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I know about Console.SetOut, but can't figure out what I should pass to this method.

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This is specific for your XSLT processor. There is nothing in XSLT language to enforce this. That's why the xsltprocessor tag. – user357812 Mar 31 '11 at 19:51
    
I consider that the subject of XSLT is wider than just XSLT language itself. But OK, I'll restore the xsltprocessor tag, although its meaning isn't obvious enough without explanation in the tag wiki. – thorn Apr 1 '11 at 8:58
    
As a rule of thumb, if question nor answers include any reference to XSLT instructions, then it's not an XSLT question. – user357812 Apr 1 '11 at 14:42
    
My question has the reference to xsl:message! :) – thorn Apr 1 '11 at 14:55
up vote 2 down vote accepted

Console.SetOut will set stream for console outputs. Use XsltMessageEncountered event of XsltArgumentList class and write the message to Trace listenres using Trace.Write.

void TestTransform()
{
    XsltArgumentList xsltargs = new XsltArgumentList();
    xsltargs.XsltMessageEncountered += new XsltMessageEncounteredEventHandler(OnXsltMessageEncountered);

    XslCompiledTransform transform = new XslCompiledTransform();
    //....some code to load xslt and other stuffs. Pass the xsltargs to transform
}

void OnXsltMessageEncountered(object sender, XsltMessageEncounteredEventArgs e)
{
    //write the message to Trace.
    Trace.Write(e.Message);
}
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Yeah, I've already found this solution. This is supported by XslCompiledTransform only. Console.SetOut is the only way to do this with XslTransform. – thorn Jan 20 '10 at 11:10

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