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I'm beginner learning xsl and I need help with xsl file to transform my original xml which looks like

<dataroot>
    <pod>
      <id>1</id>
      <mfp>
        <type>1</type>
        <val>10</val>
      </mfp>
      <mfp>
        <type>2</type>
        <val>12</val>
      </mfp>
    </pod>
    <pod>
      <id>2</id>
      <mfp>
        <type>1</type>
        <val>100</val>
      </mfp>
    </pod>
</dataroot>

And I need to have new node MFPS which contain all mfp elements for one pod, like

<dataroot>
    <pod>
      <id>1</id>
      <MFPS>
        <mfp>
          <type>1</type>
          <val>10</val>
        </mfp>
        <mfp>
          <type>2</type>
          <val>12</val>
        </mfp>
      </MFPS>
    </pod>
    <pod>
      <id>2</id>
      <MFPS>
        <mfp>
          <type>1</type>
          <val>100</val>
        </mfp>
      </MFPS>
    </pod>
</dataroot>

Please help me how to solve this. Thanks

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1  
Your input has only one "pod" element(root node). But, your output seems to have more of them.(output can't have more than one root node, but that's not the case with your output). Could you be clearer by posting complete XML input and output? – Lingamurthy CS Feb 10 '14 at 18:28
    
Original XML looks like [code]<?xml version="1.0"?> <dataroot xmlns:xsi="w3.org/2001/XMLSchema-instance"; xmlns:od="urn:schemas-microsoft-com:officedata" generated="2014-02-06T11:59:36" xsi:noNamespaceSchemaLocation="PodSchema.xsd"> <pod> <id>1</id> <mfp> <type>1</type> <val>10</val> </mfp> <mfp> <type>2</type> <val>12</val> </mfp> .... </pod> </dataroot>[/code] There is only one root <dataroot>, and many <pod>...</pod> nodes – user3294104 Feb 10 '14 at 19:52
    
Just edited question – user3294104 Feb 10 '14 at 20:05
up vote 0 down vote accepted

Use this template:

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

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

  <xsl:template match="pod">
    <xsl:copy>
      <xsl:apply-templates select="@* | node()[not(name() = 'mfp')]"/>
      <MFPS>
        <xsl:apply-templates select="mfp"/>
      </MFPS>
    </xsl:copy>
  </xsl:template>
</xsl:stylesheet>
share|improve this answer
    
It works, but resulting file is in one line. How to get line breaks? – user3294104 Feb 14 '14 at 10:22
    
I have found a solution, to preserve line breaks from original xml, should add: <xsl:output method="xml" indent="yes"/> – user3294104 Feb 14 '14 at 10:34

With XSLT 2.0, you can use for-each-group

<xsl:stylesheet version="2.0" xmlns:xsl="http://www.w3.org/1999/XSL/Transform">
    <xsl:output method="xml" indent="yes" />
    <xsl:strip-space elements="*"/>

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

    <xsl:template match="pod">
        <xsl:copy>
            <xsl:for-each-group select="*" group-adjacent="if (self::mfp) then 1 else 0">
                <xsl:choose>
                    <xsl:when test="current-grouping-key()">
                        <MFPS>
                            <xsl:apply-templates select="current-group()"/>
                        </MFPS>
                    </xsl:when>
                    <xsl:otherwise>
                        <xsl:apply-templates select="current-group()"/>
                    </xsl:otherwise>
                </xsl:choose>
            </xsl:for-each-group>
        </xsl:copy>
    </xsl:template>
</xsl:stylesheet>
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