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I have the following code for parsing youtube feed and returning youtube movie id. How can I rewrite this to be python 2.4 compatible which I suppose doesn't support parse_qs function ?

YTSearchFeed = feedparser.parse("http://gdata.youtube.com" + path)
videos = []
for yt in YTSearchFeed.entries:
    url_data = urlparse.urlparse(yt['link']) 
    query = urlparse.parse_qs(url_data[4])
    id = query["v"][0]
    videos.append(id) 
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I think it has been moved: docs.python.org/library/urlparse.html#urlparse.parse_qs –  joksnet Jan 10 '11 at 12:05

2 Answers 2

up vote 10 down vote accepted

I assume your existing code runs in 2.6 or something newer, and you're trying to go back to 2.4? parse_qs used to be in the cgi module before it was moved to urlparse. Try import cgi, cgi.parse_qs.

Inspired by TryPyPy's comment, I think you could make your source run in either environment by doing:

import urlparse # if we're pre-2.6, this will not include parse_qs
try:
    from urlparse import parse_qs
except ImportError: # old version, grab it from cgi
    from cgi import parse_qs
    urlparse.parse_qs = parse_qs

But I don't have 2.4 to try this out, so no promises.

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yes currently it's 2.6 and I need to downgrade to 2.4 –  mkrenge Jan 10 '11 at 12:17
    
So use: try: from cgi import parse_qs; urlparse.parse_qs = parse_qs \n except ImportError: pass –  TryPyPy Jan 10 '11 at 13:01
    
@TryPyPy - make that an answer; you'd get my vote! –  mtrw Jan 10 '11 at 13:35
    
Thanks, but it's only your answer... or just a small note on how to make use of it. Feel free to incorporate it, the better answers the better :) –  TryPyPy Jan 10 '11 at 13:48
    
Why the urlparse.parse_qs = parse_qs line? I'm pretty sure this will fail, and urlparse won't be defined at this point. –  Ben Hoyt Jan 10 '11 at 19:47

I tried that, and still.. it wasn't working.

It's easier to simply copy the parse_qs/qsl functions over from the cgi module to the urlparse module.

Problem solved.

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