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<Root xmlns="http://tempuri.org/DataSourceSchemaConfig.xsd">
 <Node>
  <Name>Peter</Name>
 </Node>
 <Node>
  <Name>John</Name>
 </Node>
</Root>

How do I get List of Names?

I've was trying this, but it doesn't work, where is my mistake?

            var lists = from node in nodes.Descendants()
                        where node.Name.LocalName.Equals("Node")
                        select node.Elements("Name").First().Value;

L.B SOLUTION WORKS ONLY IF I REMOVE xmlns="http://tempuri.org/DataSourceSchemaConfig.xsd" from my ROOT tag.

share|improve this question
    
What version of .NET are you using? How are you loading the nodes variable (and what type is it)? With L.B's solution below, are you sure you're selecting "Name" and not "Node"? (although I still get the correct answer using both in LINQPad) – SPFiredrake May 23 '12 at 20:36
    
.NET 4. Strange but it doesn't work. – Wild Goat May 23 '12 at 20:42
    
@WildGoat See my edit – L.B May 23 '12 at 20:52
up vote 5 down vote accepted
 XDocument xDoc = XDocument.Load(....);
 var names = xDoc.Descendants("Name").Select(x => x.Value);

--EDIT--

XDocument xDoc = XDocument.Load(....);
XNamespace ns = XNamespace.Get("http://tempuri.org/DataSourceSchemaConfig.xsd");
var names = xDoc.Descendants(ns+"Name").Select(x => x.Value);
share|improve this answer
    
For some reason your solution doesn't work. Enumeration yielded no results – Wild Goat May 23 '12 at 20:33
    
It works. Have you iterated on names? or tried to add a ToList() to the end? – L.B May 23 '12 at 20:35
    
@WildGoat: If your xml is in a string variable you should use XDocument.Parse(xml) – Phil May 23 '12 at 20:36
    
@Phil XDocument.Load(new StringReader(xml)) can also work – L.B May 23 '12 at 20:37
1  
XNamespace ns = "http://tempuri.org/DataSourceSchemaConfig.xsd"; would also work :P – SPFiredrake May 23 '12 at 20:54

try this:

var lists = (from node in nodesxml.Root.Descendants("Node")
                     select new
                     {Name = node.Element("Name").Value}).ToList();

where nodesxml is your XDocument

share|improve this answer

Yet another solution (not LINQ but works, namespace agnostic):

 XmlDocument doc = new XmlDocument();
 doc.LoadXml(xmlstring);
 XmlNodeList nlist = doc.SelectNodes("/*[local-name(.)='Root']/*[local-name(.)='Node']/*[local-name(.)='Name']/text()");
 var list = new List<string>(nlist.Cast<XmlNode>().Select(x => x.Value));

That XPath takes care of the DefaultNamespace issue, since you cannot use the XmlNamespaceManager to specify the default namespace.

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