89

I am using the builtin Python ElementTree module. It is straightforward to access children, but what about parent or sibling nodes? - can this be done efficiently without traversing the entire tree?

1

12 Answers 12

71

There's no direct support in the form of a parent attribute, but you can perhaps use the patterns described here to achieve the desired effect. The following one-liner is suggested (updated from the linked-to post to Python 3.8) to create a child-to-parent mapping for a whole tree, using the method xml.etree.ElementTree.Element.iter:

parent_map = {c: p for p in tree.iter() for c in p}
3
  • 5
    Syntax update, 2017 / python3 parent_map = {(c,p) for p in tree.iter( ) for c in p}
    – gerardw
    Sep 7, 2017 at 22:02
  • 8
    Correction: parent_map = {c:p for p in root.iter( ) for c in p}
    – gerardw
    Sep 7, 2017 at 22:10
  • 1
    What about if you cannot read the whole XML file in one go, but must iterate over a file with iter()? Aug 3, 2020 at 13:10
32

Vinay's answer should still work, but for Python 2.7+ and 3.2+ the following is recommended:

parent_map = {c:p for p in tree.iter() for c in p}

getiterator() is deprecated in favor of iter(), and it's nice to use the new dict list comprehension constructor.

Secondly, while constructing an XML document, it is possible that a child will have multiple parents, although this gets removed once you serialize the document. If that matters, you might try this:

parent_map = {}
for p in tree.iter():
    for c in p:
        if c in parent_map:
            parent_map[c].append(p)
            # Or raise, if you don't want to allow this.
        else:
            parent_map[c] = [p]
            # Or parent_map[c] = p if you don't want to allow this
3
  • 2
    What if you don't have access to the tree? Like after a .find()
    – Brett
    Jul 27, 2015 at 19:38
  • 1
    I don't know of any way to get the root node (and thus parents/ancestors) if you didn't save a reference to it. But I don't understand how .find() has anything to do with that.
    – supergra
    Jul 28, 2015 at 20:20
  • i just used .find() as an example function that just returns an element
    – Brett
    Jul 29, 2015 at 21:39
28

You can use xpath ... notation in ElementTree.

<parent>
     <child id="123">data1</child>
</parent>

xml.findall('.//child[@id="123"]...')
>> [<Element 'parent'>]
7
  • This is fantastic solution, works with find() also if you know there's just a single element that you are looking for. Like so: root.find(".//*[@testname='generated_sql']...")
    – Bostone
    Sep 8, 2017 at 17:24
  • 2
    I could not find anything about this ... XPath syntax. What does it do? Are there docs on it?
    – raphinesse
    May 23, 2018 at 17:29
  • 1
    @raphinesse ... expression comes from XPath 1.0. Python Std Library have limited support for XPath expressions, lxml have more support.
    – josven
    Aug 22, 2018 at 13:05
  • 1
    @ioannis-filippidis Oh, you just need a valid XPath followed by an ... You can use any attribute All children: xml.findall('.//child...') Some other attribute: xml.findall('.//child[@other="123"]...')
    – josven
    Sep 17, 2020 at 13:06
  • 6
    Attention: This code works perfectly with only two dots. There is no such thing as "triple dot syntax". It's not in the docs, as others mentioned. It's just a combination of . (select current node) and .. (get parent).
    – Nat Riddle
    May 19, 2021 at 21:55
14

As mentioned in Get parent element after using find method (xml.etree.ElementTree) you would have to do an indirect search for parent. Having xml:

<a>
 <b>
  <c>data</c>
  <d>data</d>    
 </b>
</a>

Assuming you have created etree element into xml variable, you can use:

 In[1] parent = xml.find('.//c/..')
 In[2] child = parent.find('./c')

Resulting in:

Out[1]: <Element 'b' at 0x00XXXXXX> 
Out[2]: <Element 'c' at 0x00XXXXXX>

Higher parent would be found as:secondparent=xml.find('.//c/../..') being <Element 'a' at 0x00XXXXXX>

1
  • this is brilliant, would upvote more if I could
    – aclong
    Jul 6, 2022 at 14:51
7

Pasting here my answer from https://stackoverflow.com/a/54943960/492336:

I had a similar problem and I got a bit creative. Turns out nothing prevents us from adding the parent info ourselves. We can later strip it once we no longer need it.

def addParentInfo(et):
    for child in et:
        child.attrib['__my_parent__'] = et
        addParentInfo(child)

def stripParentInfo(et):
    for child in et:
        child.attrib.pop('__my_parent__', 'None')
        stripParentInfo(child)

def getParent(et):
    if '__my_parent__' in et.attrib:
        return et.attrib['__my_parent__']
    else:
        return None

# Example usage

tree = ...
addParentInfo(tree.getroot())
el = tree.findall(...)[0]
parent = getParent(el)
while parent:
    doSomethingWith(parent)
    parent = getParent(parent)
stripParentInfo(tree.getroot())
6

The XPath '..' selector cannot be used to retrieve the parent node on 3.5.3 nor 3.6.1 (at least on OSX), eg in interactive mode:

import xml.etree.ElementTree as ET
root = ET.fromstring('<parent><child></child></parent>')
child = root.find('child')
parent = child.find('..') # retrieve the parent
parent is None # unexpected answer True

The last answer breaks all hopes...

3

Got an answer from

https://towardsdatascience.com/processing-xml-in-python-elementtree-c8992941efd2

Tip: use '...' inside of XPath to return the parent element of the current element.


for object_book in root.findall('.//*[@name="The Hunger Games"]...'):
    print(object_book)
2
0

If you are using lxml, I was able to get the parent element with the following:

parent_node = next(child_node.iterancestors())

This will raise a StopIteration exception if the element doesn't have ancestors - so be prepared to catch that if you may run into that scenario.

1
  • 5
    element object in lxml has getparent() method Feb 5, 2022 at 16:49
0

Most solutions posted so far

  • either use XPath… but Python does not support finding ancestors with XPath in general (see comment),
  • or post-process the whole tree after it is built (e.g. this answer or that one)… but this requires parsing and building the whole tree, which might be undesirable with large XML data (e.g. Wikipedia dumps).

If you are parsing XML incrementally, say with xml.etree.ElementTree.iterparse or xml.etree.ElementTree.XMLPullParser, you can keep track of the current path (up from the root node down to the current node) by tracking the opening and closing of tags (start and end events). Example:

import xml.etree.ElementTree as ET

current_path = [ ]

for event, elem in ET.iterparse('test.xml', events=['start', 'end']):
    # opening tag:
    if event == 'start':
        current_path.append(elem)
    # closing tag:
    else:
        assert event == 'end'
        assert len(current_path) > 0 and current_path[-1] is elem
        current_path.pop()
        parent = current_path[-1] if len(current_path) > 0 else None
        # `elem` is the current element (fully built),
        # `parent` is its parent (some of its children after `elem`
        # might not have been parsed yet)
        #
        # ... do something ...
-1
import xml.etree.ElementTree as ET

f1 = "yourFile"

xmlTree = ET.parse(f1)

for root in xmlTree.getroot():
    print(root.tag)
1
  • 1
    Your answer could be improved with additional supporting information. Please edit to add further details, such as citations or documentation, so that others can confirm that your answer is correct. You can find more information on how to write good answers in the help center.
    – Community Bot
    Sep 20, 2022 at 21:26
-2

Another way if just want a single subElement's parent and also known the subElement's xpath.

parentElement = subElement.find(xpath+"/..")
2
  • 11
    Doesn't work for me, I get 'None' - same if i just use subElement.find('..').
    – damian
    Jan 21, 2015 at 14:44
  • 2
    Assumes that a variable called xpath already exists, so it's not helpful for most people. May 22, 2020 at 18:20
-2

Look at the 19.7.2.2. section: Supported XPath syntax ...

Find node's parent using the path:

parent_node = node.find('..')
3
  • 5
    Did you test this? If you were able to make it work, please post a complete code example that demonstrates it. See this comment: stackoverflow.com/questions/2170610/…
    – mzjn
    Dec 14, 2017 at 7:59
  • 9
    The Python 3 documentation says: "Returns None if the path attempts to reach the ancestors of the start element (the element find was called on)." (docs.python.org/3/library/…).
    – mzjn
    Dec 14, 2017 at 8:36
  • Works for me. The best and most consise answer.
    – ToTenMilan
    Feb 6, 2018 at 16:48

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.