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How can I find the last node that contains a specific structure?

    <defect-event>
        <event-assigned-to>
            <assigned-to-user>
                <last-name>Doe</last-name>
                <first-name>John</first-name>
                <middle-name></middle-name>
            </assigned-to-user>
        </event-assigned-to>
    </defect-event>

There can be many "defect-event" nodes at the same level, below or above the one with the "assigned-to-user" sub node. There can also be multiple "defect-event" nodes with the "assigned-to-user" sub node.

I need to find the last one "defect-event" node which contains the "assigned-to-user" sub node.

Thanks!

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up vote 0 down vote accepted

Something on these lines is probably what you want:

defect-event[event-assigned-to[assigned-to-user]][position()=last()]

In effect, you're saying "find me all the defect-event which contains an event-assigned-to containing an assigned-to-user, and then just give me the one whose position() is last()".

Having said that, you might need to tweak this depending on the context you're in when you try to find the node, and what you're doing to the node (eg: behaviour might vary if you're in a for-each loop as opposed to an apply-templates situation).

share|improve this answer
    
Thanks for the description Emma, it works but I can't find how to get the nodes values now, for example last-name <xsl:variable name="lastName" select="defect-event[event-assigned-to[assigned-to-user]][position()=last()]"/> and then <xsl:value-of select="$lastName/last-name"/>; do you know what I should change? – user706058 Dec 14 '11 at 10:21
    
I just found out: <xsl:variable name="lastName" select="defect-event[event-assigned-to[assigned-to-user]][position()=last()]/eve‌​nt-assigned-to/assigned-to-user/last-name"/> Thanks! – user706058 Dec 14 '11 at 10:23
    
@user706058 Glad to know it helped and you worked out that my suggestion gives you the defect-event element, so you can just navigate down its children to get the desired information. – Emma Burrows Dec 14 '11 at 10:30

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