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<xsl:stylesheet version="2.0" xmlns:xsl="">
<xsl:param name="blah">Content 1</xsl:param>
<xsl:param name="blah2">Content 2</xsl:param>

If I have the above XSLT file, what is the "correct" way to not just get the data, but also edit it and save it back to the file without doing a transform etc.

XmlDocument xslDoc = new XmlDocument();

      XmlNamespaceManager nsMgr = new XmlNamespaceManager(xslDoc.NameTable);
      nsMgr.AddNamespace("xsl", "");

      XmlNode PARAM_blah = xslDoc.SelectSingleNode(@"/xsl:stylesheet/xsl:param[@name='blah']", nsMgr);
      string blah = PARAM_blah.InnerText;

This returns the value of the param in question easily, but if I wanted to then edit this and save this change to the file ,how would I go about this?

share|improve this question
Did you try PARAM_blah.InnerText = "value"; and then xslDoc.Save(fileStream) ? – rene Oct 4 '12 at 15:13
@rene This was my first thought, but not sure what to assign to fileStream. I could read the XSLT into a filesteam? but then I would need to make sure my change goes in there? – JustAnotherDeveloper Oct 4 '12 at 15:14
FileStream filstream = File.Create("yournew.xslt"); – rene Oct 4 '12 at 15:16

1 Answer 1

up vote 1 down vote accepted

Simply do this:

  PARAM_blah.InnerText = "Content 2";
share|improve this answer
Thanks. I had no idea it was this easy. Works fine. Saves iterating or serialising – JustAnotherDeveloper Oct 5 '12 at 9:27

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