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I am parsing an XML feed in python to extract certain tags. My XML contains namespaces and this results in each tag containing a namespace followed by tag name.

Here is the xml:

<?xml version="1.0" encoding="utf-8"?>
<feed xmlns="" xmlns:media="" xmlns:rte="">
    <title type="text">Reeling in the Years</title>
    <link rel="self" type="application/atom+xml" href=";showId=10038711" />
    <category term="feed"/>
        <title type="text">Reeling in the Years</title>
        <content type="text">National and international events with popular music from the year 1989.First Broadcast: 08/11/1999</content>
        <category term="WEB Exclusive" rte:type="channel"/>
        <category term="Classics 1980" rte:type="genre"/>
        <category term="rte player" rte:type="source"/>
        <category term="" rte:type="transmision_details"/>
        <category term="False" rte:type="copyprotectionoptout"/>
        <category term="long" rte:type="form"/>
        <category term="3275" rte:type="progid"/>
        <link rel="site" type="text/html" href=""/>
        <link rel="self" type="application/atom+xml" href=";type=iptv&amp;format=xml" />
        <link rel="alternate" type="text/html" href=""/>
        <rte:valid start="2012-07-23T15:56:04+01:00" end="2017-08-01T15:56:04+01:00"/>
        <rte:duration ms="842205" formatted="0:10"/>
        <rte:statistics views="19"/>
        <rte:bri id="na"/>
        <rte:channel id="13"/>
        <rte:item id="10038711"/>
        <media:title type="plain">Reeling in the Years</media:title>
        <media:description type="plain">National and international events with popular music from the year 1989. First Broadcast: 08/11/1999</media:description>
        <media:thumbnail url="" height="288" width="512" time="00:00:00+00:00"/>
        <media:teaserimgref1x1 url="" time="00:00:00+00:00"/>
        <media:rating scheme="">NA</media:rating>
        <media:group rte:format="single">
            <media:content url="" type="video/mp4" medium="video" expression="full" duration="842205" rte:format="content"/>
            <media:content url=";iu=%2F3014%2FP_RTE_TV50_Pre&amp;ciu_szs=300x250&amp;impl=s&amp;gdfp_req=1&amp;env=vp&amp;output=xml_vast2&amp;unviewed_position_start=1&amp;url=[referrer_url]&amp;correlator=[timestamp]" type="text/xml" medium="video" expression="full" rte:format="advertising" rte:cue="0" />
            <media:content url=";iu=%2F3014%2FP_RTE_TV50_Pre2&amp;ciu_szs=300x250&amp;impl=s&amp;gdfp_req=1&amp;env=vp&amp;output=xml_vast2&amp;unviewed_position_start=1&amp;url=[referrer_url]&amp;correlator=[timestamp]" type="text/xml" medium="video" expression="full" rte:format="advertising" rte:cue="0" />
            <media:content url=";iu=%2F3014%2FP_RTE_TV50_Pre3&amp;ciu_szs=300x250&amp;impl=s&amp;gdfp_req=1&amp;env=vp&amp;output=xml_vast2&amp;unviewed_position_start=1&amp;url=[referrer_url]&amp;correlator=[timestamp]" type="text/xml" medium="video" expression="full" rte:format="advertising" rte:cue="0" />
<!-- playlist.xml -->

When the XML is parsed each element is soming out as:


As I have 3 different namespaces and I cannot gurantee that they will be always the same then I woul prefer not to hard specify each tag like so:

for elem in tree.iter({}entry'):
    stream = str(elem.find('{}id').text)
    date_tmp = str(elem.find('{}published').text)
    name_tmp = str(elem.find('{}title').text)
    short_tmp = str(elem.find('{}content').text)
    channel_tmp = elem.find('{}category', "channel")
    channel = str(channel_tmp.get('term'))
    icon_tmp = elem.find('{}thumbnail')
    icon_url = str(icon_tmp.get('url'))

Is there any way that I can put a wildcard or something similar into the find so it will simply ignore the namespace?

stream = str(elem.find('*id').text)

I can hardcode them as above but it would be my luck that down the line the namespace would change and my queries stop returning data..

Thanks for the help.

share|improve this question
Why would the namespaces change? The namespace is part of the element name--if the namespace changed then it's fundamentally a different element and your program would probably need to change too. Namespaces are not something that change on a whim. – Francis Avila Jan 27 '13 at 21:41

1 Answer 1

You can use an XPath expression with the local-name() function:

<?xml version="1.0"?>
<root xmlns="ns">

Assuming "doc" is the ElementTree for the above XML:

root = doc.getroot()
[<Element {ns}tag at 0x7fcde6f7c960>]
share|improve this answer
Sorry, first post had "root.find", needs to be "root.xpath" :) – isedev Jan 27 '13 at 21:39
Thanks for this. How can I use this above? – mcquaim Jan 27 '13 at 21:48
For example, if you want to get the text for all 'id' nodes below a given node (stored in 'elem' in the following example), you could use [str(node.text) for node in elem.xpath("//*[local-name()='id']")] – isedev Jan 27 '13 at 22:03
Do I need a different import than: import xml.etree.ElementTree as ET ? – mcquaim Jan 27 '13 at 22:16
Don't think so. I used lxml.etree in above example. – isedev Jan 27 '13 at 22:37

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