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How do you or conditions rather then and? Example below:

START user = node({id})
MATCH
(user)-[:follows]->(followed),
(follower)-[:follows]->(user)
RETURN user, followed, follower

What I want to get back is: user, regardless of whether anyone follows her or whether she follows anyone. All followers, if any. All followed if any.

The query above acts as if it was an and. If if user follows no one, or no one follows the user, nothing is returned.


Here's something else I've tried, but I'm getting a syntax error on it:

start a = node(40663) 
with a, a as b 
match (b)-[:follows]->(c) 
with b, a as d 
(e)-[:follows]->(d) 
return a, c, e;

The error:

SyntaxException: string matching regex `$' expected but `(' found

Think we should have better error message here? Help us by sending this query to cypher@neo4j.org.

Thank you, the Neo4j Team.

"start a = node(40663) with a, a as b match (b)-[:follows]->(c) with b, a as d (e)-[:follows]->(d) return a, c, e"
                                                                               ^

Regardless of this error, the reduced query (with only one with) returns zero results, so that doesn't seem to be the way to do it either.

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3 Answers

Can you do:

START user = node({id})
MATCH
p1 = (user)-[:follows]->(followed),
p2 = (follower)-[:follows]->(user)
RETURN user, followed, follower

alternatively:

START user = node({id})
MATCH (user)-[:follows]->(f)
WITH user, collect(f) as followed 
MATCH (f)-[:follows]->(user)
RETURN user, followed, collect(f) as follower
share|improve this answer
    
The first one is really odd. Can you explain a bit? Why do I need these stray variables (are they even variables?), I mean, p1 and p2. This still doesn't quite explain the semantic of the comma. Does it act like and, a strict and or does it short-circuit? Re' the second query: it returns the correct number of followed / followers, no duplicates. Could you explain why were there duplicates in my original query? –  user797257 Oct 10 '13 at 15:24
    
@wvxvw Basically there's a match for every unique combination of user, follwed, and follower. However since he's using COLLECT(f), the followed and follower nodes are all grouped into separate arrays. So the unique combination is aggregated so you only have one user per row. –  LameCoder Nov 4 '13 at 20:18
    
@LameCoder sorry, you've lost me completely. What question were you trying to answer? –  user797257 Nov 4 '13 at 22:26
    
@wvxvw You asked a question about the second query. The duplicates in your original query are there because you are returning user, followed, follower. If you have user U and followers (f1, f2) and followed (F1, F2) you would get results like: U, f1, F1 / U, f1, F2 / U, f2, F1 / U, f2, F2. Since he is collecting all of the followed and follower nodes into arrays, you only have one row per user with no duplication. –  LameCoder Nov 4 '13 at 22:55
    
@LameCoder sorry, but it's a negative, both times. This is not the result I'm getting and my code isn't different in that how many arrays I get back from the query :/ You misunderstood the problem. I only get duplicates when the user appears to be both the followed and the follower, but the user doesn't follow herself. –  user797257 Nov 4 '13 at 23:01
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OK, I could solve this one using something like this:

start a = node(40663)
match (a)-[?:follows]->(b), (c)-[?:follows]->(a) 
return a, b, c;

But if there's a better way, don't hesitate to tell!

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match (c)<-[?:follows]-(a)-[?:follows]->(b) should also work

EDIT: Alternatively

START user = node({id})
MATCH user--m 
WHERE user-[:follows]->m 
OR user<-[:followed]-m 
RETURN user  ,m
share|improve this answer
    
Second variant isn't equivalent: I need those who follow user and those whom user follows in separate bags. There's more difficult to understand issue which both applies to your first variant and my variant alike. If user follows herself, then she will be listed twice in every list (which is wrong by all accounts, she follows herself only once and once alone). So I had to replace a, collection(distinct b), collection(distinct c) in the return clause. But I still can't tell whether it is a bug, or there's some logic behind it. –  user797257 Oct 7 '13 at 12:48
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