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I have a database of restaurant reviews. I have three tables: restaurant, user and review.

A restaurant has N reviews, and a user has N reviews. As such, review contains the foreign keys restaurant_id and author_id. Each table has an ID attribute.

I would like to find the users that post together a lot. More specifically, I want to have a table with columns user_A, user_B, reviewed_together where user_A and user_B are two user.IDs and reviewed_together contains the count of all the restaurants in which there is a review by BOTH user_A and user_B.

I am a beginner in SQL and I'd like to learn how to handle these situations properly, so links to resources and a sketch to your thought process would be a huge help :-)

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I recommend reading this article on Relational Division. Your case is the simplest one with only 2 elements in the group. –  vyegorov Feb 8 '13 at 11:39

2 Answers 2

up vote 1 down vote accepted

you can use this query:

select r1.author_id as user_a, r2.author_id as user_b,
  count(r1.restaurant_id) as reviewed_together
from review r1 inner join review r2 on r1.restaurant_id = r2.restaurant_id
  and r1.author_id > r2.author_id
group by r1.author_id, r2.author_id

but be careful about the

r1.author_id > r2.author_id

part, because if you change this to <> (unequal) you will get duplicate records.

please try and tell me if this query gets you the correct results you want.

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That's the query I wanted, thanks for the ">" sign, I didn't think about it. Took some time to understand why it works but yes, it does the job. However, it is painfully slow on my dataset since it's O(|r|²), where |r| is the number of reviews I have. How should I speed it up? I guess that creating the r1 join r2 table would still take O(|r|²) so it doesn't look like the way to go here... –  Tex Feb 9 '13 at 2:05
    
you are welcome, to speed up you can try indexes on review table. try (restaurant_id, author_id) index. also if this answer is useful please mark as accepted answer –  Noxthron Feb 9 '13 at 10:14
    
They are connected by foreign key contraints so they are already indexes (innoDB) –  Tex Feb 9 '13 at 21:25

Actually this answer might not completely true but I can not use comments yet, so I will use answer to reply, clearify and so on.

My first logical trial is the code below, it seems fine but where condition. I am not sure about that, I can enhance it if you comment. Can you please try the code below, I couldn't try it as I don't have any data.

select UserA.UserID as USER_A, UserB.UserID as USER_B, count(restID) as COMMON_COMMENTS
from 
    (select distinct(userID),restID from reviews group by restID) UserA,
    (select distinct(userID),restID from reviews group by restID) UserB
where UserA.restID = UserB.restID
group by UserA.userID, userB.userID

Your comments will enhance this query, I hope.

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you don't have restID columns in UserA and UserB subqueries. –  Noxthron Feb 8 '13 at 10:13
    
Thanks for reminding, I added them. –  Canburak Tümer Feb 8 '13 at 10:15
    
still I think this query needs much work to be run without errors. distinct(userID) is not a correct way to use it. and using distinct with group by is also seems meaningless. –  Noxthron Feb 8 '13 at 10:17

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