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I have a scenario where I have more than 2 random nodes.

I need to get all possible paths connecting all three nodes. I do not know the direction of relation and the relationship type.

Example : I have in the graph database with three nodes person->Purchase->Product.

I need to get the path connecting these three nodes. But I do not know the order in which I need to query, for example if I give the query as person-Product-Purchase, it will return no rows as the order is incorrect.

So in this case how should I frame the query?

In a nutshell I need to find the path between more than two nodes where the match clause may be mentioned in what ever order the user knows.

share|improve this question
    
I don't understand this. Could you please create and share a sample graph using console.neo4j.org? – Stefan Armbruster Mar 15 '13 at 10:33
    
In the console, default Matrix example, I created a new node Oracle, Trinity ->(knows) Oracle and The Architect ->(Knows) Oracle start n=node:node_auto_index(name='Trinity'), m=node:node_auto_index(name='The Architect') create (Oracle {name:'Oracle'}), n-[:KNOWS]->Oracle, m-[:KNOWS]->Oracle When I query to get the path connecting Neo, oracle and Cypher, I should get Neo -> (Knows) Morpheus ->(Knows) Cypher ->(Knows) Agent Smith ->(Knows) The Architect ->(Knows) Oracle and Neo ->(Loves) Trinity ->(Knows) Oracle <-(Knows) The Architect <-(Knows) Agent Smith <-(Knows) Cypher – MNClb Mar 15 '13 at 12:50
    
could you please share your dataset using the console? would be much easier. – Stefan Armbruster Mar 15 '13 at 15:25
    
Created a dataset and query based on Wes Freeman. This query returns 72 rows. [console.neo4j.org/?id=gwgp70]. Any better way would help me. – MNClb Mar 18 '13 at 10:48

You could list all of the nodes in multiple bound identifiers in the start, and then your match would find the ones that match, in any order. And you could do this for N items, if needed. For example, here is a query for 3 items:

start a=node:node_auto_index('name:(person product purchase)'), 
      b=node:node_auto_index('name:(person product purchase)'), 
      c=node:node_auto_index('name:(person product purchase)') 
match p=a-->b-->c 
return p;

http://console.neo4j.org/r/tbwu2d

I actually just made a blog post about how start works, which might help:
http://wes.skeweredrook.com/cypher-it-all-starts-with-the-start/

share|improve this answer
    
Thanks a lot. This was really helpful. I have provided the dataset I used here with. The query returns 72 rows (All paths are the same I guess). [console.neo4j.org/?id=gwgp70]. But is there a way to get only one shortestpath which is a best match. Also when executing the query sometimes I get an error * Error: org.neo4j.kernel.guard.GuardOperationsCountException: max ops (ops=10001)*. Please advice on this. – MNClb Mar 18 '13 at 10:53
    
The console has a limit on the number of ops you can run (so it doesn't bring the server to its knees)--it's really meant for small graph examples. – Eve Freeman Mar 18 '13 at 12:13
    
Ok. But I was getting 72 rows in the output. Am I making any mistake in the query? or is there a better way to rephrase my query? – MNClb Mar 18 '13 at 14:27
    
The console you linked just has the Neo example... can you try sharing again? – Eve Freeman Mar 18 '13 at 14:50
    
Nevermind, I had to take out the ] from the URL. – Eve Freeman Mar 18 '13 at 14:55

Wouldn't be acceptable to make several queries ? In your case you'd automatically generate 6 queries with all the possible combinations (factorial on the number of variables)

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I do not want to do that way because, if the number of nodes increases then number of possible combination and so the number of times I query the database increases. This is an overhead. Instead is there a way to achieve my case? – MNClb Mar 15 '13 at 12:13
    
If you don't know the order, you have to try all the possibilities. You don't really have a choice, I doubt you can find a 'magic' trick. Wes's response above is probably the cleanest way to do it, but it also tests all the possible combinations. – RaduK Mar 18 '13 at 8:32

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