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The following is the simplest possible example, though any solution should be able to scale to however many n top results are needed:

Given a table like that below, with person, group, and age columns, how would you get the 2 oldest people in each group? (Ties within groups should not yield more results, but give the first 2 in alphabetical order)

+--------+-------+-----+
| Person | Group | Age |
+--------+-------+-----+
| Bob    | 1     | 32  |
| Jill   | 1     | 34  |
| Shawn  | 1     | 42  |
| Jake   | 2     | 29  |
| Paul   | 2     | 36  |
| Laura  | 2     | 39  |
+--------+-------+-----+

Desired result set:

+--------+-------+-----+
| Shawn  | 1     | 42  |
| Jill   | 1     | 34  |
| Laura  | 2     | 39  |
| Paul   | 2     | 36  |
+--------+-------+-----+

NOTE: This question builds on a previous one- Get records with max value for each group of grouped SQL results - for getting a single top row from each group, and which received a great MySQL-specific answer from @Bohemian:

select * 
from (select * from mytable order by `Group`, Age desc, Person) x
group by `Group`

Would love to be able to build off this, though I don't see how.

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2  
Check this example. It is pretty much close to what you ask: stackoverflow.com/questions/1537606/… –  Savas Vedova Aug 24 '12 at 17:32

5 Answers 5

up vote 21 down vote accepted

Here is one way to do this, using UNION ALL (See SQL Fiddle with Demo). This works with two groups, if you have more than two groups, then you would need to specify the group number and add queries for each group:

(
  select *
  from mytable 
  where `group` = 1
  order by age desc
  LIMIT 2
)
UNION ALL
(
  select *
  from mytable 
  where `group` = 2
  order by age desc
  LIMIT 2
)

There are a variety of ways to do this, see this article to determine the best route for your situation:

http://www.xaprb.com/blog/2006/12/07/how-to-select-the-firstleastmax-row-per-group-in-sql/

Edit:

This might work for you too, it generates a row number for each record. Using an example from the link above this will return only those records with a row number of less than or equal to 2:

set @num := 0, @group := '';

select person, `group`, age
from 
(
   select person, `group`, age,
      @num := if(@group = `group`, @num + 1, 1) as row_number,
      @group := `group` as dummy
  from mytable
  order by `Group`, Age desc, person
) as x 
where x.row_number <= 2;

See SQL Fiddle with Demo

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2  
if he have 1 000+ groups, wouldn't that make this a bit scary? –  Charles Forest Aug 24 '12 at 17:27
    
@CharlesForest yes, it would and that Is why I stated that you would have to specify it for more than two groups. It would become ugly. –  bluefeet Aug 24 '12 at 17:28
    
isn't there some kind of FOR in sql, he could just send the amount of loops to add in the query (mostly working with php on these situations, he asked in SQL so i'm not sure) –  Charles Forest Aug 24 '12 at 17:30
1  
@CharlesForest I think I found a better solution, see my edit –  bluefeet Aug 24 '12 at 17:43
    
@Yarin there are many ways to do this you will have to decide based on your needs and your situation. –  bluefeet Aug 24 '12 at 18:17

How about using self-joining:

CREATE TABLE mytable (person, groupname, age);
INSERT INTO mytable VALUES('Bob',1,32);
INSERT INTO mytable VALUES('Jill',1,34);
INSERT INTO mytable VALUES('Shawn',1,42);
INSERT INTO mytable VALUES('Jake',2,29);
INSERT INTO mytable VALUES('Paul',2,36);
INSERT INTO mytable VALUES('Laura',2,39);

SELECT a.* FROM mytable AS a
  LEFT JOIN mytable AS a2 
    ON a.groupname = a2.groupname AND a.age <= a2.age
GROUP BY a.person
HAVING COUNT(*) <= 2
ORDER BY a.groupname, a.age DESC;

gives me:

a.person    a.groupname  a.age     
----------  -----------  ----------
Shawn       1            42        
Jill        1            34        
Laura       2            39        
Paul        2            36      

I was strongly inspired by the answer from Bill Karwin to select top 10 records for each category

Also, I'm using SQLite, but this should work on MySQL.

Another thing: in the above, I replaced the group column with a groupname column for convenience.

Edit:

Following-up on the OP's comment regarding missing tie results, I incremented on snuffin's answer to show all the ties. This means that if the last ones are ties, more than 2 rows can be returned, as shown below:

.headers on
.mode column

CREATE TABLE foo (person, groupname, age);
INSERT INTO foo VALUES('Paul',2,36);
INSERT INTO foo VALUES('Laura',2,39);
INSERT INTO foo VALUES('Joe',2,36);
INSERT INTO foo VALUES('Bob',1,32);
INSERT INTO foo VALUES('Jill',1,34);
INSERT INTO foo VALUES('Shawn',1,42);
INSERT INTO foo VALUES('Jake',2,29);
INSERT INTO foo VALUES('James',2,15);
INSERT INTO foo VALUES('Fred',1,12);
INSERT INTO foo VALUES('Chuck',3,112);


SELECT a.person, a.groupname, a.age 
FROM foo AS a 
WHERE a.age >= (SELECT MIN(b.age)
                FROM foo AS b 
                WHERE (SELECT COUNT(*)
                       FROM foo AS c
                       WHERE c.groupname = b.groupname AND c.age >= b.age) <= 2
                GROUP BY b.groupname)
ORDER BY a.groupname ASC, a.age DESC;

gives me:

person      groupname   age       
----------  ----------  ----------
Shawn       1           42        
Jill        1           34        
Laura       2           39        
Paul        2           36        
Joe         2           36        
Chuck       3           112      
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@Ludo- Just saw that answer from Bill Karwin - thanks for applying it here –  Yarin Aug 24 '12 at 17:53
    
What do you think of Snuffin's answer? I'm trying to compare the two –  Yarin Aug 24 '12 at 17:58
1  
There's a problem with this. If there's a tie for second place within the group, only one top result is returned- See demo –  Yarin Aug 24 '12 at 18:38
1  
@Ludo- the original requirement was that each group return the exact n results, with any ties being resolved alphabetically –  Yarin Aug 24 '12 at 19:34

Try this:

SELECT a.person, a.group, a.age FROM person AS a WHERE 
(SELECT COUNT(*) FROM person AS b 
WHERE b.group = a.group AND b.age >= a.age) <= 2 
ORDER BY a.group ASC, a.age DESC

DEMO

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1  
snuffin coming out of nowhere with the simplest solution! Is this more elegant than Ludo's/Bill Karwin's? Can I get some commentary –  Yarin Aug 24 '12 at 17:57
    
Hm, not sure if it is more elegant. But judging from the votes, I guess bluefeet might have the better solution. –  snuffn Aug 24 '12 at 18:07
    
There's a problem with this. If there's a tie for second place within the group, only one top result is returned. See modified demo –  Yarin Aug 24 '12 at 18:37

Check this out:

SELECT
  p.Person,
  p.`Group`,
  p.Age
FROM
  people p
  INNER JOIN
  (
    SELECT MAX(Age) AS Age, `Group` FROM people GROUP BY `Group`
    UNION
    SELECT MAX(p3.Age) AS Age, p3.`Group` FROM people p3 INNER JOIN (SELECT MAX(Age) AS Age, `Group` FROM people GROUP BY `Group`) p4 ON p3.Age < p4.Age AND p3.`Group` = p4.`Group` GROUP BY `Group`
  ) p2 ON p.Age = p2.Age AND p.`Group` = p2.`Group`
ORDER BY
  `Group`,
  Age DESC,
  Person;

SQL Fiddle: http://sqlfiddle.com/#!2/cdbb6/15

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1  
Man, others found much simpler solutions...I just spent like 15 minutes on this and was incredibly proud of myself for coming up with such a complicated solution, too. That sucks. –  Travesty3 Aug 24 '12 at 17:53
1  
@Keep your head up Travesty3- upvoted your effort, thanks –  Yarin Aug 24 '12 at 17:54

In other databases you can do this using ROW_NUMBER. MySQL doesn't support ROW_NUMBER but you can use variables to emulate it:

SELECT
    person,
    groupname,
    age
FROM
(
    SELECT
        person,
        groupname,
        age,
        @rn := IF(@prev = groupname, @rn + 1, 1) AS rn,
        @prev := groupname
    FROM mytable
    JOIN (SELECT @prev := NULL, @rn := 0) AS vars
    ORDER BY groupname, age DESC, person
) AS T1
WHERE rn <= 2

See it working online: sqlfiddle


Edit I just noticed that bluefeet posted a very similar answer: +1 to him. However this answer has two small advantages:

  1. It it is a single query. The variables are initialized inside the SELECT statement.
  2. It handles ties as described in the question (alphabetical order by name).

So I'll leave it here in case it can help someone.

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Mark- This is working well for us. Thanks for providing another good alternative to compliment @bluefeet's- much appreciated. –  Yarin Aug 25 '12 at 20:29

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