18

I have an xml file I need to open and make some changes to, one of those changes is to remove the namespace and prefix and then save to another file. Here is the xml:

<?xml version='1.0' encoding='UTF-8'?>
<package xmlns="http://apple.com/itunes/importer">
  <provider>some data</provider>
  <language>en-GB</language>
</package>

I can make the other changes I need, but can't find out how to remove the namespace and prefix. This is the reusklt xml I need:

<?xml version='1.0' encoding='UTF-8'?>
<package>
  <provider>some data</provider>
  <language>en-GB</language>
</package>

And here is my script which will open and parse the xml and save it:

metadata = '/Users/user1/Desktop/Python/metadata.xml'
from lxml import etree
parser = etree.XMLParser(remove_blank_text=True)
open(metadata)
tree = etree.parse(metadata, parser)
root = tree.getroot()
tree.write('/Users/user1/Desktop/Python/done.xml', pretty_print = True, xml_declaration = True, encoding = 'UTF-8')

So how would I add code in my script which will remove the namespace and prefix?

28

Replace tag as Uku Loskit suggests. In addition to that, use lxml.objectify.deannotate.

from lxml import etree, objectify

metadata = '/Users/user1/Desktop/Python/metadata.xml'
parser = etree.XMLParser(remove_blank_text=True)
tree = etree.parse(metadata, parser)
root = tree.getroot()

####    
for elem in root.getiterator():
    if not hasattr(elem.tag, 'find'): continue  # (1)
    i = elem.tag.find('}')
    if i >= 0:
        elem.tag = elem.tag[i+1:]
objectify.deannotate(root, cleanup_namespaces=True)
####

tree.write('/Users/user1/Desktop/Python/done.xml',
           pretty_print=True, xml_declaration=True, encoding='UTF-8')

UPDATE

Some tags like Comment return a function when accessing tag attribute. added a guard for that. (1)

| improve this answer | |
  • The find() on elem.tag will fail if it is the built-in function Comment. You'll want to check for a string with something like the following: if isinstance(elem.tag, basestring): do_something(). This is for 2.x. Use isinstance(elem.tag, str) in 3.x. – Jeff Loughridge Aug 26 '14 at 22:50
  • @JeffLoughridge, Thank you for the comment. I updated the answer accordingly. – falsetru Aug 27 '14 at 1:28
  • if you can condense code by rpartition. for elem in root.getiterator(): _, _, el.tag = el.tag.rpartition('}') – 정도유 Jul 16 at 7:55
57

First, use lxml.etree.QName to remove namespace prefixes from the tag names:

>>> root.tag
'{http://apple.com/itunes/importer}package'
>>> etree.QName(root).localname
'package'

Then, use lxml.etree.cleanup_namespaces() to remove unused namespace declarations from the tree.

Complete example:

from lxml import etree

input_xml = '''
<package xmlns="http://apple.com/itunes/importer">
  <provider>some data</provider>
  <language>en-GB</language>
</package>
'''
root = etree.fromstring(input_xml)

# Remove namespace prefixes
for elem in root.getiterator():
    elem.tag = etree.QName(elem).localname
# Remove unused namespace declarations
etree.cleanup_namespaces(root)

print(etree.tostring(root).decode())

Output XML:

<package>
  <provider>some data</provider>
  <language>en-GB</language>
</package>
| improve this answer | |
  • 2
    Cool: The only clean solution of all answers. – clemens Oct 12 '18 at 5:59
  • 3
    This should now be the accepted answer. Seriously, regexes to remove curly braces from tag names? +1 – Josh Nov 10 '18 at 14:34
  • It's a clean solution, but for 1.2M items, it becomes slower: x = etree.QName(item).localname: 8.87s / x = item.tag: 5.43s – Tavy Jun 26 '19 at 14:54
4
import xml.etree.ElementTree as ET
def remove_namespace(doc, namespace):
    """Remove namespace in the passed document in place."""
    ns = u'{%s}' % namespace
    nsl = len(ns)
    for elem in doc.getiterator():
        if elem.tag.startswith(ns):
            elem.tag = elem.tag[nsl:]

metadata = '/Users/user1/Desktop/Python/metadata.xml'
tree = ET.parse(metadata)
root = tree.getroot()

remove_namespace(root, u'http://apple.com/itunes/importer')
tree.write('/Users/user1/Desktop/Python/done.xml',
       pretty_print=True, xml_declaration=True, encoding='UTF-8')

Used a snippet of code from here This method could be easily extended to delete any namespace attributes by searching for tags that begin with "xmlns"

| improve this answer | |
2

You could also use XSLT to strip the namespaces...

XSLT 1.0 (test.xsl)

<xsl:stylesheet version="1.0" xmlns:xsl="http://www.w3.org/1999/XSL/Transform">
  <xsl:output indent="yes"/>
  <xsl:strip-space elements="*"/>

  <xsl:template match="node()">
    <xsl:copy>
      <xsl:apply-templates select="@*|node()"/>
    </xsl:copy>
  </xsl:template>

  <xsl:template match="*" priority="1">
    <xsl:element name="{local-name()}" namespace="">
      <xsl:apply-templates select="@*|node()"/>
    </xsl:element>
  </xsl:template>

  <xsl:template match="@*">
    <xsl:attribute name="{local-name()}" namespace="">
      <xsl:value-of select="."/>
    </xsl:attribute>
  </xsl:template>

</xsl:stylesheet>

Python

from lxml import etree

tree = etree.parse("metadata.xml")
xslt = etree.parse("test.xsl")

new_tree = tree.xslt(xslt)

print(etree.tostring(new_tree, pretty_print=True, xml_declaration=True, 
                     encoding="UTF-8").decode("UTF-8"))

Output

<?xml version='1.0' encoding='UTF-8'?>
<package>
  <provider>some data</provider>
  <language>en-GB</language>
</package>
| improve this answer | |
1

all you need to do is:

objectify.deannotate(root, cleanup_namespaces=True)

after you have get the root, by using root = tree.getroot()

| improve this answer | |
  • 2
    This will not remove namespace declarations from the tree's root node. – Björn Lindqvist Jul 16 '18 at 23:11
1

you can try with lxml:

# Remove namespace prefixes
for elem in root.getiterator():
    namespace_removed = elem.xpath('local-name()')
| improve this answer | |
  • probalby a typo? should be elem.tag = elem.xpath('local-name()') ? – Max Mar 27 at 22:04
  • @Max Yes, it is a typo. Fixed it. Thak you. – lechat Mar 28 at 3:22
0

Here are two other ways of removing namespaces. The first uses the lxml.etree.QName helper while the second uses regexes. Both functions allow an optional list of namespaces to match against. If no namespace list is supplied then all namespaces are removed. Attribute keys are also cleaned.

from lxml import etree
import re

def remove_namespaces_qname(doc, namespaces=None):

    for el in doc.getiterator():

        # clean tag
        q = etree.QName(el.tag)
        if q is not None:
            if namespaces is not None:
                if q.namespace in namespaces:
                    el.tag = q.localname
            else:
                el.tag = q.localname

            # clean attributes
            for a, v in el.items():
                q = etree.QName(a)
                if q is not None:
                    if namespaces is not None:
                        if q.namespace in namespaces:
                            del el.attrib[a]
                            el.attrib[q.localname] = v
                    else:
                        del el.attrib[a]
                        el.attrib[q.localname] = v
    return doc


def remove_namespace_re(doc, namespaces=None):

    if namespaces is not None:
        ns = list(map(lambda n: u'{%s}' % n, namespaces))

    for el in doc.getiterator():

        # clean tag
        m = re.match(r'({.+})(.+)', el.tag)
        if m is not None:
            if namespaces is not None:
                if m.group(1) in ns:
                    el.tag = m.group(2)
            else:
                el.tag = m.group(2)

            # clean attributes
            for a, v in el.items():
                m = re.match(r'({.+})(.+)', a)
                if m is not None:
                    if namespaces is not None:
                        if m.group(1) in ns:
                            del el.attrib[a]
                            el.attrib[m.group(2)] = v
                    else:
                        del el.attrib[a]
                        el.attrib[m.group(2)] = v
    return doc
| improve this answer | |

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