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.

My table titles looks like this

id |group|date                |title
---+-----+--------------------+--------
1  |1    |2012-07-26 18:59:30 | Title 1
2  |1    |2012-07-26 19:01:20 | Title 2
3  |2    |2012-07-26 19:18:15 | Title 3
4  |2    |2012-07-26 20:09:28 | Title 4
5  |2    |2012-07-26 23:59:52 | Title 5

I need latest result from each group ordered by date in descending order. Something like this

id |group|date                |title
---+-----+--------------------+--------
5  |2    |2012-07-26 23:59:52 | Title 5
2  |1    |2012-07-26 19:01:20 | Title 2

I tried

SELECT *
FROM `titles`
GROUP BY `group`
ORDER BY MAX( `date` ) DESC

but I'm geting first results from groups. Like this

id |group|date                |title
---+-----+--------------------+--------
3  |2    |2012-07-26 18:59:30 | Title 3
1  |1    |2012-07-26 19:18:15 | Title 1

What am I doing wrong? Is this query going to be more complicated if I use LEFT JOIN?

share|improve this question

4 Answers 4

up vote 3 down vote accepted

This page was very helpful to me; it taught me how to use self-joins to get the max/min/something-n rows per group.

In your situation, it can be applied to the effect you want like so:

SELECT * FROM
(SELECT group, MAX(date) AS date FROM titles GROUP BY group)
AS x JOIN titles USING (group, date);
share|improve this answer

Well, if dates are unique in a group this would work (if not, you'll see several rows that match the max date in a group). (Also, bad naming of columns, 'group', 'date' might give you syntax errors and such specially 'group')

select t1.* from titles t1, (select group, max(date) date from titles group by group) t2
where t2.date = t1.date
and t1.group = t2.group
order by date desc
share|improve this answer

Another approach is to make use of MySQL user variables to identify a "control break" in the group values.

If you can live with an extra column being returned, something like this will work:

SELECT IF(s.group = @prev_group,0,1) AS latest_in_group
     , s.id
     , @prev_group := s.group AS `group`
     , s.date
     , s.title
  FROM (SELECT t.id,t.group,t.date,t.title
          FROM titles t
         ORDER BY t.group DESC, t.date DESC, t.id DESC
       ) s
  JOIN (SELECT @prev_group := NULL) p
HAVING latest_in_group = 1
 ORDER BY s.group DESC

What this is doing is ordering all the rows by group and by date in descending order. (We specify DESC on all the columns in the ORDER BY, in case there is an index on (group,date,id) that MySQL can do a "reverse scan" on. The inclusion of the id column gets us deterministic (repeatable) behavior, in the case when there are more than one row with the latest date value.) That's the inline view aliased as s.

The "trick" we use is to compare the group value to the group value from the previous row. Whenever we have a different value, we know that we are starting a "new" group, and that this row is the "latest" row (we have the IF function return a 1). Otherwise (when the group values match), it's not the latest row (and we have the IF function returns a 0).

Then, we filter out all the rows that don't have that latest_in_group set as a 1.

It's possible to remove that extra column by wrapping that query (as an inline view) in another query:

SELECT r.id
     , r.group
     , r.date
     , r.title
  FROM ( SELECT IF(s.group = @prev_group,0,1) AS latest_in_group
              , s.id
              , @prev_group := s.group AS `group`
              , s.date
              , s.title
           FROM (SELECT t.id,t.group,t.date,t.title
                   FROM titles t
                  ORDER BY t.group DESC, t.date DESC, t.id DESC
                ) s
           JOIN (SELECT @prev_group := NULL) p
         HAVING latest_in_group = 1
       ) r
 ORDER BY r.group DESC
share|improve this answer

If your id field is an auto-incrementing field, and it's safe to say that the highest value of the id field is also the highest value for the date of any group, then this is a simple solution:

SELECT   b.*
FROM     (SELECT MAX(id) AS maxid FROM titles GROUP BY group) a
JOIN     titles b ON a.maxid = b.id
ORDER BY b.date DESC 
share|improve this answer

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.