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.

I'm trying to execute an XPATH query that will allow me to select nodes based on two criteria.

First I need nodes that contain a unique attribute value and second I need nodes that contain a specific attribute value.

For example:

<rows>
    <row value="0" id="130"/>
    <row value="1" id="130"/>
    <row value="2" id="130"/>
    <row value="0" id="131"/>
    <row value="1" id="131"/>
    <row value="1" id="131"/>
    <row value="2" id="131"/>
    <row value="0" id="132"/>
    <row value="1" id="132"/>
    <row value="2" id="132"/>
</rows>

In this scenario I'd want all nodes that contain unique 'values' but only if they also have id="131". I would also want the second value='1' node removed. I would expect this result:

<row value="0" id="131"/>
<row value="1" id="131"/>
<row value="2" id="131"/>

Is this possible with a single XPATH query?

Thanks.

share|improve this question
    
Please see my comment in my answer. There was a typo in my xpath. Sorry about that. –  Daniel Haley Aug 29 '11 at 16:48
add comment

2 Answers

Yes, but it's not pretty. There is probably a better way, but here it goes:

/rows/row[@id='131'][(not(preceding-sibling::row[@id='131']) or not(following-sibling::row[@id='131'])) or 
                       preceding-sibling::row[@id='131']/@value != @value and 
                       following-sibling::row[@id='131']/@value != @value]

Here's an example using this on a slightly more complicated version of your input XML. (I added another <row value="1" id="131"/> to show that it only returns unique results.)

Input XML:

<rows>
  <row value="0" id="130"/>
  <row value="0" id="131"/>
  <row value="0" id="132"/>
  <row value="1" id="130"/>
  <row value="1" id="131"/>
  <row value="1" id="132"/>
  <row value="2" id="130"/>
  <row value="2" id="131"/>
  <row value="2" id="132"/>
  <row value="1" id="131"/>
</rows>

Results:

<row value="0" id="131"/>
<row value="1" id="131"/>
<row value="2" id="131"/>
share|improve this answer
    
Thanks for the effort DevNull but that query still returned duplicate values. I'm wondering if I'd be better off to query for the id and then loop over the results and remove the duplicate values? –  adampetrie Aug 26 '11 at 15:37
    
@adampetrie - What are you using to execute the query? I tested this in oXygen XML Editor and it worked fine. –  Daniel Haley Aug 26 '11 at 16:48
    
I also tested it with Dimitre's XPath Visualizer: huttar.net/dimitre/XPV/TopXML-XPV.html and it worked as expected. –  Daniel Haley Aug 26 '11 at 17:02
    
I tried oXygen and you're right, the example I give produces the expected output with your Query. The problem seems to be that my dumbed down Query for the sake of the post differs from my real-world scenario. I'll keep looking for a solution, but as far as my original question is concerned, consider it answered. Cheers. –  adampetrie Aug 26 '11 at 17:52
    
Can you please take a look at my edit above? Thanks. –  adampetrie Aug 29 '11 at 15:19
show 4 more comments

Sure, you can use the <xsl:key> element and the key() function. Construct a key that is the combination of the @value and @id attributes of a <row> element, and select only those 'key sets' that contain one node and whose @id attribute is equal to '131' (or whatever).

<xsl:key name="id-key" match="row" use="concat(@value, '-', @id)" />

<xsl:template
    match="row[count(key('id-key', concat(@value, '-', @id))) = 1 and @id='131']">
    <xsl:copy-of select="." />
</xsl:template>

Fun, isn't it?

Read more about it here: http://www.jenitennison.com/xslt/grouping/muenchian.html

EDIT: Sorry, I just realized you needed an XPATH query. Note to self: read the questions more carefully. However, the answer could still be useful, so I'll leave it.

share|improve this answer
add comment

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.