Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Let's say I have the XQuery code below:

   for $y in doc("file.xml")/A/B

        for $x in $y/C where $x/constraint1 != "-" and $x/constraint2 > 2.00
            do stuff 

Can I use a counter, to count how many my code will enter inside the second for loop? I tried this:

   for $y in doc("file.xml")/A/B
       let $i := 0
        for $x in $y/C where $x/constraint1 != "-" and $x/constraint2 > 2.00
            $i := $i + 1

but I got compile errors. I also I need to sum some constraints like this:

   for $y in doc("file.xml")/A/B
       let $i := 0
       let $sum := 0
        for $x in $y/C where $x/constraint1 != "-" and $x/constraint2 > 2.13
            $i := $i + 1
            $sum := $sum + $x/constraint2

but of course this didn't work either :(.

Any suggestions will be highly appreciated. Also, can you suggest a good book/tutorial/site for doing such stuff?

share|improve this question

3 Answers 3

You don't need it very often, but if you really do need a counter variable inside an XQuery for expression (analogous to position() in an xsl:for-each) you can use at "at" variable

for $x at $pos in //item return
  <item position="{$pos}" value="{string($x)}"/>
share|improve this answer
    
+1 Very good answer. –  user357812 Apr 15 '11 at 3:54

I don't think you have understood the basics of declarative paradigm.

Total count and sum would be:

let $items := doc('file.xml')/A/B/C[constraint1 != '-' and constraint2 > 2.13]
return ('Count:', count($items), 'Sum:', sum($items/constraint2))

Partial count and sum would be:

let $items := doc('file.xml')/A/B/C[constraint1 != '-' and constraint2 > 2.13]
for $pos in (1 to count($items))
return ('Count:', $pos, 'Sum:', sum($items[position() le $pos]/constraint2))
share|improve this answer

To Display counter in loop the best and easier way is to add at $pos in your for loop. $pos will work as a counter.

Code Snippet :

{for $artist **at $pos** in (/ns:Entertainment/ns:Artists/ns:Name)

  return
      <tr><td>{$pos}&nbsp;&nbsp;
    {$artist}</td></tr>

}

Output:

1   Artist

2   Artist 

3   Artist 

4   Artist

5   Artist

6   Artist
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.