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Suppose I haev a video file:

How do I get the header and the content-type of this file? With Python. But , I don't want to download the entire file. i want it to return:


Edit: this is what I did. What do you think?

f = urllib2.urlopen(url)
    params['mime'] =  f.headers['content-type']
share|improve this question
urlopen(url) will download the entire file just to get the headers. One solution is to use a customised Request which will tell urlopen to use HEAD to open the url instead of GET – John La Rooy Jan 27 '10 at 0:34
Furthur testing shows that the whole file is not downloaded, just an arbitrary sized chunk and the connection stays open until f goes out of scope - this is a bit of an evil thing to do to the server. – John La Rooy Jan 27 '10 at 5:40

3 Answers 3

up vote 12 down vote accepted

Like so:

>>> import httplib
>>> conn = httplib.HTTPConnection("")
>>> conn.request("HEAD", "/thevideofile.mp4")
>>> res = conn.getresponse()
>>> print res.getheaders()

That will only download and print the headers because it is making a HEAD request:

Asks for the response identical to the one that would correspond to a GET request, but without the response body. This is useful for retrieving meta-information written in response headers, without having to transport the entire content.

(via Wikipedia)

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+1, yep, HEAD is indeed the way to go. – Alex Martelli Jan 27 '10 at 0:21
Is there anything wrong with mine? f = urllib2.urlopen(url) params['mime'] = f.headers['content-type'] – TIMEX Jan 27 '10 at 0:29
@alex: yes, it will download the whole file. – Brian McKenna Jan 27 '10 at 1:02
please rephrase. It will not download the whole file. – ghostdog74 Jan 27 '10 at 4:43
I have done some testing with ettercap. A HEAD request downloads about 400 bytes, the way alex has suggested downloads the first 80k or so of the file and leaves the connection dangling. – John La Rooy Jan 27 '10 at 5:35

This is a higher level answer than Brian's. Using the urllib machinery has the usual advantages such as handling redirects automatically and so on.

import urllib2

class HeadRequest(urllib2.Request):
    def get_method(self):
        return "HEAD"

url = ""
head = urllib2.urlopen(HeadRequest(url))          # This will return empty string and closes the connection
print head.headers.maintype
print head.headers.subtype
print head.headers.type
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you can get the video type using the info() method or the headers dict

print f.headers['Content-Type']

A test run with an randomly selected avi file googled on the net that is more than 600Mb

$ cat
#!/usr/bin/env python
import urllib2
print f.headers['Content-Type']

$ time python

real    0m4.931s
user    0m0.115s
sys     0m0.042s

it will only "take up bandwidth" when the file is actually downloaded , ie packets are being sent to and from the socket.

share|improve this answer
That will download the whole file. – Brian McKenna Jan 27 '10 at 0:59
download the whole file? as in download to local and so i have an actual physical file? No, it won't. Besides, OP is asking what's wrong with this method, so i am showing him where he is wrong. – ghostdog74 Jan 27 '10 at 1:25
It will make a request that will download the whole file. Of course it won't be stored to your filesystem but the request will block and waste bandwidth for no reason. – Brian McKenna Jan 27 '10 at 1:46
No it won't. If you read the docs, urlopen return a file like object. that's why you can do things like Its only when you read() then "bandwidth is wasted" – ghostdog74 Jan 27 '10 at 2:06
Try it out. Download something like and see how much the request downloads in an active REPL. urlopen blocks until it gets the headers and Content-Length so it may seem instant but it's actually downloading the content in the background. When you read, Python blocks for the content. So it uses up bandwidth when you call urlopen - just in the background. – Brian McKenna Jan 27 '10 at 2:44

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