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I have the following xml structure :

<reviews>
<review>
    <review_no>R1</review_no>
    <movie_title>After.Life</movie_title>
    <rating>3</rating>
    <reviewer>John Frankenheimer</reviewer>
    <review_date>2012-11-07</review_date>
    <review_desc>Average</review_desc>
</review>
    ...
</reviews>

and the following XQuery :

<query2>
{
for $r in distinct-values(doc("reviews.xml")/reviews/review/reviewer)

return
    <output><reviewer> {data(parent::node()/movie_title)} </reviewer>
    </output>
}
</query2>

The output I get is series of

<output><reviewer/></output>

inside <query2> tags, when instead reviewer tags should contain movie_title data.

Why ?

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3 Answers 3

up vote 1 down vote accepted

In case your XQuery processor does not support group by, you will need to perform an (implicit) join. Very similar to your query, but fetch all reviewers and for each, query the reviewers using a predicate.

<query2>
  <output>
    {
      for $reviewer in distinct-values(doc("reviews.xml")/reviews/review/reviewer)
      return <reviewer>
               {
                 /reviews/review[reviewer = $reviewer]/movie_title
               }
             </reviewer>
    }
  </output>
</query2>
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distinct-values returns only values, not nodes, so parent::node() does not work.

What is your expected output? You didn't specify your real problem. I guess you want to find all movie_titles grouped by reviewer. If so, group by will be very helpful for you:

<query2>
  <output>
    {
      for $review in doc("reviews.xml")/reviews/review
      let $reviewer := $review/reviewer
      group by $reviewer
      return <reviewer>{$review/movie_title}</reviewer>
    }
  </output>
</query2>

If you do not want the <movie_title/>-tags, you can wrap data() around $review/movie_title.

share|improve this answer
    
xmlspy doesn't recongnize group by keyword. –  aditya parikh Nov 17 '12 at 20:47
    
Better add your Query processor if it's less capable next time. I added a solution not using group by as another answer as it is another way to solve your problem. group by should be preferred anyway, if supported. –  Jens Erat Nov 17 '12 at 21:45
    
Ranon : Why doesn't parent :: node work for this code <query2> { for $m in doc("movies.xml")//genre where lower-case(data($m)) = "drama" return <b>{data(parent::node()/title)}</b> } </query2> –  aditya parikh Nov 18 '12 at 4:51
    
Cannot tell you without any data. But looks like you could do this query without any flwor expression, only using predicates. –  Jens Erat Nov 18 '12 at 12:10

The problem in your query is that a FLWOR expression does not set the context item: so instead of parent::node(), you need $r/parent-node().

This is a very easy mistake to make if you are used to XSLT, and I make it all the time.

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