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I have a table of employees and salaries defined that way:

"name" (type: VARCHAR)
"salary" (type: INTEGER)

What query can I use to get the second highest salary in this table?

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1  
What if you have 2 or more names with the same highest or 2nd highest salary? –  Pentium10 Mar 19 '11 at 10:23
    
@Pentium - I wondered the same...answered accordingly –  Dawson Mar 20 '11 at 1:17

21 Answers 21

up vote 23 down vote accepted

Here's one that accounts for ties.

Name    Salary
Jim       6
Foo       5
Bar       5
Steve     4

SELECT name, salary
FROM employees
WHERE salary = (SELECT MAX(salary) FROM employees WHERE salary < (SELECT MAX(salary) FROM employees))

Result --> Bar 5, Foo 5

EDIT: I took Manoj's second post, tweaked it, and made it a little more human readable. To me n-1 is not intuitive; however, using the value I want, 2=2nd, 3=3rd, etc. is.

/* looking for 2nd highest salary -- notice the '=2' */
SELECT name,salary FROM employees
WHERE salary = (SELECT DISTINCT(salary) FROM employees as e1
WHERE (SELECT COUNT(DISTINCT(salary))=2 FROM employees as e2
WHERE e1.salary <= e2.salary)) ORDER BY name

Result --> Bar 5, Foo 5
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1  
What shall i do if i want to select thrird highest in from my table...Thanks in advance –  jack Feb 17 '12 at 6:43
3  
SELECT name, salary FROM employees WHERE salary = (SELECT MAX(salary) FROM employees WHERE salary < (SELECT MAX(salary) FROM employees WHERE salary < (SELECT MAX(salary) FROM employees))). This technique is just nesting SELECT statements to the point at which you're trying to find a number (2nd, 3rd, 4th highest paid). If I wanted to find the 5th highest paid employee AND account for ties, I would add an additional 3 more SELECT MAX(salary) FROM employees WHERE salary < ... etc. to the original answer's code. –  Dawson Mar 12 '12 at 5:42

A straight forward answer for second highest salary

SELECT name, salary
FROM employees ORDER BY `employees`.`salary` DESC LIMIT 1 , 1

another interesting solution

SELECT salary 
FROM emp 
WHERE salary = (SELECT DISTINCT(salary) 
                FROM emp as e1 
                WHERE (n) = (SELECT COUNT(DISTINCT(salary)) 
                             FROM emp as e2 
                             WHERE e1.salary <= e2.salary))
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1  
Why is this getting up-voted? That SELECT statement only returns one value: the TOP Salary. The question was to find the 2nd highest salary. –  Dawson Jun 13 '13 at 20:13
1  
This answer is getting up-voted because the first solution is the most straightforward solution. See the section on "offset" in the MySQL docs on SELECT. The first number after "LIMIT" is the offset when using the comma. The offset is zero-indexed. So, this query selects one row, starting at the second-highest. (though, this does not account for ties) –  Jon Page Dec 31 '13 at 20:23
    
@Jon - check his edit. What it was doing in June, is NOT what it was doing in December. –  Dawson Jan 20 at 12:09
create table svalue (
name varchar(5),
value int
) engine = myisam;

insert into svalue value ('aaa',30),('bbb',10),('ccc',30),('ddd',20);

select * from svalue where value = (
select value 
from svalue
group by value
order by  value desc limit 1,1)
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Found another interesting solution

SELECT salary 
FROM emp 
WHERE salary = (SELECT DISTINCT(salary) 
                FROM emp as e1 
                WHERE (n) = (SELECT COUNT(DISTINCT(salary)) 
                             FROM emp as e2 
                             WHERE e1.salary <= e2.salary))

Sorry. Forgot to write. n is the nth number of salary which you want.

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SELECT salary FROM emp WHERE salary = (SELECT DISTINCT(salary) FROM emp as e1 WHERE (n) = (SELECT COUNT(DISTINCT(salary)) FROM emp as e2 WHERE e1.salary <= e2.salary)). Thsi will be the direct "n" substitution solution –  Manoj Jan 18 '13 at 5:20

The simple solution is as given below in query:

select max(salary) as salary from employees where salary<(select max(salary) from employees);
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To display records having second largest value of mark:

SELECT username, mark
FROM tbl_one
WHERE mark = (
    SELECT DISTINCT mark
    FROM tbl_one
    ORDER by mark desc
    LIMIT 1,1
); 
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simple solution

SELECT * FROM TBLNAME ORDER BY COLNAME ASC LIMIT (n - x), 1

Note: n = total number of records in column

  x = value 2nd, 3rd, 4th highest etc

e.g

//to find employee with 7th highest salary

n = 100
x = 7

SELECT * FROM tbl_employee ORDER BY salary ASC LIMIT 93, 1

hope this helps

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FOR SECOND LAST:

SELECT name, salary
    FROM employee 
    ORDER BY salary DESC
    LIMIT 1 , 1

FOR THIRD LAST:

SELECT name, salary
    FROM employee 
    ORDER BY salary DESC
    LIMIT 2 , 1
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Try this one to get n th max salary

i have tried this before posting & It Works fine

eg. to find 10th max salary replace limit 9,1;

mysql> select name,salary from emp group by salary desc limit n-1,1;

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for 2nd heightest salary

 select max(salary) from salary where salary not in (select top 1 salary from salary order by salary desc)

for 3rd heightest salary

 select max(salary) from salary where salary not in (select top 2 salary from salary order by salary desc)

and so on......

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To get the *N*th highest value, better to use this solution:

SELECT * FROM `employees`  WHERE salary =
         (SELECT DISTINCT(salary) FROM `employees` 
         ORDER BY salary DESC LIMIT {N-1},1);

or you can try with:

SELECT * FROM `employees` e1 WHERE 
        (N-1) = (SELECT COUNT(DISTINCT(salary)) 
        FROM `employees` e2 
        WHERE e1.salary < e2.salary ); 

N=2 for second highest N=3 for third highest and so on.

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Seems I'm much late to answer this question. How about this one liner to get the same output?

SELECT DISTINCT salary FROM employees ORDER BY salary DESC LIMIT 1,1 ;
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SELECT SALARY 
FROM (SELECT * 
      FROM EMPLOYEE 
      ORDER BY SALARY 
      DESC LIMIT ***2***) AS TOP_SALARY 
ORDER BY SALARY ASC 
LIMIT 1
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SELECT MAX(salary) salary
FROM tbl
WHERE salary <
  (SELECT MAX(salary)
   FROM tbl);
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SELECT name, salary
FROM EMPLOYEES
WHERE salary = ( 
SELECT DISTINCT salary
FROM EMPLOYEES
ORDER BY salary DESC 
LIMIT 1 , 1 ) 
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SELECT MIN(id) as id FROM students where id>(SELECT MIN(id) FROM students);
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with alias as
(
select name,salary,row_number() over(order by salary desc ) as rn from employees
)
select name,salary from alias where rn=n--n being the nth highest salary
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SELECT username, salary
FROM tblname
GROUP by salary
ORDER by salary desc
LIMIT 0,1 ;
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SELECT DISTINCT Salary
FROM emp
ORDER BY salary DESC
LIMIT 1 , 1

This query will give second highest salary of the duplicate records as well.

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You can use this below mentioned query

select name, salary from employees emp where 2 = (select count(distinct salary) from employees where emp.salary<=salary)

You can change 2 to your desired highest record.

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To get the second highest salary just use the below query....

SELECT salary FROM employees ORDER BY salary DESC LIMIT 1, 1

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