Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

For even rows formula for median is (104.5 + 108)/2 for table below and For odd rows it is 108 for table below

Total       Total

100         100
101         101
104.5       104.5
108         108
108.3       108.3
112         112
            114

I wrote this query, and it is calculating correct median when number of rows are odd

WITH    a AS ( SELECT   Total ,
                        ROW_NUMBER() OVER ( ORDER BY CAST(Total AS FLOAT) ASC ) rownumber
               FROM     [Table] A
             ),
        b AS ( SELECT TOP 2
                        Total ,
                        isodd
               FROM     ( SELECT TOP 50 PERCENT
                                    Total ,
                                    rownumber % 2 isodd
                          FROM      a
                          ORDER BY  CAST(Total AS FLOAT) ASC
                        ) a
               ORDER BY CAST(total AS FLOAT) DESC
             )
    SELECT  *
    FROM    b

What is the general T-SQL query to find median in both situations? like when number of rows are odd and also when number of rows is even?

Can my query could be twisted so that it can work for median in both even and odd number of rows situations?

share|improve this question
    
The query you have posted is not valid syntax. –  Martin Smith Aug 29 '11 at 8:17
    
Possible duplicate of stackoverflow.com/questions/1342898/… –  John N Aug 29 '11 at 8:22
    
I have corrected the query –  user680865 Aug 29 '11 at 8:25

4 Answers 4

up vote 2 down vote accepted

Yes is can be changed a bit to accommodate your requirement, here is a very good way.

select avg(Total) median from
(select Total, 
rnasc = row_number() over(order by Total),
rndesc = row_number() over(order by Total desc)
 from [Table] 
) b
where rnasc between rndesc - 1 and rndesc + 1

I rewrote it to match your exact structure

share|improve this answer
    
what is n here? what about when number of rows are even and we have to calculate the average to find median, as mentioned above –  user680865 Aug 29 '11 at 9:11
    
select avg(n) median from --- is this the continuation of my sql query written above? Can you write the whole sql query? –  user680865 Aug 29 '11 at 9:15
    
This is correct but works only in SQL server 2005 and above. How can we make it work for sql server 2000? In sql server 2000 it does not understand row_number() and over. How can we change it to work on sql server 2000? –  user680865 Sep 5 '11 at 15:46
    
The question is tagged with sql server 2008, if you need it for 2000, it seems like @GMastros has the best answer. Since you are using 'row_number() over' in your own example, I am tempted to believe my solution is correct. –  t-clausen.dk Sep 5 '11 at 18:07
    
Hey, it's pretty cool snippet, love it. Just one note - in case the numbers (Total here) are not unique, it may not find any value. Solution is just to add one more sorting column in order to guarantee that both row_number() functions sort in the same way. –  ulath Jun 12 '14 at 11:56

I wrote a blog about Mean, Median and Mode a couple years ago. I encourage you to read it.

Calculating Mean, Median, and Mode with SQL Server

SELECT ((
        SELECT TOP 1 Total
        FROM   (
                SELECT  TOP 50 PERCENT Total
                FROM    [TABLE] A
                WHERE   Total IS NOT NULL
                ORDER BY Total
                ) AS A
        ORDER BY Total DESC) +
        (
        SELECT TOP 1 Total
        FROM   (
                SELECT  TOP 50 PERCENT Total
                FROM    [TABLE] A
                WHERE   Total IS NOT NULL
                ORDER BY Total DESC
                ) AS A
        ORDER BY Total ASC)) / 2
share|improve this answer
    
I do not understand [TABLE] A I have to add [table p] A or something like that. How to do that? I have to use left Join after from [Table]. How to do it? –  user680865 Sep 5 '11 at 15:45

t-clausens answer unfortunately does not work correctly, when there are lots of duplicate values in the list. Then the row numbers generated by different OVER clauses are not predictable in way, that this query works.

The following worked well in my case:

WITH SortedTable AS
    (
        SELECT Total, 
               rnasc, 
               rndesc = ROW_NUMBER() OVER(ORDER BY rnasc DESC)
        FROM ( 
               SELECT Total, 
                      rnasc = ROW_NUMBER() OVER(ORDER BY Total)
               FROM   [Table]
             ) SourceTable
    )
SELECT DISTINCT AVG(Total) median 
FROM   SortedTable
WHERE  rnasc = rndesc OR ABS(rnasc-rndesc) = 1

The WHERE clause now also clearly distinguishes between even and odd number of records.

share|improve this answer

I know you were looking for a solution that works with SQL Server 2008, but in case anyone is looking for the MEDIAN() aggregate function in SQL Server 2012, they can emulate it using the PERCENTILE_CONT() inverse distribution function:

WITH t(value) AS (
  SELECT 1   UNION ALL
  SELECT 2   UNION ALL
  SELECT 100 
)
SELECT
  percentile_cont(0.5) WITHIN GROUP (ORDER BY value)
FROM
  t;

This emulation of MEDIAN() via PERCENTILE_CONT() is also documented here.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.