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I want to find 2nd,3rd..nth maximum value of a column

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1  
What database? I don't think there is a very good "generic" solution to this problem. –  Matthew Watson Sep 17 '08 at 7:12
1  
too generic I think: specify at least on which DBMS... –  ila Sep 17 '08 at 7:14

22 Answers 22

up vote 10 down vote accepted

You could sort the column into descending format and then just obtain the value from the nth row.

EDIT::

Updated as per comment request. WARNING completely untested!

SELECT DOB FROM (SELECT DOB FROM USERS ORDER BY DOB DESC) WHERE ROWID = 6

Something like the above should work for Oracle ... you might have to get the syntax right first!

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Can you please provide a code snippet? I tried your suggestion but I was unable to obtain value from the nth row. –  Fahad Uddin Sep 19 '11 at 10:21

Consider the following Employee table with a single column for salary.

+------+
| Sal  |
+------+
| 3500 | 
| 2500 | 
| 2500 | 
| 5500 |
| 7500 |
+------+

The following query will return the Nth Maximum element.

select SAL from EMPLOYEE E1 where 
 (N - 1) = (select count(distinct(SAL)) 
            from EMPLOYEE E2 
            where E2.SAL > E1.SAL )

For eg. when the second maximum value is required,

  select SAL from EMPLOYEE E1 where 
     (2 - 1) = (select count(distinct(SAL)) 
                from EMPLOYEE E2 
                where E2.SAL > E1.SAL )
+------+
| Sal  |
+------+
| 5500 |
+------+
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An easy solution bound to work on all databases! Nice thinking! :) –  Sterex Jul 25 '12 at 7:40

You didn't specify which database, on MySQL you can do

SELECT column FROM table ORDER BY column DESC LIMIT 7,10;

Would skip the first 7, and then get you the next ten highest.

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If you are using mysql, this wont work in oracle (or mssql I believe) –  Matthew Watson Sep 17 '08 at 7:16
    
good point, clarified it –  Pieter Sep 17 '08 at 7:22

Pure SQL (note: I would recommend using SQL features specific to your DBMS since it will be likely more efficient). This will get you the n+1th largest value (to get smallest, flip the <). If you have duplicates, make it COUNT( DISTINCT VALUE )..

select id from table order by id desc limit 4 ;
+------+
| id   |
+------+
| 2211 | 
| 2210 | 
| 2209 | 
| 2208 | 
+------+


SELECT yourvalue
  FROM yourtable t1
 WHERE EXISTS( SELECT COUNT(*)
                 FROM yourtable t2
                WHERE t1.id       <> t2.id
                  AND t1.yourvalue < t2.yourvalue
               HAVING COUNT(*) = 3 )


+------+
| id   |
+------+
| 2208 | 
+------+
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(Table Name=Student, Column Name= mark)

select * from(select row_number() over (order by mark desc) as t,mark from student group by mark) as td where t=4
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You can find the nth largest value of column by using the following query:

SELECT * FROM TableName a WHERE
    n = (SELECT count(DISTINCT(b.ColumnName)) 
    FROM TableName b WHERE a.ColumnName <=b.ColumnName);
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Here's a method for Oracle. This example gets the 9th highest value. Simply replace the 9 with a bind variable containing the position you are looking for.

   select created from (
     select created from (
       select created from user_objects
         order by created desc
       )
       where rownum <= 9
       order by created asc
     )
     where rownum = 1

If you wanted the nth unique value, you would add DISTINCT on the innermost query block.

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Select max(sal) 
from table t1 
where N (select max(sal) 
        from table t2 
        where t2.sal > t1.sal)

To find the Nth max sal.

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SELECT * FROM tablename 
WHERE columnname<(select max(columnname) from tablename) 
order by columnname desc limit 1
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Again you may need to fix for your database, but if you want the top 2nd value in a dataset that potentially has the value duplicated, you'll want to do a group as well:

SELECT column 
FROM table 
WHERE column IS NOT NULL 
GROUP BY column 
ORDER BY column DESC 
LIMIT 5 OFFSET 2;

Would skip the first two, and then will get you the next five highest.

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In SQL Server, just do:

select distinct top n+1 column from table order by column desc

And then throw away the first value, if you don't need it.

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for SQL 2005:

SELECT col1 from 
     (select col1, dense_rank(col1) over (order by col1 desc) ranking 
     from t1) subq where ranking between 2 and @n
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Just dug out this question when looking for the answer myself, and this seems to work for SQL Server 2005 (derived from Blorgbeard's solution):

SELECT MIN(q.col1) FROM (
    SELECT
        DISTINCT TOP n col1
        FROM myTable
        ORDER BY col1 DESC
) q;

Effectively, that is a SELECT MIN(q.someCol) FROM someTable q, with the top n of the table retrieved by the SELECT DISTINCT... query.

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MySQL:

select distinct(salary) from employee order by salary desc limit (n-1), 1;
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Answer : top second:

select * from (select * from deletetable   where rownum <=2 order by rownum desc) where rownum <=1
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1  
When you don't add something new, please don't answer 4 year old questions :) –  fancyPants Sep 25 '12 at 8:43
select sal,ename from emp e where
 2=(select count(distinct sal) from emp  where e.sal<=emp.sal) or
 3=(select count(distinct sal) from emp  where e.sal<=emp.sal) or
 4=(select count(distinct sal) from emp  where e.sal<=emp.sal) order by sal desc;
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Table employee

salary 
1256
1256
2563
8546
5645

You find the second max value by this query

select salary 
from employee 
where salary=(select max(salary) 
                from employee 
                where salary <(select max(salary) from employee));

You find the third max value by this query

select salary 
from employee 
where salary=(select max(salary) 
                from employee 
                where salary <(select max(salary) 
                                from employee 
                                where salary <(select max(salary)from employee)));
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The outermost selects are extraneous. Stopping at the first max(salary) would have worked. –  RichardTheKiwi Sep 29 '12 at 11:44

(TableName=Student, ColumnName=Mark) :

select *from student where mark=(select mark from(select row_number() over (order by mark desc) as t,mark from student group by mark) as td where t=2)

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I think that the query below will work just perfect on oracle sql...I have tested it myself..

Info related to this query : this query is using two tables named employee and department with columns in employee named: name (employee name), dept_id (common to employee and department), salary

And columns in department table: dept_id (common for employee table as well), dept_name

SELECT
  tab.dept_name,MIN(tab.salary) AS Second_Max_Sal FROM (
    SELECT e.name, e.salary, d.dept_name, dense_rank() over (partition BY  d.dept_name          ORDER BY e.salary)  AS   rank FROM department d JOIN employee e USING (dept_id) )  tab
 WHERE
   rank  BETWEEN 1 AND 2
 GROUP BY
   tab.dept_name

thanks

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Another one for Oracle using analytic functions:

select distinct col1 --distinct is required to remove matching value of column
from 
( select col1, dense_rank() over (order by col1 desc) rnk
  from tbl
)
where rnk = :b1
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Select min(fee) 
from fl_FLFee 
where fee in (Select top 4 Fee from fl_FLFee order by 1 desc)

Change Number four with N.

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You can simplify like this

SELECT MIN(Sal) FROM TableName
WHERE Sal IN
(SELECT TOP 4 Sal FROM TableName ORDER BY Sal DESC)

If the Sal contains duplicate values then use this

SELECT MIN(Sal) FROM TableName
WHERE Sal IN
(SELECT distinct TOP 4 Sal FROM TableName ORDER BY Sal DESC)

the 4 will be nth value it may any highest value such as 5 or 6 etc.

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