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Let's say I have this XML file:

<Names>
    <Name>
        <FirstName>John</FirstName>
        <LastName>Smith</LastName>
    </Name>
    <Name>
        <FirstName>James</FirstName>
        <LastName>White</LastName>
    </Name>
</Names>

And now I want to print all the names of the node:

Names
Name
FirstName
LastName

I managed to get the all in a XmlNodeList, but I dont know how SelectNodes works.

XmlNodeList xnList = xml.SelectNodes(/*What goes here*/);

I want to select all nodes, and then do a foreach of xnList (Using the .Value property I assume).

Is this the correct approach? How can I use the selectNodes to select all the nodes?

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3 Answers 3

up vote 2 down vote accepted

Ensuring you have LINQ and LINQ to XML in scope:

using System.Linq;
using System.Xml.Linq;

If you load them into an XDocument:

var doc = XDocument.Parse(xml);    // if from string
var doc = XDocument.Load(xmlFile); // if from file

You can do something like:

doc.Descendants().Select(n => n.Name).Distinct()

This will give you a collection of all distinct XNames of elements in the document. If you don't care about XML namespaces, you can change that to:

doc.Descendants().Select(n => n.Name.LocalName).Distinct()

which will give you a collection of all distinct element names as strings.

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Sorry, 'System.Xml.XmlDocument' does not contain a definition for 'Descendats', should I be Importing somthing that I am not? –  Trufa May 13 '12 at 23:35
    
Like I said, you need an XDocument, not XmlDocument to do this. I think XDocument is easier to work with, so I would suggest that you use that instead of XmlDocument. –  svick May 13 '12 at 23:36
    
Ohh sorry, but I get the same error message with XDocument: Error 1 'System.Xml.Linq.XDocument' does not contain a definition for 'Descendats' and no extension method 'Descendats' accepting a first argument of type 'System.Xml.Linq.XDocument' could be found (are you missing a using directive or an assembly reference?) C:\Users\majo\Desktop\Obligatorio\ConsoleApplication1\Program.cs 66 ‌​17 ExerciseOne –  Trufa May 13 '12 at 23:42
    
There was a small spelling error (Descendants was spelt Descendats). It's fixed now, try again. –  yamen May 14 '12 at 0:07
    
@yamen ahh good catch but it now gives me: Error 1 'System.Collections.Generic.IEnumerable<System.Xml.Linq.XElement>' does not contain a definition for 'Select' and no extension method 'Select' accepting a first argument of type 'System.Collections.Generic.IEnumerable<System.Xml.Linq.XElement>' could be found (are you missing a using directive or an assembly reference?) C:\Users\majo\Desktop\Obligatorio\ConsoleApplication1\Program.cs 66 ‌​31 ExerciseOne Any Ideas why? –  Trufa May 14 '12 at 0:10

There are several ways of doing it.

With XDocument and LINQ-XML

foreach(var name in doc.Root.DescendantNodes().OfType<XElement>().Select(x => x.Name).Distinct()) 
{ 
    Console.WriteLine(name); 
} 

If you are using C# 3.0 or above, you can do this

var data = XElement.Load("c:/test.xml"); // change this to reflect location of your xml file 
var allElementNames =  
(from e in in data.Descendants() 
select e.Name).Distinct();
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Why so verbose? doc.Root.DescendantNodes().OfType<XElement>() is the same as doc.Descendants() (except the latter could be more efficient). And I'm not sure why are you suggesting two different ways, XElement isn't available before .Net 3.5 anyway. –  svick May 13 '12 at 23:38
    
I'm not sure what else I should be importing:` Error 1 'System.Collections.Generic.IEnumerable<System.Xml.Linq.XNode>' does not contain a definition for 'OfType' and no extension method 'OfType' accepting a first argument of type 'System.Collections.Generic.IEnumerable<System.Xml.Linq.XNode>' could be found (are you missing a using directive or an assembly reference?) C:\Users\majo\Desktop\Obligatorio\ConsoleApplication1\Program.cs 66 ‌​61 ExerciseOne` –  Trufa May 13 '12 at 23:58

Add

 using System.Xml.Linq;

Then you can do

var element = XElement.Parse({Your xml string});

    Console.Write(element.Descendants("Name").Select(el => string.Format("{0} {1}", el.Element("FirstName").Value, el.Element("LastName").Value)));
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