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I am using lxml to parse an xsd file and am looking for an easy way to remove the URL namespace attached to each element name. Here's the xsd file:

<?xml version="1.0" encoding="utf-8"?>
<xs:schema attributeFormDefault="unqualified" elementFormDefault="qualified" version="2.0" xmlns:xs="http://www.w3.org/2001/XMLSchema">
  <xs:element name="rootelement">
    <xs:complexType>
      <xs:choice maxOccurs="unbounded">
        <xs:element minOccurs="1" maxOccurs="1" name="element1">
          <xs:complexType>
            <xs:all>
              <xs:element name="subelement1" type="xs:string" />
              <xs:element name="subelement2" type="xs:integer" />
              <xs:element name="subelement3" type="xs:dateTime" />
            </xs:all>
            <xs:attribute name="id" type="xs:integer" use="required" />
          </xs:complexType>
        </xs:element>
       </xs:choice>
      <xs:attribute fixed="2.0" name="version" type="xs:decimal" use="required" />
    </xs:complexType>
  </xs:element>
</xs:schema>

and using this code:

from lxml import etree

parser = etree.XMLParser()
data = etree.parse(open("testschema.xsd"),parser)
root = data.getroot()
rootelement = root.getchildren()[0]
rootelementattribute = rootelement.getchildren()[0].getchildren()[1]
print "root element tags"
print rootelement[0].tag
print rootelementattribute.tag
elements = rootelement.getchildren()[0].getchildren()[0].getchildren()
elements_attribute = elements[0].getchildren()[0].getchildren()[1]
print "element tags"
print elements[0].tag
print elements_attribute.tag
subelements = elements[0].getchildren()[0].getchildren()[0].getchildren()
print "subelements"
print subelements

I get the following output

root element tags
{http://www.w3.org/2001/XMLSchema}complexType
{http://www.w3.org/2001/XMLSchema}attribute
element tags
{http://www.w3.org/2001/XMLSchema}element
{http://www.w3.org/2001/XMLSchema}attribute
subelements
[<Element {http://www.w3.org/2001/XMLSchema}element at 0x7f2998fb16e0>, <Element {http://www.w3.org/2001/XMLSchema}element at 0x7f2998fb1780>, <Element {http://www.w3.org/2001/XMLSchema}element at 0x7f2998fb17d0>]

I don't want "{http://www.w3.org/2001/XMLSchema}" to appear at all when I pull the tag data (altering the xsd file is not an option). The reason I need the xsd tag info is that I am using this to validate column names from a series of flat files. On the "element" level there are multiple elements that I'm pulling, as well as subelements, which I am using a dictionary to validate columns. Also, any suggestions on improving the code above would be greatly, such as a way to use fewer "getchildren" calls, or just make it more organized.

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That's not "URL data", it's the namespace. –  Mark Thomas Jul 17 '11 at 0:18
    
Edited for that –  Sam Johnson Jul 17 '11 at 0:21

4 Answers 4

up vote 2 down vote accepted

I'd use:

print elem.tag.split('}')[-1]

But you could also use the xpath function local-name():

print elem.xpath('local-name()')

As for fewer getchildren() calls: just leave them out. getchildren() is a deprecated way of making a list of the direct children (you should just use list(elem) instead if you actually want this).

You can iterate over, or use an index on an element directly. For example: rootelement[0] will give you the first child element of rootelement (but more efficient than if you were use rootelement.getchildren()[0], because this would act like list(rootelement) and create a new list first)

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1  
elem.tag.xpath('local-name()') does not work. It should be elem.xpath('local-name()') –  mzjn Jul 18 '11 at 12:00
    
Oops, thanks, I'll correct it. –  Steven Jul 18 '11 at 12:38
    
Thanks, pretty much exactly the answer I was looking for –  Sam Johnson Jul 18 '11 at 15:08

The easiest thing to do is to just use string slicing to remove namespace prefix:

>>> print rootelement[0].tag[34:]
complexType
share|improve this answer
    
Yeah, I thought about this but was looking for something a bit more elegant that would take into account future changes to the namespace but didn't require a regex or substring or the like –  Sam Johnson Jul 17 '11 at 5:47

If the URI might change in the future (for some unknown reason or you're truly paranoid), consider the following:

print "root element tags"
tag, nsmap, prefix = rootelement[0].tag, rootelement[0].nsmap, rootelement[0].prefix
tag = tag[len(nsmap[prefix]) + 2:]
print tag

This is a very unlikely case, but who knows?

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I wonder why etree.XMLParser(ns_clean=True) doesn't work. It had not worked for me so did it getting namespace from root.nsmap between brackets and replacing it with empty string

print rootelement[0].tag.replace('{%s}' %root.nsmap['xs'], '')
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