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I have some short form day names like so:

M -> Monday
T -> Tuesday
W -> Wednesday
R -> Thursday
F -> Friday
S -> Saturday
U -> Sunday

How can I convert an xml element like <days>MRF</days> into the long version <long-days>Monday,Thursday,Friday</long-days> using xslt?

Update from comments

Days will not be repeated

share|improve this question
    
@StevenWilkins: Can days be repeated? –  user357812 Feb 1 '11 at 23:03
    
@Alejandro - Days will not be repeated. –  StevenWilkins Feb 1 '11 at 23:07
    
You need to tell us whether this is XSLT 1.0 or 2.0. Problems like this area always easier in 2.0. –  Michael Kay Feb 1 '11 at 23:59
    
Good question, +1. See my answer for a solution that has none of the shortcomings of @Alejandro 's solution as noted by Dr. Kay (@Michael-Kay). –  Dimitre Novatchev Feb 2 '11 at 3:02
    
Added an XSLT 2.0 solution, too. :) –  Dimitre Novatchev Feb 2 '11 at 3:52

3 Answers 3

up vote 3 down vote accepted

This stylesheet

<xsl:stylesheet version="1.0"
 xmlns:xsl="http://www.w3.org/1999/XSL/Transform"
 xmlns:d="day"
 exclude-result-prefixes="d">
    <d:d l="M" n="Monday"/>
    <d:d l="T" n="Tuesday"/>
    <d:d l="W" n="Wednesday"/>
    <d:d l="R" n="Thursday"/>
    <d:d l="F" n="Friday"/>
    <d:d l="S" n="Saturday"/>
    <d:d l="U" n="Sunday"/>
    <xsl:variable name="vDays" select="document('')/*/d:d"/>
    <xsl:template match="days">
        <long-days>
            <xsl:apply-templates
                 select="$vDays[contains(current(),@l)]"/>
        </long-days>
    </xsl:template>
    <xsl:template match="d:d">
        <xsl:value-of select="@n"/>
        <xsl:if test="position()!=last()">,</xsl:if>
    </xsl:template>
</xsl:stylesheet>

With this input:

<days>MRF</days>

Output:

<long-days>Monday,Thursday,Friday</long-days>

Edit: For those who wander, retaining the sequence order:

<xsl:variable name="vCurrent" select="current()"/>
<xsl:apply-templates
         select="$vDays[contains($vCurrent,@l)]">
    <xsl:sort select="substring-before($vCurrent,@l)"/>
</xsl:apply-templates>

Note: Because days wouldn't be repeated, this is the same as looking up for item existence in sequence with empty string separator.

share|improve this answer
    
Nice ! I like the way you define a kind of associative array (l,n). That's the nice thing about SO. You get to see better solutions than your own. –  Alain Pannetier Feb 1 '11 at 23:15
    
+1. Great one indeed. –  Flack Feb 1 '11 at 23:19
    
I really don't like solutions that depend on document(''). If you're using XSLT 2.0, you can put the lookup-table in a proper global variable. With 1.0, it's more efficient in most cases to make the lookup table a separate XML document. Also, unless the amount of data is trivially small, lookup tables should use keys. –  Michael Kay Feb 2 '11 at 0:02
    
The solution seems to assume that the order of the letters in the input is immaterial, which wasn't stated as part of the requirement. –  Michael Kay Feb 2 '11 at 0:13
    
@Michael Kay: The answer doesn't depend on document(''). It has just inline structure XML data, that could be properly accommodate to the use case (external source, XSLT 2.0 variable). The answer use a a second data source to drive the transformation, wich is a better pattern than condicional instructions. –  user357812 Feb 2 '11 at 12:35

That should do it... (There might be more elegant solutions though... ;-)

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

<xsl:template match="/days">
    <long-days>
        <xsl:if test="contains(.,'M')">Monday<xsl:if test="string-length(substring-before(.,'M'))=string-length(.)-1">,</xsl:if></xsl:if>
        <xsl:if test="contains(.,'T')">Tuesday<xsl:if test="string-length(substring-before(.,'T'))=string-length(.)-1">,</xsl:if></xsl:if>
        <xsl:if test="contains(.,'W')">Wednesday<xsl:if test="string-length(substring-before(.,'W'))=string-length(.)-1">,</xsl:if></xsl:if>
        <xsl:if test="contains(.,'R')">Thursday<xsl:if test="string-length(substring-before(.,'R'))=string-length(.)-1">,</xsl:if></xsl:if>
        <xsl:if test="contains(.,'F')">Friday<xsl:if test="string-length(substring-before(.,'F'))=string-length(.)-1">,</xsl:if></xsl:if>
        <xsl:if test="contains(.,'S')">Saturday<xsl:if test="string-length(substring-before(.,'S'))=string-length(.)-1">,</xsl:if></xsl:if>
        <xsl:if test="contains(.,'U')">Sunday<xsl:if test="string-length(substring-before(.,'U'))=string-length(.)-1">,</xsl:if></xsl:if>
    </long-days>
</xsl:template>

share|improve this answer
    
Can you expand your answer to include the example I gave in the original question please? Or do I just need to include all the days of the week? –  StevenWilkins Feb 1 '11 at 22:31
    
Is that OK (added the commas). –  Alain Pannetier Feb 1 '11 at 22:38
    
It's close, given USM the commas are misplaced MondaySaturday,Sunday, I'll have to look if that order of days is guaranteed –  StevenWilkins Feb 1 '11 at 22:49
    
Modified to work if day initials are out of order. –  Alain Pannetier Feb 1 '11 at 23:08
1  
Why not add the commas unconditionally, put the result in a variable, and then strip the final unwanted comma? –  Michael Kay Feb 2 '11 at 0:16

The currently accepted solution always displays the long days names in chronological order and in addition, it doesn't display repeating (with same code) days.

Suppose we have the following XML document:

<days>STMSU</days>

I. This XSLT 1.0 transformation:

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

 <my:days>
  <M>Monday</M>
  <T>Tuesday</T>
  <W>Wednesday</W>
  <R>Thursday</R>
  <F>Friday</F>
  <S>Saturday</S>
  <U>Sunday</U>
 </my:days>

 <xsl:key name="kLongByShort" match="my:days/*"
  use="name()"/>

  <xsl:variable name="vstylesheet"
   select="document('')"/>

 <xsl:template match="days">
  <long-days>
   <xsl:call-template name="expand"/>
  </long-days>
 </xsl:template>

 <xsl:template name="expand">
  <xsl:param name="pcodeString" select="."/>

  <xsl:if test="$pcodeString">
    <xsl:variable name="vchar" select=
    "substring($pcodeString,1,1)"/>
    <xsl:for-each select="$vstylesheet">
     <xsl:value-of select=
     "concat(key('kLongByShort',$vchar),
             substring(',',1,string-length($pcodeString)-1)
            )
     "/>
    </xsl:for-each>

    <xsl:call-template name="expand">
     <xsl:with-param name="pcodeString" select=
      "substring($pcodeString,2)"/>
    </xsl:call-template>
  </xsl:if>
 </xsl:template>
</xsl:stylesheet>

when applied on the above document, produces the wanted, correct result:

<long-days>Saturday,Tuesday,Monday,Saturday,Sunday</long-days>

II. This XSLT 2.0 transformation:

<xsl:stylesheet version="2.0"
 xmlns:xsl="http://www.w3.org/1999/XSL/Transform"
 xmlns:xs="http://www.w3.org/2001/XMLSchema"
 exclude-result-prefixes="xs">
 <xsl:output omit-xml-declaration="yes" indent="yes"/>

 <xsl:variable name="vshortCodes" as="xs:integer+"
 select="string-to-codepoints('MTWRFSU')"/>

 <xsl:variable name="vlongDays" as="xs:string+"
 select="'Monday','Tuesday','Wenesday','Thursday',
         'Friday','Saturday','Sunday'
 "/>

 <xsl:template match="days">
  <long-days>
    <xsl:for-each select="string-to-codepoints(.)">
      <xsl:value-of separator="" select=
      "for $pos in position() ne last()
        return
         ($vlongDays[index-of($vshortCodes,current())],
          ','[$pos])
      "/>
    </xsl:for-each>
  </long-days>
 </xsl:template>
</xsl:stylesheet>

when applied on the same XML document:

<days>STMSU</days>

produce the wanted, correct result:

<long-days>Saturday,Tuesday,Monday,Saturday,Sunday</long-days>
share|improve this answer
    
+1 Mandatory XSLT 2.0 solution! –  user357812 Feb 2 '11 at 17:10

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