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I have an xml feed, say:

http://gdata.youtube.com/feeds/api/videos/-/bass/fishing/

I want to get the list of hrefs for the videos:

 ['http://www.youtube.com/watch?v=aJvVkBcbFFY', 'ht....', ... ]
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Have a look at BeautifulSoup. It's a real pleasure to use. – Chazadanga Sep 21 '09 at 2:37
up vote 7 down vote accepted
from xml.etree import cElementTree as ET
import urllib

def get_bass_fishing_URLs():
  results = []
  data = urllib.urlopen(
      'http://gdata.youtube.com/feeds/api/videos/-/bass/fishing/')
  tree = ET.parse(data)
  ns = '{http://www.w3.org/2005/Atom}'
  for entry in tree.findall(ns + 'entry'):
    for link in entry.findall(ns + 'link'):
      if link.get('rel') == 'alternate':
        results.append(link.get('href'))

as it appears that what you get are the so-called "alternate" links. The many small, possible variations if you want something slightly different, I hope, should be clear from the above code (plus the standard Python library docs for ElementTree).

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nice - I forgot about ElementTree. yours is much cleaner than mine :) – meder omuraliev Sep 21 '09 at 0:29
    
thanks for getting me started with ET; your fully working example helped a lot. piquadrat gave me exactly what I asked for but then it turned out that I needed the info in <published> as well so this solution proved more adaptable in the wild. – Skylar Saveland Sep 21 '09 at 14:31
    
@sos-sky, you're welcome -- always hard to strike the right balance between "giving a fish" and "teaching to fish", glad to hear that I've struck the right balance this time;-). – Alex Martelli Sep 21 '09 at 14:45

Have a look at Universal Feed Parser, which is an open source RSS and Atom feed parser for Python.

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doh - nice find, hehe – meder omuraliev Sep 20 '09 at 22:20

In such a simple case, this should be enough:

import re, urllib2
request = urllib2.urlopen("http://gdata.youtube.com/feeds/api/videos/-/bass/fishing/")
text = request.read()
videos = re.findall("http:\/\/www\.youtube\.com\/watch\?v=[\w-]+", text)

If you want to do more complicated stuff, parsing the XML will be better suited than regular expressions

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Nice, that does indeed return the list I'm looking for. – Skylar Saveland Sep 20 '09 at 22:28
import urllib
from xml.dom import minidom
xmldoc = minidom.parse(urllib.urlopen('http://gdata.youtube.com/feeds/api/videos/-/bass/fishing/'))

links = xmldoc.getElementsByTagName('link')
hrefs = []
for links in link:
    if link.getAttribute('rel') == 'alternate':
        hrefs.append( link.getAttribute('href') )

hrefs
share|improve this answer
    
Thanks for helping to get me going but this returns strange links like: m.youtube.com/watch?v=UIi-fANCngQ (it should be for link in links above too) – Skylar Saveland Sep 20 '09 at 22:26
    
updated. you can do regex parsing on the inner if statement if you want a certain pattern, or do dom operations on what type of attributes the link element should have. – meder omuraliev Sep 20 '09 at 22:37
    
isn't urllib deprecated? – jldupont Sep 21 '09 at 1:12
    
I'm confused about it's status as well. urllib2 is more often used by advanced Python 2.x users, however urllib is the module in Python 3... – meder omuraliev Sep 21 '09 at 1:15

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