0

I have the following table:

uid | key | email
-----------------
1   |  1  | test@test.com
2   |  2  | test@test.com
3   |  3  | test@test.com
4   |  4  | test@test.com
5   |  4  | test@test.com
6   |  4  | test@test.com
7   |  6  | abce@test.com
8   |  7  | defg@test.com

I'd like to grab all of the rows with distinct key but repeating email values

the result should look like:

uid | key | email
-----------------
1   |  1  | test@test.com
2   |  2  | test@test.com
3   |  3  | test@test.com
5
  • By "Distinct key" do you mean where there is only one occurence in the table of that key. In your example, would the query return the rows for keys 1,2,3,6, and 7?
    – JohnFx
    Feb 24, 2009 at 19:01
  • no, because a repeating email, but the key is also repeated and 7 is not repeated anywhere.
    – madcolor
    Feb 24, 2009 at 19:05
  • oops.. no because uid 6 has a repeating email, but the key is also repeated.. and 7 has no repetition anywhere.
    – madcolor
    Feb 24, 2009 at 19:06
  • I think you need to explain the query a bit more clearly - and give your table a name (a common omission in SQL questions on SO). The important part is characterizing what it is about uids 4, 5, and 6 that means you don't want to see those rows in the result. Feb 24, 2009 at 19:22
  • 1
    This question is still incredibly vague about what you are looking for. I guess your acceptance of an answer, however, lets us reverse engineer the problem.
    – JohnFx
    Feb 24, 2009 at 22:30

2 Answers 2

2
SELECT MIN(uid) as uid, key, email
FROM Keys k INNER JOIN 
    (SELECT email FROM KEYS GROUP by email HAVING COUNT(email) > 1 ) k2
    ON k.email = k2.email
GROUP BY key, email
HAVING COUNT(key) = 1
1
SELECT * FROM table
WHERE email NOT IN
(
SELECT email 
FROM table GROUP BY email
HAVING COUNT(email) <= 1)
AND key IN
(
SELECT key
FROM table
GROUP BY key
HAVING COUNT(key) = 1 
)

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.