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This question already has an answer here:

Is there a way to show: (a) the full path to a located node? (b) show the attributes of the path nodes even if I don't know what those attributes might be called?

For example, given a page:

<!DOCTYPE html>
<HTML lang="en">
<HEAD>
  <META name="generator" content=
    "HTML Tidy for HTML5 for Linux version 5.2.0">
  <META charset="utf-8">
  <TITLE>blah ombid lipsum</TITLE>
</HEAD>
<BODY>
  <P>I'm the expected content</P>
  <DIV unexpectedattribute="very unexpected">
    <P>I'm wanted but not where you thought I'd be</P>
    <P class="strangeParagraphType">I'm also wanted text but also mislocated</P>
  </DIV>
</BODY>
</HTML>

I can find wanted text with

# Import Python libraries
import sys
from lxml import html

page = open( 'findme.html' ).read()
tree  = html.fromstring(page)

wantedText = tree.xpath(
  '//*[contains(text(),"wanted text")]' )

print( len( wantedText ), ' item(s) of wanted text found')

Having found it, however, I'd like to be able to print out the fact that the wanted text is located at: /HTML/BODY/DIV/P ... or, even better, to show that it is located at /HTML/BODY/DIV/P[2] ... and much better, to show that it is located at that location with /DIV having unexpectedattribute="very unexpected" and the final <P> having the class of strangeParagraphType.

marked as duplicate by Tomalak xpath Jan 25 at 5:52

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • Don't use open('filename.html') and then tree = html.fromstring(). Use tree = html.parse('filename.html'). The latter has some form of file encoding autodetection. The former does not. – Tomalak Jan 25 at 5:44
  • Thank you for the observation re the use of open. With regard to the possible duplicate, in my view it is not a duplicate despite the title of the other page. The referenced page doesn't deal sensibly with HTML, it uses a well-formed XML string. Additionally, the provided answers don't actually produce the result that was wanted in the OP! – user02814 Jan 25 at 6:16
  • HTML or XML is irrelevant. Something it can be parsed into a tree, getpath will get you the 2nd form of XPath you were willing to accept (/HTML/BODY/DIV/P[2]). – Tomalak Jan 25 at 6:26
  • There is no way to get the 3rd form of XPath automatically, because that would require mind-reading. You can build it yourself by using a loop like for parent_node in node.xpath('ancestor::*'):, which builds a bespoke string from tag names and any attribute values you want to include. – Tomalak Jan 25 at 6:31
  • 1
    tree.getpath(wantedText[0]), and so on. – Tomalak Jan 25 at 8:19
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Could use something like this for the first example you have:

['/'.join(list([wt.tag] + [ancestor.tag for ancestor in wt.iterancestors()])[::-1]).upper() for wt in wantedText]

Third one can be created using the attrib property on the element objects and some custom logic:

wantedText[0].getparent().attrib
>>> {'unexpectedattribute': 'very unexpected'}
wantedText[0].attrib
>>> {'class': 'strangeParagraphType'}

Edit: Duplicate answer link up top is definitely a better way to go.

  • I'm sorry, but I don't understand first part of the the suggested code. Could you explain where it should go in my own code. If I insert it at the end of the existing code, it doesn't produce any output and I'm not clear about what it does produce. Thanks for the examples about printing the attributes. In that instance, I am clear about how to modify if and produce the custom logic. – user02814 Jan 25 at 6:22
  • OK, I've worked through your code again a few times ... and now I understand it. Thank you. – user02814 Jan 25 at 6:41
  • No problem. I think the answer linked as a duplicate is much better and is the way it should be done. – cullzie Jan 25 at 6:45

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