49

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.

3
  • You may find this SO question stackoverflow.com/questions/2277030 useful. Commented Jan 23, 2011 at 22:20
  • what are you expecting in the case with no extension? Commented Jan 23, 2011 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
    Commented Jan 23, 2011 at 22:25

10 Answers 10

58

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

import os
try:
    # This should work for Python 2
    from urlparse import urlparse
except ImportError:
    # If that failed, you are on Python 3
    from urllib.parse import urlparse

url = 'http://www.plssomeotherurl.com/station.pls?id=111'
path = 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.

1
48

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'.

6
  • 2
    BTW this assumes you want to retrieve the contents of the URL.
    – Seth
    Commented Feb 17, 2014 at 18:16
  • 2
    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
    Commented Jun 22, 2017 at 7:01
  • 1
    Whether bug or WAI it simple seems to pick the first in a list: stackoverflow.com/a/11396288/68595
    – brokkr
    Commented Jun 22, 2017 at 11:18
  • 3
    response = response.head(url) is more efficient for this task
    – acarayol
    Commented Sep 25, 2017 at 21:16
  • 1
    @acarayol if you're not interested in the resource itself, then yes you are correct.
    – Seth
    Commented Sep 25, 2017 at 22:19
25

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.

4
  • 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
    Commented Jan 23, 2011 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. Commented Jan 23, 2011 at 22:32
  • What if "Content-type" header is missing?
    – Tarasovych
    Commented Sep 11, 2020 at 7:00
  • 1
    Note that using mime types is also unreliable. Sometimes a web server cannot determine the mime type, and returns "application/octet-stream" by default. See: bitkeys.work/btc_balance_sorted.csv. Mime-type in this case is "text/csv" but the header shows "application/octet-stream". This is why you also need to check the file extension (or, maybe better, the file header/signature). Also mimetypes.guess_extension is useless in this scenario. More info on checking file signatures: github.com/ahupp/python-magic and github.com/schlerp/pyfsig.
    – FifthAxiom
    Commented Jun 25, 2021 at 4:28
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.

4
$ 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

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.

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

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)
1
0

This is quite an old topic, but this oneliner is what did:

file_ext = "."+ url.split("/")[-1:][0].split(".")[-1:][0]

Assumption is that there is a file extension.

1
  • 4
    It would work to just take this last split: file_ext = "." + url.split(".")[-1]
    – Joseph
    Commented Apr 8, 2022 at 23:54

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