6

The following query gives a count of how many rows there are in the exp_judging table with a value of 1 in the field pre, where there is also a matching column in exp_submissions with a member_group of 5

SELECT COUNT(*) AS count_result
  FROM exp_judging AS jud
  LEFT JOIN exp_submissions AS sub ON jud.rel_id = sub.id 
  WHERE jud.pre = 1
        AND sub.member_group = 5

This works great. However, in the future there will be multiple rows with the same 'rel_id' in the 'exp_judging' table.

How can I ensure that only one of each row is counted?

I tried adding GROUP BY to the end, but it just shows 1 result then, instead of 4 before. (there are no duplicates yet)

GROUP BY jud.rel_id

EDIT:

Have tried the following, but still just shows 1:

SELECT COUNT(DISTINCT jud.rel_id) AS count_result
FROM exp_judging AS jud
LEFT JOIN exp_submissions AS sub ON jud.rel_id = sub.id 
WHERE jud.pre = 1
AND sub.member_group = $member_group
GROUP BY jud.rel_id
| |
20

Use COUNT(DISTINCT rel_id) instead of COUNT(*).

| |
  • Thanks Mahmoud. Added an edit to my question, this still just shows 1, where it should be 4. – ccdavies Oct 3 '13 at 7:18
  • Okay, think I just clicked... no GROUP BY? – ccdavies Oct 3 '13 at 7:19
  • @ccdavies - Yes, no GROUP BY group by will give distinct results instead of count them all, remove it. – Mahmoud Gamal Oct 3 '13 at 7:20
  • Thank you, this is great (stupidly I didn't know of the DISTINCT option). – ccdavies Oct 3 '13 at 7:22
  • @ccdavies - You're welcome any time, use GROUP BY if you want to get the count for each item for example if you have another column and you want to get the count or the sum of another column for each rel_id and never use COUNT and GROUP BY with the same column in the same time, it will give you the same what SELECT DISTINCT does. – Mahmoud Gamal Oct 3 '13 at 7:23
0

try below query

 SELECT COUNT(jud.rel_id) AS count_result
 FROM exp_judging AS jud
 LEFT JOIN exp_submissions AS sub ON jud.rel_id = sub.id 
 WHERE jud.pre = 1
    AND sub.member_group = 5
group by jud.rel_id
| |

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.