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Is there a way to define the default/unprefixed namespace in python ElementTree? This doesn't seem to work...

ns = {"":"http://maven.apache.org/POM/4.0.0"}
pom = xml.etree.ElementTree.parse("pom.xml")
print(pom.findall("version", ns))

Nor does this:

ns = {None:"http://maven.apache.org/POM/4.0.0"}
pom = xml.etree.ElementTree.parse("pom.xml")
print(pom.findall("version", ns))

This does, but then I have to prefix every element:

ns = {"mvn":"http://maven.apache.org/POM/4.0.0"}
pom = xml.etree.ElementTree.parse("pom.xml")
print(pom.findall("mvn:version", ns))

Using Python 3.5 on OSX.

EDIT: if the answer is "no", you can still get the bounty :-). I just want a definitive "no" from someone who's spent a lot of time using it.

1

3 Answers 3

29
+100

NOTE: for Python 3.8+ please see this answer.


There is no straight-forward way to handle the default namespaces transparently. Assigning the empty namespace a non-empty name is a common solution, as you've already mentioned:

ns = {"mvn":"http://maven.apache.org/POM/4.0.0"}
pom = xml.etree.ElementTree.parse("pom.xml")
print(pom.findall("mvn:version", ns))

Note that lxml.etree does not allow the use of empty namespaces explicitly. You would get:

ValueError: empty namespace prefix is not supported in ElementPath


You can though, make things simpler, by removing the default namespace definition while loading the XML input data:

import xml.etree.ElementTree as ET
import re
 
with open("pom.xml") as f:
    xmlstring = f.read()
 
# Remove the default namespace definition (xmlns="http://some/namespace")
xmlstring = re.sub(r'\sxmlns="[^"]+"', '', xmlstring, count=1)
 
pom = ET.fromstring(xmlstring) 
print(pom.findall("version"))
5
  • To handle single quotes: r"""\s(xmlns="[^"]+"|\sxmlns='[^']+')"""
    – juloo65
    Jun 30, 2017 at 13:35
  • 1
    To fix @juloo65 answer: xmlstring = re.sub(r"""\s(xmlns="[^"]+"|xmlns='[^']+')""", '', xmlstring, count=1)
    – Dariosky
    Aug 19, 2017 at 0:23
  • N.B.: "removing the default namespace definition while loading the XML input data" doesn't apply to using html5lib to transform HTML-serialization HTML to XHTML. Jun 20, 2019 at 15:00
  • This should no longer be the accepted answer as of Python 3.8+. See stackoverflow.com/a/62398604/6705037 Dec 10, 2021 at 9:43
  • 1
    @delocalizer thanks, added a link to the top of the answer.
    – alecxe
    Dec 11, 2021 at 10:39
13

ElementTree in Python 3.8 allows empty string as a prefix, so you can declare:

ns = {'': 'http://maven.apache.org/POM/4.0.0'}

and use that as the second arg in the find* methods.

Source: https://docs.python.org/3.8/library/xml.etree.elementtree.html?highlight=xml#xml.etree.ElementTree.Element.find

3

You can retrieve the default namespace with:

namespace = pom.getroot().tag.split("}")[0]+"}"

Then when you search for elements you add it to your search path:

print(pom.findall(namespace+"version"))

Not an elegant solution, but it works.

2
  • Doesn't this give you the namespace of the root element? Which may or may not be the same as the default namespace?
    – J. Beattie
    May 17, 2022 at 1:57
  • @J.Beattie You may be correct; I might not use the terms correct.
    – Peppe L-G
    May 17, 2022 at 10:34

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