-1
+----------+---------------------+-------+
| ID       | date_value          | value |
+----------+---------------------+-------+
| 1        | 2011-04-20 21:03:05 | 150   |
| 1        | 2011-04-20 21:03:04 | 150   |
| 2        | 2011-04-20 21:03:03 | 20    |
| 2        | 2011-04-20 21:02:09 | 130   |
| 2        | 2011-04-20 21:02:08 | 130   |
| 3        | 2011-04-20 21:02:07 | 20    |
| ...      | ...                 | ...   |
+----------+---------------------+-------+

With this table how could I find, using a select, the IDs that have more than 2 values above 100?

5
SELECT ID, count(*) from mytable
WHERE value > 100
GROUP BY ID
HAVING count(*) >2
0

You can do the below

select id,count(value)
from table1
where value > 100
having count(value) > 2
group by ID;
  • 1
    Doesn't the HAVING clause have to come after the GROUP BY? – mlinth Nov 18 '14 at 10:32
  • it can come before also – psaraj12 Nov 18 '14 at 10:33
  • Interesting - that works in Oracle, but it would cough in Postgresql. Thanks - I learned something! – mlinth Nov 18 '14 at 10:38
  • @psaraj12 the having clause will not work as you stated as mlinth says – Exhausted Nov 18 '14 at 10:55
  • HI @Sudharsanan, psaraj is right, it works in Oracle. See stackoverflow.com/questions/20188862/… – mlinth Nov 18 '14 at 11:02
0

You can use this SQL statement:

SELECT id, count(1)
FROM   mytable
WHERE  value > 100
GROUP BY id
HAVING count(1) > 2;

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.