The rules for a literal result element say that all its in-scope namespaces
are copied to the result tree.
However, you should be able to prevent this using exclude-result-prefixes.
If this isn't working, please supply a complete (but small!) stylesheet to
demonstrate the problem so we can see what you are doing wrong.
Michael Kay
http://www.saxonica.com/
-----Original Message-----
From: António Mota [mailto:amsmota(_at_)gmail(_dot_)com]
Sent: 18 October 2005 00:59
To: xsl-list(_at_)lists(_dot_)mulberrytech(_dot_)com
Subject: [xsl] Namespace on output node but not not in source
Hi:
I have a xsl with a namespace declared
<xsl:transform xmlns:xsl="http://www.w3.org/1999/XSL/Transform"
version="1.0"
xmlns:xs="http://www.w3.org/2001/XMLSchema">
so i can make some lookups on a xsd file
<xsl:variable name="tipo"
select="$schema/xs:schema/xs:element[(_at_)name=$nome]/@type"/>
and that's all i do, i don't copy any node from $schema to
the output tree.
However, this
<xsl:template match="/">
<table>
<xsl:apply-templates
select="(//Menu)[position()=$pos]"/>
</table>
</xsl:template>
produces a
<table xmlns:xs="http://www.w3.org/2001/XMLSchema">
<...>
</table>
and i don't understand why, and i don't want it there.
I add a exclude-result-prefixes="xs" but it seems it makes no
diference.
Why is this?
Thanks.
--~------------------------------------------------------------------
XSL-List info and archive: http://www.mulberrytech.com/xsl/xsl-list
To unsubscribe, go to: http://lists.mulberrytech.com/xsl-list/
or e-mail:
<mailto:xsl-list-unsubscribe(_at_)lists(_dot_)mulberrytech(_dot_)com>
--~--
--~------------------------------------------------------------------
XSL-List info and archive: http://www.mulberrytech.com/xsl/xsl-list
To unsubscribe, go to: http://lists.mulberrytech.com/xsl-list/
or e-mail: <mailto:xsl-list-unsubscribe(_at_)lists(_dot_)mulberrytech(_dot_)com>
--~--