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It's a question I got this afternoon:

There a table contains ID, Name, and Salary of Employees, get names of the second-highest salary employees, in SQL Server

Here's my answer, I just wrote it in paper and not sure that it's perfectly valid, but it seems to work:

SELECT Name FROM Employees WHERE Salary = 
( SELECT DISTINCT TOP (1) Salary FROM Employees WHERE Salary NOT IN
 (SELECT DISTINCT TOP (1) Salary FROM Employees ORDER BY Salary DESCENDING)
ORDER BY Salary DESCENDING)

I confessed to interviewers that it's ugly. It's the only solution come to my mind in the interview, but right now, when I'm at home, I still can't not find a better, more elegant solution.

Can you suggest me a better query?

Thank you very much.

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32 Answers 32

up vote 16 down vote accepted

To get the names of the employees with the 2nd highest distinct salary amount you can use.

;WITH T AS
(
SELECT *,
       DENSE_RANK() OVER (ORDER BY Salary Desc) AS Rnk
FROM Employees
)
SELECT Name
FROM T
WHERE Rnk=2;

If Salary is indexed the following may well be more efficient though especially if there are many employees.

SELECT Name
FROM   Employees
WHERE  Salary = (SELECT MIN(Salary)
                 FROM   (SELECT DISTINCT TOP (2) Salary
                         FROM   Employees
                         ORDER  BY Salary DESC) T);

Test Script

CREATE TABLE Employees
  (
     Name   VARCHAR(50),
     Salary FLOAT
  )

INSERT INTO Employees
SELECT TOP 1000000 s1.name,
                   abs(checksum(newid()))
FROM   sysobjects s1,
       sysobjects s2

CREATE NONCLUSTERED INDEX ix
  ON Employees(Salary)

SELECT Name
FROM   Employees
WHERE  Salary = (SELECT MIN(Salary)
                 FROM   (SELECT DISTINCT TOP (2) Salary
                         FROM   Employees
                         ORDER  BY Salary DESC) T);

WITH T
     AS (SELECT *,
                DENSE_RANK() OVER (ORDER BY Salary DESC) AS Rnk
         FROM   Employees)
SELECT Name
FROM   T
WHERE  Rnk = 2;

SELECT Name
FROM   Employees
WHERE  Salary = (SELECT DISTINCT TOP (1) Salary
                 FROM   Employees
                 WHERE  Salary NOT IN (SELECT DISTINCT TOP (1) Salary
                                       FROM   Employees
                                       ORDER  BY Salary DESC)
                 ORDER  BY Salary DESC)

SELECT Name
FROM   Employees
WHERE  Salary = (SELECT TOP 1 Salary
                 FROM   (SELECT TOP 2 Salary
                         FROM   Employees
                         ORDER  BY Salary DESC) sel
                 ORDER  BY Salary ASC)  
share|improve this answer
 select MAX(Salary) from Employee where Salary NOT IN (Select MAX(Salary) from employee);

Try like this..

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How about a CTE?

;WITH Salaries AS
(
    SELECT Name, Salary,
       DENSE_RANK() OVER(ORDER BY Salary DESC) AS 'SalaryRank'
    FROM 
        dbo.Employees
)
SELECT Name, Salary
FROM Salaries  
WHERE SalaryRank = 2

DENSE_RANK() will give you all the employees who have the second highest salary - no matter how many employees have the (identical) highest salary.

share|improve this answer

Another intuitive way is :- Suppose we want to find Nth highest salary then

1) Sort Employee as per descending order of salary

2) Take first N records using rownum. So in this step Nth record here is Nth highest salary

3) Now sort this temporary result in ascending order. Thus Nth highest salary is now first record

4) Get first record from this temporary result.

It will be Nth highest salary.

select * from 
 (select * from 
   (select * from  
       (select * from emp order by sal desc)  
   where rownum<=:N )  
 order by sal )
where rownum=1;

In case there are repeating salaries then in innermost query distinct can be used.

select * from 
 (select * from 
   (select * from  
       (select distinct(sal) from emp order by 1 desc)  
   where rownum<=:N )  
 order by sal )
where rownum=1;
share|improve this answer

I think you would want to use DENSE_RANK as you don't know how many employees have the same salary and you did say you wanted nameS of employees.

CREATE TABLE #Test
(
    Id INT,
    Name NVARCHAR(12),
    Salary MONEY
)

SELECT x.Name, x.Salary
FROM
        (
        SELECT  Name, Salary, DENSE_RANK() OVER (ORDER BY Salary DESC) as Rnk
        FROM    #Test
        ) x
WHERE x.Rnk = 2

ROW_NUMBER would give you unique numbering even if the salaries tied, and plain RANK would not give you a '2' as a rank if you had multiple people tying for highest salary. I've corrected this as DENSE_RANK does the best job for this.

share|improve this answer

Simple way WITHOUT using any special feature specific to Oracle, MySQL etc.

Suppose EMPLOYEE table has data as below. Salaries can be repeated. enter image description here

By manual analysis we can decide ranks as follows :-
enter image description here

Same result can be achieved by query

select  *
from  (
select tout.sal, id, (select count(*) +1 from (select distinct(sal) distsal from     
EMPLOYEE ) where  distsal >tout.sal)  as rank  from EMPLOYEE tout
) result
order by rank

enter image description here

First we find out distinct salaries. Then we find out count of distinct salaries greater than each row. This is nothing but the rank of that id. For highest salary, this count will be zero. So '+1' is done to start rank from 1.

Now we can get IDs at Nth rank by adding where clause to above query.

select  *
from  (
select tout.sal, id, (select count(*) +1 from (select distinct(sal) distsal from     
EMPLOYEE ) where  distsal >tout.sal)  as rank  from EMPLOYEE tout
) result
where rank = N;
share|improve this answer

This might help you

SELECT MIN(SALARY) FROM EMP WHERE SALARY = (SELECT DISTINCT TOP 2 SALARY FROM EMP ORDERBY SALARY DESC)

we can find any nth highest salary by putting 'n' (n > 0) in place of '2'

share|improve this answer
select * from emp where salary = (  
    select salary from   
       (select ROW_NUMBER() over (order by salary) as 'rownum', *
        from emp) t -- Order employees according to salary  
    where rownum = 2 -- Get the second highest salary
)
share|improve this answer
select max(age) from yd where age<(select max(age) from HK) ; /// True two table Highest 

SELECT * FROM HK E1 WHERE 1 =(SELECT COUNT(DISTINCT age) FROM HK E2 WHERE E1.age < E2.age); ///Second Hightest age RT single table 

select age from hk e1 where (3-1) = (select count(distinct (e2.age)) from yd e2 where e2.age>e1.age);//// same True Second Hight age RT two table

select max(age) from YD where age not in (select max(age) from YD);  //second hight age in single table 
share|improve this answer
2  
can you please add some explanations to your post (not only code)? –  Daniele B May 27 '12 at 22:02

Can we also use

select e2.max(sal), e2.name
from emp e2
where (e2.sal <(Select max (Salary) from empo el))
group by e2.name

Please let me know what is wrong with this approach

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Below query can be used to find the nth maximum value, just replace 2 from nth number

select * from emp e1 where 2 =(select count(distinct(salary)) from emp e2
   where e2.emp >= e1.emp)
share|improve this answer
SELECT * 
FROM TABLE1 AS A 
WHERE NTH HIGHEST NO.(SELECT COUNT(ATTRIBUTE) FROM TABLE1 AS B) WHERE B.ATTRIBUTE=A.ATTRIBUTE;
share|improve this answer

this is the simple query .. if u want the second minimum then just change the max to min and change the less than(<) sign to grater than(>).

    select max(column_name) from table_name where column_name<(select max(column_name) from table_name)
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select MAX(Salary) from Employee WHERE Salary NOT IN (select MAX(Salary) from Employee );
share|improve this answer

Creating temporary table

Create Table #Employee (Id int identity(1,1), Name varchar(500), Salary int)

Insert data

Insert Into #Employee
    Select 'Abul', 5000
Union ALL 
    Select 'Babul', 6000
Union ALL 
    Select 'Kabul', 7000
Union ALL 
    Select 'Ibul', 8000
Union ALL 
    Select 'Dabul', 9000

Query will be

select top 1 * from #Employee a
Where a.id <> (Select top 1 b.id from #Employee b ORDER BY b.Salary desc)
order by a.Salary desc

Drop table

drop table #Empoyee
share|improve this answer

I think this is probably the simplest out of the lot.

SELECT Name FROM Employees group BY Salary DESCENDING limit 2;
share|improve this answer
4  
Pay attention to the tags in the question; SQL Server doesn't support LIMIT. –  LittleBobbyTables Sep 20 '12 at 19:09

Try this: This will give dynamic results irrespective of no of rows

SELECT * FROM emp WHERE salary = (SELECT max(e1.salary) 
FROM emp e1 WHERE e1.salary < (SELECT Max(e2.salary) FROM emp e2))**
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select max(salary) 
from table 
where salary <>(
select max(salary) 
from table where salary);

OR

select max(salary) 
from table 
where salary not in(
select max(salary) 
from table where salary);

this is for second highest salary;

share|improve this answer
SELECT name
FROM employee
WHERE salary =
(SELECT MIN(salary) 
  FROM (SELECT TOP (2) salary
  FROM employee
  ORDER BY salary DESC) )
share|improve this answer

Here's a simple approach:

select name
from employee
where salary=(select max(salary)
              from(select salary from employee
                   minus
                   select max(salary) from employee));
share|improve this answer

SELECT salary AS emp_sal, name , id FROM employee GROUP BY salary ORDER BY salary DESC LIMIT 1 , 1

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Try this to get respective nth highest salary.

SELECT * FROM emp e1 WHERE 2 = (SELECT COUNT(salary) FROM emp e2 WHERE e2.salary>=e1.salary ) 
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I want to post here possibly easiest solution. It worked in mysql.

Please check at your end too:

SELECT name
FROM `emp`
WHERE salary = (
SELECT salary
FROM emp e
ORDER BY salary DESC
LIMIT 1
OFFSET 1 
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select max(salary) from emp_demo_table where salary<(select max(salary)from emp_demo_table)

Hope this solves the quey in simplest of terms. Thanks

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declare

cntr number :=0;

cursor c1 is

select salary from employees order by salary desc;

z c1%rowtype;

begin

open c1;

fetch c1 into z;

while (c1%found) and (cntr <= 1) loop


cntr := cntr + 1;

fetch c1 into z;

dbms_output.put_line(z.salary);

end loop;

end;
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SELECT MAX(Salary) FROM Employee
WHERE Salary NOT IN (SELECT MAX(Salary) FROM Employee)
share|improve this answer

If you want to display the name of the employee who is getting the second highest salary then use this:

SELECT employee_name 
FROM employee
WHERE salary = (SELECT max(salary) 
                FROM employee
                WHERE salary < (SELECT max(salary) 
                                FROM employee);
share|improve this answer

Using this SQL, Second highest salary will get with Employee Name

Select top 1 start at 2 salary from employee group by salary order by salary desc;
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SELECT salary from Employee ORDER BY salary DESC LIMIT 1, 1;

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 - Method 1

    select max(salary) from Employees
        where salary< (select max(salary) from Employees)



 - Method 2

 select MAX(salary) from Employees 
    where salary not in(select MAX(salary) from Employees)



 - Method 3

select MAX(salary) from Employees 
    where salary!= (select MAX(salary) from Employees )
share|improve this answer

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