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What is the simplest SQL query to find the second largest integer value in a specific column? Of course there may be duplicate values in the column.

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29 Answers 29

up vote 69 down vote accepted
SELECT MAX( col )
  FROM table
 WHERE col < ( SELECT MAX( col )
                 FROM table )
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3  
Matt's as well as Vinoy's answer takes care of duplicates as well. Suppose the largest value is repeated then using Matt's answer will produce the correct second largest value while if you used the top 2 desc and min approach, you may get the largest value instead. –  Pankaj Sharma Apr 1 '13 at 19:22
SELECT MAX(col) FROM table WHERE col NOT IN (SELECT MAX(col) FROM table);
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In T-Sql there are two ways:

--filter out the max
select max( col )
from [table]
where col < ( 
    select max( col )
    from [table] )

--sort top two then bottom one
select top 1 col 
from (
    select top 2 col 
    from [table]
    order by col) topTwo
order by col desc 

In Microsoft SQL the first way is twice as fast as the second, even if the column in question is clustered.

This is because the sort operation is relatively slow compared to the table or index scan that the max aggregation uses.

Alternatively, in Microsoft SQL 2005 and above you can use the ROW_NUMBER() function:

select col
from (
    select ROW_NUMBER() over (order by col asc) as 'rowNum', col
    from [table] ) withRowNum 
where rowNum = 2
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I see both some SQL Server specific and some MySQL specific solutions here, so you might want to clarify which database you need. Though if I had to guess I'd say SQL Server since this is trivial in MySQL.

I also see some solutions that won't work because they fail to take into account the possibility for duplicates, so be careful which ones you accept. Finally, I see a few that will work but that will make two complete scans of the table. You want to make sure the 2nd scan is only looking at 2 values.

SQL Server (pre-2012):

SELECT MIN([column]) AS [column]
FROM (
    SELECT TOP 2 [column] 
    FROM [Table] 
    GROUP BY [column] 
    ORDER BY [column] DESC
) a

MySQL:

SELECT `column` 
FROM `table` 
GROUP BY `column` 
ORDER BY `column` 
DESC LIMIT 1,1

Update:

SQL Server 2012 now supports a much cleaner (and standard) OFFSET/FETCH syntax:

SELECT TOP 2 [column] 
FROM [Table] 
GROUP BY [column] 
ORDER BY [column] DESC
OFFSET 1 ROWS
FETCH NEXT 1 ROWS ONLY;
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This is what I was hoping to see. The accepted answer turns ugly if you need it to work for any n. This one stands that test. –  Robin Maben Aug 8 '12 at 6:53
    
@RobinMaben Robin, how about the scenario when the largest value is repeated? Suppose a column contains numbers 1 through 100 but 100 is repeated twice. Then this solution will produce the second largest value as 100, which will be incorrect. Right? –  Pankaj Sharma Apr 1 '13 at 19:21
1  
@PankajSharma no, this will still work, because of the GROUP BY clause –  Joel Coehoorn Apr 1 '13 at 23:35
    
@JoelCoehoorn Oh yeah! Totally missed it. Thanks Joel. –  Pankaj Sharma Apr 3 '13 at 1:30
    
This is the standard way to do this. The accepted answer should be updated to this one. –  Guilherme Melo Apr 29 at 14:39

I suppose you can do something like:

SELECT * FROM Table ORDER BY NumericalColumn DESC LIMIT 1 OFFSET 1

or

SELECT * FROM Table ORDER BY NumericalColumn DESC LIMIT (1, 1)

depending on your database server. Hint: SQL Server doesn't do LIMIT.

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you can find the second largest value of column by using the following query

SELECT *
FROM TableName a
WHERE
  2 = (SELECT count(DISTINCT(b.ColumnName))
       FROM TableName b WHERE
       a.ColumnName <= b.ColumnName);

you can find more details on the following link

http://www.abhishekbpatel.com/2012/12/how-to-get-nth-maximum-and-minimun.html

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select * from (select ROW_NUMBER() over (Order by Col_x desc) as Row, Col_1
    from table_1)as table_new tn inner join table_1 t1
    on tn.col_1 = t1.col_1
where row = 2

Hope this help to get the value for any row.....

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A very simple query to find the second largest value

SELECT `Column` FROM `Table` ORDER BY `Column` DESC LIMIT 1,1;
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I've edited your answer to use the correct formatting when adding example scripts. –  Jamie Keeling Oct 25 '12 at 11:24

The easiest would be to get the second value from this result set in the application:

SELECT DISTINCT value FROM Table ORDER BY value DESC LIMIT 2

But if you must select the second value using SQL, how about:

SELECT MIN(value) FROM (SELECT DISTINCT value FROM Table ORDER BY value DESC LIMIT 2) AS t
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1  
Have you run this on SQL Server? –  Craig Sep 16 '09 at 0:22
    
@Craig - LIMIT is MySql syntax, the question doesn't specify a SQL version. –  Keith Apr 12 '11 at 9:44
select min(sal) from emp where sal in 
    (select TOP 2 (sal) from emp order by sal desc)

Note

sal is col name
emp is table name

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Tom, believe this will fail when there is more than one value returned in select max([COLUMN_NAME]) from [TABLE_NAME] section. i.e. where there are more than 2 values in the data set.

Slight modification to your query will work -

select max([COLUMN_NAME]) from [TABLE_NAME] where [COLUMN_NAME] **IN** 
  ( select max([COLUMN_NAME]) from [TABLE_NAME] )
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select max(COL_NAME) from TABLE_NAME where COL_NAME in 
    (select COL_NAME from TABLE_NAME where COL_NAME < (select max(COL_NAME) from TABLE_NAME));

subquery returns all values other than the largest. select the max value from the returned list.

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select col_name
from (
    select dense_rank() over (order by col_name desc) as 'rank', col_name
    from table_name ) withrank 
where rank = 2
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SELECT 
    * 
FROM 
    table 
WHERE 
    column < (SELECT max(columnq) FROM table) 
ORDER BY 
    column DESC LIMIT 1
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It is the most esiest way:

SELECT
      Column name
FROM
      Table name 
ORDER BY 
      Column name DESC
LIMIT 1,1
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Something like this? I haven't tested it, though:

select top 1 x
from (
  select top 2 distinct x 
  from y 
  order by x desc
) z
order by x
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See http://stackoverflow.com/questions/16568.

Sybase SQL Anywhere supports:

SELECT TOP 1 START AT 2 value from table ORDER BY value
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Using a correlated query:

Select * from x x1 where 1 = (select count(*) from x where x1.a < a)
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select * from emp e where 3>=(select count(distinct salary)
    from emp where s.salary<=salary)

This query selects the maximum three salaries. If two emp get the same salary this does not affect the query.

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select top 1 MyIntColumn from MyTable
where
 MyIntColumn <> (select top 1 MyIntColumn from MyTable order by MyIntColumn desc)
order by MyIntColumn desc
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This works in MS SQL:

select max([COLUMN_NAME]) from [TABLE_NAME] where [COLUMN_NAME] < 
 ( select max([COLUMN_NAME]) from [TABLE_NAME] )
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Query to find the 2nd highest number in a row-

select Top 1 (salary) from XYZ
where Salary not in (select distinct TOP 1(salary) from XYZ order by Salary desc)
ORDER BY Salary DESC

By changing the highlighted Top 1 to TOP 2, 3 or 4 u can find the 3rd, 4th and 5th highest respectively.

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We can also make use of order by and top 1 element as follows:

Select  top 1 col_name from table_name
where col_name < (Select top 1 col_name from table_name order by col_name desc)
order by col_name desc 
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SELECT * FROM EMP
WHERE salary=
        (SELECT MAX(salary) FROM EMP
           WHERE salary != (SELECT MAX(salary) FROM EMP)
        );
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This is an another way to find the second largest value of a column.Consider the table 'Student' and column 'Age'.Then the query is,

select top 1 Age from Student where Age in(select distinct top 2 Age  from Student order by Age desc) order by Age asc
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Try:

select a.* ,b.* from 
(select * from (select ROW_NUMBER() OVER(ORDER BY fc_amount desc) SrNo1, fc_amount as amount1 From entry group by fc_amount) tbl where tbl.SrNo1 = 2) a
,
(select * from (select ROW_NUMBER() OVER(ORDER BY fc_amount asc) SrNo2, fc_amount as amount2  From entry group by fc_amount) tbl where tbl.SrNo2 =2) b
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select * from [table] where (column)=(select max(column)from [table] where column < (select max(column)from [table]))
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Use this query.

SELECT MAX ( colname ) 
FROM Tablename 
where colname < (
    SELECT MAX( colname ) 
    FROM Tablename)
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This answer is identical to @Matt Rogish's answer which was posted 6 years ago and has long since been marked as correct. This answer adds nothing and should be deleted. –  DMK Apr 7 at 11:18
select MAX(salary) as SecondMax from test where salary !=(select MAX(salary) from test)
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