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Can't seem to figure out, and I'm not sure it entirely possible. I have a graph like so

 a-[:granted]->b-[:granted]->...x-[granted_source]>s

where b and x are of interest. While I already know a and s, the end points, which are defined in START clause.

Note that b and c could be one ( a->b->s ) or more then one ( a->b->c->x->s ) and the goal is to find the shortest path returning only the nodes that are pointed to by a 'granted' relationship.

The closest I've got is:

start s=node(21), p=node(2)
match paths=shortestPath(p-[:granted|granted_source*]->s)
return NODES(paths)

Which gives all the nodes, including start (p) and end (s). But I can't seem to filter out, or better would be to not return them at all, only the nodes that are pointed to by a granted relationship and in the order from (s) if possible. I'm on Neo4j 2.0b and I'm wondering if Labels, which I have no issue using, would be the better way to go? Any help would be very appreciated.

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Just to check, it's not the case that only the last relationship is of type [granted_source] in your model? You have patterns like b-[:granted_source]->c-[:granted]->d-[:granted_source]->s as well? –  jjaderberg Nov 22 '13 at 11:02
    
Yes, only the last is granted_source, and there could be many from x other s's (in my very first example), so a-[:granted]->b-[:granted]->...x-[granted_source]>s1 or a-[:granted]->b-[:granted]->...x-[granted_source]>s2. Hope that answers your question jjaderberg? –  Andrew Lank Nov 23 '13 at 11:13
1  
Probably makes little difference in your case, but -[granted|granted_source*]-> is infinite depth with any combination and order of the two relationships. -[granted*]->x-[granted_source]-> better expresses the pattern you're querying for. –  jjaderberg Nov 23 '13 at 12:07
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2 Answers 2

up vote 2 down vote accepted

So, you want to chop the head and tail off of a collection of nodes? (Am I understanding that right?) How about:

start s=node(21), p=node(2)
match paths=shortestPath(p-[:granted|granted_source*]->s)
return NODES(paths)[1..-1]
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Interesting, never saw that in all the Cypher docs, let me try this now... –  Andrew Lank Nov 21 '13 at 23:23
    
Both my solution and yours seem to take the same amount of time (caveat: basic test with the browser console). Well I learnt something new, and I'm more keen on your shorter solution. You win! ... for now! ;) –  Andrew Lank Nov 21 '13 at 23:27
    
Wes, can you link where you found the [1..-1] ? –  Andrew Lank Nov 21 '13 at 23:29
    
I helped write the code for it. :) Let me check the docs... –  Wes Freeman Nov 22 '13 at 0:13
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I think I resolved it using a WITH, I think this is probably the best performance given that first the p-... are fetched, then all ...->s are fetched and then using the shortestPath() is used to get the 'in between' nodes. The results appear correct.

start s=node(21), p=node(2)
match p-[:granted]-x, y-[:granted_source]->s
with x, y
match paths=shortestPath(x-[:granted*]->y)
return NODES(paths)
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