20

Consider the following URLs

http://m3u.com/tunein.m3u
http://asxsomeurl.com/listen.asx:8024
http://www.plssomeotherurl.com/station.pls?id=111
http://22.198.133.16:8024

Whats the proper way to determine the file extensions (.m3u/.asx/.pls)? Obviously the last one doesn't have a file extension.

EDIT: I forgot to mention that m3u/asx/pls are playlists (textfiles) for audio streams and must be parsed differently. The goal determine the extension and then send the url to the proper parsing-function. E.g.


url = argv[1]
ext = GetExtension(url)
if ext == "pls":
  realurl = ParsePLS(url)
elif ext == "asx":
  realurl = ParseASX(url)
(etc.)
else:
  realurl = url
Play(realurl)
GetExtension() should return the file extension (if any), preferrably without connecting to the URL.

  • You may find this SO question stackoverflow.com/questions/2277030 useful. – Marcus Whybrow Jan 23 '11 at 22:20
  • what are you expecting in the case with no extension? – Corey Goldberg Jan 23 '11 at 22:22
  • What do you want to do with the file extension, and how will you handle the file not matching the file type you thought that extension should have? – Fred Nurk Jan 23 '11 at 22:25
15

The real proper way is to not use file extensions at all. Do a GET (or HEAD) request to the URL in question, and use the returned "Content-type" HTTP header to get the content type. File extensions are unreliable.

See MIME types (IANA media types) for more information and a list of useful MIME types.

  • True, but what if you want a gui to pop up to save the thing? What filename do you use, and what extension do you put in your save dialog - given the URL and the content-type headers? – Spacedman Jan 23 '11 at 22:23
  • @Spacedman: You should check if the URL path extension matches response mimetype (mimetypes.guess_extension might be helpful) - if not append the correct one. AFAIK that's what web browsers do. – Tomasz Elendt Jan 23 '11 at 22:32
38

Use urlparse to parse the path out of the URL, then os.path.splitext to get the extension.

import urlparse, os

url = 'http://www.plssomeotherurl.com/station.pls?id=111'
path = urlparse.urlparse(url).path
ext = os.path.splitext(path)[1]

Note that the extension may not be a reliable indicator of the type of the file. The HTTP Content-Type header may be better.

18

This is easiest with requests and mimetypes:

import requests
import mimetypes

response = requests.get(url)
content_type = response.headers['content-type']
extension = mimetypes.guess_extension(content_type)

The extension includes a dot prefix. For example, extension is '.png' for content type 'image/png'.

  • 1
    BTW this assumes you want to retrieve the contents of the URL. – Seth Feb 17 '14 at 18:16
  • 1
    mimetypes's guess_extension function does have it's quirks though. Hand request a url for a file with the '.jpg' extension and it identifies it as MIME type 'image/jpeg'. Hand that over to mimetypes and ask it for a reasonable extension and it spits out '.jpe'. Not wrong, just... not helpful. – brokkr Jun 22 '17 at 7:01
  • 1
    Whether bug or WAI it simple seems to pick the first in a list: stackoverflow.com/a/11396288/68595 – brokkr Jun 22 '17 at 11:18
  • 1
    response = response.head(url) is more efficient for this task – acarayol Sep 25 '17 at 21:16
  • 1
    @acarayol if you're not interested in the resource itself, then yes you are correct. – Seth Sep 25 '17 at 22:19
6

File extensions are basically meaningless in URLs. For example, if you go to http://code.google.com/p/unladen-swallow/source/browse/branches/release-2009Q1-maint/Lib/psyco/support.py?r=292 do you want the extension to be ".py" despite the fact that the page is HTML, not Python?

Use the Content-Type header to determine the "type" of a URL.

3
$ python3
Python 3.1.2 (release31-maint, Sep 17 2010, 20:27:33) 
[GCC 4.4.5] on linux2
Type "help", "copyright", "credits" or "license" for more information.
>>> from os.path import splitext
>>> from urllib.parse import urlparse 
>>> 
>>> urls = [
...     'http://m3u.com/tunein.m3u',
...     'http://asxsomeurl.com/listen.asx:8024',
...     'http://www.plssomeotherurl.com/station.pls?id=111',
...     'http://22.198.133.16:8024',
... ]
>>> 
>>> for url in urls:
...     path = urlparse(url).path
...     ext = splitext(path)[1]
...     print(ext)
... 
.m3u
.asx:8024
.pls

>>> 
2

To get the content-type you can write a function one like I have written using urllib2. If you need to utilize page content anyway it is likely that you will use urllib2 so no need to import os.

import urllib2

def getContentType(pageUrl):
    page = urllib2.urlopen(pageUrl)
    pageHeaders = page.headers
    contentType = pageHeaders.getheader('content-type')
    return contentType
1

A different approach that takes nothing else into account except for the actual file extension from a url:

def fileExt( url ):
    # compile regular expressions
    reQuery = re.compile( r'\?.*$', re.IGNORECASE )
    rePort = re.compile( r':[0-9]+', re.IGNORECASE )
    reExt = re.compile( r'(\.[A-Za-z0-9]+$)', re.IGNORECASE )

    # remove query string
    url = reQuery.sub( "", url )

    # remove port
    url = rePort.sub( "", url )

    # extract extension
    matches = reExt.search( url )
    if None != matches:
        return matches.group( 1 )
    return None

edit: added handling of explicit ports from :1234

0

Use urlparse, that'll get most of the above sorted:

http://docs.python.org/library/urlparse.html

then split the "path" up. You might be able to split the path up using os.path.split, but your example 2 with the :8024 on the end needs manual handling. Are your file extensions always three letters? Or always letters and numbers? Use a regular expression.

0

you can try the rfc6266 module like:

import requests
import rfc6266

req = requests.head(downloadLink)
headersContent = req.headers['Content-Disposition']
rfcFilename = rfc6266.parse_headers(headersContent, relaxed=True).filename_unsafe
filename = requests.utils.unquote(rfcFilename)

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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