Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have an XML file of site structure and would like to search for a node based on concatenated values of that node and its parents.

Here is a sample of the XML:

<site>
    <page id="1">
        <url></url>
        <url>home</url>
        <page id="2">
            <url>about-us</url>
        </page>
        <page id="3">
            <url>locations</url>
            <page id="4">
                <url>scotland</url>
                <page id="5">
                    <url>glasgow</url>
                </page>
                <page  id="6">
                    <url>edinburgh</url>
                </page>
            </page>
        </page>
    </page>
</site>

So if the URL was /locations/scotland/edinburgh I'd want to select page id=6.

I'm hoping the XPath query could be something in the realm of...

//page[fn:string-join(ancestor-or-self::page[
                url='locations/scotland/edinburgh'],'/')]

Any tips would be awesome.

share|improve this question

1 Answer 1

up vote 1 down vote accepted

You need first to split the URL into its path constituents (which can be easily done with XPath 2.0, but not at all in XPath 1.0), then construct and evaluate this XPath expression:

//page[url='locations']
       /page[url='scotland']
          /page[url='edinburgh']
            /@id

This selects the required id attribute.

The string value of this id attribute (6) is the result of evaluating the following XPath expression:

string(//page[url='locations']
          /page[url='scotland']
             /page[url='edinburgh']
               /@id
       )

Update:

A single, generic XPath 2.0 expression exists that given a parameter named $pUrl that contains the Url, finds all page elements with the wanted property:

//page
   [ends-with(
              concat('/',
                     string-join(ancestor-or-self::*/url, '/')
                    ),
              $pUrl
             )
   ]

XSLT 2.0 verification:

<xsl:stylesheet version="2.0"
 xmlns:xsl="http://www.w3.org/1999/XSL/Transform"
 xmlns:xs="http://www.w3.org/2001/XMLSchema">
 <xsl:output omit-xml-declaration="yes" indent="yes"/>

 <xsl:param name="pUrl" select="'/locations/scotland/edinburgh'"/>

 <xsl:template match="/">

  <xsl:sequence select=
   "//page
       [ends-with(
                  concat('/',
                         string-join(ancestor-or-self::*/url, '/')
                        ),
                  $pUrl
                 )
       ]
   "/>
 </xsl:template>
</xsl:stylesheet>

**when this transformation is applied on the provided XML document**:

<site>
    <page id="1">
        <url></url>
        <url>home</url>
        <page id="2">
            <url>about-us</url>
        </page>
        <page id="3">
            <url>locations</url>
            <page id="4">
                <url>scotland</url>
                <page id="5">
                    <url>glasgow</url>
                </page>
                <page  id="6">
                    <url>edinburgh</url>
                </page>
            </page>
        </page>
    </page>
</site>

the wanted, correct page element is selected and output:

<page id="6">
    <url>edinburgh</url>
</page>
share|improve this answer
    
is there no way to compare the url string to a concatenated string of each url nodes and their ancestors???? i'd prefer to not have to build a new query each time... –  Ian Wood Dec 10 '11 at 13:34
    
@IanWood: No, unless you concatenate all url attributes first -- this could be done in a single XPAth 2.0 expression, but can't be expressed only with a single XPath 1.0 expression. –  Dimitre Novatchev Dec 10 '11 at 18:04
    
ok so concatenating the url part - what would the xpath2 query resemble? –  Ian Wood Dec 10 '11 at 21:16
    
@IanWood: I updated my answer with the requested single XPath 2.0 expression. –  Dimitre Novatchev Dec 10 '11 at 22:04
    
thanks @dimitre –  Ian Wood Dec 12 '11 at 4:01

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.