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The set-up

I have an XML file with (this is simplified from actual):

<feeds xmlns...>
  <feed>
    <week>
      <start-date>...</start-date>
      <end-date>...</end-date>
      <entry>
        <data name="foo" value="bar"/>
        <data name="path" value="/news/releases/2011-12-05/xyzzy"/>
        <numeric name="bar" value="463284">
      </entry>
      <entry>
        <data name="foo" value="baz"/>
        <data name="path" value="/pages/ISOcodes/en-US"/>
        <numeric name="bar" value="4332">
      </entry>
      <entry>
        <data name="foo" value="bar"/>
        <data name="path" value="/"/>
        <numeric name="bar" value="23232">
      </entry>
    </week>
    ...
  </feed>
  ...
</feeds>

Each week has many entrys; each entry has just two data elements, one with name="foo" and the other with name="path", and a single numeric element with name="bar" and value an integer. There can be partial-duplicate entrys, even within a week: entrys can have the same foo or the same path, but no two entrys within a week that have the same foo and the same path.

What I want

I'd like to separate my paths into categories. For example, I want all paths matching the regex /ISOcodes/ to be considered separately (as "ISOcodes", say) and all paths matching ^/news as a separate category ("news").

I'm trying to sum the value of bar across multiple entrys within a single week, grouping by foo and by type (as in previous paragraph) of path. That is, for each week, for each value of foo, for each category of path (as in the preceding paragraph), I want the sum() of the values of bar.

Is there a way to do this? How?

share|improve this question
    
Is XSLT 2.0 available to you? –  LarsH Dec 5 '11 at 19:27
    
@LarsH: Yes. Feel free to retag xslt-2.0 if appropriate, of course. –  msh210 Dec 5 '11 at 19:30

2 Answers 2

An XSLT 2.0 solution:

<xsl:stylesheet version="2.0" xmlns:xsl="http://www.w3.org/1999/XSL/Transform">
    <xsl:template match="week">
        <xsl:for-each-group select="entry" 
                            group-by="concat(data[@name='foo']/@value, '-', 
                    if (matches(data[@name='path']/@value, '/ISOcodes/')) 
                        then 'ISOcodes' 
                    else if (matches(data[@name='path']/@value, '^/news')) 
                        then 'news' 
                    else 'no_category')">
            [<xsl:value-of select="current-grouping-key()"/>]
            <xsl:value-of select="sum(current-group()/numeric/@value)"/>
        </xsl:for-each-group>
    </xsl:template>
</xsl:stylesheet>

On the following input:

<feeds>
    <feed>
        <week>
            <start-date>...</start-date>
            <end-date>...</end-date>
            <entry>
                <data name="foo" value="bar"/>
                <data name="path" value="/news/releases/2011-12-05/xyzzy"/>
                <numeric name="bar" value="463284"/>
            </entry>
            <entry>
                <data name="foo" value="baz"/>
                <data name="path" value="/pages/ISOcodes/test"/>
                <numeric name="bar" value="4332"/>
            </entry>
            <entry>
                <data name="foo" value="baz"/>
                <data name="path" value="/pages/ISOcodes/en-US"/>
                <numeric name="bar" value="4332"/>
            </entry>
            <entry>
                <data name="foo" value="baz"/>
                <data name="path" value="/pages/ISOcodes/japan"/>
                <numeric name="bar" value="4332"/>
            </entry>
            <entry>
                <data name="foo" value="bar"/>
                <data name="path" value="/"/>
                <numeric name="bar" value="23232"/>
            </entry>
        </week>
    </feed>
</feeds>

Produces:

[bar-news]
463284
[baz-ISOcodes]
12996
[bar-no_category]
23232

Obviously, you'll need to format additional elements to taste, but this should demonstrate the grouping method.

share|improve this answer
    
+1. Thank you! This looks like what I want. Going to read up on xsl:for-each-group, current-grouping-key(), and current-group().... –  msh210 Dec 5 '11 at 19:43
    
Wow, that's quite a group-by. :-) +1 –  LarsH Dec 5 '11 at 19:53

XSLT 2.0 solution:

<xsl:template match="/">
<xsl:for-each select="//week">
  <xsl:for-each-group  select="entry" group-by="./data[@name = 'foo']/@value">
    <xsl:for-each-group select="current-group()" group-by="data[@name = 'path']/@value">
      <xsl:message>
        <xsl:choose>
          <xsl:when test="current-group()/data[@name = 'path' and matches(@value, '/ISOcodes/')]">
            Sum of ISO codes : <xsl:value-of select="sum(current-group()/numeric/@value)"/>
          </xsl:when>
          <xsl:when test="current-group()/data[@name = 'path' and matches(@value, '^/news')]">
            Sum of news : <xsl:value-of select="sum(current-group()/numeric/@value)"/>
          </xsl:when>
          <xsl:otherwise>
            Sum of other categories : <xsl:value-of select="sum(current-group()/numeric/@value)"/>
          </xsl:otherwise>
        </xsl:choose>
      </xsl:message>
    </xsl:for-each-group>
  </xsl:for-each-group>
</xsl:for-each>
</xsl:template>

When applied to this .xml file :

<feeds>
  <feed>
    <week>
      <start-date>...</start-date>
      <end-date>...</end-date>
      <entry>
        <data name="foo" value="bar"/>
        <data name="path" value="/news/releases/2011-12-05/xyzzy"/>
        <numeric name="bar" value="463284"/>
      </entry>
      <entry>
        <data name="foo" value="baz"/>
        <data name="path" value="/pages/ISOcodes/en-US"/>
        <numeric name="bar" value="4332"/>
      </entry>
      <entry>
        <data name="foo" value="bar"/>
        <data name="path" value="/"/>
        <numeric name="bar" value="23232"/>
      </entry>
    </week>
    ...
  </feed>
  ...
</feeds>

The output is:

[xslt]                 Sum of news : 463284
[xslt]
[xslt]                 Sum of other categories : 23232
[xslt]
[xslt]                 Sum of ISO codes : 4332

Edit:

I thought you wanted the sum? So my code printed the sum :)

<xsl:template match="/">
    <xsl:for-each select="//week">
      <xsl:for-each-group  select="entry" group-by="./data[@name = 'foo']/@value">
        <xsl:variable name="foo" select="current-grouping-key()"/>
        <xsl:for-each-group select="current-group()" group-by="data[@name = 'path']/@value">
          <xsl:message>
            <xsl:choose>
              <xsl:when test="current-group()/data[@name = 'path' and matches(@value, '/ISOcodes/')]">
                Sum of <xsl:value-of select="$foo"/>-<xsl:value-of select="current-grouping-key()"/> : <xsl:value-of select="sum(current-group()/numeric/@value)"/>
              </xsl:when>
              <xsl:when test="current-group()/data[@name = 'path' and matches(@value, '^/news')]">
                Sum of <xsl:value-of select="$foo"/>-<xsl:value-of select="current-grouping-key()"/> : <xsl:value-of select="sum(current-group()/numeric/@value)"/>
              </xsl:when>
              <xsl:otherwise>
                Sum of other categories : <xsl:value-of select="sum(current-group()/numeric/@value)"/>
              </xsl:otherwise>
            </xsl:choose>
          </xsl:message>
        </xsl:for-each-group>
      </xsl:for-each-group>
    </xsl:for-each>
  </xsl:template>

This prints all the bells and whistles too :)

share|improve this answer
    
The output I seek is grouped by foo and by the path pattern (simultaneously). I don't (yet) understand your XSL, but if the output you posted is correct then your XSL doesn't do what I'm looking for. –  msh210 Dec 5 '11 at 19:42
    
@msh210 I have no idea what you are talking about. I posted a well-formed .xml with duplicate entries, specifically to point out that it works. I now changed my answer to use your .xml. –  FailedDev Dec 5 '11 at 19:50
    
What I mean is that (assuming the output you posted is correct) you're grouping by <data name="path">s only, and not by <data name="foo">s. I sought both. Thanks, though, for trying; perhaps my question insufficiently clear. –  msh210 Dec 5 '11 at 20:03
    
@msh210 The code is clear. Does it matter that I do a two step grouping for clarity? I could write everything in one line if you wanted :) –  FailedDev Dec 5 '11 at 20:08
1  
@msh210 I updated it so now it prints all the infos too :) –  FailedDev Dec 5 '11 at 20:28

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