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after reading some of the merge posts out here, my question appears to be simpler and I am not capable to find out the answer. So I post a new question.

The original xml

<data>

<proteins>
<protein>
<accession>111</accession>
</protein>
</proteins>

<peptides>
<peptide>
<accession>111</accession>
<sequence>AAA</sequence>
</peptide>
<peptide>
<accession>111</accession>
<sequence>AAA</sequence>
</peptide>
<peptide>
<accession>111</accession>
<sequence>AAA</sequence>
</peptide>
<peptide>
<accession>111</accession>
<sequence>BBB</sequence>
</peptide>
<peptide>
<accession>111</accession>
<sequence>BBB</sequence>
</peptide>
<peptide>
<accession>111</accession>
<sequence>BBB</sequence>
</peptide>
<peptide>
<accession>111</accession>
<sequence>BBB</sequence>
</peptide>
</peptides>

</data>

the xslt, used as an .xsl page to be interpreted by a browser

<xsl:template match="/">
<xsl:apply-templates select="/data/proteins/protein" />
</xsl:template>

<xsl:template match="/data/proteins/protein">
<xsl:apply-templates select="/data/peptides/peptide[accession = current()/accession]" >
</xsl:template>

<xsl:template match="/data/peptides/peptide">
...
</xsl:template>

the output that I got (conceptually, since this is a simplification of a larger code)

<peptide>
<accession>111</accession>
<sequence>AAA</sequence>
</peptide>
<peptide>
<accession>111</accession>
<sequence>AAA</sequence>
</peptide>
<peptide>
<accession>111</accession>
<sequence>AAA</sequence>
</peptide>
<peptide>
<accession>111</accession>
<sequence>BBB</sequence>
</peptide>
<peptide>
<accession>111</accession>
<sequence>BBB</sequence>
</peptide>
<peptide>
<accession>111</accession>
<sequence>BBB</sequence>
</peptide>
<peptide>
<accession>111</accession>
<sequence>BBB</sequence>
</peptide>

and the output that I would like to have, i.e. to have only one entry for each sequence, so to avoid having redudancy

<peptide>
<accession>111</accession>
<sequence>AAA</sequence>
</peptide>
<peptide>
<accession>111</accession>
<sequence>BBB</sequence>
</peptide>

I would be happy to have just the first of the nodes that share the same sequence (so not merging them). Any help is highly welcomed :)

Thanks!

share|improve this question
    
/data/peptides/peptide[accession = current()/accession] is not a valid XPath expression. Please fix your source code and clarify your question. – PointedEars Dec 11 '11 at 19:32
    
could you point me to some doc where it explains why is not a valid XPath expression? honestly I do not know. Regarding the clarification of the question, original xml and desired xml is posted, the other information might be superfluous, but what information is lacking? – Gerard Dec 11 '11 at 19:35
1  
@PointedEars - Why do you think that? – Wayne Burkett Dec 11 '11 at 20:07
    
Ask any XPath processor, like with document.evaluate("/data/peptides/peptide[accession = current()/accession]", document, null, 0, null) in your (non-MSHTML-based) browser's script console. Read the XPath 1.0 Specification; the part between the [] cannot be produced with PredicateExpr. Your XSLT processor (which one?) should be able display an error message as well. – PointedEars Dec 11 '11 at 20:07
1  
@PointedEars: The XPath expression you are referring to is correct when used within an XSLT transformation. – Dimitre Novatchev Dec 11 '11 at 22:22
up vote 2 down vote accepted

What your stylesheet is missing is a way to identify the first in a group of identical items. The following stylesheet uses an xsl:key to group peptide elements by a combination of their accession and sequence values:

<xsl:stylesheet version="1.0" xmlns:xsl="http://www.w3.org/1999/XSL/Transform">
    <xsl:output method="xml" indent="yes" omit-xml-declaration="yes"/>
    <xsl:key name="byAccSeq" match="peptide" 
                             use="concat(accession, '|', sequence)"/>
    <xsl:template match="/">
        <root><xsl:apply-templates select="/*/proteins/protein"/></root>
    </xsl:template>
    <xsl:template match="protein">
        <xsl:apply-templates
            select="../../peptides/peptide[accession=current()/accession]"/>
    </xsl:template>
    <xsl:template match="peptide[generate-id()=
             generate-id(key('byAccSeq', concat(accession, '|', sequence))[1])]">
        <xsl:copy-of select="."/>
    </xsl:template>
    <xsl:template match="peptide"/>
</xsl:stylesheet>

Output:

<root>
    <peptide>
        <accession>111</accession>
        <sequence>AAA</sequence>
    </peptide>
    <peptide>
        <accession>111</accession>
        <sequence>BBB</sequence>
    </peptide>
</root>

Explanation: The following line:

<xsl:key name="byAccSeq" match="peptide" 
                         use="concat(., accession, sequence)"/>

...groups peptide elements using keys whose values are equal to concat(., accession, sequence). Elements can be later retrieved by reproducing the key for some peptide element:

key('byAccSeq', concat(/path/to/peptide, accession, sequence))

To match the first element in the list of nodes returned for some key, we use the following template/pattern:

<xsl:template match="peptide[generate-id()=
               generate-id(key('byAccSeq', concat(., accession, sequence))[1])]">

The generate-id function returns a unique identifier for every node in the document. We're asking for any peptide element whose unique ID is equal to the unique ID of a node that's first in the list for some key.

We then ignore all other peptide elements -- the ones that aren't first for some key -- with the following template:

<xsl:template match="peptide"/>

This grouping technique is called the Muenchian Method. Further reading:

share|improve this answer
    
I still do not see how ../../peptides/peptide[accession=current()/accession] can be a valid XPath expression, but it is possible that this is XSLT-specific. If so, please explain. – PointedEars Dec 11 '11 at 20:34
2  
Which part is bothering you? Is it current()? That's an XSLT function that returns a node-set containing only the node that the template is currently processing. See here: w3.org/TR/xslt#function-current – Wayne Burkett Dec 11 '11 at 20:51
2  
We're selecting all peptide elements having a child element named accession whose value is equal to that of the current node's accession element. – Wayne Burkett Dec 11 '11 at 20:53
    
Thank you, I understand now. Besides not having needed current() yet, I did not see accession being equivalent to accession/text(), which it must be in an EqualityExpr. – PointedEars Dec 11 '11 at 21:25
    
@PointedEars - These two quotes from the spec should explain: 1) "If both objects to be compared are node-sets, then the comparison will be true if and only if there is a node in the first node-set and a node in the second node-set such that the result of performing the comparison on the string-values of the two nodes is true." 2) "The string-value of an element node is the concatenation of the string-values of all text node descendants of the element node in document order." – Wayne Burkett Dec 11 '11 at 21:53

An alternate Muenchian grouping (just one template and a single instruction):

<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="kPepByAccAndSeq" match="peptide"
  use="concat(accession, '+', sequence)"/>

 <xsl:template match="/">
   <xsl:copy-of select=
    "/*/peptides
          /peptide
              [generate-id()
              =
               generate-id(key('kPepByAccAndSeq',
                               concat(accession, '+', sequence)
                              )[1]
                          )
              ]
    "/>
 </xsl:template>
</xsl:stylesheet>

when this transformation is applied to the provided XML document:

<data>
    <proteins>
        <protein>
            <accession>111</accession>
        </protein>
    </proteins>
    <peptides>
        <peptide>
            <accession>111</accession>
            <sequence>AAA</sequence>
        </peptide>
        <peptide>
            <accession>111</accession>
            <sequence>AAA</sequence>
        </peptide>
        <peptide>
            <accession>111</accession>
            <sequence>AAA</sequence>
        </peptide>
        <peptide>
            <accession>111</accession>
            <sequence>BBB</sequence>
        </peptide>
        <peptide>
            <accession>111</accession>
            <sequence>BBB</sequence>
        </peptide>
        <peptide>
            <accession>111</accession>
            <sequence>BBB</sequence>
        </peptide>
        <peptide>
            <accession>111</accession>
            <sequence>BBB</sequence>
        </peptide>
    </peptides>
</data>

the wanted, correct result is produced:

<peptide>
   <accession>111</accession>
   <sequence>AAA</sequence>
</peptide>
<peptide>
   <accession>111</accession>
   <sequence>BBB</sequence>
</peptide>

Explanation: Muenchian grouping where the key value is a combination of the values of two elements.

share|improve this answer
    
In this case, I need to group all peptides belonging to one accession, and within all peptides group them by sequence and show only one of this group. With your solution I could not do the first filtration as far as I can see. But this makes me think that I could group peptides by accession and by accession and sequence, and do a for-each for both groups. I cannot see if this would be more efficient than doing the apply-template call, but if it was the case I would move to this solution. Thanks! – Gerard Dec 13 '11 at 9:04
    
@Gerard: This solution produces exactly the result that is shown as wanted in your question. Now in your comment you come up with new requirements I am seeing for the first time. Please, understand that your question in its present form is completely answered -- has two correct answers, mine being shorter and simpler. At this point you have two choices: accept the answer you feel is best, and post a new SO question stating your new requirements. Or, you could edit your current question with the new requirements. Of these two possible choices I'd strongly recommend going up with the first one. – Dimitre Novatchev Dec 13 '11 at 13:09
    
Got it, I do not see any button with an "accept", so I understand that it ends here. I will follow your suggestion, thanks :) – Gerard Dec 13 '11 at 18:19
    
@Gerard: You are welcome. – Dimitre Novatchev Dec 13 '11 at 22:27

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