2

To find out the Nth max sal in oracle i'm using below query

SELECT DISTINCE sal 
FROM emp a 
WHERE (
       SELECT COUNT(DISTINCE sal) 
       FROM emp b 
       WHERE a.sal<=b.sal)=&n;
  • But According to me by using the above query it will take more time to execute if table size is big.

  • i'm trying to use the below query

    SELECT sal 
    FROM (
          SELECT DISTINCE sal 
          FROM emp 
               ORDER BY sal DESC ) 
    WHERE rownum=3;
    
  • but not getting output.. any suggetions please .. Please share any link on how to optimise queries and decrease the time for a query to execute.

23 Answers 23

20

try this

select *
  from
  (
    select
        sal
          ,dense_rank() over (order by sal desc) ranking
    from   table
  )
  where ranking = 4 -- Replace 4 with any value of N
  • 1
    if two persons have same salary they must given same rank,so dense_rank must be used in this case – vhadalgi Nov 20 '13 at 9:02
  • can we use rank() in place of that? – Sai Nov 20 '13 at 9:21
  • The DENSE_RANK function acts like the RANK function except that it assigns consecutive ranks.see here – vhadalgi Nov 20 '13 at 9:24
  • @SaiDattu check out here for cpu_time – vhadalgi Nov 20 '13 at 9:27
  • one more doubt please... in the above query we can see only sal col in the result set.. if i want to see to see entire columns..any help?? – Sai Nov 20 '13 at 10:10
4
SELECT sal FROM (
    SELECT sal, row_number() OVER (order by sal desc) AS rn FROM emp
)
WHERE rn = 3

Yes, it will take longer to execute if the table is big. But for "N-th row" queries the only way is to look through all the data and sort it. It will be definitely much faster if you have an index on sal.

  • 2
    You need to use desc on order by, And as OP need the distinct salary , a group by salary would be useful for non repeating ranked salary. – ajmalmhd04 Nov 20 '13 at 8:55
  • 2
    It's important to note the differences between row_number, rank, and dense_rank for this specific requirement. What should happen when you have more then one person with the same salary ? should you count them in the same position ... ? – haki Nov 20 '13 at 9:00
  • @Kombajn zbożowy here if the salaries are like 5000,3000,5000,3000,2000 then will it generate wrong output?? – Sai Nov 20 '13 at 9:07
  • Well, it depends on the exact behaviour you need. For salaries: 5000,3000,5000,3000,2000 I would say the answer is 3000 (and my query works like this). But you might want 2000 (3rd unique salary), in this case right, you would need to rebuild the query. – Kombajn zbożowy Nov 20 '13 at 9:52
  • Right, should have been order by sal desc, that's just a typo, edited. – Kombajn zbożowy Nov 20 '13 at 9:53
4
SELECT * 
FROM Employee Emp1
WHERE (N-1) = ( 
SELECT COUNT(DISTINCT(Emp2.Salary))
FROM Employee Emp2
WHERE Emp2.Salary > Emp1.Salary)
2

We could write as below mentioned also.

select min(sal) from (select sal from emp where rownum=<&n order by sal desc);

  • The code will not work as the rownum is not properly applied, rownum gets add after the result. – Ritesh Kumar Aug 1 '19 at 18:28
2

This will show the 3rd max salary from table employee. If you want to find out the 5th or 6th (whatever you want) value then just change the where condition like this where rownum<=5" or "where rownum<=6 and so on...

select min(sal) from(select distinct(sal) from emp  where rownum<=3 order by sal desc);
  • Correction needed : where clause should be in the outside query.. it should be : select min(sal) from(select distinct(sal) from emp order by sal desc) where rownum<=3; – abhi Jul 3 '18 at 10:52
0
 SELECT sal
    FROM (
                SELECT empno,
                             deptno, sal,
                              dense_rank( ) over ( partition by deptno order by sal desc) NRANK
                FROM emp
            )
    WHERE NRANK = 4
  • by executing above we will get deparment wise highest salary.. i have asked highest sal among all the dept's. – Sai Dec 10 '13 at 11:35
  • you need to remove partition by in that case, please find code below – Anant_00 Dec 11 '13 at 5:54
0
SELECT *
    FROM (
                SELECT empno,
                       deptno, sal,
                       dense_rank( ) over ( order by sal desc) NRANK
                FROM emp
            )
    WHERE NRANK = 4
0

you can replace the 2 with your desired number

select * from ( select distinct (sal),ROW_NUMBER() OVER (order by sal desc) rn from emp ) where rn=2
0

Refer following query for getting nth highest salary. By this way you get nth highest salary. If you want get nth lowest salary only you need to replace DESC by ASC in the query. for getting highest salary of employee.

  • Yes. It Works in MySQL. – Vijay Bhatt Dec 3 '15 at 8:53
0

Now you try this you will get for sure:

SELECT DISTINCT sal 
    FROM emp a 
    WHERE (
           SELECT COUNT(DISTINCT sal) 
           FROM emp b 
           WHERE a.sal<=b.sal)=&n;

For your information, if you want the nth least sal:

SELECT DISTINCT sal 
FROM emp a 
WHERE (
       SELECT COUNT(DISTINCT sal) 
       FROM emp b 
       WHERE a.sal>=b.sal)=&n;
0

select min(sal) from (select distinct sal from employee order by sal DESC) where rownum<=N;

place the number whatever the highest sal you want to retrieve.

  • It works in Oracle. I don't know about the remaining databases – mahesh Aug 5 '16 at 16:19
0

Try out following:

SELECT *
FROM
  (SELECT rownum AS rn,
    a.*
  FROM
    (WITH DATA AS -- creating dummy data
    ( SELECT 'MOHAN' AS NAME, 200 AS SALARY FROM DUAL
    UNION ALL
    SELECT 'AKSHAY' AS NAME, 500 AS SALARY FROM DUAL
    UNION ALL
    SELECT 'HARI' AS NAME, 300 AS SALARY FROM DUAL
    UNION ALL
    SELECT 'RAM' AS NAME, 400 AS SALARY FROM DUAL
    )
  SELECT D.* FROM DATA D ORDER BY SALARY DESC
    ) A
  )
WHERE rn = 3; -- specify N'th highest here (In this case fetching 3'rd highest)

Cheers!

0
select * FROM (
select EmployeeID, Salary
, dense_rank() over (order by Salary DESC) ranking
from Employee
)
WHERE ranking = N;

dense_rank() is used for the salary has to be same.So it give the proper output instead of using rank().

0
SELECT TOP (1) Salary FROM
(
    SELECT DISTINCT TOP (10) Salary FROM Employee ORDER BY Salary DESC
) AS Emp ORDER BY Salary

This is for 10th max salary, you can replace 10 with n.

0

These queries will also work:

Workaround 1)

SELECT ename, sal 
FROM Emp e1 WHERE n-1 = (SELECT COUNT(DISTINCT sal) 
                         FROM Emp e2 WHERE e2.sal > e1.sal)

Workaround 2) using row_num function.

SELECT * 
FROM ( 
   SELECT e.*, ROW_NUMBER() OVER (ORDER BY sal DESC) rn FROM Emp e 
) WHERE rn = n;

Workaround 3 ) using rownum pseudocolumn

Select MAX(SAL) 
from (
   Select * 
   from (
      Select * 
      from EMP 
      order by SAL Desc
   ) where rownum <= n
)
0

This will also work :

with data as 
(
select sal,rwid from (
select salary as sal,rowid as rwid from salary order by salary desc
)
where rownum < 5
)
select * from salary a 
where rowid = (select min(rwid) from data)
0
select min(sal) from (select distinct(sal) from emp  order by sal desc) where rownum <=&n;

Inner query select distinct(sal) from emp order by sal desc will give the below output as given below.

SAL 5000 3000 2975 2850 2450 1600 1500 1300 1250 1100 950 800

without distinct in the above query select sal from emp order by sal desc output as given below.

SAL 5000 3000 3000 2975 2850 2450 1600 1500 1300 1250 1250 1100 950 800

outer query will give the 'N'th max sal (E.g) I have tried here for 4th Max sal and out put as given below.

MIN(SAL) 2850

0
Select min(salary) from (
  select distinct(salary) from empdetails order by salary desc
) where rownum <=&rn

Just enter nth number which you want.

0

Try this:

SELECT min(sal)  FROM (
SELECT sal FROM emp ORDER BY sal desc) WHERE ROWNUM <= 3; -- Replace 3 with any value of N
0

You can optimize the query using Dense_rank() function.

for Example :

select distinct salary from ( select salary ,dense_rank() over (order by salary desc) ranking from Employee ) where ranking = 6

Note: ranking 6 is the number of nth order.

0
SELECT Min(sal)
FROM   (SELECT DISTINCT sal
        FROM   emp
        WHERE  sal IS NOT NULL
        ORDER  BY sal DESC)
WHERE  rownum <= n;  
  • 2
    Some explanation is always helpful – Pratham Sep 24 '19 at 7:00
-1

5th highest salary:

SELECT
    * 
FROM
    emp a 
WHERE 
    4 = (
        SELECT 
            COUNT(DISTINCT b.sal) 
        FROM 
            emp b 
        WHERE 
            a.sal < b.sal
    )

Replace 4 with any value of N.

  • 1
    It would be helpful to give an answer that contains full code (correctly formatted) and an explanation why your answer provides a solution. What is to learn from this? – Timusan Jul 6 '15 at 6:24
-1

There are three methods are there...

SELECT salary,first_name,rnk 
FROM (SELECT salary,first_name,rank() over (order by salary desc nulls last) as                                                                  rnk from emp) where rnk=3;


SELECT salary,first_name,rnk 
FROM (SELECT salary,first_name,dense_rank() over (order by salary desc nulls last) as                                                                  rnk from emp) where rnk=3;


select rnk,first_name,salary 
from (select rownum as rnk ,first_name,salary 
      from (select first_name,salary 
            from emp order by salary desc nulls last)) where rnk=3

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