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I have created 5 nodes in neo4j as follows.

Node 1 {userid:1000, username: A, someOtherProperties...}
Node 2 {userid:2000, username: B, someOtherProperties...}
Node 3 {userid:3000, username: c, someOtherProperties...} 
Node 4 {userid:4000, username: D, someOtherProperties...} 
Node 5 {userid:5000, username: E, someOtherProperties...} 

Node 1 connected with Node 2 & 3, and Node 2 connected with node 1, 3, 4

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

Now I want user suggestion for node 1 which contain those node which is not connected with it self with mutual count. I want result like this.

node id  userid  username  mutual count
-------  ------  --------  -------------
4    4000    D         2             (which is node 2 & 3)
5    5000    E         0    

I had tried cypher query, but I didn't get success.

share|improve this question
    
What query did you try? Can you share that? –  Luanne Jul 18 '13 at 16:52
    
Thanks @Luanne. I had tried following query : START user=node:node_auto_index("userid:*"), me=node:node_auto_index(userid = '92') WHERE user <> me WITH user MATCH pMutualFriends=me-[:friends]->mf<-[?:friends]-user RETURN user.userid, user.UserName, COUNT(pMutualFriends) As MutualCount Order by MutualCount desc; I had forgotten to put '?' in relationship before, that I had corrected. I have got result what I expected, But I am not sure. Is it correct way or not? –  Manish Sapkal Jul 19 '13 at 6:37
    
So you are looking to for a user U, find all friends of friends U and the number of U's friends connected to the friends-of-friends? Not sure why E turns up in your example because no friends are connected to E. Maybe I misunderstood the purpose of your query? –  Luanne Jul 19 '13 at 7:22
    
No @Luanne. I want E also. I want all users, but It should be ordered by mutualcount maximum to minimum. I just want to show No Of Mutual friends between logged in user and other user. so, logged in user can sent invitation to that user. If new user can not have any mutual contact, though he/she can get suggestion as per his/her city or country. and one more thing, I have to show random 10 records. thank you. –  Manish Sapkal Jul 19 '13 at 7:42
    
Okay, if that's what you want then you're query is fine. Note that however it could really be expensive because you are matching all user nodes –  Luanne Jul 19 '13 at 7:53

1 Answer 1

Please try

START user=node:node_auto_index(name='A'), f=node(*) 
MATCH user-[r?:FRIEND*1..2]->(f) 
WITH DISTINCT r AS friendRelation,f 
RETURN count(friendRelation),f

Which will give you the number of friend relations to every other node with a depth 2 (friend of a friend)

share|improve this answer
    
Thanks @Luanne I don't need friend of friend, but I want mutual friend with node A –  Manish Sapkal Jul 25 '13 at 9:16
    
Sorry but I am pretty confused. Can you please define what you mean by a mutual friend? For node A in your graph console.neo4j.org/?id=h1p7it what are the expected results –  Luanne Jul 25 '13 at 9:42
    
sorry @Luanne, I am not good with english thats why I am not able to explain you properly. sorry again. I need all user list with mutual count. means In my case, node1 (username:A) is logged user, and want to search another users started with some word (eg. 'aakas.*'). and if some node exist with username 'aakas'. this records should be shown with mutual count. can you get me? or more need to explain you? –  Manish Sapkal Jul 25 '13 at 9:50
    
As per my query, I need node2(B) with 1 mutual count, rest come with 0 mutual count –  Manish Sapkal Jul 25 '13 at 9:56
    
Okay think I got it. So A has one friend in common with B i.e. C - is that it? –  Luanne Jul 25 '13 at 10:01

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