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I have xml-file looks like this:

<Knowledge>
  <Group name="Methods and Techniques">
    <Item name="OO" level="1" />
    <Item name="Dataflow Diagram" level="4" />
    <Item naeme="SDM" level="5" />
  </Group>
  <Group name="Languages">
    <Item name="C#" level="1" />
    <Item name="Delphi" level="1" />
    <Item name="Visual Basic" level="4" />  
  </Group>
</Knowledge>

... and I want to create a list by using a LINQ-query.

 var queryKnowledge = (from item in _Document.Descendants("Knowledge").Elements("Group")
                             select new
                             {
                                 Group = (string)item.Attribute("name"),
                                 Name = (string)item.Element("Item").Attribute("name"),
                                 Level = (string)item.Element("Item").Attribute("level")
                             }).AsQueryable();  

But I get a list of two items. First of each group.

But how I get a list looks this?

Group                  Name              Level
Methods and Techniques OO                1
Methods and Techniques Dataflow Diagram  4
Methods and Techniques SDM               5
Languages              C#                1
Languages              Delphi            1
Languages              Visual Basic      4

What do I have to change in my LINQ-query?

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2 Answers 2

up vote 7 down vote accepted

You need to flattern your hierarchy by using SelectMany Linq method or use Elements method, provided by LINQ to XML, which do the same job.

//xml variable contains string representation of your xml
//use XDocument.Load(filePath) to load xml having path to a file
var nodes = XDocument.Parse(xml)
                     .Descendants("Knowledge")
                     .Elements("Group")
                     .Elements("Item");

var queryKnowledge = from item in nodes
                             select new
                             {
                                 Group = (string)item.Parent.Attribute("name"),
                                 Name = (string)item.Attribute("name"),
                                 Level = (string)item.Attribute("level")
                             };

prints

Group                  Name             Level 
Methods and Techniques OO               1 
Methods and Techniques Dataflow Diagram 4 
Methods and Techniques null             5 
Languages              C#               1 
Languages              Delphi           1 
Languages              Visual Basic     4 

null is because your attribute in one Item has name as naeme. You also don't need AsQueryable here, as far as I can see.

As Chris kindly noted, you can use next code snippet to gather required nodes and then apply the same Select projection.

var nodes = XDocument.Parse(xml).Descendants("Item");
share|improve this answer
    
+1 Clever usage of Parent element –  Sergey Berezovskiy Mar 20 '13 at 11:05
2  
You could also just select _Document.Descendants("Item"), assuming that this is the whole schema. –  Christopher McAtackney Mar 20 '13 at 11:11
    
@ChrisMcAtackney +1, thanks, will update my answer –  Ilya Ivanov Mar 20 '13 at 11:13
    
+1 Beat me to it :) –  David Khaykin Mar 20 '13 at 11:13
    
Thanks. It works. I had to change a little bit "var _Document = XDocument.Load(Server.MapPath("/App_Data/Kennis.xml"));" ... and then: "var nodes = _Document" and the rest is the same. –  user1531040 Mar 20 '13 at 11:25

Actually since your example is pretty simple, you can just get the Item nodes by calling Elements("Item") and use Parent to get the Group name:

    var queryKnowledge = (from item in xDoc.Element("Knowledge").Elements("Group").Elements("Item")
                          select new
                          {
                              Group = (string)item.Parent.Attribute("name"),
                              Name = (string)item.Attribute("name"),
                              Level = (string)item.Attribute("level")
                          }).AsQueryable();

Note I changed first call to Element() instead of Descendants() assuming per your example you only have one such element.

share|improve this answer
    
Nice solution. And it looks quite simple. –  user1531040 Mar 20 '13 at 11:26

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