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I have this cypher query...

start u = node(251)
match u -[I:PREFERENCE]-> i,
      i <-[Q:CATEGORY|IS_IN*0..]- q <-[C:JOB|LOCATION]- o,
      o -[J:JOB]-> j -[JL:LABEL]-> jl,
      o -[P:LOCATION]-> p -[PL:LABEL]-> pl
where jl.lang = "en"
  and pl.lang = "en"
return distinct o.title, o.description, type(C) as PreferenceType,
      jl.name as Job, pl.name as Location

...which isn't quite working yet. The thing is, if I skip the LABEL-relationship, it returns the expected result. However, if I leave it there the result depends on the order of the last two match clauses (o -[J:JOB]-> j -[JL:LABEL]-> jl and o -[P:LOCATION]-> p -[PL:LABEL]-> pl).

If LOCATION is last, I receive only LOCATION-based results and if I put JOB on the last position, only JOB-based results.

In the end of course, I want the correct result (including LOCATION- and JOB-based results), but I also wonder why this makes any difference?

I'm using Neo4j 1.9.M03 here

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1 Answer

This works, but I'd prefer a version without WITH

start u = node(251)
match u -[I:PREFERENCE]-> i,
      i <-[Q:CATEGORY|IS_IN*0..]- q <-[C:JOB|LOCATION]- o
 with distinct o, C
match o -[J:JOB]-> j -[JL:LABEL]-> jl,
      o -[P:LOCATION]-> p -[PL:LABEL]-> pl
where jl.lang = "en"
  and pl.lang = "en"
return o.title, o.description, type(C) as PreferenceType,
      jl.name as Job, pl.name as Location
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You could try moving the clauses into the where part, since you are trying to filter iirc: WHERE o -[J:JOB]-> j -[JL:LABEL]-> jl AND o-[P:LOCATION]-> p -[PL:LABEL]-> pl –  PhilBa Sep 12 '13 at 14:04
    
Just curious, how come it works with the "With" clause. does each o have both the "job" label and the "location" label, or it has only one label which is either "job" or "location"? –  Lisa Sep 12 '13 at 14:15
    
@PhilBa I don't quite understand. I need these clauses to get the multilanguage descriptions (jl.name and pl.name). So moving them to the where part wouldn't work –  Prjio Sep 12 '13 at 14:19
    
@Lisa I don't know, why it works with "with" (yet) ;). I'd like to understand, though. Every "o" has one JOB and one LOCATION relationship to "job" and "location" nodes respectively and these nodes always have LABEL relationships to label-nodes (the where clause ensure that I only get the english label-nodes) –  Prjio Sep 12 '13 at 14:27
    
Sorry, I didnt see that. Meanwhile I found another question which might be relevant to this: stackoverflow.com/questions/16611723/… .Basically it boils down to the point that a node/rel which is matched by a MATCH clause, wont be matched again by any other MATCH clause –  PhilBa Sep 12 '13 at 14:56
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