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I am working with a CV project using XML for storing CVs, using XSLT and Java to transform it to HTML.

Following is the format of XML file

<CVs>
<cv>
<name>...</name>
<dob>...</dob>
<experience>
<job>.....</job>
<job>.....</job>
</experience>
</cv>
<cv>
<name>...</name>
<dob>...</dob>
<experience>
<job>.....</job>
<job>.....</job>
<job>.....</job>
<job>.....</job>
<job>.....</job>
</experience>
</cv>
</CVs>

What is the right way to display the <job> repeatedly? I am getting only one <job> and that the first one...

Have a nice day John


Thanks a lot for your reply. :)

I tried the first solution. It works. But what I what I want is to display all the with a HTML paragraph formatting.

First display the No.1, then there should be a paragraph, then No.2 and so on. like-

<p>Job No1</p>
<p>Job No2</p>

I used following - with a failure to get the required result..

<xsl:for-each select="Job">
<p style="color:red">
<xsl:if test="position() &gt; 1">,</xsl:if>
<xsl:value-of select="."/>
</p>
</xsl:for-each> 

Using the above code I am getting output like -

<p>Job No1 job No2..</p>

I am using XSLT 1.0, which I mention to forget in the first post. Sorry for that, but you judged it.. Hmmm vast experience with XSLT.. Great..

Can you help me again..?

Have a nice day John


LarsH - Right said, I should have done all this in the first post itself, but somehow can't manage it. Now I have practiced the posting techniques and hereafter will do it correctly. :)

Also, I have accepted Martin's answer. It did the job, with little modification I got the answer for the 2nd post of mine.

Thanks a lot to all of you...

Have a nice day John

share|improve this question
    
The question is too vague to attempt a useful answer. Please show your current XSLT code. (I think you've made clear enough what result you need and what result you're currently getting.) –  LarsH Oct 10 '11 at 17:07
    
@LarsH: It is there, but not formatted. The OP says: "What is the right way to display the <job> repeatedly?" but the <job> isn't formatted as it should. I guess that @Martin Honnen could have edited the question. I am doing so now. –  Dimitre Novatchev Oct 11 '11 at 2:42
    
@Dimitre: having the <job> visible helps, but I was asking for his XSLT code. –  LarsH Oct 11 '11 at 3:16
    
@LarsH: Whenever someone says they only get the 1st node, it is almost 100% <xsl:value-of> vs. <xsl:copy-of> :) –  Dimitre Novatchev Oct 11 '11 at 3:37
1  
@Dimitre: yeah. I just thought it would be easier to correct the problem with specifics based on the context of his code, rather than spend time making general explanations that might be difficult for him to apply -- or might not be applicable at all, if his problem is more nuanced. In principle I feel like it's a basic level of consideration, when asking "What's wrong with my code?", to show some code. I think this is borne out by John's new response, that Martin's answer didn't quite apply to his code... which he is now showing. –  LarsH Oct 11 '11 at 10:30
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1 Answer

up vote 1 down vote accepted

I guess the problem is that with XSLT 1.0 (or with an XSLT 2.0 processor running an XSLT 1.0 stylesheet in backwards compatible mode) the code

<xsl:value-of select="job"/>

outputs the string value of the first job element. If you want to output the value of all job elements then with XSLT 1.0 you need to use either

<xsl:for-each select="job">
  <xsl:if test="position() &gt; 1">, </xsl:if>
  <xsl:value-of select="."/>
</xsl:for-each>

or <xsl:apply-templates select="job"/> with a template for job elements e.g.

<xsl:template match="job">
  <xsl:if test="position() &gt; 1">, </xsl:if>
  <xsl:value-of select="."/>
<xsl:template>

while with XSLT 2.0 all you need is <xsl:value-of select="job" separator=", "/>.

share|improve this answer
    
Good job figuring out what the user meant... +1 –  LarsH Oct 10 '11 at 17:30
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