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I have a input xml with a default namespace. eg as below.

<?xml version="1.0" encoding="UTF-8"?>
<root xmlns="aaa">
<subroot>
    <country>aaa</country>
    <country>bbb</country>
    <country>ccc</country>
</subroot>
</root>

While transforming I use xpath-default-namespace="aaa" because otherwise xpaths will not match. Again I have to read a lookup xml using xsl key function. eg as below

<?xml version="1.0" encoding="UTF-8"?>
<xsl:stylesheet version="2.0" xpath-default-namespace="aaa" xmlns:xsl="http://www.w3.org/1999/XSL/Transform">

<xsl:variable name="LookupDoc" select="document('lookup.xml')" />
<xsl:key name="ObjectType-lookup" match="lookup" use="@att1" />

<xsl:template match="//country">
    <countrynew>
        <xsl:apply-templates select="$LookupDoc/*">
            <xsl:with-param name="curr-code" select="string(.)" />
        </xsl:apply-templates>
    </countrynew>
</xsl:template>

<xsl:template match='lookups'>
    <xsl:param name="curr-code" />
    <xsl:value-of select="key( 'ObjectType-lookup' , normalize-space($curr-code))/@att2" />
</xsl:template>

with default namespace in stylesheet element xpath "//country" works fine. The problem arise when I read the lookup xml which doesn't have any namespace. eg:

<?xml version="1.0" encoding="UTF-8"?>
<x:lookups>
     <lookup att1="aaa" att2="zzz"/>
     <lookup att1="bbb" att2="yyy"/>
     <lookup att1="ccc" att2="xxx"/>
</x:lookups>

Is there any way that I can specify in template maching "lookups" to ignore xpath-default-namespace or to match any namespace including no namespce?

Thank you

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2 Answers

Is there any way that I can specify in template maching "lookups" to ignore xpath-default-namespace or to match any namespace including no namespce?

You can specify xpath-default-namespace anywhere in the stylesheet: an XPath expression will look up the tree and use the "nearest ancestor" value.

For any element in the stylesheet, this attribute has an effective value, which is the value of the [xsl:]xpath-default-namespace on that element or on the innermost containing element that specifies such an attribute

(From the XSLT 2.0 spec)

So you could say

<xsl:template match='lookups' xpath-default-namespace=''>

to override the default namespace specified on the xsl:stylesheet element. You can even specify it on a literal result element in the stylesheet, as xsl:xpath-default-namespace:

<something xsl:xpath-default-namespace="bbb" attr="{foo}" />

This would create a <something attr="xxx" /> where xxx is the value of the {bbb}foo child element of the current context node.

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I didn't knew xpath-default-namespace is usable in any place. For my actual situation I have number of xsl key functions. So what I did is move all key functions into a one document and put xpath-default-namespace="" to the stylesheet element. So I don't need to duplicate it in all key's. Thanks for the quick reply lan :) –  susitha senarath Feb 13 '13 at 12:35
    
@susithasenarath of course there's always the old-fashioned alternative of forgetting about xpath-default-namespace and instead mapping the URI to a prefix and using that in the XPaths, i.e. put xmlns:a="aaa" on the xsl:stylesheet and then use <xsl:template match="a:country">. –  Ian Roberts Feb 13 '13 at 12:43
    
yes Lan I consider that too. But still will not look good in my situation because I have already done the xsl and it has hundreds of xpath expressions. So if I have to put a prefix on each of then it'll be a nightmare. xpath-default-namespace give me a easy way out put introduce this problem. Now every thing is fine. :) –  susitha senarath Feb 14 '13 at 3:55
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I did solve problem but sure there will be other ways. What I did was I move template match for lookup and key xsl function to a different document and in xsl stylesheed element I put xpath-default-namespace="". So for those xpath matching xsl use default namespace as none.

Still I'm curious weather there is a way to specify in template itself to use no namespace while matching.

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