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.

Say I have this XML:

<root>
    <A></A>
    <B></B>
    <C>one</C>
    <C>two</C>
    <C>three</C>
    <D></D>
</root>

Now I want to get all nodes, except for The C nodes 'two' and 'three'. Now I want to choose which C node can stay by index.

So this is the xpath that I already have:

 //*[not(ancestor-or-self::C)]

But this removes all C nodes, so now I have to add an index to which C node I want to stay

//*[not(ancestor-or-self::C)] exept for C[1]

How can I accomplsh this so my output would be if I select index 1:

<root>
   <A></A>
   <B></B>
   <C>one</C>
   <D></D>
</root>

Or if I select index 2:

<root>
   <A></A>
   <B></B>
   <C>two</C>
   <D></D>
</root>

Hope I made myself clear enough :p thx

share|improve this question
    
Good question, +1. See my answer for a simple XPath expression that selects exactly the wanted nodes. –  Dimitre Novatchev Nov 19 '10 at 19:39

3 Answers 3

up vote 1 down vote accepted

Why except? You have any element but those, then you add some of those:

//*[not(ancestor-or-self::C)]|//C[1]/descendant-or-self::*
share|improve this answer
    
Ok, thanks, this works :) –  Rise_against Nov 19 '10 at 16:23
    
@Rise_against: You are wellcome. –  user357812 Nov 19 '10 at 16:38

i think it depends on what you define as "index". If you define "index" as the C that has n-1 C siblings then you can just do:

to display one the first (get rid of all afterwards

/root/*[not(name() = 'C'  and count(preceding::C) >= 1)]

to display only the second

/root/*[not(name() = 'C' and (count(preceding::C) < 1 or count(preceding::C) > 1))]

(I tested this with: http://www.xmlme.com/XpathTool.aspx just fyi )

share|improve this answer

Use:

//*[not(self::c and not(count(preceding-sibling::c) = $ind - 1))]

where $ind is the wanted position (1-based) of the c element you want to select.

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.