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I am looking for an example of a XQuery that returns the xpath for each node found. So for example instead of getting the text() of each found node I would like to get the path() - but that function doesn't seem to exist :-)

I see now that the XPath 3.0 spec defines a path() function that would do what i want, but apparently this is new to 3.0

http://www.w3.org/TR/2011/WD-xpath-functions-30-20111213/#func-path

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1  
Well there is nothing like "the xpath" for a node so you would first need to explain what kind of path you want to generate for a node. –  Martin Honnen Feb 4 '12 at 16:38

1 Answer 1

up vote 3 down vote accepted

As Martin Honnen commented, the XPath expression selecting a specific node isn't unique. For example, the second y element in the following document

<x>
  <y id="1"/>
  <y id="2"/>
</x>

could be selected (non-exclusively) by:

//y[2],
/x/y[2],
//*[@id = '2'],
/x/*[position() = last()]

If you are just interested in getting some XPath expression selecting the node, the FunctX XQuery Function Library contains two functions that do that:

  • functx:path-to-node returns an XPath expression that selects all nodes with the same name and ancestor names as the node you evaluate it for.

    In our example it would return x/y for both y elements (mind the missing leading slash).

  • functx:path-to-node-with-pos also includes the position of each ancestor in the document, thereby only selecting the node you pass in.

    In the example, the first y element would produce x/y[1] and the second one x/y[2].

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2  
If you want to use the path to find the node using an XPath processor, then you will also need to think carefully about namespaces, because in general path expressions rely on externally-specified namespace declarations. –  Michael Kay Feb 4 '12 at 18:56
    
Thanks. I shall look at the FunctX library. –  matisse Feb 4 '12 at 19:43
    
I looked at the FunctX library and using functx:path-to-node-with-pos (which depends on functx:index-of-node) works for what i want. –  matisse Feb 4 '12 at 19:49
1  
If my answer solves your problem, could you please accept it? –  Leo Wörteler Feb 4 '12 at 21:43

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