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.

Walking through nokogiri and selecting elements with an xpath is fairly easy. I need the vice versa of this, meaning: I need to e.g. call .to_xpath on a nokogiri node to get the full xpath of an element to store it in a record.

Anyone knows a way of doing this?

share|improve this question
    
XML or HTML? Do all of your nodes have id attributes? –  mu is too short Aug 19 '11 at 6:56
    
it's html and they don't have any id nodes because there are custom html tags used which gets substituted and multiplied dynamically.. –  pduersteler Aug 19 '11 at 7:10
    
You probably want to go with Serabe's but I'll leave mine around anyway. Sorry if my tunnel vision made you do more work than necessary. –  mu is too short Aug 19 '11 at 9:44
    
thanks anyway for your detailes solution, i like it though. Couldn't find what i needed in the doc's, too :) –  pduersteler Aug 19 '11 at 13:17

2 Answers 2

up vote 5 down vote accepted

Easiest way I can think off would be:

Nokogiri::CSS.xpath_for node.css_path

EDIT: you can give path method a try too.

share|improve this answer
    
Thank you. Nokogiri's a great library with methods for almost everything you can think of. –  Serabe Aug 19 '11 at 10:12
    
just saw that css_path also will do the trick, this may speed things up. thanks! –  pduersteler Aug 19 '11 at 13:21

The easiest thing I can think of would be to use parent to build an element path back to the root (i.e. back to <html>) and previous_element at each node to figure out the numeric index of that node amongst its siblings. Since there will be exactly one <body> and <html> (Nokogiri will add these for you behind your back if necessary) you can stop walking up the parents once you hit the <body> node.

The algorithm looks like this:

  1. Initialization: path = [ ], n is the node you already have.
  2. Set s = n and call s = s.previous_element until s.nil? and count how many iterations you made, this will give you the position of n amongst its siblings. Put the position in index. Keep in mind that XPath positions are one-based.
  3. Store the new path component: path.unshift('*[' + index.to_s + ']').
  4. Set p = n.parent, if p is not the <body> then n = p and go back to step 2.
  5. Add the final components that we know are there: path.unshift('body').unshift('html').
  6. Build the XPath expression: xpath = '/' + path.join('/')

So given some HTML like this:

<ul><li>a</li><li><b>b<em>c</em></b></li></ul>

and a start node of <em>c</em>, you'd end up with an XPath like this:

/html/body/*[1]/*[2]/*[1]/*[1]

Not exactly pretty but at least the process is fairly simple and the resultant XPath will be unique.

If you need paths to most of the nodes in the DOM then you could start at the root and number all the nodes on the way down. That way you could avoid walking the siblings over and over again.

share|improve this answer
    
thanks, will try this! –  pduersteler Aug 19 '11 at 8:18
    
@pduersteler: You probably want to add a couple tests to make sure you get the 0/1/many siblings numbers right. –  mu is too short Aug 19 '11 at 8:24

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.