Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a table of reports that has these relevant fields:

user_id (int 11)
submitted_date (datetime)
approved_flag (shortint 1)

There are multiple rows per user_id, some with approved_flag = 0 and some with approved_flag = 1 and each with a unique submitted_date.

I need to get a count of the approved and unapproved reports. But I only want to count the most recent submitted report per user (most recent submitted_date), regardless of approved_flag.

So, if there was 4 records like this:

    user_id, submitted_date, approved_flag
    1, 2009-04-01 01:00, 1
    1, 2009-04-01 02:00, 0
    1, 2009-04-01 03:00, 1 (using this record)
    2, 2009-04-02 01:00, 1 (using this record)

the count would be 2 approved and no unapproved, and if we had

    user_id, submitted_date, approved_flag
    1, 2009-04-01 01:00, 1
    1, 2009-04-01 02:00, 0
    1, 2009-04-01 03:00, 0 (using this record)
    2, 2009-04-02 01:00, 0
    2, 2009-04-02 02:00, 1 (using this record)

the count would be 1 approved (user id 2) and 1 unapproved (user id 1).

To summarize one more time because it is not easy to describe: I want the total number of unique users in the table (regardless of # rows per user) and I want it broken down in to 'approved' and 'not approved' based on the approved_flag of the most recent report per user.

Any help would be greatly appreciated, thanks!

share|improve this question
    
am I understanding correctly that you would never have a count higher than one (per user)? and that your approved + unapproved counts would never be higher than one (per user)? –  Ryan Guill Apr 28 '09 at 18:24
add comment

3 Answers

up vote 1 down vote accepted
SELECT approved_flag, COUNT(*)
FROM 
  Table t
  INNER JOIN (
    SELECT user_id, submitted_date = MAX(submitted_date)
    FROM Table
    GROUP BY user_id
  ) latest ON latest.user_id = t.user_id
              AND latest.submitted_date = t.submitted_date
GROUP BY approved_flag
share|improve this answer
    
What happened to the user ID? –  Jonathan Leffler Apr 28 '09 at 18:25
    
Thanks Lieven, that gives me exactly what I was looking for! –  Craig Nakamoto Apr 28 '09 at 18:46
    
@Jonathan, the user_id was only required in the inner select to get the last submitted date per user_id and to be able to join with the outer select. For the end result, there was no user_id required. –  Lieven Keersmaekers Apr 28 '09 at 19:16
add comment

Can think of two ways to do this. The first is perhaps the most readable, search for the last submitted_date per user, and then display the approval with that timestamp:

select a.user_id, a.submitted_date, a.approved_flag
from approvals a
inner join (
    select user_id, maxdt = max(submitted_date)
    from approvals
    group by user_id
) latest on latest.user_id = a.user_id 
    and latest.maxdt = a.submitted_date

The second is to join the table on it's future rows for the same user, and specify in the where clause that these don't exist. This gives you the latest entry for each user:

select cur.user_id, cur.submitted_date, cur.approved_flag
from approvals cur
left join approvals next
    on next.user_id = cur.user_id
    and next.submitted_date > cur.submitted_date
where next.user_id is null
share|improve this answer
add comment
SELECT user_id, approved_flag, COUNT(*)
FROM reports 
WHERE NOW() - submitted_date < 'whatever'
GROUP BY user_id, approved_flag

Hope it works..

share|improve this answer
    
Can you have a GROUP BY before WHERE? –  Darryl Hein Apr 28 '09 at 17:57
    
uhh i don't have the exact sql syntax in mind but it seems you're right i'll correct it –  eWolf Apr 28 '09 at 18:00
    
Hmm, not sure what 'whatever' is supposed to be because I want the most recent report for each user, and I don't think you can have a 'group by' clause before a 'where' clause (at least my MySQL complains), and even then, this appears to give me duplicate results if the user has an approved and an unapproved result (I only want the most recent result, approved or unapproved), thanks for trying! –  Craig Nakamoto Apr 28 '09 at 18:36
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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