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My table is:

id  home  datetime     player   resource
---|-----|------------|--------|---------
1  | 10  | 04/03/2009 | john   | 399 
2  | 11  | 04/03/2009 | juliet | 244
5  | 12  | 04/03/2009 | borat  | 555
3  | 10  | 03/03/2009 | john   | 300
4  | 11  | 03/03/2009 | juliet | 200
6  | 12  | 03/03/2009 | borat  | 500
7  | 13  | 24/12/2008 | borat  | 600
8  | 13  | 01/01/2009 | borat  | 700

I need to select each distinct home holding the maximum value of datetime.

Result would be:

id  home  datetime     player   resource 
---|-----|------------|--------|---------
1  | 10  | 04/03/2009 | john   | 399
2  | 11  | 04/03/2009 | juliet | 244
5  | 12  | 04/03/2009 | borat  | 555
8  | 13  | 01/01/2009 | borat  | 700

I have tried:

-- 1 ..by the MySQL manual: 

SELECT DISTINCT home, id, datetime as dt, player, resource
    FROM topten t1
    WHERE datetime = (SELECT MAX(t2.datetime) FROM topten t2
        GROUP BY home )
GROUP BY datetime
ORDER BY datetime DESC

Doesn't work. Result-set has 130 rows although database holds 187. Result includes some duplicates of home.

-- 2 ..join

SELECT s1.id, s1.home, s1.datetime, s1.player, s1.resource
FROM topten s1 JOIN
(SELECT id, MAX(datetime) AS dt
  FROM topten
  GROUP BY id) AS s2
  ON s1.id = s2.id
  ORDER BY datetime 

Nope. Gives all the records.

-- 3 ..something exotic: 

With various results.

share|improve this question
    
POST your current data structure so we can see what we're working with. – Eppz Mar 4 '09 at 20:20
    
@OP: I am rolling back because I think our edits got crossed up, I think my edit will help you more. Hopefully you agree. – GEOCHET Mar 4 '09 at 20:21
2  
Is your example of expected results correct? The way I read it you wouldn't expect row ID 7 to be returned, as row ID 8 has the same 'home' value and a higher 'datetime' value? – ajcw May 1 '12 at 14:31

15 Answers 15

up vote 560 down vote accepted

You are so close! All you need to do is select BOTH the home and it's max date time, then join back to the topten table on BOTH fields:

SELECT tt.*
FROM topten tt
INNER JOIN
    (SELECT home, MAX(datetime) AS MaxDateTime
    FROM topten
    GROUP BY home) groupedtt 
ON tt.home = groupedtt.home 
AND tt.datetime = groupedtt.MaxDateTime
share|improve this answer
4  
I think the classic way to do this is with a natural join: "SELECT tt.* FROM topten tt NATURAL JOIN ( SELECT home, MAX(datetime) AS datetime FROM topten GROUP BY home ) mostrecent;" Same query exactly, but arguably more readable – Parker Oct 22 '10 at 17:42
4  
After 2 years this saved me! :) Thank you! – mOrSa Nov 9 '11 at 21:15
30  
La Voie - you are La Man! – steve Mar 31 '12 at 18:05
3  
You are genius!! – hardik Jun 22 '12 at 15:37
9  
what about if there are two rows which have same 'home' and 'datetime' field values? – Kemal Duran Jun 1 '15 at 12:10

Here goes T-SQL version:

-- Test data
DECLARE @TestTable TABLE (id INT, home INT, date DATETIME, 
  player VARCHAR(20), resource INT)
INSERT INTO @TestTable
SELECT 1, 10, '2009-03-04', 'john', 399 UNION
SELECT 2, 11, '2009-03-04', 'juliet', 244 UNION
SELECT 5, 12, '2009-03-04', 'borat', 555 UNION
SELECT 3, 10, '2009-03-03', 'john', 300 UNION
SELECT 4, 11, '2009-03-03', 'juliet', 200 UNION
SELECT 6, 12, '2009-03-03', 'borat', 500 UNION
SELECT 7, 13, '2008-12-24', 'borat', 600 UNION
SELECT 8, 13, '2009-01-01', 'borat', 700

-- Answer
SELECT id, home, date, player, resource 
FROM (SELECT id, home, date, player, resource, 
    RANK() OVER (PARTITION BY home ORDER BY date DESC) N
    FROM @TestTable
)M WHERE N = 1

-- and if you really want only home with max date
SELECT T.id, T.home, T.date, T.player, T.resource 
    FROM @TestTable T
INNER JOIN 
(   SELECT TI.id, TI.home, TI.date, 
    	RANK() OVER (PARTITION BY TI.home ORDER BY TI.date) N
    FROM @TestTable TI
    WHERE TI.date IN (SELECT MAX(TM.date) FROM @TestTable TM)
)TJ ON TJ.N = 1 AND T.id = TJ.id

EDIT
Unfortunately, there are no RANK() OVER function in MySQL.
But it can be emulated, see Emulating Analytic (AKA Ranking) Functions with MySQL.
So this is MySQL version:

SELECT id, home, date, player, resource 
FROM TestTable AS t1 
WHERE 
    (SELECT COUNT(*) 
    		FROM TestTable AS t2 
    		WHERE t2.home = t1.home AND t2.date > t1.date
    ) = 0
share|improve this answer
    
sorry dude, #1064 - You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near '( ) OVER ( PARTITION BY krd ORDER BY daytime DESC ) N FROM @rapsa ) M WHERE N = ' at line 1 – Kaptah Mar 5 '09 at 23:01
2  
ah, so you're using MySQL. That's what you should start from! I will update answer soon. – Max Gontar Mar 6 '09 at 7:53
    
Yes, this does it too. – Kaptah Mar 24 '09 at 15:34
    
@MaxGontar, your mysql solution rocks, thx. what if in your @_TestTable you remove row#1>: SELECT 1, 10, '2009-03-04', 'john', 399 , this is, what if you have a single row for a given home value? thx. – egidiocs Nov 11 '11 at 3:44
1  
BUG: Replace "RANK()" with "ROW_NUMBER()". If you have a tie (caused by a duplicate date value) you will have two records with "1" for N. – MikeTeeVee Jan 10 '13 at 0:44

This will work even if you have two or more rows for each home with equal DATETIME's:

SELECT id, home, datetime, player, resource
FROM   (
       SELECT (
              SELECT  id
              FROM    topten ti
              WHERE   ti.home = t1.home
              ORDER BY
                      ti.datetime DESC
              LIMIT 1
              ) lid
       FROM   (
              SELECT  DISTINCT home
              FROM    topten
              ) t1
       ) ro, topten t2
WHERE  t2.id = ro.lid
share|improve this answer
    
changed to to ro, works like charm. Thanks. – Kaptah Mar 5 '09 at 22:59
    
We really need this DIV to check for compilation errors :) – Quassnoi Mar 6 '09 at 8:36
    
added lid field in table, No Good – Kaptah Mar 6 '09 at 17:19
    
See updated post – Quassnoi Mar 6 '09 at 20:30
1  
This one didn't execute on PHPMyAdmin. Page refreshes but there's no result nor error..? – Kaptah Mar 24 '09 at 15:47

I think this will give you the desired result:

SELECT   home, MAX(datetime)
FROM     my_table
GROUP BY home

BUT if you need other columns as well, just make a join with the original table (check Michael La Voie answer)

Best regards.

share|improve this answer
2  
He needs other columns also. – Quassnoi Mar 4 '09 at 20:34
    
What columns he needs?? – Ricardo Felgueiras Mar 4 '09 at 20:38
2  
id, home, datetime, player, resource – Quassnoi Mar 6 '09 at 10:32

The fastest MySQL solution, without inner queries and without GROUP BY:

SELECT m.*                    # get the row that contains the max value
FROM topten m                 # "m" from "max"
    LEFT JOIN topten b        # "b" from "bigger"
        ON m.home = b.home    # match "max" row with "bigger" row by `home`
        AND m.datetime < b.datetime           # want "bigger" than "max"
WHERE b.datetime IS NULL      # keep only if there is no bigger than max

Explanation:

Join the table with itself using the home column. The use of LEFT JOIN ensures all the rows from table m appear in the result set. Those that don't have a match in table b will have NULLs for the columns of b.

The other condition on the JOIN asks to match only the rows from b that have bigger value on the datetime column than the row from m.

Using the data posted in the question, the LEFT JOIN will produce this pairs:

+------------------------------------------+--------------------------------+
|              the row from `m`            |    the matching row from `b`   |
|------------------------------------------|--------------------------------|
| id  home  datetime     player   resource | id    home   datetime      ... |
|----|-----|------------|--------|---------|------|------|------------|-----|
| 1  | 10  | 04/03/2009 | john   | 399     | NULL | NULL | NULL       | ... | *
| 2  | 11  | 04/03/2009 | juliet | 244     | NULL | NULL | NULL       | ... | *
| 5  | 12  | 04/03/2009 | borat  | 555     | NULL | NULL | NULL       | ... | *
| 3  | 10  | 03/03/2009 | john   | 300     | 1    | 10   | 04/03/2009 | ... |
| 4  | 11  | 03/03/2009 | juliet | 200     | 2    | 11   | 04/03/2009 | ... |
| 6  | 12  | 03/03/2009 | borat  | 500     | 5    | 12   | 04/03/2009 | ... |
| 7  | 13  | 24/12/2008 | borat  | 600     | 8    | 13   | 01/01/2009 | ... |
| 8  | 13  | 01/01/2009 | borat  | 700     | NULL | NULL | NULL       | ... | *
+------------------------------------------+--------------------------------+

Finally, the WHERE clause keeps only the pairs that have NULLs in the columns of b (they are marked with * in the table above); this means, due to the second condition from the JOIN clause, the row selected from m has the biggest value in column datetime.

Read the SQL Antipatterns: Avoiding the Pitfalls of Database Programming book for other SQL tips.

share|improve this answer
1  
Nice use of borat – Ronnie Mar 20 '15 at 11:42
    
With SQLite, the first one is much much slower than La Voie's version when there is no index on the matched column (i.e. "home"). (Tested with 24k rows resulting in 13k rows) – Thomas Tempelmann Apr 30 '15 at 10:29

Since people seem to keep running into this thread (comment date ranges from 1.5 year) isn't this much simpler:

SELECT * FROM (SELECT * FROM topten ORDER BY datetime DESC) tmp GROUP BY home

No aggregation functions needed...

Cheers.

share|improve this answer
2  
This doesn't seem to work. Error Message: Column 'x' is invalid in the select list because it is not contained in either an aggregate function or the GROUP BY clause. – Fowl Oct 25 '11 at 0:58
    
lol total win :) – nowhere Apr 25 '13 at 14:17
    
This definitely won't work in SQL Server or Oracle, though it looks like it might work in MySQL. – ErikE May 22 '14 at 0:44
    
This is really beautiful! How does this work? By using DESC and the default group return column? So if I changed it to datetime ASC, it would return the earliest row for each home? – wayofthefuture May 15 at 22:19

This works on Oracle:

with table_max as(
  select id
       , home
       , datetime
       , player
       , resource
       , max(home) over (partition by home) maxhome
    from table  
)
select id
     , home
     , datetime
     , player
     , resource
  from table_max
 where home = maxhome
share|improve this answer
    
how does this pick the max datetime? he asked to group by home, and select max datetime. I dont see how this does that. – n00b Apr 23 '13 at 21:59

You can also try this one and for large tables query performance will be better. It works when there no more than two records for each home and their dates are different. Better general MySQL query is one from Michael La Voie above.

SELECT t1.id, t1.home, t1.date, t1.player, t1.resource
FROM   t_scores_1 t1 
INNER JOIN t_scores_1 t2
   ON t1.home = t2.home
WHERE t1.date > t2.date

Or in case of Postgres or those dbs that provide analytic functions try

SELECT t.* FROM 
(SELECT t1.id, t1.home, t1.date, t1.player, t1.resource
  , row_number() over (partition by t1.home order by t1.date desc) rw
 FROM   topten t1 
 INNER JOIN topten t2
   ON t1.home = t2.home
 WHERE t1.date > t2.date 
) t
WHERE t.rw = 1
share|improve this answer
    
Is this answer correct? I tried to use it, but it seams not to select the record with newest date for 'home', but only removes record with oldest date. Here's an example: SQLfiddle – marcin93w Jul 14 '14 at 14:48
1  
@kidOfDeath - Updated my reply with context and Postgres query – Shiva Jul 16 '14 at 21:02
    
With SQLite, the first one is much much slower than La Voie's version when there is no index on the matched column (i.e. "home"). – Thomas Tempelmann Apr 30 '15 at 10:28
SELECT  tt.*
FROM    TestTable tt 
INNER JOIN 
        (
        SELECT  coord, MAX(datetime) AS MaxDateTime 
        FROM    rapsa 
        GROUP BY
                krd 
        ) groupedtt
ON      tt.coord = groupedtt.coord
        AND tt.datetime = groupedtt.MaxDateTime
share|improve this answer

Try this for SQL Server:

WITH cte AS (
   SELECT home, MAX(year) AS year FROM Table1 GROUP BY home
)
SELECT * FROM Table1 a INNER JOIN cte ON a.home = cte.home AND a.year = cte.year
share|improve this answer
SELECT c1, c2, c3, c4, c5 FROM table1 WHERE c3 = (select max(c3) from table)

SELECT * FROM table1 WHERE c3 = (select max(c3) from table1)
share|improve this answer
    
this one worked – najeeb Jul 16 '14 at 9:27

Try this

select * from mytable a join
(select home, max(datetime) datetime
from mytable
group by home) b
 on a.home = b.home and a.datetime = b.datetime

Regards K

share|improve this answer
5  
Test it for distinct, if two equal max datetime be in the same home (with different players) – Max Gontar Mar 4 '09 at 21:03

Why not using: SELECT home, MAX(datetime) AS MaxDateTime,player,resource FROM topten GROUP BY home Did I miss something?

share|improve this answer
2  
That would only be valid with MySQL, and only versions before 5.7 (?) or after 5.7 with ONLY_FULL_GROUP_BY disabled, since it is SELECTing columns that have not been aggregated/GROUPed (player, resource) which means MySQL will provide randomly chosen values for those two result fields. It would not be a problem for the player column since that correlates to the home column, but the resource column would not correlate with the home or datetime column and you could not guarantee which resource value you'd receive. – user9999999 Nov 7 '15 at 4:26
    
+1 for the explanation, BUT w.r.t the asked question this query won't return the expected output in MySQL version 5.6 and before and I highly doubt it to behave otherwise in MySQL version 5.7 and after. – sactiw Nov 26 '15 at 13:08

Here is MySQL version which prints only one entry where there are duplicates MAX(datetime) in a group.

You could test here http://www.sqlfiddle.com/#!2/0a4ae/1

Sample Data

mysql> SELECT * from topten;
+------+------+---------------------+--------+----------+
| id   | home | datetime            | player | resource |
+------+------+---------------------+--------+----------+
|    1 |   10 | 2009-04-03 00:00:00 | john   |      399 |
|    2 |   11 | 2009-04-03 00:00:00 | juliet |      244 |
|    3 |   10 | 2009-03-03 00:00:00 | john   |      300 |
|    4 |   11 | 2009-03-03 00:00:00 | juliet |      200 |
|    5 |   12 | 2009-04-03 00:00:00 | borat  |      555 |
|    6 |   12 | 2009-03-03 00:00:00 | borat  |      500 |
|    7 |   13 | 2008-12-24 00:00:00 | borat  |      600 |
|    8 |   13 | 2009-01-01 00:00:00 | borat  |      700 |
|    9 |   10 | 2009-04-03 00:00:00 | borat  |      700 |
|   10 |   11 | 2009-04-03 00:00:00 | borat  |      700 |
|   12 |   12 | 2009-04-03 00:00:00 | borat  |      700 |
+------+------+---------------------+--------+----------+

MySQL Version with User variable

SELECT *
FROM (
    SELECT ord.*,
        IF (@prev_home = ord.home, 0, 1) AS is_first_appear,
        @prev_home := ord.home
    FROM (
        SELECT t1.id, t1.home, t1.player, t1.resource
        FROM topten t1
        INNER JOIN (
            SELECT home, MAX(datetime) AS mx_dt
            FROM topten
            GROUP BY home
          ) x ON t1.home = x.home AND t1.datetime = x.mx_dt
        ORDER BY home
    ) ord, (SELECT @prev_home := 0, @seq := 0) init
) y
WHERE is_first_appear = 1;
+------+------+--------+----------+-----------------+------------------------+
| id   | home | player | resource | is_first_appear | @prev_home := ord.home |
+------+------+--------+----------+-----------------+------------------------+
|    9 |   10 | borat  |      700 |               1 |                     10 |
|   10 |   11 | borat  |      700 |               1 |                     11 |
|   12 |   12 | borat  |      700 |               1 |                     12 |
|    8 |   13 | borat  |      700 |               1 |                     13 |
+------+------+--------+----------+-----------------+------------------------+
4 rows in set (0.00 sec)

Accepted Answers' outout

SELECT tt.*
FROM topten tt
INNER JOIN
    (
    SELECT home, MAX(datetime) AS MaxDateTime
    FROM topten
    GROUP BY home
) groupedtt ON tt.home = groupedtt.home AND tt.datetime = groupedtt.MaxDateTime
+------+------+---------------------+--------+----------+
| id   | home | datetime            | player | resource |
+------+------+---------------------+--------+----------+
|    1 |   10 | 2009-04-03 00:00:00 | john   |      399 |
|    2 |   11 | 2009-04-03 00:00:00 | juliet |      244 |
|    5 |   12 | 2009-04-03 00:00:00 | borat  |      555 |
|    8 |   13 | 2009-01-01 00:00:00 | borat  |      700 |
|    9 |   10 | 2009-04-03 00:00:00 | borat  |      700 |
|   10 |   11 | 2009-04-03 00:00:00 | borat  |      700 |
|   12 |   12 | 2009-04-03 00:00:00 | borat  |      700 |
+------+------+---------------------+--------+----------+
7 rows in set (0.00 sec)
share|improve this answer

this is the query you need:

 SELECT b.id, a.home,b.[datetime],b.player,a.resource FROM
 (SELECT home,MAX(resource) AS resource FROM tbl_1 GROUP BY home) AS a

 LEFT JOIN

 (SELECT id,home,[datetime],player,resource FROM tbl_1) AS b
 ON  a.resource = b.resource WHERE a.home =b.home;
share|improve this answer

protected by Community Jul 22 '11 at 11:22

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