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I have some named graphs stored in Virtuoso, and I want to find the one that matches the highest number of terms from a provided list.

My query is constructed programatically and looks like this:

SELECT DISTINCT ?graph (count(DISTINCT ?match) as ?matches)
  GRAPH ?graph {
    {?match rdf:label "term 1"} 
     UNION {?match rdf:label "term 2"} 
     UNION {?match rdf:label "term 3"}
ORDER BY DESC(?matches)

Each term becomes another UNION clause.

Is there a better way to do this? The query gets long and ugly fast, and Virtuoso complains when there are too many terms.

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2 Answers 2

up vote 3 down vote accepted

(it's rdfs:label)

An alternative way to write it is:

{ ?match rdfs:label ?X . FILTER (?x in ("term 1", "term 2", "term 3")) }

or (SPARQL 1.0)

{ ?match rdfs:label ?X . FILTER ( ?x = "term 1" || ?x = "term 2" || ?x = "term 3" )  }
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That looks much better, thank you. –  Ben Morris Feb 23 '13 at 15:45
An alternative is to use SPARQL 1.1's newer VALUES. Not sure if this was available when answering, but could be worth an update to the answer. –  Nick Bartlett Nov 26 '13 at 17:59

In SPARQL 1.1, there's a values clause that can help out with this. It lets you write:

select ?match where {
  values ?label { "term 1" "term 2" "term 3" }
  ?match rdfs:label ?label
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