I want to use the method of "findall" to locate some elements of the source xml file in the ElementTree module.

However, the source xml file (test.xml) has namespace. I truncate part of xml file as sample:

<?xml version="1.0" encoding="iso-8859-1"?>
<XML_HEADER xmlns="http://www.test.com">
    <TYPE>Updates</TYPE>
    <DATE>9/26/2012 10:30:34 AM</DATE>
    <COPYRIGHT_NOTICE>All Rights Reserved.</COPYRIGHT_NOTICE>
    <LICENSE>newlicense.htm</LICENSE>
    <DEAL_LEVEL>
        <PAID_OFF>N</PAID_OFF>
        </DEAL_LEVEL>
</XML_HEADER>

The sample python code is below:

from xml.etree import ElementTree as ET
tree = ET.parse(r"test.xml")
el1 = tree.findall("DEAL_LEVEL/PAID_OFF") # Return None
el2 = tree.findall("{http://www.test.com}DEAL_LEVEL/{http://www.test.com}PAID_OFF") # Return <Element '{http://www.test.com}DEAL_LEVEL/PAID_OFF' at 0xb78b90>

Although it can works, because there is a namespace "{http://www.test.com}", it's very inconvenient to add a namespace in front of each tag.

How can I ignore the namespace when using the method of "find", "findall" and so on?

  • 13
    Is tree.findall("xmlns:DEAL_LEVEL/xmlns:PAID_OFF", namespaces={'xmlns': 'http://www.test.com'}) convenient enough? – iMom0 Nov 16 '12 at 8:57
  • Thanks very much. I try your method and it can work. It's more convenient than mine but it's still a little awkward. Do you know if there is no other proper method in ElementTree module to solve this issue or there is no such method at all? – KevinLeng Nov 16 '12 at 9:17

Instead of modifying the XML document itself, it's best to parse it and then modify the tags in the result. This way you can handle multiple namespaces and namespace aliases:

from StringIO import StringIO
import xml.etree.ElementTree as ET

# instead of ET.fromstring(xml)
it = ET.iterparse(StringIO(xml))
for _, el in it:
    if '}' in el.tag:
        el.tag = el.tag.split('}', 1)[1]  # strip all namespaces
root = it.root

This is based on the discussion here: http://bugs.python.org/issue18304

  • 1
    This. This this this. Multiple name spaces were going to be the death of me. – sheeptest Oct 11 '14 at 3:08
  • 4
    OK, this is nice and more advanced, but still it's not et.findall('{*}sometag'). And it also is mangling the element tree itself, not just "perform the search ignoring namespaces just this time, without re-parsing the document etc, retaining the namespace information". Well, for that case you observably need to iterate through the tree, and see for yourself, if the node matches your wishes after removing the namespace. – Tomasz Gandor Nov 14 '14 at 15:12
  • This works by stripping the string but when i save the XML file using write(...) the namespace dissapears from the begging of the XML xmlns="bla"; dissapears. Please advice – TraceKira Aug 29 '16 at 19:28

If you remove the xmlns attribute from the xml before parsing it then there won't be a namespace prepended to each tag in the tree.

import re

xmlstring = re.sub(' xmlns="[^"]+"', '', xmlstring, count=1)
  • 4
    +100, someone mint this developer a cryptocoin – david.barkhuizen May 20 '14 at 19:00
  • 2
    Just FYI this only works on python 2.x python 3.x will throw: TypeError: can't use a string pattern on a bytes-like object – Michael Rice Sep 15 '14 at 20:53
  • 3
    This worked in many cases for me, but then I ran into multiple namespaces and namespace aliases. See my answer for another approach that handles these cases. – nonagon Sep 18 '14 at 19:38
  • 24
    -1 manipulating the xml via a regular expression before parsing is just wrong. though it might work in some cases, this should not be the top voted answer and should not be used in a professional application. – Mike Feb 15 '15 at 19:48
  • 4
    @Mike HE COMES. – Parthian Shot Jun 16 '15 at 20:11

The answers so far explicitely put the namespace value in the script. For a more generic solution, I would rather extract the namespace from the xml:

import re
def get_namespace(element):
  m = re.match('\{.*\}', element.tag)
  return m.group(0) if m else ''

And use it in find method:

namespace = get_namespace(tree.getroot())
print tree.find('./{0}parent/{0}version'.format(namespace)).text
  • 8
    Too much to assume that there is only one namespace – Kashyap Mar 18 '14 at 19:29

Here's an extension to nonagon's answer, which also strips namespaces off attributes:

from StringIO import StringIO
import xml.etree.ElementTree as ET

# instead of ET.fromstring(xml)
it = ET.iterparse(StringIO(xml))
for _, el in it:
    if '}' in el.tag:
        el.tag = el.tag.split('}', 1)[1]  # strip all namespaces
    for at in el.attrib.keys(): # strip namespaces of attributes too
        if '}' in at:
            newat = at.split('}', 1)[1]
            el.attrib[newat] = el.attrib[at]
            del el.attrib[at]
root = it.root

You can use the elegant string formatting construct as well:

ns='http://www.test.com'
el2 = tree.findall("{%s}DEAL_LEVEL/{%s}PAID_OFF" %(ns,ns))

or, if you're sure that PAID_OFF only appears in one level in tree:

el2 = tree.findall(".//{%s}PAID_OFF" % ns)

If you're using ElementTree and not cElementTree you can force Expat to ignore namespace processing by replacing ParserCreate():

from xml.parsers import expat
oldcreate = expat.ParserCreate
expat.ParserCreate = lambda encoding, sep: oldcreate(encoding, None)

ElementTree tries to use Expat by calling ParserCreate() but provides no option to not provide a namespace separator string, the above code will cause it to be ignore but be warned this could break other things.

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