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I have the following paths

1->4
1->2->3->4
1->2->3->4->4

i want to get what are the best paths for 1->4

the expected result is

1->4 
1->2->3->4
without the 1->2->3->4->4)

query example:

match path =  ((p0 { PositionId : 1})-[r*]->( next {PositionId : 4}))
return extract(z IN nodes(path) | z.PositionId),count(*)
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1  
I gather that by "best path" you can't mean shortest path or cheapest path, since you say that 1->4 and 1->2->3->4 are both expected results. So what does "best path" mean and what is it about 1->2->3->4->4 that excludes it? –  jjaderberg Jan 8 at 10:04
    
@jaderberg - i am trying to show all possible routes to "4" from "1". the problem with "1->2->3->4->4" is that the route is supposed to end at the 4th node.. (without continuing in a loop back to itself) –  Raanan Raz Jan 9 at 13:47
    
That's precisely what Michaels query does. It makes sure that the node (next {PositionId:4}) is not in the middle of the path, which means that paths that go 'through' or 'past' next are excluded, i.e. only paths stopping at the first occurrence of {PositionId:4} are included. –  jjaderberg Jan 10 at 15:57
    
@jaderberg - you are correct. but i want all the data of that path to be summed into the 1->2->3->4. (count(*)) (by doing Michael's solution i am simply ignore that path..) –  Raanan Raz Jan 11 at 18:02
    
Actually, I just tried Michael's query and it didn't filter the paths the way I thought. Don't know why and can't fiddle with it right now, but WHERE NONE (x in nodes(path)[1..-1] WHERE x = next) seems to do what I expected–to my mind they ought to be equivalent, but maybe I'm missing something. –  jjaderberg Jan 11 at 20:08

1 Answer 1

match path =  (p0 { PositionId : 1})-[r*]->( next {PositionId : 4})
WHERE NOT next in nodes(path)[1..-1]
return extract(z IN nodes(path) | z.PositionId),count(*)
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Hi Michael, Thanks for your response. I have tested it without luck.. Keep in mind that the following path (1->2->3->2->3->4) is still valid Keep in mind that 4 is a property (and not the ID). i am then doing a group by by that property (PositionId) –  Raanan Raz Jan 7 at 17:46

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