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I want to select all the nodes in the db that don't have a given relationship type with any other node.

Here's my db structure: I have user nodes that publish event nodes. The publish relationship is more specific, there are various types of relationships, say type1 and type2.

How can I do quickly select all user nodes that have type1 relationships with events but don't have type2 relationshiops with events.

Here's the query I'm using now:

START u = node:users("*:*") 
MATCH (ev1)<-[r1:type1]-(u)-[r2?:type2]->(ev2) 
WHERE r2 IS NULL
RETURN u

The problem is r2 is an optional relationship. This makes the above query VERY slow, confirming what the neo4j docs say.

How can I improve this query's speed? Can I better model the data to improve the performance?

Thank you! Alex

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@StefanArmbruster I used the answer in the question you recommended and I got a 50% increase in query response type. Here's the query I used: start u = node:users(':') match (u)-[:type1]->() where not (u)-[:type2]->() return count(distinct(u)) –  alexandru.topliceanu Oct 28 '13 at 14:51
    
@StefanArmbruster However, I now notice i'm not able to attach references to relationships/nodes in the where not construct. Ie. ...where not (u)-[r2:type2]->(ev2) ... Issues this error: Unknown identifier ev2. Unknown identifier r2. Any solutions? –  alexandru.topliceanu Oct 29 '13 at 7:25
    
since you're matching for a non-existing path in WHERE NOT you cannot assign variable names to its parts (they don't exist). So go for where not (u)-[:type2]->(), which reads "filter u by those not having a outgoing relationship of type type2". –  Stefan Armbruster Oct 29 '13 at 8:07
    
@Stefan Armbruster Yup, it makes sense! What I'm trying to do is check if a user has a relationship to a node that does not have certain properties. In this case I don't need the where not check. –  alexandru.topliceanu Oct 30 '13 at 9:06

1 Answer 1

up vote 3 down vote accepted

The solution I've found is two fold depending on the use case. I had two:

  1. Find all user nodes who have relationships of type type1 but don't have relationships of type type2.

Two queries can solve this, one using optional relationships which neo4j's manual warns against using:

START u = node:users("some query")
MATCH (ev1)<-[r1:TYPE1]-(u)-[r2?:TYPE2]->(ev2)
WHERE r2 IS NULL
RETURN u

Or use the faster variant which employs filtering on patterns. Docs

START u = node:users("some query")
MATCH (ev1)<-[r1:TYPE1]-(u)
WHERE NOT (u)-[:TYPE2]->()
RETURN u
  1. Find all user nodes who have relationships of type type1 but don't have relationships of type type2 with nodes with certain properties.

    START u = node:users("some query") MATCH (ev1)<-[r1:TYPE1]-(u)-[r2:TYPE2]->(ev2) WHERE ev2.property = value AND r2.property = value RETURN u

Given that my question had a performance note to it, I'll add two advice to speed up the queries above:

  • index as clever as possible in Lucene and move as many query conditions as possible from WHERE to the index query. All in an effort to reduce the number of starting nodes! Note! Heavy indexing reduces write performance. See lucene docs for available query syntax.
  • use parametric queries so neo4j can cache the execution strategy of your queries. docs
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@StefanArmbruster am I correct? –  alexandru.topliceanu Oct 30 '13 at 9:53
    
strong +1 on using parameterized cypher. Indexing trades always write performance for read performance. So "index as much as possible" sounds a little bit misleading, it should be "index as clever as possible" to reduce the potential number of start nodes. –  Stefan Armbruster Oct 30 '13 at 10:00
    
@StefanArmbruster Modified! 10x –  alexandru.topliceanu Oct 30 '13 at 11:31

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