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Python elementTree seems unusable with namespaces. What are my alternatives? BeautifulSoup is pretty rubbish with namespaces too. I don't want to strip them out.

Examples of how a particular python library gets namespaced elements and their collections are all +1.

Edit: Could you provide code to deal with this real world use-case using your library of choice?

How would you go about getting strings 'Line Break', '2.6' and a list ['PYTHON', 'XML', 'XML-NAMESPACES']

<?xml version="1.0" encoding="UTF-8"?>
<zs:searchRetrieveResponse
    xmlns="http://www.schooletc.co.uk/vocabularies/"
    xmlns:zs="http://www.loc.gov/zing/srw/"
    xmlns:dc="http://purl.org/dc/elements/1.1/"
    xmlns:lom="http://ltsc.ieee.org/xsd/LOM">
    <zs:records>
        <zs:record>
            <zs:recordData>
                <srw_dc:dc xmlns:srw_dc="info:srw/schema/1/dc-schema">
                    <name>Line Break</name>
                    <dc:title>Processing XML namespaces using Python</dc:title>
                    <dc:description>How to get contents string from an element,
                        how to get a collection in a list...</dc:description>
                    <lom:metaMetadata>
                        <lom:identifier>
                            <lom:catalog>Python</lom:catalog>
                            <lom:entry>2.6</lom:entry>
                        </lom:identifier>
                    </lom:metaMetadata>
                    <lom:classification>
                        <lom:taxonPath>
                            <lom:taxon>
                                <lom:id>PYTHON</lom:id>
                            </lom:taxon>
                        </lom:taxonPath>
                    </lom:classification>
                    <lom:classification>
                        <lom:taxonPath>
                            <lom:taxon>
                                <lom:id>XML</lom:id>
                            </lom:taxon>
                        </lom:taxonPath>
                    </lom:classification>
                    <lom:classification>
                        <lom:taxonPath>
                            <lom:taxon>
                                <lom:id>XML-NAMESPACES</lom:id>
                            </lom:taxon>
                        </lom:taxonPath>
                    </lom:classification>
                </srw_dc:dc>
            </zs:recordData>
        </zs:record>
        <!-- ... more records ... -->
    </zs:records>
</zs:searchRetrieveResponse>
share|improve this question
1  
I love the meta nature of your MWE. –  Matthew Leingang Oct 9 '13 at 14:05
    
Using relevant keywords in the example code means more users can find the question and answers. –  line break Oct 10 '13 at 10:21

3 Answers 3

up vote 11 down vote accepted

lxml is namespace-aware.

>>> from lxml import etree
>>> et = etree.XML("""<root xmlns="foo" xmlns:stuff="bar"><bar><stuff:baz /></bar></root>""")
>>> etree.tostring(et, encoding=str) # encoding=str only needed in Python 3, to avoid getting bytes
'<root xmlns="foo" xmlns:stuff="bar"><bar><stuff:baz/></bar></root>'
>>> et.xpath("f:bar", namespaces={"b":"bar", "f": "foo"})
[<Element {foo}bar at ...>]

Edit: On your example:

from lxml import etree

# remove the b prefix in Python 2
# needed in python 3 because
# "Unicode strings with encoding declaration are not supported."
et = etree.XML(b"""...""")

ns = {
    'lom': 'http://ltsc.ieee.org/xsd/LOM',
    'zs': 'http://www.loc.gov/zing/srw/',
    'dc': 'http://purl.org/dc/elements/1.1/',
    'voc': 'http://www.schooletc.co.uk/vocabularies/',
    'srw_dc': 'info:srw/schema/1/dc-schema'
}

# according to docs, .xpath returns always lists when querying for elements
# .find returns one element, but only supports a subset of XPath
record = et.xpath("zs:records/zs:record", namespaces=ns)[0]
# in this example, we know there's only one record
# but else, you should apply the following to all elements the above returns

name = record.xpath("//voc:name", namespaces=ns)[0].text
print("name:", name)

lom_entry = record.xpath("zs:recordData/srw_dc:dc/"
                         "lom:metaMetadata/lom:identifier/"
                         "lom:entry",
                         namespaces=ns)[0].text

print('lom_entry:', lom_entry)

lom_ids = [id.text for id in
           record.xpath("zs:recordData/srw_dc:dc/"
                        "lom:classification/lom:taxonPath/"
                        "lom:taxon/lom:id",
                        namespaces=ns)]

print("lom_ids:", lom_ids)

Output:

name: Frank Malina
lom_entry: 2.6
lom_ids: ['PYTHON', 'XML', 'XML-NAMESPACES']
share|improve this answer
2  
+1 lxml is the only python tool/package you'll ever need for xml/xslt/xpath related tasks –  snapshoe Sep 25 '10 at 4:42
    
Edit: How would you code around the example provided? The lack of recipes on the web for this sort of lxml work is appalling. At the moment, I have proceeded by stripping the namespaces and traversing with BeautifulSoup. This is suboptimal on a number of levels. –  line break Sep 25 '10 at 10:46
    
@Frank Malina: XPath isn't lxml-specific, there are some useable ressources on XPath across the web. But I will make a stab at it... –  delnan Sep 25 '10 at 11:00
    
That is actually quite beautiful. –  line break Sep 25 '10 at 19:31
1  
I know XML and XPath backwards and forwards and I've always found using lxml a challenge because of the lack of good examples. The above is really valuable. Thanks. –  Robert Rossney Sep 25 '10 at 20:35

How about:

http://docs.python.org/library/pyexpat.html

share|improve this answer
    
Do you have and example of how it can be used with namespaces? –  line break Sep 24 '10 at 9:29

libxml (http://xmlsoft.org/) Best, faster lib for xml parsing. There are implementation for python.

share|improve this answer
4  
lxml from codespeak wraps and uses libxml –  snapshoe Sep 25 '10 at 4:41

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