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sRecieved = "<XmlClient>2.0</XmlClient><XmlVersion>3.0</XmlVersion>"

Dim xml As New XmlDocument()

xml.LoadXml(sRecieved)

error There are multiple root elements .....i want xmlclent value and xmlversion value

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whar are you trying to do? sRecieved string should have valid xml – SMK Jul 25 '12 at 7:24
    
Possible duplicate: stackoverflow.com/questions/7199047/xml-parser-multipule-roots – Dennis Jul 25 '12 at 7:29
up vote 3 down vote accepted

Well yes, your data isn't a valid XML document. (The error message is pretty clear - you've got multiple top-level elements.) You could make it a valid document by adding a dummy root element:

xml.LoadXml("<root>" & sReceived & "</root>")

... but if you get the chance to change whatever's sending the data, it would be better if it sent an actual XML document.

EDIT: If you're able to use LINQ to XML instead of XmlDocument, getting the client number and the version number are easy. For example, as text:

Dim clientVersion = doc.Root.Element("XmlClient").Value
Dim xmlVersion = doc.Root.Element("XmlVersion").Value 

EDIT: Okay, if you're stuck with XmlDocument, I believe you could use:

Dim clientVersionNode = doc.DocumentElement.GetElementsByTagName("XmlClient")(0)
Dim clientVersion = (CType(clientVersionNode, XmlElement)).InnerText

(and likewise for xmlVersion)

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thanx man...now i want value of xclient and xversion..any idea? – faizan ali Jul 25 '12 at 7:38
    
@faizanali: Well personally I'd use LINQ to XML instead of XmlDocument - is that an option for you? – Jon Skeet Jul 25 '12 at 7:41
    
no i have only option xmldocument – faizan ali Jul 25 '12 at 7:52
    
@faizanali: Wow, you're really stuck on .NET 2 or 3? Ick. Okay, will have a look at the XmlDocument API to see if I can remember it. It may not be nice VB though... – Jon Skeet Jul 25 '12 at 7:59
    
done thanks..... – faizan ali Jul 25 '12 at 8:02

This error is occur because there is no root element in your xml string.

Try this

sRecieved = "<xmlroot><XmlClient>2.0</XmlClient><XmlVersion>3.0</XmlVersion></xmlroot>"

Dim xml As New XmlDocument()

xml.LoadXml(sRecieved)
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