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Following is the input :

<Parent>
 <child>
  <e1>ABC1</e1>
  <e2>XYX</e2>
  <e3>4382</e3>
  <e4>summary1</e4>
  <mName>PRICE</mName>
  <mValue>1234000</mValue>
 </child>
 <child>
  <e1>ABC1</e1>
  <e2>XYX</e2>
  <e3>4382</e3>
  <e4>summary1</e4>
  <mName>TYPE</mName>
  <mValue>SPORTS</mValue>
 </child>
 <child>
  <e1>ABC2</e1>
  <e2>QWE</e2>
  <e3>3456</e3>
  <e4>summary2</e4>
  <mName>TYPE</mName>
  <mValue>SEDAN</mValue>
 </child>
</Parent>

I want to merge the child element in such a way that it has both redundant as well as the distinct elements.Below is the expected output,I am not sure how to achieve this using XSL any help appreciated.

Expected output :

<Parent>
 <child>
  <e1>ABC1</e1>
  <e2>XYX</e2>
  <e3>4382</e3>
  <e4>summary</e4>
  <mName>PRICE</mName>
  <mValue>1234000</mValue>
  <mName>TYPE</mName>
  <mValue>SPORTS</mValue>
 </child>
 <child>
  <e1>ABC2</e1>
  <e2>QWE</e2>
  <e3>3456</e3>
  <e4>summary2</e4>
  <mName>TYPE</mName>
  <mValue>SEDAN</mValue>
 </child>
</Parent>

Update from comments

All the child elements are uniquely identified by 'e1' element. Where two child elements have the same such e elements, they should be merged so there is one child with a list of multiple mName and mValue elements

share|improve this question
    
Please put your XML inside back quotes (`) so that tags are preserved; these seem to be missing. –  9000 Jan 19 '11 at 18:49
    
Input XML:<Parent> <child> <e1>ABC1</e1> <e2>XYX</e2> <e3>4382</e3> <e4>summary1</e4> <mName>PRICE</mName> <mValue>1234000</mValue> </child> <child> <e1>ABC1</e1> <e2>XYX</e2> <e3>4382</e3> <e4>summary1</e4> <mName>TYPE</mName> <mValue>SPORTS</mValue> </child> <child> <e1>ABC2</e1> <e2>QWE</e2> <e3>3456</e3> <e4>summary2</e4> <mName>TYPE</mName> <mValue>SEDAN</mValue> </child> </Parent>` –  SMG Jan 19 '11 at 18:53
    
Expected output:<Parent> <child> <e1>ABC1</e1> <e2>XYX</e2> <e3>4382</e3> <e4>summary</e4> <mName>PRICE</mName> <mValue>1234000</mValue> <mName>TYPE</mName> <mValue>SPORTS</mValue> </child> <child> <e1>ABC2</e1> <e2>QWE</e2> <e3>3456</e3> <e4>summary2</e4> <mName>TYPE</mName> <mValue>SEDAN</mValue> </child> </Parent> –  SMG Jan 19 '11 at 18:53
    
I don't think this problem is well defined. Please, specify what should be done that there are pairs of elements that have different sets of children having the same names and values -- which one of the many possible merges should be carried out? –  Dimitre Novatchev Jan 19 '11 at 19:08
    
If you see child1 and child2 has the same redundant data for e1 , e2 e3 , e4 except mName and mValue so I want to merge child1 and child2 in such a way that all the redundant data should remain same but should also have the diff mName and mValue of child1 and child2 –  SMG Jan 19 '11 at 19:13

3 Answers 3

This is a job for Muenchian Grouping. You will numerous examples of it within the XSLT tag here on StackOverflow.

I believe what you are saying is that child elements are uniquely identified by the elements e1, e2, e3 and e4. Where two child elements have the same such e elements, they should be merged so there is one child with a list of multiple mName and mValue elements.

First, you need to define a key to help you group the child elements

<xsl:key 
   name="children" 
   match="child" 
   use="concat(e1, concat('|', concat(e2, concat('|', concat(e3, concat('|', e4))))))"/>

This creates a key that use the concatenation of the child e elements that can be used to look up child elements. Do note the use of the pipe character | to concatenate them. If any of your elements may contain a pipe character, then you should change this to use another character instead.

Next, you need to match all the occurrences of the first instance of each distinct child. This is done with this scary looking statement

<xsl:apply-templates 
   select="
     child[generate-id() 
       = generate-id(
         key('children', 
           concat(e1, concat('|', concat(e2, concat('|', concat(e3, concat('|', e4))))))
         )[1])]"/>

i.e Match child elements which happen to be the first occurence of that element in our key.

When you have matched the distinct child nodes, you can then loop through all other child nodes with the same e elements

<xsl:for-each select="key('children', concat(e1, concat('|', concat(e2, concat('|', concat(e3, concat('|', e4)))))))">

Putting this altogether gives

<xsl:stylesheet version="1.0" xmlns:xsl="http://www.w3.org/1999/XSL/Transform">

   <xsl:key name="children" match="child" use="concat(e1, concat('|', concat(e2, concat('|', concat(e3, concat('|', e4))))))"/>

   <xsl:template match="/Parent">
      <xsl:copy>
         <xsl:apply-templates select="child[generate-id() = generate-id(key('children', concat(e1, concat('|', concat(e2, concat('|', concat(e3, concat('|', e4)))))))[1])]"/>
      </xsl:copy>
   </xsl:template>

   <xsl:template match="child">
      <xsl:copy>
         <xsl:copy-of select="e1|e2|e3|e4" />
         <xsl:for-each select="key('children', concat(e1, concat('|', concat(e2, concat('|', concat(e3, concat('|', e4)))))))">
            <xsl:copy-of select="mName" />
            <xsl:copy-of select="mValue" />
         </xsl:for-each>
      </xsl:copy>
   </xsl:template>

</xsl:stylesheet>

When you apply this to your input XML it should give the output you want.

share|improve this answer
    
Thx for the answer Tim but seems like above style sheet is not working , and the assumption is - all the child elements are uniquely identified by 'e1' element. Where two child elements have the same such e elements, they should be merged so there is one child with a list of multiple mName and mValue elements. –  SMG Jan 20 '11 at 15:28
1  
concat can take multiple arguments, there's no need to nest a bunch of them. –  Flynn1179 Jan 21 '11 at 11:19
    
@SMG: Besides fn:concat() style, this is a correct answer with the information you have provided. Adding your new information to the question. –  user357812 Jan 22 '11 at 18:00

After much of research and efforts i came up with simpler approach and here is the xsl which gives desired output '

<xsl:stylesheet version="1.0" xmlns:xsl="http://www.w3.org/1999/XSL/Transform">
    <xsl:output method="xml" version="1.0" encoding="UTF-8" indent="yes"/>

    <xsl:key name="Ids" match="Parent/child" use="e1"/>

    <xsl:template match="/Parent">
         <Parent>
            <xsl:for-each select="child[generate-id(.) 
                                        = generate-id(key('Ids', e1)[1])]">
                 <child>
                    <xsl:copy-of select="e1|e2|e3|e4"/>
                     <xsl:for-each select="key('Ids', e1)">
                            <xsl:copy-of select="mName|mValue"/>
                     </xsl:for-each>
                </child >
            </xsl:for-each>
        </Parent>
    </xsl:template>
</xsl:stylesheet>
share|improve this answer

Try this:

<?xml version="1.0" encoding="utf-8"?>
<xsl:stylesheet version="1.0" xmlns:xsl="http://www.w3.org/1999/XSL/Transform">
  <xsl:output method="xml" indent="yes"/>

  <xsl:key name="childindex" match="child" use="e1" />

  <xsl:template match="Parent">
    <xsl:copy>
      <xsl:apply-templates select="child[generate-id() = generate-id(key('childindex', e1)[1])]"/>

    </xsl:copy>
  </xsl:template>

  <xsl:template match="child">
    <xsl:variable name="all" select="key('childindex',e1)" />
    <xsl:copy>
      <xsl:apply-templates select="e1 | e2 | e3 | e4" />
      <xsl:apply-templates select="$all/mValue | $all/mName" />
    </xsl:copy>
  </xsl:template>

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

There's a template matching a child node that finds ALL child elements with the same indices, and will output the mValue and mNode elements of all those elements.

The second child template will be applied to any child elements that have a preceding sibling with the same indices, and outputs nothing, stripping out duplicates.

EDIT: Modified the xslt, and the modified version is very similar to Tim's, only the method of populating the child element differs.

share|improve this answer
1  
Flynn, I was trying the xsl above but seems like current() can't be applied to match..anyways thx for your answer I'm still researching on the same. –  SMG Jan 21 '11 at 21:54
    
Works fine when I tried it.. what are you using to process your xslt? –  Flynn1179 Jan 22 '11 at 9:48
    
In a real XSLT 1.0 processor, fn:current() can't be used in pattern. It's fine for an XSLT 2.0 processor. –  user357812 Jan 22 '11 at 18:02
    
@Alejandro: You're right, never noticed that in the spec. Odd that both Firefox and Chrome will allow it. I've amended the XSLT. –  Flynn1179 Jan 24 '11 at 9:58

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