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Is it possible to filter duplicate records using an XSLT Stylesheet. By that i mean if you get the following code as an input:

<payload>
    <name>1</name>
    <date>2</date>
</payload>
<payload>
    <name>1</name>
    <date>2</date>
</payload>
<payload>
    <name>10</name>
    <date>20</date>
</payload>
<payload>
    <name>1</name>
    <date>2</date>
</payload>

could it filter the input to produce this output:

<payload>
    <name>1</name>
    <date>2</date>
</payload>
<payload>
    <name>10</name>
    <date>20</date>
</payload>
share|improve this question
    
The answer is yes, but beyond that it will depend on whether you are using XSLT 1.0 or 2.0. Google for "XSLT grouping" (or better still, look it up in the index at the back of your favourite XSLT textbook) and you will find heaps of information. –  Michael Kay Mar 6 '12 at 18:40

2 Answers 2

up vote 2 down vote accepted

Here's an XSLT 1.0 option...

XSLT 1.0 stylsheet

<xsl:stylesheet version="1.0" xmlns:xsl="http://www.w3.org/1999/XSL/Transform">
  <xsl:output indent="yes"/>
  <xsl:strip-space elements="*"/>

  <xsl:key name="kPayloads" match="payload" use="concat('N',name,'D',date)"/>

  <xsl:template match="node()|@*">
    <xsl:copy>
      <xsl:apply-templates select="node()|@*"/>
    </xsl:copy>
  </xsl:template>

  <xsl:template match="payloads">
    <xsl:copy>
      <xsl:apply-templates select="@*"/>
      <xsl:apply-templates select="payload[generate-id() = generate-id(key('kPayloads', concat('N',name,'D',date)))]"/>
    </xsl:copy>
  </xsl:template>    

</xsl:stylesheet>

XML Input (well-formed)

<payloads>
  <payload>
    <name>1</name>
    <date>2</date>
  </payload>
  <payload>
    <name>1</name>
    <date>2</date>
  </payload>
  <payload>
    <name>10</name>
    <date>20</date>
  </payload>
  <payload>
    <name>1</name>
    <date>2</date>
  </payload>  
</payloads>

XML Output

<payloads>
   <payload>
      <name>1</name>
      <date>2</date>
   </payload>
   <payload>
      <name>10</name>
      <date>20</date>
   </payload>
</payloads>

Edit

This XSLT 2.0 stylesheet will also produce the same output...

<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="node()|@*">
    <xsl:copy>
      <xsl:apply-templates select="node()|@*"/>
    </xsl:copy>
  </xsl:template>

  <xsl:template match="payloads">
    <xsl:copy>
      <xsl:apply-templates select="@*"/>
      <xsl:for-each-group select="payload" group-by="concat('N',name,'D',date)">
        <xsl:copy>
          <xsl:apply-templates select="node()|@*"/>
        </xsl:copy>        
      </xsl:for-each-group>
    </xsl:copy>
  </xsl:template>    

</xsl:stylesheet>
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Does this do what you want?

<?xml version="1.0" encoding="iso-8859-1"?>
<xsl:stylesheet version="1.0" xmlns:xsl="http://www.w3.org/1999/XSL/Transform" xmlns:cds="cds_dt" exclude-result-prefixes="cds">

    <xsl:template match="/">
        <root>
        <xsl:apply-templates select="/root/payload"/>
        </root>
    </xsl:template>

    <xsl:template match="/root/payload">
        <xsl:if test="not(preceding-sibling::payload/name = name)">
            <xsl:copy-of select="."/>
        </xsl:if>
    </xsl:template>
</xsl:stylesheet>
share|improve this answer
1  
I think that when the OP says "duplicate records", it includes both <name> and <date> in <payload>. –  Daniel Haley Mar 6 '12 at 18:59

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