Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Basic question - how do you 'move' around in a tree when you are building a tree.

I can populate the first level:

import lxml.etree as ET

def main():
    root = ET.Element('baseURL')
    root.attrib["URL"]='www.com'
    root.attrib["title"]='Level Title'
    myList = [["www.1.com","site 1 Title"],["www.2.com","site 2 Title"],["www.3.com","site 3 Title"]]   
    for i in xrange(len(myList)):
        ET.SubElement(root, "link_"+str(i), URL=myList[i][0], title=myList[i][1])

This gives me something like:

baseURL:
        link_0
        link_1
        link_2

from there, I want to add a subtree from each of the new nodes so it looks something like:

baseURL:
        link_0:
               link_A
               link_B
               link_C
        link_1
        link_2

I can't see how to 'point' the subElement call to the next node down - I tried:

myList2 = [["www.A.com","site A Title"],["www.B.com","site B Title"],["www.C.com","site C Title"]]
for i in xrange(len(myList2)):
        ET.SubElement('link_0', "link_"+str(i), URL=myList2[i][0], title=myList2[i][1])

But that throws the error:

TypeError: Argument '_parent' has incorrect type (expected lxml.etree._Element, got str)

as I am giving the subElement call a string, not an element reference. I also tried it as a variable, (i.e. link_0' rather than"link_0"`) and that gives a global missing variable, so my reference is obviously incorrect.

How do I 'point' my lxml builder to a child as a parent, and write a new child?

share|improve this question

2 Answers 2

up vote 1 down vote accepted

ET.SubElement(parent_node,type) creates a new XML element node as a child of parent_node. It also returns this new node.

So you could do this:

import lxml.etree as ET

def main():
  root = ET.Element('baseURL')
  myList = [1,2,3]
  children = []
  for x in myList:
    children.append( ET.SubElement(root, "link_"+str(x)) )

  for y in myList:
     ET.SubElement( children[0], "child_"+str(y) )

But keeping track of the children is probably excessive since lxml already provides you with many ways to get to them.

Here's a way using lxmls built in children lists:

 node = root[0]
 for y in myList:
   ET.SubElement( node, "child_"+str(y) )

Here's a way using XPath (possibly better if your XML is getting ugly)

 node = root.xpath("/baseURL/link_0")[0]
 for y in myList:
   ET.SubElement( node, "child_"+str(y) )
share|improve this answer
    
Thank you. I was just (about) reaching the answer, but yours is (obviously) much more complete, and extremely useful. I appreciate your time! –  Jay Gattuso Nov 22 '12 at 2:11

Found the answer. I should be using the python array referencing, root[n] not trying to get to it via list_0

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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