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For a very simple XML like this:

        <title>Empire Burlesque</title>
        <artist>Bob Dylan</artist>
        <title>Hide your heart</title>
        <artist>Bonnie Tyler</artist>
        <company>CBS Records</company>
        <title>Greatest Hits</title>
        <artist>Dolly Parton</artist>

and a simple xslt:

<xsl:template match="/">

why does it produce output like:

Empire Burlesque
Bob Dylan

Hide your heart
Bonnie Tyler
CBS Records

Greatest Hits
Dolly Parton

Where have all the XML tags gone? Should I surround <xsl:apply-templates/> with <xsl:copy> tags to get that to work?

share|improve this question
You probably should not " surround with <xsl:apply-templates/> with tags " -- anyone can show you what to do -- especially if you show us the wanted output and explain any desired rules/properties/constraints for the transformation. – Dimitre Novatchev Feb 23 '11 at 17:49
First duplicate found what is the reason behind XSLT parser's this behavior ? – user357812 Feb 23 '11 at 18:14

1 Answer 1

up vote 5 down vote accepted

It's because of the built-in templates, which visit all elements and print the values of text and attribute nodes (as long as a template applies to them). See my answer to this previous question for a full explanation:

XSLT 1.0 text nodes printing by default

You can use xsl:copy to perform the identity transform:

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

Which will output a copy of your source document.

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Code provided by OP doesn't "print attribute nodes". Either does empty XSL file. They are printed if they are applied. Proof link – Flack Feb 23 '11 at 19:24
*Either = Neither – Flack Feb 23 '11 at 19:38
@Flack - Of course you're right, but that's not the built-in template's fault. It's just because OP's XSLT never visits any attribute nodes. I thought about clarifying that. Maybe I will now. – Wayne Burkett Feb 23 '11 at 20:27

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