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In my domain a node can have several relationships of the same type to other entities. Each relationship have several properties and I'd like to retrieve the nodes that are connected by at least 2 relationships that present a given property.

EG: A relationship between nodes have a property year. How do I find the nodes that have at least two outgoing relationships with the year set to 2012?

Why Chypher query so far looks like this (syntax error)

START x = node(*)
MATCH x-[r:RELATIONSHIP_TYPE]->y
WITH COUNT(r.year == 2012) AS years
WHERE HAS(r.year) AND years > 1
RETURN x;

I tried also nesting queries but I believe that it's not allowed in Cypher. The closest thing is the following but I do not know how to get rid of the nodes with value 1:

START n = node(*)
MATCH n-[r:RELATIONSHIP_TYPE]->c
WHERE HAS(r.year) AND r.year == 2012
RETURN n, COUNT(r) AS counter
ORDER BY counter DESC
share|improve this question

1 Answer 1

up vote 4 down vote accepted

Try this query

START n = node(*)
MATCH n-[r:RELATIONSHIP_TYPE]->c
WHERE HAS(r.year) AND r.year=2012
WITH n, COUNT(r) AS rc
WHERE rc > 1
RETURN n, rc
share|improve this answer
    
thanks a lot! :) –  Gevorg Dec 6 '12 at 22:25
    
i'm curious whether the r.year part is powered by index? either way, isn't this faster? START r = relationship:yearIndex('year:2012') MATCH n-[r:RELATIONSHIP_TYPE]->c WITH n, COUNT(r) AS rc WHERE rc > 1 RETURN n, rc –  ulkas Dec 7 '12 at 13:22
    
@ulkas it isn't, but they don't mention an index in the question. You should definitely avoid node(*) and use indexes in start lookups when possible. :) –  Wes Freeman Jan 14 '13 at 6:20

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