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I am trying to copying an XML into an identical XML

I am using the following XSLT:

<?xml version="1.0" encoding="utf-8"?>
<xsl:stylesheet version="1.0" xmlns:xsl="http://www.w3.org/1999/XSL/Transform"
    xmlns:msxsl="urn:schemas-microsoft-com:xslt" exclude-result-prefixes="msxsl"
>
  <xsl:output indent="yes" method="xml"/>

  <xsl:template match="@*|node()">
    <xsl:copy>
      <xsl:apply-templates select="@*|node()"/>
    </xsl:copy>
  </xsl:template>
</xsl:stylesheet>

If the Input XML is:

<CatalogRequest>
    <RequestFileHeader>
      <ClientCode>340000</ClientCode>
      <CreateTime>2012-04-11T14:57:03.357</CreateTime>
    </RequestFileHeader>
</CatalogRequest>

I get the following as result:

<?xml version="1.0" encoding="Windows-1252"?>
<ROOT>
<CatalogRequest>
    <RequestFileHeader>
      <ClientCode>340000</ClientCode>
      <CreateTime>2012-04-11T14:57:03.357</CreateTime>
    </RequestFileHeader>
</CatalogRequest>
</ROOT>

Any idea on how to keep the same XML without the <ROOT> node added to it.

This is being called as follows:

Dim Xct As New XslCompiledTransform 
Xct.Load(New XmlTextReader(New StreamReader(xsltFileName))) 
Dim xal As New XsltArgumentList 
Dim helper As New XsltHelper 
xal.AddExtensionObject("urn:XsltHelper", helper) 
Dim memStream As New MemoryStream 
Dim streamWriter As New StreamWriter(memStream, Text.Encoding.GetEncoding(1252))
Xct.Transform(doc, xal, streamWriter)
share|improve this question
1  
What processor are you using? I don't see how ROOT would be added by that XSLT. –  Daniel Haley Apr 11 '12 at 19:12
    
Excuse my ignorance, this is the first time I word with XSLT how do I know which processor I am using? –  user994258 Apr 11 '12 at 19:16
    
What code are you using to call the XSLT? –  John Saunders Apr 11 '12 at 19:29
1  
When adding information such as the calling code, please edit the post and add it to the body instead of adding a comment. I've copied it there for you. –  Jim Garrison Apr 11 '12 at 20:17
    
Thank you, I didn't know –  user994258 Apr 11 '12 at 20:33

1 Answer 1

My best guess is that your calling code is automatically wrapping the XML you supply with a ROOT node.

I meant you to add this to your existing XSLT

<xsl:template match="ROOT">
    <xsl:apply-templates select="@* | node()"/>
</xsl:template>

Giving you this:

<?xml version="1.0" encoding="UTF-8"?>
<xsl:stylesheet xmlns:xsl="http://www.w3.org/1999/XSL/Transform" xmlns:msxsl="urn:schemas-microsoft-com:xslt" version="1.0" exclude-result-prefixes="msxsl">
   <xsl:output indent="yes" method="xml" />
   <xsl:template match="@*|node()">
      <xsl:copy>
         <xsl:apply-templates select="@*|node()" />
      </xsl:copy>
   </xsl:template>
   <xsl:template match="ROOT">
      <xsl:apply-templates select="@* | node()" />
   </xsl:template>
</xsl:stylesheet>

I am not promising this will work - it's a guess

share|improve this answer
    
I believe you are correct. But the XSLT you provided copies the value of the nodes (and not the nodes structure) and it creates an invalid XML. Any ideas? –  user994258 Apr 12 '12 at 12:55
    
Thankyou I'll try it. –  user994258 Apr 12 '12 at 20:19

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