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Subject: RE: [xsl] new bie question From: "Michael Kay" <mike@xxxxxxxxxxxx> Date: Tue, 5 Dec 2006 02:55:33 -0000 |
In 2.0:
select="document(document('index.xml')/protest/package/name/concat(.,
'.xml'))">
In 1.0:
<xsl:for-each select="document('index.xml')/protest/package/name">
<xsl:for-each select="document(concat(., '.xml'))">
....
Michael Kay
http://www.saxonica.com/
> -----Original Message-----
> From: chun ji [mailto:cji_work@xxxxxxxxx]
> Sent: 04 December 2006 23:27
> To: xsl-list@xxxxxxxxxxxxxxxxxxxxxx
> Subject: [xsl] new bie question
>
> I have an index.xml file, which reads as:
> "
> -<?xml version="1.0" encoding="ISO-8859-1" ?>
> -<?xml-stylesheet href="rules.xsl" type="text/xsl"?> -<protest>
> -<package>
> -<name>billing</name>
> -</package>
> -<package>
> -<name>timecard</name>
> -</package>
> -</protest>
> ".
> There is a group of child xml files that associated with each
> "/protest/package/name", such as "billing.xml", "timecard.xml".
>
> Now I have soming in my XSL file that tries to open all these
> CHILD xml files, " <xsl:for-each
> select="document(document('index.xml')/protest/package/name)">
> .
> </xsl:for-each>
> "
> which fails, because I did not give ".xml" for each
> child xml.
>
> Does someone know the format to do it ?
>
>
> thanks a lot
>
>
> cji
>
>
>
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