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For example, lets say my query is:

match (u:User) Where u.LivesIn:'Los Angeles' OR u.From:'Miami' OR u.Status:'Single' OR u.Job:'Artist'}) return u

How would I change my query so I can display a column that counts how many attributes matched my query.

For my query above, lets say I returned the following Users:

> User1, Los Angeles, Miami, Single, Artist, (4 attributes matched query
> so show a 4 in column)
> 
> User2, Los Angeles, Miami, Married, Artist, (3 attributes matched
> query so display 3 in column)
> User3, Los Angeles, New York, Married, Dancer, (1 attributes matched
> query so display 1 in column)

Im using this to build a sort of ranking system

Im trying to get This:

u.UserID     u.MatchingAttributes

User1        4

User2        3

User3        1

Also as a bonus if you can please show how to do this with relationships also. Thanks.

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it would be better if you would have modelled it as separate nodes instead of attribs\. Like single/married can be 2 nodes and newyork/LA can be 2 other nodes. All linked by relationships. Then you could easily do what you want.. –  Sumeet Sharma Aug 24 '14 at 6:51
    
Yes that sounds better, but i'm not sure how to write the same query using OR with relationships as you mention. But if I do use relationships, how would I count the matching Attributes? –  1ManStartup Aug 24 '14 at 6:55
    
instead of holding it as node attribs, you can create separate nodes which will be liked to the user node. Check my solution for a clearer understanding. –  Sumeet Sharma Aug 24 '14 at 7:11

2 Answers 2

up vote 2 down vote accepted

You could use a bunch of CASE statements:

MATCH (u:User)
WITH u.UserID AS User, CASE WHEN u.LivesIn = 'Los Angeles' THEN 1 ELSE 0 END AS c1,
                       CASE WHEN u.From = 'Miami' THEN 1 ELSE 0 END AS c2,
                       CASE WHEN u.Status = 'Single' THEN 1 ELSE 0 END AS c3,
                       CASE WHEN u.Job = 'Artist' THEN 1 ELSE 0 END AS c4
RETURN User, c1 + c2 + c3 + c4 AS Matching
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thats a pretty smart way !! nice!! –  Sumeet Sharma Aug 27 '14 at 17:01
1  
This is what I ended up using, also combining it with coalesce(for true/false) and reduce to add up the sum. Thanks. –  1ManStartup Aug 28 '14 at 20:04

Suppose you graph is modelled as

enter image description here

Now you can name the relationships to something suitable. The sole purpose of the graph model i pasted is to just demostrate the matching strategy thats why i have skipped naming the relationships suitably and adding node labels.

Now what you can do is

match (u:User)-[r]-(m) where m.name in ['LA','Miami','Single','Artist'] return u,count(m) as count

{Assuming above the m other nodes (other than the User labelled nodes) have name attribs in them }

share|improve this answer
    
Thanks for the graph and reply. I ended up using Nicole's solution, but will make more use of neo4j relationships as you mention. –  1ManStartup Aug 28 '14 at 20:06
    
also i would suggest you to read about the underlying datastructure which neo4j uses to store attribs and how you can optimize retrieval of data .. because then you will realize why i was suggesting using relationships.. –  Sumeet Sharma Aug 29 '14 at 3:17

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