RE: [xsl] Xsl:copy-of writes xmlns:xsi always - Any way to avoid this?

Thanks  Micheal for the quick reply,

I have to stick onto XSLT1.0.

I used the following .. But the problem was that it is not copying
nested. 
It just copies the direct chile element nodes. If the child element has
another child, do I have to write one more for-each OR is there a simple
way.

            <xsl:for-each select="./*">
                <xsl:element name="{name()}"
namespace="{namespace-uri()}">
                <xsl:copy-of select="@*"/>
                <xsl:apply-templates/>
            </xsl:element>
            </xsl:for-each>

Once I select a particular node, all the contents (including next level
- children) should be translated to another XML. Please advice.

regards
Binu Kuttikkattu Idicula

-----Original Message-----
From: Michael Kay [mailto:mike(_at_)saxonica(_dot_)com] 
Sent: Monday, March 05, 2007 2:53 PM
To: xsl-list(_at_)lists(_dot_)mulberrytech(_dot_)com
Subject: RE: [xsl] Xsl:copy-of writes xmlns:xsi always - Any way to
avoid this?

>   
> Hi,
>   I use <xsl:copy-of select="./*"/> to select child elements of a node
> which passes <xsl:when>. However copy-of is inserting 
> xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance with each child 
> element it selects.
In XSLT 2.0 you can copy an element without copying its namespaces using
the copy-namespaces="no" attribute.

In XSLT 1.0 the answer is no. xsl:copy-of copies a tree unchanged, which
includes its namespace nodes (remember that in the data model, an
element has namespace nodes corresponding to all in-scope namespaces,
including those declared on ancestor elements). You only remedy is not
to use xsl:copy-of, but to do a manual copy using a modified identity
template:

<xsl:template match="*">
  <xsl:element name="{name()}" namespace="{namespace-uri()}">
  <xsl:copy-of select="@*"/>
  <xsl:apply-templates/>
  </xsl:element>
</xsl:template>

Michael Kay
http://www.saxonica.com/


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