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I have an xml document in the following format:

<feed xmlns="http://www.w3.org/2005/Atom" xmlns:openSearch="http://a9.com/-/spec/opensearchrss/1.0/" xmlns:gsa="http://schemas.google.com/gsa/2007">
  ...
  <entry>
    <id>https://ip.ad.dr.ess:8000/feeds/diagnostics/smb://ip.ad.dr.ess/path/to/file</id>
    <updated>2011-11-07T21:32:39.795Z</updated>
    <app:edited xmlns:app="http://purl.org/atom/app#">2011-11-07T21:32:39.795Z</app:edited>
    <link rel="self" type="application/atom+xml" href="https://ip.ad.dr.ess:8000/feeds/diagnostics"/>
    <link rel="edit" type="application/atom+xml" href="https://ip.ad.dr.ess:8000/feeds/diagnostics"/>
    <gsa:content name="entryID">smb://ip.ad.dr.ess/path/to/directory</gsa:content>
    <gsa:content name="numCrawledURLs">7</gsa:content>
    <gsa:content name="numExcludedURLs">0</gsa:content>
    <gsa:content name="type">DirectoryContentData</gsa:content>
    <gsa:content name="numRetrievalErrors">0</gsa:content>
  </entry>
  <entry>
    ...
  </entry>
  ...
</feed>

I need to retrieve all entry elements using xpath in lxml. My problem is that I can't figure out how to use an empty namespace. I have tried the following examples, but none work. Please advise.

import lxml.etree as et

tree=et.fromstring(xml)    

The various things I have tried are:

for node in tree.xpath('//entry'):

or

namespaces = {None:"http://www.w3.org/2005/Atom" ,"openSearch":"http://a9.com/-/spec/opensearchrss/1.0/" ,"gsa":"http://schemas.google.com/gsa/2007"}

for node in tree.xpath('//entry', namespaces=ns):

or

for node in tree.xpath('//\"{http://www.w3.org/2005/Atom}entry\"'):

At this point I just don't know what to try. Any help is greatly appreciated.

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2 Answers 2

up vote 10 down vote accepted

Something like this should work:

import lxml.etree as et

ns = {"atom": "http://www.w3.org/2005/Atom"}
tree = et.fromstring(xml)
for node in tree.xpath('//atom:entry', namespaces=ns):
    print node

See also http://lxml.de/xpathxslt.html#namespaces-and-prefixes.

Alternative:

for node in tree.xpath("//*[local-name() = 'entry']"):
    print node
share|improve this answer
    
so there is no way to use a default namespace here? I ask because it makes it easier to use the actual tag as it appears in the document, which is <entry>, rather than <atom:entry> –  ewok Nov 8 '11 at 19:59
    
In XPath 1.0 (which is what lxml supports), a prefix must be specified for each namespace you want to use. –  mzjn Nov 8 '11 at 20:11

Use findall method.

for item in tree.findall('{http://www.w3.org/2005/Atom}entry'): 
    print item
share|improve this answer
1  
This is a useful work around, but is it possible to use namespaces in an actual xpath expression, using tree.xpath() –  ewok Nov 8 '11 at 17:51

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