For example the input is this:

<root>
<command name="comm1">aa</command>
<command name="comm2">bb</command>
<command name="comm3">cc</command>
<command name="comm3">dd</command>
<command name="comm2">ee</command>
<command name="comm1">ff</command>
<command name="comm5">gg</command>
</root>

The desired output is this:

<root>
<command name="comm1">aa</command>
<command name="comm2">bb</command>
<command name="comm3">cc</command>
<command name="comm5">gg</command>
</root>

You can see that at the output, we don't have repeating tags ,the text values are not important here.

  • Please state which XSLT processor will you be using. – michael.hor257k Feb 3 '17 at 12:10
  • Should the question be "Extract unique elements from the input XML using XSLT" instead of "Extract unique elements from the input XSLT"? See: dx.doi.org/10.14337/XMLLondon17.Gibson01 – holmesw Jun 12 '17 at 13:07
up vote 0 down vote accepted

If you have access to XSLT 2.0, the easiest way to do this is probably to use an identity transformation (assuming you are only doing this task in this transform). You would need two templates:

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

<xsl:template match="command[preceding-sibling::command[@name = current()/@name]]"/>

The first template copies the input to the output unchanged. The second template suppresses all <command> elements where there is already a <command> element with the same value for its @name attribute.

If you only have access to XSLT 1.0 we can replace the second template with something like:

<xsl:template match="command">
  <xsl:if test="not(preceding-sibling::command[@name = current()/@name])">
    <xsl:copy>
      <xsl:apply-templates select="@*|node()"/>
    </xsl:copy>      
  </xsl:if>
</xsl:template>

(there are other ways but that one is simple)

  • This is not a good method -see here why: jenitennison.com/xslt/grouping/muenchian.html – michael.hor257k Feb 3 '17 at 12:11
  • Yeah. I'm aware of that but, as I said, I was going for simple. A better solution would be keys but then you need to explain keys. – Nic Gibson Feb 3 '17 at 12:13
  • 2
    At least in XSLT 2.0, a better solution would be to use either xsl:for-each-group or distinct-values(). And Muenchian grouping has been explained many times before (e.g. in the article linked above), you only need to point to it. – michael.hor257k Feb 3 '17 at 12:25

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