1

Sample Data

enter image description here

Sample Query: At the end of this post

Objective: Searches similar to 'who knows exactly 2 Cust and works at 1 company'


Step 1: I just did a print of the number of connected Cust and Comp and its all good till now

MATCH (from:Cust), (a:Cust), (b:Comp),
p1=((from)-[r1]-(a)), p2=((from)-[r2]-(b))
WITH from, count(DISTINCT a) as knows, count(DISTINCT b) as works 
RETURN from.title, knows, works

enter image description here


Step 2: I went and added WHERE clause to filter the count, so far so good

MATCH (from:Cust), (a:Cust), (b:Comp),
p1=((from)-[r1]-(a)), p2=((from)-[r2]-(b))
WITH from, count(DISTINCT a) as knows, count(DISTINCT b) as works 
WHERE knows=2 and works=1
RETURN from.title, knows, works

Result > Alpha | 2 | 1


Step 3: Now I also want some filters on Cust and Comp add a and b to my WITH clause

MATCH (from:Cust), (a:Cust), (b:Comp),
p1=((from)-[r1]-(a)), p2=((from)-[r2]-(b))
WITH from, count(DISTINCT a) as knows, count(DISTINCT b) as works, a, b
RETURN from.title, knows, works

And BOOM! everything is 1, 1

enter image description here

It looks aggregate is getting confused with multiple variables in the WITH clause so and start to add multiple WITH clause and UNWIND, but I was unable to get the query for it.

Sample Data Creation

CREATE (a:Cust {title: "Alpha"})
CREATE (b:Cust {title: "Bravo"})
CREATE (c:Cust {title: "Charlie"})
CREATE (d:Cust {title: "Delta"})

create (g:Comp {title: "Google"})
create (f:Comp {title: "Facebook"})
create (s:Comp {ttile: "Stackoverflow"})

MATCH (a:Cust {title: "Alpha"}), (b:Cust {title: "Bravo"})
CREATE (a)-[:KNOWS]->(b)

MATCH (a:Cust {title: "Alpha"}), (c:Cust {title: "Charlie"})
CREATE (a)-[:KNOWS]->(c)

MATCH (d:Cust {title: "Delta"}), (c:Cust {title: "Charlie"})
CREATE (d)-[:KNOWS]->(c)

MATCH (c:Cust {title: "Charlie"}), (b:Cust {title: "Bravo"})
CREATE (c)-[:KNOWS]->(b)


MATCH (g:Comp {title: "Google"}), (s:Comp {ttile: "Stackoverflow"})
CREATE (g)-[:USES]->(s)

MATCH (f:Comp {title: "Facebook"}), (s:Comp {ttile: "Stackoverflow"})
CREATE (f)-[:USES]->(s)

MATCH (d:Cust {title: "Delta"}), (s:Comp {ttile: "Stackoverflow"})
CREATE (d)-[:WORKS_AT]->(s)

MATCH (d:Cust {title: "Delta"}), (g:Comp {title: "Google"})
CREATE (d)-[:WORKS_AT]->(g)

MATCH (a:Cust {title: "Alpha"}), (f:Comp {title: "Facebook"})
CREATE (a)-[:WORKS_AT]->(f)

MATCH (c:Cust {title: "Charlie"}), (s:Comp {ttile: "Stackoverflow"})
CREATE (c)-[:WORKS_AT]->(s)
  • It's unclear what result you want to get with the third query. The query itself works correctly: when you simultaneously use a variable and aggregate on it, you will logically receive one as a result. – stdob-- Apr 15 '18 at 12:50
  • A query that does aggregation BUT also returns all the variables. I want the path variables for my result AND also want to apply filter like atleast 2 connections etc. – Srinath Ganesh Apr 15 '18 at 12:52
4

As stdob-- says, the aggregation is working correctly. Aggregation in Cypher uses all the non-aggregation variables as the grouping key, which provides context for the aggregation.

In your step 2 query, you have:

WITH from, count(DISTINCT a) as knows, count(DISTINCT b) as works

knows and works are both aggregating using count(), so from is the grouping key...the counts are with respect to each from node.

In your step 3 query, you have

WITH from, count(DISTINCT a) as knows, count(DISTINCT b) as works, a, b

So from, a, and b are the grouping key... so for each row of from, a single a, and a single b node (note that this is a cross product with every a and b node connected to from), you're getting the count of distinct a nodes and b nodes...which is always going to be 1.

A better approach to get the answer you want (which I can't say with certainty, as you didn't specify what you really wanted to do with a and b in your query, you didn't use them in your return) is to get the degrees of relationship types from your from node, then collect the connected nodes (or use pattern comprehension to get them in a collection for you).

For example:

MATCH (from:Cust)
WITH from, size((from)-[:KNOWS]-()) as knowsDeg, 
     size((from)-[:WORKS_AT]-()) as worksAtDeg, 
     [(from)-[:KNOWS]-(a:Cust) | a] as known, 
     [(from)-[:WORKS_AT]-(b:Comp) | b] as worksAt
RETURN from.title, knowsDeg, worksAtDeg, known, worksAt

Also, I should point out that you have cross products in your original query, which is why you needed to use DISTINCT in your count:

MATCH (from:Cust), (a:Cust), (b:Comp),
p1=((from)-[r1]-(a)), p2=((from)-[r2]-(b))
WITH from, count(DISTINCT a) as knows, count(DISTINCT b) as works 
RETURN from.title, knows, works

If you had left off DISTINCT, the counts for each would have been the same, the product of the number of connected :Cust nodes * the number of connected :Comp nodes. If you only wanted counts (and wanted to get them through expansion rather than by degree as in my answer), you could get them without forming a cross product by collecting them after you match to each like so:

MATCH (from:Cust)--(a:Cust)
WITH from, count(a) as knows
MATCH (from)--(b:Comp)
WITH from, knows, count(b) as works
RETURN from.title as title, knows, works
  • Thanks a lot, I tried and your queries work great, but I have a problem. When I add the path variable my counts get messed up, like MATCH p1=((from:Cust)--(a:Cust)) WITH from, count(a) as knows, p1 MATCH p2=((from)--(b:Comp)) WITH from, knows, count(b) as works, p1, p2 RETURN from.title as title, knows, works, p1, p2 any idea what should i do if i need the path too? – Srinath Ganesh Apr 15 '18 at 15:37
  • This is because the context of the aggregation now has to consider the path. In english, your first WITH translates to: Give me the count of a nodes for this from node and this particular path p1. The particular path for each row will only have a single a node, so your count will always be 1. You need to keep the context of your aggregation to just from, so if you want the paths, you have to collect() them in each step (that way the variable for it won't be part of the grouping key, you'll be back to aggregating with respect to from and nothing else) – InverseFalcon Apr 15 '18 at 20:56
  • 1
    To better understand, try returning what you have just after your first WITH, and look at the row results: you have a separate path per row. Pay attention to what's aggregated and what's not. Remember aggregations are with respect to the non-aggregation variables. – InverseFalcon Apr 15 '18 at 20:57

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