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I am attempting to use Lxml to parse the contents of a .docx document. I understand that lxml replaces namespace prefixes with the actual namespace, however this makes it a real pain to check what kind of element tag I am working with. I would like to be able to do something like

if (someElement.tag == "w:p"):

but since lxml insists on prepending te ful namespace I'd either have to do something like

if (someElemenet.tag == "{http://schemas.openxmlformats.org/wordprocessingml/2006/main}p'):

or perform a lookup of the full namespace name from the element's nsmap attribute like this

targetTag = "{%s}p" % someElement.nsmap['w']
if (someElement.tag == targetTag):

If there were was an easier way to convince lxml to either

  1. Give me the tag string without the namespace appended to it, I can use the prefix attribute along with this information to check which tag I'm working with OR
  2. Just give me the tag string using the prefix

This would save a lot of keystrokes when writing this parser. Is this possible? Am I missing something in the documentation?

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You don't ever want to match on the prefix, as the prefix is completely arbitrary. A valid .docx file could have any prefix, even 'xyz', as long as it was assigned to the same actual namespace string. lxml is doing you a favor by preventing you from relying on the namespace prefix for matching. –  Liza Daly Mar 31 '11 at 1:31
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4 Answers

Perhaps use local-name():

import lxml.etree as ET
tree = ET.fromstring('<root xmlns:f="foo"><f:test/></root>')
elt=tree[0]
print(elt.xpath('local-name()'))
# test
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To save time when looking for high-volume tags like p (paragraph, I presume) in docx or c (cell) in xlsx, it's usual to set up the full tag once at the global or class level:

WPML_URI = "{http://schemas.openxmlformats.org/wordprocessingml/2006/main}"
tag_p = WPML_URI + 'p'
tag_t = WPML_URI + 't'

I have never seen an explanation of why one would want to use QName().

In the other direction, given a full tag, you can extract the base tag easily:

base_tag = full_tag.rsplit("}", 1)[-1]

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I could not find a way to obtain the non-namespaced tag name from an element -- lxml considers the full namespace part of the tag name. Here are a few options which may help..

You could also use the QName class to construct a namespaced tag for comparisons:

import lxml.etree
from lxml.etree import QName

tree = lxml.etree.fromstring('<root xmlns:f="foo"><f:test/></root>')
qn = QName(tree.nsmap['f'], 'test')
assert tree[0].tag == qn

If you need the bare tag name you'll have to write a utility function to extract it:

def get_bare_tag(elem):
    return elem.tag.rsplit('}', 1)[-1]

assert get_bare_tag(tree[0]) == 'test'

Unfortunately, to my knowledge you can't search for tags with "any namespace" (e.g. {*}test) using lxml's xpath / find methods.

Updated: Note that lxml won't construct a tag that contains only { or } -- it will raise ValueError: invalid tag name, so it is safe to assume that an element whose tag name starts with { is balanced.

lxml.etree.Element('{foo')
ValueError: Invalid tag name
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A bit wasteful, especially the [1:]. To get the "bare tag", all you need is elem.tag.split('}')[-1]. Note that neither this code nor yours cares about unbalanced braces. –  John Machin Mar 31 '11 at 3:16
    
Yep, wrote that in a rush.. good catch, I'll update it. –  samplebias Mar 31 '11 at 3:22
    
Used rsplit to be more efficient, assuming the namespace urls tend to be long. –  samplebias Mar 31 '11 at 3:27
    
Good point. You didn't get rid of the pointless if statement; non-namespace tags tend to be short. –  John Machin Mar 31 '11 at 3:33
3  
+1 for suggesting the QName class. As for obtaining the local name (if you really have to) you can use xpath: elem.xpath('local-name()') –  Steven Mar 31 '11 at 16:20
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I'm no Python expert, but I also had this problem (Windows 7 "Contacts" files). I wrote the following function for the lxml system.

This function takes an element, and returns its tag with the prefix substituted from the file's ns tag.

from lxml import etree

def denstag(ee):
  tag = ee.tag
  for ns in ee.nsmap:
    prefix = "{"+ee.nsmap[ns]+"}"
    if tag.startswith(prefix):               
      return ns+":"+tag[len(prefix):]
  return tag
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