext = m.rpartition('.')[-1]; if ext == will be much more efficient – volcano Jan 6 '14 at 17:03
1  
@WilhelmMurdoch i nearly did not see your comment, glad I did. – Flaudre Jun 30 '15 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!"
    else:
        print fp, "is an unknown file format."

Gives:

/folder/soundfile.mp3 is an mp3!
folder1/folder/soundfile.flac is a flac file!
share|improve this answer
    
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 '15 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
share|improve this answer

or perhaps:

from glob import glob
...
for files in glob('path/*.mp3'): 
  do something
for files in glob('path/*.flac'): 
  do something else
share|improve this answer
import os
source = ['test_sound.flac','ts.mp3']

for files in source:
   fileName,fileExtension = os.path.splitext(files)
   print fileExtension   # Print File Extensions
   print fileName   # It print file name
share|improve this answer
#!/usr/bin/python

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
  else:
    print 'Format is not valid'
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.