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From an RSS feed, how do you get a string of everything that's inside each item tag?

Example input (simplified):

<?xml version="1.0" encoding="UTF-8"?>
<rss version="2.0">
<channel>
<title>Test</title>
<item>
  <title>Hello world1</title>
  <comments>Hi there</comments>
  <pubDate>Tue, 21 Nov 2011 20:10:10 +0000</pubDate>
</item>
<item>
  <title>Hello world2</title>
  <comments>Good afternoon</comments>
  <pubDate>Tue, 22 Nov 2011 20:10:10 +0000</pubDate>
</item>
<item>
  <title>Hello world3</title>
  <comments>blue paint</comments>
  <pubDate>Tue, 23 Nov 2011 20:10:10 +0000</pubDate>
</item>
</channel>
</rss>

I need a python function that takes this RSS file (I'm using beautifulsoup now), and has a loop that goes through each item. I need a variable that has a string of everything within each item.

Example first loop result:

<title>Hello world1</title>
<comments>Hi there</comments>
<pubDate>Tue, 21 Nov 2011 20:10:10 +0000</pubDate>

This code gets me the first result, but how do I get all the next ones?

html_data = BeautifulSoup(xml)
print html_data.channel.item
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1 Answer 1

up vote 3 down vote accepted

Since this is XML, use BeautifulStoneSoup:

import BeautifulSoup
doc = BeautifulSoup.BeautifulStoneSoup(xml)
for item in doc.findAll('item'):
    for elt in item:
        if isinstance(elt,BeautifulSoup.Tag):
            print(elt)

And here's how you could do the same thing with lxml, (which for some reason I find much easier to use):

import lxml.etree as ET
doc = ET.fromstring(xml)
for item in doc.xpath('//item'):
    for elt in item.xpath('descendant::*'):
        print(ET.tostring(elt))
share|improve this answer
    
BeautifulStoneSoup is deprecated in BeautifulStoup 4; pass 'xml' as a second paramater instead: BeautifulSoup(text,'xml') crummy.com/software/BeautifulSoup/bs4/doc/#xml –  alxndr Jan 31 '13 at 19:47

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