15

Python code:

import xml.etree.ElementTree as ET
root = ET.parse("h.xml")
print root.findall('saybye')

h.xml code:

<hello>
  <saybye>
   <saybye>
   </saybye>
  </saybye>
  <saybye>
  </saybye>
</hello>

Code outputs,

[<Element 'saybye' at 0x7fdbcbbec690>, <Element 'saybye' at 0x7fdbcbbec790>]

saybye which is a child of another saybye is not selected here. So, how to instruct findall to recursively walk down the DOM tree and collect all three saybye elements?

5 Answers 5

18

From version 2.7 on, you can use xml.etree.ElementTree.Element.iter:

import xml.etree.ElementTree as ET
root = ET.parse("h.xml")
print root.iter('saybye')

See 19.7. xml.etree.ElementTree — The ElementTree XML API

3
  • 3
    unfortunately they forgot the namespaces for that one
    – kassiopeia
    May 12, 2018 at 16:53
  • @kassiopeia: I am not sure I understand what you mean. Could you help me out? May 12, 2018 at 23:51
  • 3
    In python 3 any of the functions find(), findall(), findtext() and even iterfind() have an optional namespaces argument to specify a dictionary with namespaces. Only iter() does not. See: docs.python.org/3/library/…
    – kassiopeia
    May 13, 2018 at 8:32
16

If you aren't afraid of a little XPath, you can use the // syntax that means find any descendant node:

import xml.etree.ElementTree as ET
root = ET.parse("h.xml")
print(root.findall('.//saybye'))

Full XPath isn't supported, but here's the list of what is: https://docs.python.org/2/library/xml.etree.elementtree.html#supported-xpath-syntax

7

Quoting findall,

Element.findall() finds only elements with a tag which are direct children of the current element.

Since it finds only the direct children, we need to recursively find other children, like this

>>> import xml.etree.ElementTree as ET
>>> 
>>> def find_rec(node, element, result):
...     for item in node.findall(element):
...         result.append(item)
...         find_rec(item, element, result)
...     return result
... 
>>> find_rec(ET.parse("h.xml"), 'saybye', [])
[<Element 'saybye' at 0x7f4fce206710>, <Element 'saybye' at 0x7f4fce206750>, <Element 'saybye' at 0x7f4fce2067d0>]

Even better, make it a generator function, like this

>>> def find_rec(node, element):
...     for item in node.findall(element):
...         yield item
...         for child in find_rec(item, element):
...             yield child
... 
>>> list(find_rec(ET.parse("h.xml"), 'saybye'))
[<Element 'saybye' at 0x7f4fce206a50>, <Element 'saybye' at 0x7f4fce206ad0>, <Element 'saybye' at 0x7f4fce206b10>]
1
  • 2
    In this manner you return <saybye> nodes which are either direct children of root or have <saybye> as parent because you don't traverse the whole tree. Apr 26, 2019 at 12:06
0

Element.findall() finds only elements with a tag which are direct children of the current element.

we need to recursively traversing all childrens to find elements matching your element.

def find_rec(node, element):
    def _find_rec(node, element, result):
        for el in node.getchildren():
            _find_rec(el, element, result)
        if node.tag == element:
            result.append(node)
    res = list()
    _find_rec(node, element, res)
    return res
0

Here is another way to do this:

from xml.dom.minidom import parse, Node
def find_id_attribute(parent, attribute_name="XMetresPerPixel"):
    #inspired https://realpython.com/python-xml-parser/
    if parent.nodeType == Node.ELEMENT_NODE:
        # print(attribute_name)
        if parent.hasAttribute(attribute_name):
            print(parent) #parent.setIdAttribute(attribute_name)
        if parent.tagName == attribute_name:
            print(parent.firstChild.data) #parent.setIdAttribute(attribute_name)
    for child in parent.childNodes:
        find_id_attribute(child, attribute_name)

document = parse("image0043.jpg.cal.xml")
find_id_attribute(document)

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