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I have an xml file that I download from a url. I would then like to iterate through the xml to find the link to a file with a specific file extension.

My xml looks something like this:

<Foo>
    <bar>
        <file url="http://foo.txt"/>
        <file url="http://bar.doc"/>
    </bar>
</Foo>

I've written code to get the xml file like this:

import urllib2, re
from xml.dom.minidom import parseString

file = urllib2.urlopen('http://foobar.xml')
data = file.read()
file.close()
dom = parseString(data)
xmlTag = dom.getElementsByTagName('file')

And then I'd 'like' to get somthing like this to work:

   i=0
    url = ''
    while( i < len(xmlTag)):
         if re.search('*.txt', xmlTag[i].toxml() ) is not None:
              url = xmlTag[i].toxml()
         i = i + 1;

** Some code that parses out the url **

But that throws an error. Anyone have tips on a better approach?

Thanks!

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2 Answers 2

up vote 3 down vote accepted

Your last bit of code is, frankly, disgusting. dom.getElementsByTagName('file') gives you a list of all <file> elements in the tree... just iterate over it.

urls = []
for file_node in dom.getElementsByTagName('file'):
    url = file_node.getAttribute('url')
    if url.endswith('.txt'):
        urls.append(url)

As an aside, you should NEVER have to do indexing manually with Python. Even in the rare instance you need the index number, just use enumerate:

mylist = ['a', 'b', 'c']
for i, value in enumerate(mylist):
    print i, value
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yeah, it's all kinda gross today. I just picked up python last week. But this works perfectly! Just change the line 'url = file_node.getAttribute('urls')' to 'url = file_node.getAttribute('url')' and it works like a charm. Thanks! –  ZacAttack Jul 10 '12 at 22:17
    
@ZacAttack derp, typo corrected. –  Colin Dunklau Jul 10 '12 at 22:19

An example using lxml, urlparse and os.path:

from lxml import etree
from urlparse import urlparse
from os.path import splitext

data = """
<Foo>
    <bar>
        <file url="http://foo.txt"/>
        <file url="http://bar.doc"/>
    </bar>
</Foo>
"""

tree = etree.fromstring(data).getroottree()
for url in tree.xpath('//Foo/bar/file/@url'):
    spliturl = urlparse(url)
    name, ext = splitext(spliturl.netloc)
    print url, 'is is a', ext, 'file'
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