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I want to read a section from the XML file below with C#.

 <?xml version="1.0" encoding="utf-8" > 
 <DataSet>
 <xs:schema id="NewDataSet" xmlns:xs="http://www.w3.org/2001/XMLSchema" xmlns:msdata="urn:schemas-microsoft-com:xml-msdata">
 <xs:element name="NewDataSet" msdata:IsDataSet="true" msdata:UseCurrentLocale="true">
 <xs:complexType>
 <xs:choice minOccurs="0" maxOccurs="unbounded">
 <xs:element name="Table">
 <xs:complexType>
 <xs:sequence>
  <xs:element name="Column1" type="xs:string" minOccurs="0" /> 
  </xs:sequence>
  </xs:complexType>
  </xs:element>
  </xs:choice>
  </xs:complexType>
  </xs:element>
  </xs:schema>
 <diffgr:diffgram xmlns:diffgr="urn:schemas-microsoft-com:xml-diffgram-v1" xmlns:msdata="urn:schemas-microsoft-com:xml-msdata">
 <NewDataSet>
 <Table diffgr:id="Table1" msdata:rowOrder="0">
  <Column1><Properties><Property>.....

I want to extract the nodes below the Column1 nodes. The Properties node has lots of Property nodes, so I want the Properties node with all the Property nodes.

Please let me know the easiest and efficient way to get the nodes in C#.

share|improve this question
    
What have you tried. Where are you stuck? Linq-to-XML is probably the easiest –  sehe Feb 18 '13 at 8:43
    
I tried using XMLNodelist and then looping xml nodes but i want the easiest and efficient... can u give a sample of how it will be done in linq to xml? –  Varun Feb 18 '13 at 8:46
    
Usually, you should show the gist of the code you're using right now so people can adapt that a little. –  sehe Feb 18 '13 at 8:54
    
Your resultset will always be a nodelist, whatever method you use. If you want to do something with each one of those results, you can't get around looping through them. Also, the XML you posted is irrelevant up to <Column1> and what should be up there, isn't. –  Wim Ombelets Feb 18 '13 at 9:08
    
@wim my code is like XMLData obj = new XMLData(); DataSet dsXML = new DataSet(); XmlDocument docXML = new XmlDocument(); dsXML = obj.GetXML(); XmlElement xE = (XmlElement)Serialize(dsXML); string strXml = xE.OuterXml.ToString(); XElement xDoc = XElement.Parse(strXml); var properties = xDoc.XPathSelectElements("//Column1"); –  Varun Feb 18 '13 at 11:55

1 Answer 1

You can use an Linq-to-XML classes to parse the string and then XPath expression to select the nodes that you want:

XElement doc = XElement.Parse(s); //where s is a string containing the XML
var properties = doc.XPathSelectElements("//Column1/Properties");

Now properties contains a enumerable of the nodes that you want.

If you want to iterate through all the Property nodes you can do so like this:

foreach(var pp in properties)
{
    foreach(var p in pp.Elements("Property"))
    {
         //do something
    }
}
share|improve this answer
    
How can i just convert properties to XElement to load in the XMLDocument object? I have a function which returns the XMLDocument and as i have got what i want in properties object, i want to just convert it into xlement.outerxml.ToString() and load the xmldocumnet object from it like docXML.LoadXml(xelementvariable.OuterXml.ToString()); and return the value –  Varun Feb 18 '13 at 11:07
    
I fixed it myself. –  Varun Feb 27 '13 at 10:02

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