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I've got an extremely long XML file, like

<Root>
   <ele1>
      <child1>context1</child1>
      <child2>test1</child2>
      <child1>context1</child1>
   </ele1>

   <ele2>
      <child1>context2</child1>
      <child2>test2</child2>
      <child1>context2</child1>
   </ele2>
   <ele3>...........<elen>
</Root>

Now I want to remove all the second <child1> in each <ele> using xslt, is it possible? The result would be like this:

<Root>
   <ele1>
      <child1>context1</child1>
      <child2>test1</child2>
   </ele1>

   <ele2>
      <child1>context2</child1>
      <child2>test2</child2>
   </ele2>
       <ele3>...........<elen>
</Root>

Thank u, BR

Allen

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3 Answers 3

This question requires a little bit more detailed answer than just pointing to a good Muenchian Grouping source.

The reason is that the needed grouping requires to identify both the names of all children of an "ele[SomeString]" element and their parent. Such grouping requires to define a key that is uniquely defined by both unique sources, usually via concatenation.

This transformation:

<xsl:stylesheet version="1.0"
 xmlns:xsl="http://www.w3.org/1999/XSL/Transform">
 <xsl:output omit-xml-declaration="yes" indent="yes"/>

 <xsl:key name="kElByName" match="*"
      use="concat(generate-id(..), '+',name())"/>

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

    <xsl:template match="*[starts-with(name(), 'ele')]">
      <xsl:copy>
        <xsl:copy-of select="@*"/>
        <xsl:apply-templates select=
         "*[generate-id()
           =
            generate-id(key('kElByName',
                        concat(generate-id(..), '+',name())
                        )[1])
            ]"
         />
      </xsl:copy>
    </xsl:template>
</xsl:stylesheet>

when applied on this XML document:

<Root>
    <ele1>
    	<child1>context1</child1>
    	<child2>test1</child2>
    	<child1>context1</child1>
    </ele1>
    <ele2>
    	<child1>context2</child1>
    	<child2>test2</child2>
    	<child1>context2</child1>
    </ele2>
    <ele3>
    	<child2>context2</child2>
    	<child2>test2</child2>
    	<child1>context1</child1>
    </ele3>
</Root>

produces the wanted result:

<Root>
    <ele1>
    	<child1>context1</child1>
    	<child2>test1</child2>
    </ele1>
    <ele2>
    	<child1>context2</child1>
    	<child2>test2</child2>
    </ele2>
    <ele3>
    	<child2>context2</child2>
    	<child1>context1</child1>
    </ele3>
</Root>
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If the OP's provided XML is representative of his/her question (and the 2nd <child1> inside each <ele*> element should be removed), then Muenchian Grouping isn't necessary:

XSLT:

<?xml version="1.0" encoding="UTF-8"?>
<xsl:stylesheet xmlns:xsl="http://www.w3.org/1999/XSL/Transform" version="1.0">
  <xsl:output omit-xml-declaration="no" indent="yes"/>
  <xsl:strip-space elements="*"/>

  <!-- Identity Template: copies everything as-is -->
  <xsl:template match="node()|@*">
    <xsl:copy>
      <xsl:apply-templates select="node()|@*"/>
    </xsl:copy>
  </xsl:template>

  <!-- Remove the 2nd <child1> element from each <ele*> element -->
  <xsl:template match="*[starts-with(name(), 'ele')]/child1[2]" />

</xsl:stylesheet>

When run against the provided XML:

<?xml version="1.0" encoding="UTF-8"?>
<Root>
  <ele1>
    <child1>context1</child1>
    <child2>test1</child2>
    <child1>context1</child1>
  </ele1>
  <ele2>
    <child1>context2</child1>
    <child2>test2</child2>
    <child1>context2</child1>
  </ele2>
</Root>

...the desired result is produced:

<?xml version="1.0" encoding="UTF-8"?>
<Root>
  <ele1>
    <child1>context1</child1>
    <child2>test1</child2>
  </ele1>
  <ele2>
    <child1>context2</child1>
    <child2>test2</child2>
  </ele2>
</Root>
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Your xml and question are kind of unclear, but what you're looking for is commonly called the Muenchian Grouping method - it's another way of asking for distinct nodes. With the appropriate keys this can be done very efficiently.

share|improve this answer
    
This is more of a hint than an answer. People need serious and responsible responses. –  Dimitre Novatchev Apr 14 '09 at 13:20
    
Demonstrate in what way this is irresponsible or trivial. Please provide a URL which clearly states that all answers on SO must be full and definitive, regardless of the quality of the question. Indicate what you hoped to achieve with your comments months after the question has been asked. –  annakata Apr 18 '09 at 22:48
    
I'm glad you found the time to downvote this one Dimitre, I think there's a few more and you'll have the set. –  annakata Feb 2 '11 at 16:24

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