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I have this xml:

<Root>
  <RootKey>1</RootKey>
  <ChildL1>
    <ChildL1Key>12</ChildL1Key>
    <Child2>
      <Child2Key>TakeMe</Child2Key>
    </Child2>
    <Child2>
      <Child2Key>365</Child2Key>
    </Child2>
  </ChildL1>
  <ChildL1>
    <ChildL1Key>95</ChildL1Key>
    <Child2>
      <Child2Key>958</Child2Key>
    </Child2>
    <Child2>
      <Child2Key>574</Child2Key>
    </Child2>
  </ChildL1>
</Root>

I need to extract the the parents of the Child2 where Child2Key == "TakeMe". The result would be:

<Root>
  <RootKey>1</RootKey>
  <ChildL1>
    <ChildL1Key>12</ChildL1Key>
    <Child2>
      <Child2Key>TakeMe</Child2Key>
    </Child2>
  </ChildL1>
</Root>

I can probably do it in 2 steps. Iterate through parent upwards from Child2 and get their keys, and in the next step remove the elements with other keys. I'd rather do it in one query if possible.

share|improve this question
1  
Why would the ChildL1Key element be included, and the RootKey element? Those aren't direct ancestors of Child2Key. – Jon Skeet Nov 10 '12 at 22:23
1  
Because they are part of the parent of Child2 which as I said I need to extract. Thanks for the votedown. – Yoav Nov 10 '12 at 22:28
    
@Yoav you need xml as output, or just data? – Sergey Berezovskiy Nov 10 '12 at 22:34
    
I need xml as output. – Yoav Nov 10 '12 at 22:39
    
@Yoav: RootKey is not part of the parent of Child2, but the other Child2 is. I hadn't voted your question down before, but now that it seems you have no intention of clarifying it, I will. Please read tinyurl.com/so-hints and edit your question. Currently it's unanswerably vague. – Jon Skeet Nov 10 '12 at 22:49
up vote 0 down vote accepted
XDocument xdoc = XDocument.Load(path_to_xml);
xdoc.Descendants("Child2")
    .Where(c2 => c2.Element("Child2Key").Value != "TakeMe")
    .Remove();

xdoc.Descendants("ChildL1")
    .Where(c1 => !c1.Descendants("Child2").Any())
    .Remove();

// now xdoc contains what you need
string xml = xdoc.ToString();

First query removes all Child2 nodes which does not match search condition.

Second query removes all ChildL1 which do not have Child2 nodes anymore.

Special for LB

xdoc.Descendants("ChildL1")            
    .Where(c1 => !c1.Descendants("Child2")
                    .Any(c2 => c2.Element("Child2Key").Value == "TakeMe"))
    .Concat(xdoc.Descendants("Child2")
                .Where(c2 => c2.Element("Child2Key").Value != "TakeMe"))
    .Remove();
share|improve this answer
    
I can probably do it in 2 steps. ....... I'd rather do it in one query if possible. – L.B Nov 10 '12 at 23:04
    
Read question carefully: I can probably do it in 2 steps. Iterate through parent upwards from Child2 and get their keys, and in the next step remove the elements with other keys. I'd rather do it in one query if possible. - I do this in one first step. Also it is not complete solution. OP needs 3rd step to remove ChildL1 nodes. Also this task is not effective to do in one step (if it possible) – Sergey Berezovskiy Nov 10 '12 at 23:11
    
No need to be rude, you do in one step? – L.B Nov 10 '12 at 23:14
    
@L.B yes, see updated comment – Sergey Berezovskiy Nov 10 '12 at 23:14
    
Just go on....... – L.B Nov 10 '12 at 23:21

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