[xsl] Get parent's node position

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Subject: Get parent's node position - Urgent
From: "Paulo Henrique S. Bermejo" <bermejo@xxxxxxxxxxx>
Date: Tue, 25 Sep 2001 12:03:48 -0300

Hi all,

I would like take the "position" of parent's node.
I try:
<xsl:value-of select="position(parent::*)"/>
But didnt't work because position don't accept params.

To get the name of parent node I know:
<xsl:value-of select="name(parent::*)"/>
But I need the position.

Thanks all,

Paulo.


 XSL-List info and archive:  http://www.mulberrytech.com/xsl/xsl-list

Current Thread
Get parent's node position - Urgent Paulo Henrique S. Bermejo - Wed, 26 Sep 2001 11:12:09 -0400 (EDT) <= Michael Kay - Wed, 26 Sep 2001 11:42:43 -0400 (EDT) Gordon Stewart - Wed, 26 Sep 2001 12:30:22 -0400 (EDT) Jörg Heinicke - Wed, 26 Sep 2001 17:28:13 -0400 (EDT) Paulo Henrique S. Bermejo - Wed, 26 Sep 2001 14:29:35 -0400 (EDT)

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