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I have a query that gathers usernames from 4 UNIONS. How do I display only the duplicate users from that result? (ideally only displaying each duplicate once).

Thanks!

Here is the query:

(SELECT user1 AS user FROM   friendships WHERE  user2 = 'johnsmith') 
UNION ALL 
(SELECT user2 AS user FROM   friendships WHERE  user1 = 'johnsmith') 
UNION ALL 
(SELECT user1 AS user FROM   friendships WHERE  user2 = 'johndoe') 
UNION ALL 
(SELECT user2 AS user FROM   friendships WHERE  user1 = 'johndoe') 
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  • Please provide sample data and desired results. Mar 23 '17 at 2:12
2

You can use aggregation:

SELECT user
FROM ((SELECT user1 AS user 
       FROM friendships 
       WHERE user2 = 'johnsmith' 
      ) UNION ALL 
      (SELECT user2 AS user 
       FROM friendships 
       WHERE user1 = 'johnsmith' 
      ) UNION ALL 
      (SELECT user1 AS user 
       FROM friendships 
       WHERE user2 = 'johndoe')
      ) UNION ALL 
      (SELECT user2 AS user 
       FROM friendships 
       WHERE user1 = 'johndoe'
      ) 
     ) u
GROUP BY user
HAVING COUNT(*) > 1;

You can probably express this so it does only one pass over the data:

SELECT (CASE WHEN user1 = 'johnsmith' THEN user2
             WHEN user2 = 'johnsmith' THEN user1
             WHEN user1 = 'johndoe' THEN user2
             WHEN user2 = 'johndoe' THEN user1
        END) as user
FROM friendships f
WHERE 'johnsmith' in (user1, user2) or 'johndoe' in (user1, user2)
GROUP BY user
HAVING COUNT(*) > 1;

Note that this is not exactly the same. It would count a friendship between 'johnsmith' and 'johndoe' only once.

2
SELECT user, count(*) FROM (
(SELECT user1 AS user FROM   friendships WHERE  user2 = 'johnsmith') 
UNION ALL 
(SELECT user2 AS user FROM   friendships WHERE  user1 = 'johnsmith') 
UNION ALL 
(SELECT user1 AS user FROM   friendships WHERE  user2 = 'johndoe') 
UNION ALL 
(SELECT user2 AS user FROM   friendships WHERE  user1 = 'johndoe') ) x
GROUP BY user
HAVING COUNT(*) >= 2

USE GROUP BY AND HAVING

2
  • i think it should be 'user' not 'user1' on the select and group by clauses
    – Pons
    Mar 23 '17 at 2:15
  • Oh didnt notice his 'as user'. Updated! Mar 23 '17 at 2:16

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