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I have a table like so:

Table eventlog
user  |  user_group  | event_date |  event_dur.
----     ----------    ---------     ----------
xyz         1           2009-1-1        3.5
xyz         2           2009-1-1        4.5
abc         2           2009-1-2        5
abc         1           2009-1-2        5

Notice that in the above sample data, the only thing reliable is the date and the user. Through an over site that is 90% mine to blame, I have managed to allow users to duplicate their daily entries. In some instances the duplicates were intended to be updates to their duration, in others it was their attempt to change the user_group they were working with that day, and in other cases both.

Fortunately, I have a fairly strong idea (since this is an update to an older system) of which records are correct. (Basically, this all happened as an attempt to seamlessly merge the old DB with the new DB).

Unfortunately, I have to more or less do this by hand, or risk losing data that only exists on one side and not the other....

Long story short, I'm trying to figure out the right MySQL query to return all records that have more than one entry for a user on any given date. I have been struggling with GROUP BY and HAVING, but the best I can get is a list of one of the two duplicates, per duplicate, which would be great if I knew for sure it was the wrong one.

Here is the closest I've come:

SELECT *
FROM eventlog
GROUP BY event_date, user
HAVING COUNT(user) > 1
ORDER BY event_date, user

Any help with this would be extremely useful. If need be, I have the list of users/date for each set of duplicates, so I can go by hand and remove all 400 of them, but I'd much rather see them all at once.

Thanks!

share|improve this question
    
I had a similar problem and worked around it by selecting the output from a group by query (such as yours) into a new table, then discarding the original data. – Salman A Sep 8 '09 at 4:55
    
That could help if I UNION them back together. But I have to go through one by one to determine which to keep and which to delete. – Anthony Sep 8 '09 at 5:46
up vote 1 down vote accepted

Would this work?

SELECT event_date, user
FROM eventlog
GROUP BY event_date, user
HAVING COUNT(*) > 1
ORDER BY event_date, user

What's throwing me off is the COUNT(user) clause you have.

share|improve this answer
    
I thought that I had to have something in that COUNT() to specify which column had the duplicate data (which one was duplicated in a bad way?), anyways, testing now... – Anthony Sep 8 '09 at 5:49
    
Rats, same results. Still just getting one set of the duplicates, not both. I know it's some issue with the GROUP BY – Anthony Sep 8 '09 at 5:50
    
Is it possible that your date field includes a timestamp value (e.g., 4:00 PM)? This may exclude what would otherwise look like a pair. – David Andres Sep 8 '09 at 6:18
    
If it does, it's not showing up in phpmyadmin, which is what I'm using to do this. I'll try it again using a DATE() function to be sure. – Anthony Sep 8 '09 at 6:29
    
No luck. Is it possible that the COUNT is only returning the members of the set that,when counted, are higher than 1 in that count? (as opposed to all members of the set where the count is higher than 1) – Anthony Sep 8 '09 at 6:41

You can list all the field values of the duplicates with GROUP_CONCAT function, but you still get one row for each set.

share|improve this answer

I think this would work (untested)

SELECT  *
FROM    eventlog e1
WHERE   1 <
(
    SELECT  COUNT(*)
    FROM    eventlog e2
    WHERE   e1.event_date = e2.event_date
    AND     e1.user = e2.user
)
-- AND [maybe an additionnal constraint to find the bad duplicate]
ORDER BY event_date, user;
;
share|improve this answer

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