I have a table with some rows in. Every row has a date-field. Right now, it may be duplicates of a date. I need to delete all the duplicates and only store the row with the highest id. How is this possible using a SQL query?

Now:

date      id
'07/07'   1
'07/07'   2
'07/07'   3
'07/05'   4
'07/05'   5

What I want:

date      id
'07/07'   3
'07/05'   5
  • From the data you sent, you end up with two not three rows! 07/05 is repeated. – notnoop Jul 23 '09 at 19:45
DELETE FROM table WHERE id NOT IN
    (SELECT MAX(id) FROM table GROUP BY date);
  • Wow, did I go a roundabout way or what? This is definitely the best way to do this. – Eric Jul 23 '09 at 19:53
  • I thought your way was a bit too complicated... But honestly, I wanted to do it first using 3 queries instead of just this one. – Georg Schölly Jul 23 '09 at 19:55
  • 4
    This query is also useful for this answer: SELECT date, COUNT(date) AS NumOccurrences FROM table GROUP BY date HAVING ( COUNT(date) > 1 ) – djangofan Jul 23 '09 at 22:16
  • @djangofan: almost, you just hvae to select id instead of COUNT(date). – Georg Schölly Jul 24 '09 at 4:41
  • That however wouldn't work in MySQL due to its stupid limitations on sub-selects. – a_horse_with_no_name Jan 31 '13 at 15:06

I don't have comment rights, so here's my comment as an answer in case anyone comes across the same problem:

In SQLite3, there is an implicit numerical primary key called "rowid", so the same query would look like this:

DELETE FROM table WHERE rowid NOT IN
(SELECT MAX(rowid) FROM table GROUP BY date);

this will work with any table even if it does not contain a primary key column called "id".

For mysql,postgresql,oracle better way is SELF JOIN.

Postgresql:
DELETE FROM table t1 USING table t2 WHERE t1.date=t2.date AND t1.id<t2.id;

MySQL        
DELETE FROM table
USING table, table as vtable
WHERE (table.id < vtable.id)
AND (table.date=vtable.date)

SQL aggregate (max,group by) functions almost always are very slow.

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.