21

I know this can be easily done using PHP's parse_url and parse_str functions:

$subject = "http://www.youtube.com/watch?v=z_AbfPXTKms&NR=1";
$url = parse_url($subject);
parse_str($url['query'], $query);
var_dump($query);

But how to achieve this using Python? I can do urlparse but what next?

42

Python has a library for parsing URLs.

import urlparse
url_data = urlparse.urlparse("http://www.youtube.com/watch?v=z_AbfPXTKms&NR=1")
query = urlparse.parse_qs(url_data.query)
video = query["v"][0]
  • I can do urlparse but what next? yeah I know, but problem is with the query part. – decarbo Dec 5 '10 at 0:07
  • @decarbo The updated answer shows you how to extract just the value of the v parameter in the query string. – Phrogz Dec 5 '10 at 5:53
  • yap, that's the best solution I guess. – decarbo Dec 5 '10 at 19:32
  • FYI this will not work when submitting youtube.com/watch?v=hP54ne1COvY because its missing the http – JiminyCricket Jul 8 '14 at 19:18
49

I've created youtube id parser without regexp:

def video_id(value):
    """
    Examples:
    - http://youtu.be/SA2iWivDJiE
    - http://www.youtube.com/watch?v=_oPAwA_Udwc&feature=feedu
    - http://www.youtube.com/embed/SA2iWivDJiE
    - http://www.youtube.com/v/SA2iWivDJiE?version=3&hl=en_US
    """
    query = urlparse(value)
    if query.hostname == 'youtu.be':
        return query.path[1:]
    if query.hostname in ('www.youtube.com', 'youtube.com'):
        if query.path == '/watch':
            p = parse_qs(query.query)
            return p['v'][0]
        if query.path[:7] == '/embed/':
            return query.path.split('/')[2]
        if query.path[:3] == '/v/':
            return query.path.split('/')[2]
    # fail?
    return None
9

Here is RegExp it cover these cases enter image description here

((?<=(v|V)/)|(?<=be/)|(?<=(\?|\&)v=)|(?<=embed/))([\w-]+)

  • 1
    to get this to work in python, i had to correct the syntax too: ((?<=(v|V)/)|(?<=be/)|(?<=(\?|\&)v=)|(?<=embed/))([\w-]+). This solution ended up being the one that handled the most cases. – Gus E Aug 6 '15 at 21:10
  • /((?<=(v|e|V|vi)\/)|(?<=be\/)|(?<=(\?|\&)v=)|(?<=\/u\/\d+\/)|(?<=(\?|\&)vi=)|(?<=embed\/))([\w-]+)/gi; Compatible with most at gist.github.com/rodrigoborgesdeoliveira/… – SilverIce May 7 '19 at 6:15
4
match = re.search(r"youtube\.com/.*v=([^&]*)", "http://www.youtube.com/watch?v=z_AbfPXTKms&test=123")
if match:
    result = match.group(1)
else:
    result = ""

Untested.

4

I made Mikhail Kashkin's solution Python3 friendly

from urllib.parse import urlparse

def video_id(url):
    """
    Examples:
    - http://youtu.be/SA2iWivDJiE
    - http://www.youtube.com/watch?v=_oPAwA_Udwc&feature=feedu
    - http://www.youtube.com/embed/SA2iWivDJiE
    - http://www.youtube.com/v/SA2iWivDJiE?version=3&amp;hl=en_US
    """
    o = urlparse(url)
    if o.netloc == 'youtu.be':
        return o.path[1:]
    elif o.netloc in ('www.youtube.com', 'youtube.com'):
        if o.path == '/watch':
            id_index = o.query.index('v=')
            return o.query[id_index+2:id_index+13]
        elif o.path[:7] == '/embed/':
            return o.path.split('/')[2]
        elif o.path[:3] == '/v/':
            return o.path.split('/')[2]
    return None  # fail?
2

No need for regex. Split on ?, take the second, split on =, take the second, split on &, take the first.

  • work. Do you have any idea if this method is bulletproof enough to be used without bigger worries in market-ready projects ? – decarbo Dec 5 '10 at 0:06
  • 6
    use urlparse for this. don't roll your own with string splitting or regexes. docs.python.org/library/urlparse.html – Corey Goldberg Dec 5 '10 at 0:09
  • urlparse gives query as a whole so still I need to split it to get ID – decarbo Dec 5 '10 at 1:38
2

Here is something you could try using regex for the youtube video ID:

# regex for the YouTube ID: "^[^v]+v=(.{11}).*"
result = re.match('^[^v]+v=(.{11}).*', url)
print result.group(1)
  • This answer is from 2010, but the regex can be modified to match this pattern too. be[/](.{11}).* – VKolev Dec 6 '19 at 7:55

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