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From previous queries, i have two variables. The first:

<list>
    <item>a</item>
    <item>b</item>
    <item>a</item>
    <item>c</item>
</list>

The second:

<list>
    <item>b</item>
</list>

I want the nodes wich is in the first list, but not in the second list:

<list>
    <item>a</item>
    <item>c</item>
</list>

(like the SQL MINUS operator) How can i do that?

EDIT: Fortunetaly, WikiBooks already has the answer.

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flagged for close as user has self answered question. –  John Jun 20 '11 at 22:44
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1 Answer

up vote 0 down vote accepted

Try the following, which is based on a fundamental of XPath2.0 - that the = operator acts as a kind of join, and allows implicit iteration (in this case, combined with ! for not).

Notice the variable $onlyin1 could be used directly to output the nodes from one list which don't exist in the second list, but the code below allows you to de-duplicate the nodes which have identical content as well.

let 
$list1 := 
<list>
    <item>a</item>
    <item>b</item>
    <item>a</item>
    <item>c</item>
</list>,
$list2 := 
<list>
    <item>b</item>
</list>,
$onlyin1 := $list1//item[text()!=$list2//item/text()]
return 
<list>
   {for $item in distinct-values($onlyin1/text()) return 
   <item>{$item}</item>
   }
</list>
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