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`I have an XML file that contains a lot of 'Entry' nodes. Within each 'Entry' node there is usually a 'Year' and 'Title' child.

I'm trying to generate an HTML output that looks like this:

2012
    Title
    Title

2011
    Title

2010
    Title
    Title

This pattern should continue as long as an Entry with a unique year exists. I am having trouble getting it to only print the year once. I can get it to print each year once, but it will only print the title of one (assuming the first) entry. I can get it to print each entry with it's year, but it will show the year for each entry. I've used a combination of variables, generate-ids and keys but have ran into the problems described (I could have been doing each wrong).

  • There is no limit to the number of years, number of entries, or number of entries per year/group.
  • Each year should only be displayed once.

In terms of HTML, I'd like each sub-group (that shares a year) to be in its own Ordered List, but if that's not possible I wouldn't be surprised!

.

The general pattern of the XML file I am working with is like this:

root
    Entry
        Title
        Year

<root>
    <Entry>
        <Title>Num 1</Title>
        <Year>1991</Year>
    </Entry>
    <Entry>
        <Title>Num 2</Title>
        <Year>2011</Year>
    </Entry>
    <Entry>
        <Title>Num 3</Title>
        <Year>2012</Year>
    </Entry>
    <Entry>
        <Title>Num 4</Title>
        <Year>2012</Year>
    </Entry>
</root>

XSL version 1.0 or 2.0 is okay.

Here is the template match for Entry (It just takes the elements and puts everything in a single line list-item).

  •     <xsl:if test="Download">
      <xsl:text disable-output-escaping="yes">&lt;a href="http://thisisnot.real/publications/</xsl:text>
      <xsl:value-of select="Download"/>
      <xsl:text disable-output-escaping="yes">"&gt;</xsl:text>
        </xsl:if>
        <xsl:value-of select="Title"/>
        <xsl:if test="Download">
      <xsl:text disable-output-escaping="yes">&lt;/a&gt;</xsl:text>
        </xsl:if>
        <xsl:text>, </xsl:text>
    
     <!-- Add the handling for (possibly multiple) Authors -->
     <xsl:for-each select="Author">
         <xsl:value-of select="."/>,
     </xsl:for-each>
    
    
    
    
        <xsl:text>In </xsl:text>
        <EM>
          <xsl:value-of select="Booktitle"/>
        </EM>
        <xsl:text>, </xsl:text>
    
     <!-- Add the handling for Page -->
     <xsl:if test="Page">
          page <xsl:value-of select="Page"/>,
     </xsl:if>
    
     <!-- Add the handling for Address -->
     <xsl:if test="Address">
        <xsl:value-of select="Address"/>,
     </xsl:if>
    
     <!-- Add the handling for Year-Convert numeric Month to letters: eg, from 1 to January -->
     <xsl:for-each select="Month">
        <xsl:choose>
           <xsl:when test=".=1">January <xsl:value-of select="../Year"/></xsl:when>
           <xsl:when test=".=2">February <xsl:value-of select="../Year"/></xsl:when>
           <xsl:when test=".=3">March <xsl:value-of select="../Year"/></xsl:when>
           <xsl:when test=".=4">April <xsl:value-of select="../Year"/></xsl:when>
           <xsl:when test=".=5">&gt;May <xsl:value-of select="../Year"/></xsl:when>
           <xsl:when test=".=6">June <xsl:value-of select="../Year"/></xsl:when>
           <xsl:when test=".=7">July <xsl:value-of select="../Year"/></xsl:when>
           <xsl:when test=".=8">August <xsl:value-of select="../Year"/></xsl:when>
           <xsl:when test=".=9">September <xsl:value-of select="../Year"/></xsl:when>
           <xsl:when test=".=10">October <xsl:value-of select="../Year"/></xsl:when>
           <xsl:when test=".=11">November <xsl:value-of select="../Year"/></xsl:when>
           <xsl:when test=".=12">December <xsl:value-of select="../Year"/></xsl:when>
        </xsl:choose>
     </xsl:for-each>
    
     <!-- Add the handling for Note -->
     <xsl:if test="Note">
             <em>(<xsl:value-of select="Note"/>)</em>
     </xsl:if>
    
     <!-- Add the handling for AcceptRate in the grey color: #333333 -->
     <xsl:if test="AcceptRate">
         <font color="#333333"><small>  Acceptance Rate: <xsl:value-of select="AcceptRate"/></small></font>
     </xsl:if>
    
     <!-- Add the handling for Award in the red color: #ff0000 -->
     <xsl:if test="Award">
         <font color="#ff0000"><strong> (<xsl:value-of select="Award"/>)</strong></font>
     </xsl:if>
    

      </LI>
    

  • share|improve this question
    1  
    Have you got a nice little example file from which you can copy (part of) the contents here? –  Maestro13 Mar 14 '12 at 15:16
    add comment

    1 Answer

    up vote 2 down vote accepted

    Here's a 2.0 option...

    XML Input

    <root>
      <Entry>
        <Title>Title B</Title>
        <Year>2010</Year>
      </Entry>
      <Entry>
        <Title>Title A</Title>
        <Year>2010</Year>
      </Entry>
      <Entry>
        <Title>Title B</Title>
        <Year>2012</Year>
      </Entry>
      <Entry>
        <Title>Title A</Title>
        <Year>2011</Year>
      </Entry>
      <Entry>
        <Title>Title A</Title>
        <Year>2012</Year>
      </Entry>
    </root>
    

    XSLT 2.0

    <xsl:stylesheet version="2.0" xmlns:xsl="http://www.w3.org/1999/XSL/Transform">
      <xsl:output indent="yes"/>
      <xsl:strip-space elements="*"/>
    
      <xsl:template match="root">
        <html>
          <xsl:for-each-group select="Entry" group-by="Year">
            <xsl:sort select="Year" data-type="number" order="descending"/>
            <p><xsl:value-of select="Year"/></p>
            <ol>
              <xsl:apply-templates select="current-group()/Title">
                <xsl:sort select="." data-type="text" order="ascending"/>
              </xsl:apply-templates>
            </ol>
          </xsl:for-each-group>
        </html>
      </xsl:template>
    
      <xsl:template match="Title">
        <li><xsl:value-of select="."/></li>
      </xsl:template>
    
    </xsl:stylesheet>
    

    HTML Output (code)

    <html>
       <p>2012</p>
       <ol>
          <li>Title A</li>
          <li>Title B</li>
       </ol>
       <p>2011</p>
       <ol>
          <li>Title A</li>
       </ol>
       <p>2010</p>
       <ol>
          <li>Title A</li>
          <li>Title B</li>
       </ol>
    </html>
    

    HTML Output (display)

    2012

    1. Title A
    2. Title B

    2011

    1. Title A

    2010

    1. Title A
    2. Title B

    share|improve this answer
        
    Thanks! I've altered the code above a little bit, but when I preview the results XMLPad Pro says that the xsl:sort must be within an xsl:for-each or xsl:apply-templates. Seems like it doesn't like the sort within the xsl:for-each-group. –  Ben Hayes Mar 14 '12 at 16:36
        
    @BenHayes - When you altered the code, did you put anything before the xsl:sort? It has to be the first child of xsl:for-each-group. If you didn't, maybe it's an issue with XMLPad Pro? xsl:sort is definitely allowed in xsl:for-each-group: w3.org/TR/xslt20/#xsl-for-each-group. –  Daniel Haley Mar 14 '12 at 16:59
        
    It's still the top most element within the for-each-group. I tried it in IE and XML Spy and it appears to have just spit out the contents of each entry, ignoring the html/style that's in the xsl file. I have a template matching 'Entry' that essentially pulls the nodes from each Entry adds into the ordered list and adds style to each list item. –  Ben Hayes Mar 14 '12 at 17:25
    1  
    @BenHayes - IE is XSLT 1.0 so xsl:for-each-group isn't going to work. Be sure you use a 2.0 processor. Also, can you add your modified XSL to your question? It's hard for me to picture what your templates look like. –  Daniel Haley Mar 14 '12 at 17:56
        
    I added <p> and <h3> tags to the Year output. I changed it to sort by Month (number) instead of Title. I don't need the 'Title' template since the 'Entry' one should output its children. –  Ben Hayes Mar 14 '12 at 18:43
    show 1 more comment

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