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I am attempting to use preceding-sibling to select unique elements from a group.

Using the folliwng xml as an example..

<items>
 <item>
  <options>
   <option>
    <option-data>
     <data-ab>TEST1</date-qualifier>
     <date>20101026</date>
    </option-data>
    <option-data>
     <data-ab>TEST2</date-qualifier>
     <date>20101026</date>
    </option-data>

   </option>
   <option type="2">
    <option-data>
     <data-ab>TEST1</date-qualifier>
     <date>20101026</date>
    </option-data>
   </option>
  </options>
 </item>
 <item>
  <options>
   <option>
    <option-data>
     <data-ab>TEST1</date-qualifier>
     <date>20101026</date>
    </option-data>
   </option>
   <option type="2">
    <option-data>
     <data-ab>TEST1</date-qualifier>
     <date>20101026</date>
    </option-data>
   </option>
  </options>
 </item>
</items>

I want to be able to select unique option-date elements (distinct is by date and data-ab). I only want to select the option-data/date that is uniqueu for each item i.e not by option.I have used combinations of preceding-sibling but as it returns to the parent I can only guarentee the dates will be unique for each option where I need it by item.

Racking my brains over this for hours and cannot come up with an elegant solution.

Regards, Andy

share|improve this question
    
<items> <item> <options> <option> <option-data> <data-ab>TEST1</date-qualifier> <date>20101026</date> </option-data> <option-data> <data-ab>TEST2</date-qualifier> <date>20101026</date> </option-data> </option> <option type="2"> <option-data> <data-ab>TEST1</date-qualifier> <date>20101026</date> </option-data> </option> </options> </item> <item> <options> <option> <option-data> <data-ab>TEST1</date-qualifier> <date>20101026</date> </option-data> </ –  Andy Oct 28 '10 at 22:28
    
I think your best bet is to use Muenchian grouping... a compound key like: <xsl:key name="item-option-date" match="item/options/option/option-data" use="concat(generate-id(../../..), ':', date, ':', data-ab)" /> That's not a whole answer but I have to go home to supper. ;-) –  LarsH Oct 28 '10 at 22:38
    
I guess another helpful clarifying question is, how do you need to query/access these unique elements: (a) a node-set of all of them (for all items)? (b) given an <item> what are its unique option-data descendants? (c) something else? And when you say "select unique option-data elements", do you mean you want to omit all of the ones that are not unique, or you want to select one of each (i.e. select distinct ones)? –  LarsH Oct 28 '10 at 22:43
    
Good question, +1. See my answer for a complete, efficient and de-facto standard solution. :) –  Dimitre Novatchev Oct 28 '10 at 22:46
    
Your question is unclear. First I want to be able to select unique option-date elements (distinct is by date and data-ab): in your sample there isn't a unique (all of them have the same key). Second question I only want to select the option-data/date that is uniqueu for each item i.e not by option: the same here, all of them have the same key. Do you want to group them? What would be the desired output? –  user357812 Oct 29 '10 at 16:34

1 Answer 1

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:strip-space elements="*"/>

 <xsl:key name="kODByVal" match="option-data"
  use="concat(generate-id(ancestor::item[1]), '+', data-ab, '+', date)"/>

  <xsl:template match="item">

  Unique option-data elements for item: <xsl:text/>
  <xsl:value-of select="concat(position(), '&#xA;')"/>

  <xsl:copy-of select=
  "*/*/option-data[generate-id()
                  =
                   generate-id(key('kODByVal',
                               concat(generate-id(current()), '+',
                                      data-ab,
                                      '+',
                                      date)
                               )[1])
                  ]
  "/>
 </xsl:template>
</xsl:stylesheet>

when applied on the provided XML document (corrected to achieve well-formedness):

<items>
    <item>
        <options>
            <option>
                <option-data>
                    <data-ab>TEST1</data-ab>
                    <date>20101026</date>
                </option-data>
                <option-data>
                    <data-ab>TEST2</data-ab>
                    <date>20101026</date>
                </option-data>
            </option>
            <option type="2">
                <option-data>
                    <data-ab>TEST1</data-ab>
                    <date>20101026</date>
                </option-data>
            </option>
        </options>
    </item>
    <item>
        <options>
            <option>
                <option-data>
                    <data-ab>TEST1</data-ab>
                    <date>20101026</date>
                </option-data>
            </option>
            <option type="2">
                <option-data>
                    <data-ab>TEST1</data-ab>
                    <date>20101026</date>
                </option-data>
            </option>
        </options>
    </item>
</items>

produces the wanted, correct result:

  Unique option-data elements for item: 1
<option-data><data-ab>TEST1</data-ab><date>20101026</date></option-data>
<option-data><data-ab>TEST2</data-ab><date>20101026</date></option-data>

  Unique option-data elements for item: 2
<option-data><data-ab>TEST1</data-ab><date>20101026</date></option-data>

Do note: The most efficient XSLT 1.0 (Muenchian) grouping method is used on three concatenated keys.

share|improve this answer
    
+1 good answer. (Distinct option-data elements, not necessarily unique ones, IIUC.) –  LarsH Oct 29 '10 at 0:31
    
@LarsH: Thanks. I was probably downvoted also, as I am at 0 ... ? –  Dimitre Novatchev Oct 29 '10 at 0:37

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