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i have a table like this:

name    date         time
tom | 2011-07-04 | 01:09:52
tom | 2011-07-04 | 01:09:52
mad | 2011-07-04 | 02:10:53
mad | 2009-06-03 | 00:01:01

i want oldest name first:

ORDER BY date ASC, time ASC 

(->doesn't work!)

now it should give me first mad(has earlier date) then tom

but with GROUP BY name ORDER BY date ASC, time ASC gives me the newer mad first because it groups before it sorts!

again: the problem is that i can't sort by date and time before i group because GROUP BY must be before ORDER BY!

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group by is used with aggregate functions, not for sorting - are you sure you've got this right? – Neville K Jul 4 '11 at 13:27
do you have a better idea? i thought about distinct but then also date and time is distinct. – CodingYourLife Jul 4 '11 at 13:34
If there was some way to combine the date and time columns, is what you actually want just the name and the earliest datetime value for each name? – Damien_The_Unbeliever Jul 4 '11 at 13:36
result should be: mad | 2009-06-03 | 00:01:01 /\ tom | 2011-07-04 | 01:09:52 – CodingYourLife Jul 4 '11 at 13:39
your select doesn't have an aggregate function, so "group by" doesn't do anything. Scorpio's answer should work... – Neville K Jul 4 '11 at 14:05

3 Answers 3

up vote 19 down vote accepted

I think this is what you are seeking :

SELECT name, min(date)
FROM myTable
ORDER BY min(date)

For the time, you have to make a mysql date via STR_TO_DATE :

STR_TO_DATE(date + ' ' + time, '%Y-%m-%d %h:%i:%s')

So :

SELECT name, min(STR_TO_DATE(date + ' ' + time, '%Y-%m-%d %h:%i:%s'))
FROM myTable
ORDER BY min(STR_TO_DATE(date + ' ' + time, '%Y-%m-%d %h:%i:%s'))
share|improve this answer
i don't know if this is really the answer to my problem. it doesn't seem to sort correctly with the time. could you please check if the syntax here is correct: ($sql='SELECT * FROM table GROUP BY name';) $sql.=" ORDER BY min(STR_TO_DATE(orderDate + ' ' + orderTime, '%m/%d/%Y %h:%i:%s'))"; – CodingYourLife Jul 4 '11 at 13:54
You can't perform a 'SELECT *' if you are grouping. Change the SELECT part of your query. – Cyril Gandon Jul 4 '11 at 14:02
ok and how can i now say $row["date"]? it doesn't sort correctly... it just says NULL for date and the order not sorted. – CodingYourLife Jul 4 '11 at 14:28
I made a mistake, it is not %m/%d/%Y that you need but %Y-%m-%d. I updated the query. – Cyril Gandon Jul 4 '11 at 14:32
I don't think that this works. There's no assurance that the name column that gets returned is from the same row as the date. If this appears to have solved your problem, be aware that its more than likely unstable. – Rob Forrest Aug 8 '12 at 15:03

Another method:

    SELECT * 
    ORDER BY date ASC, time ASC 
) AS sub

GROUP BY groups on the first matching result it hits. If that first matching hit happens to be the one you want then everything should work as expected.

I prefer this method as the subquery makes logical sense rather than peppering it with other conditions.

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I like that one, learned something! – maryisdead Dec 5 '13 at 0:27
Worked for me, the accepted answer did not. – Greg K Feb 4 '14 at 14:56
For me this is the correct answer, it's more logical, first "order the rows", then "group by". – Sahib J. Leo Oct 3 '14 at 3:20
Note that this approach will unfortunately not work on MariaDB (although MariaDB is considered a drop-in replacement for MySQL):… – rinogo Oct 12 at 23:30

Use a subselect:

select name, date, time
from mytable main
where date + time = (select min(date + time) from mytable where name = main.mytable)
order by date + time;
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