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I have some problems excluding unwanted output from my xlst transformation. I already know about the default rules behind match etc, but i'm not able to use match in template/apply-templates properly.
Can you help me fixing this please?

So I have an XML file structured this way:

<movies>
    <movie id="0">
        <title>Title</title>
        <year>2007</year>
        <duration>113</duration>
        <country>Country</country>
        <plot>Plot</plot>
        <poster>img/posters/0.jpg</poster>
        <genres>
            <genre>Genre1</genre>
            <genre>Genre2</genre>
        </genres>
        ...
    </movie>
    ...
</movies>

And I want to create a html UL list with a LI for each movie that belongs to a genre '#######'(replaced at runtime by my perl script) which is a link to a page(named by its id).

Right now i'm doing it this way:

<xsl:template match="/">
    <h2> List </h2>
    <ul>
        <xsl:apply-templates match="movie[genres/genre='#######']"/>
            <li>
                <a>
                    <xsl:attribute name="href">     
                        /movies/<xsl:value-of select= "@id" />.html
                    </xsl:attribute>
                    <xsl:value-of select= "title"/>
                </a>
            </li>
    </ul>
</xsl:template>

Obviously this way it shows me all the elements of the movies that matches the chosen genre. Do I have to add tons of <xsl:template match="..."> to remove all the extra output?
Can you please teach me the correct way to create an html snippet like this?

List

Thank you in advance!

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2 Answers 2

up vote 1 down vote accepted

You are almost there - your use of apply-templates is causing you the problem.

Instead, structure your XSLT this way:

  <xsl:template match="/">
    <h2> List </h2>
    <ul>
      <xsl:apply-templates select="movie[genres/genre='#######']"/>
    </ul>
  </xsl:template>

  <xsl:template match="movie">
    <li>
      <a>
        <xsl:attribute name="href">/movies/<xsl:value-of select= "@id" />.html</xsl:attribute>
        <xsl:value-of select= "title"/>
      </a>
    </li>
  </xsl:template>

It will apply the spcific template (match="movie") to your movie element. In your original attempt, you will be using the default template which will bring back everything contained within a movie element.

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1  
Depending on the output method and spacing stuff, one might get garbage (space and tab characters) inside the href attribute. Better put the whole <xsl:attribute name="href">/movies/<xsl:value-of select= "@id" />.html</xsl:attribute> on a single line, without extra space. –  Georges Dupéron Aug 15 '12 at 12:28
1  
@GeorgesDupéron You are right; I've used your suggestion as it is unambiguous. –  dash Aug 15 '12 at 12:31
    
Simply what I was looking for, thanks a lot! –  DkSw Aug 15 '12 at 13:09
3  
@Dash, I recommend replacing your xsl:attribute with an AVT. –  Sean B. Durkin Aug 15 '12 at 13:10

Dash's solution is correct.

I suggest a slight variation to the movie template to be more concise...

<xsl:template match="movie">
  <li>
    <a href="/movies/{@id}.html">
      <xsl:value-of select= "title"/>
    </a>
  </li>
</xsl:template>
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2  
Ahahah, i was just about to ask(never done avt before) if its correct: <a href="/movies/{@id}.xml"><xsl:value-of select="title"/></a> P.s. Haven't the reputation the upvote you, but thanks anyway for the tip! ;) –  DkSw Aug 15 '12 at 13:18

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