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Suppose I have the following table definition:

CREATE TABLE x (i serial primary key, value integer not null);

I want to calculate the MEDIAN of value (not the AVG). The median is a value that divides the set in two subsets containing the same number of elements. If the number of elements is even, the median is the average of the biggest value in the lowest segment and the lowest value of the biggest segment. (See wikipedia for more details.)

Here is how I manage to calculate the MEDIAN but I guess there must be a better way:

SELECT AVG(values_around_median) AS median
  FROM (
    SELECT
       DISTINCT(CASE WHEN FIRST_VALUE(above) OVER w2 THEN MIN(value) OVER w3 ELSE MAX(value) OVER w2 END)
        AS values_around_median
      FROM (
        SELECT LAST_VALUE(value) OVER w AS value,
               SUM(COUNT(*)) OVER w > (SELECT count(*)/2 FROM x) AS above
          FROM x
          GROUP BY value
          WINDOW w AS (ORDER BY value)
          ORDER BY value
        ) AS find_if_values_are_above_or_below_median
      WINDOW w2 AS (PARTITION BY above ORDER BY value DESC),
             w3 AS (PARTITION BY above ORDER BY value ASC)
    ) AS find_values_around_median

Any ideas?

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10  
Mean and average are synonyms. What you are asking about is the median: en.wikipedia.org/wiki/Median –  Sinan Ünür Sep 17 '10 at 12:24
    
Mean en.wikipedia.org/wiki/Arithmetic_mean is just the sum of the numbers divided by the count. –  ChrisF Sep 17 '10 at 12:25
    
indeed. and with this info, perhaps google will prove a bit more yielding =) –  David Hedlund Sep 17 '10 at 12:25
    
It's median, not mean. –  Denis Valeev Sep 17 '10 at 12:26
2  
@ChrisF - Not a dupe. Different RDBMS. postgressql may well have a better way than mysql as it supports analytic functions and user defined aggregates wiki.postgresql.org/wiki/Aggregate_Median –  Martin Smith Sep 17 '10 at 12:29

3 Answers 3

up vote 11 down vote accepted

Indeed there IS an easier way. In Postgres you can define your own aggregate functions. I posted functions to do median as well as mode and range to the PostgreSQL snippets library a while back.

http://wiki.postgresql.org/wiki/Aggregate_Median

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A simpler query for that (edit):

WITH y AS (
    SELECT value
          ,row_number() OVER (ORDER BY value) AS rn
    FROM   x
    WHERE  value IS NOT NULL
    ),c AS (
    SELECT count(*) As ct
    FROM   y
    ) 
SELECT CASE WHEN c.ct%2 = 0 THEN
          round((SELECT avg(value) FROM y WHERE y.rn IN (c.ct/2, c.ct/2+1)), 3)
       ELSE
                (SELECT     value  FROM y WHERE y.rn = (c.ct+1)/2)
       END AS median
FROM   c;

Major points:

  • Ignores NULL values.
  • Core feature is the row_number() window function, which has been there since version 8.4
  • The final SELECT gets one row for uneven numbers and avg() of two rows for even numbers. Result is numeric, rounded to 3 decimal places.

Test shows, that the new version is 4x faster than (and yields correct results, unlike) the query in the question:

CREATE TEMP TABLE x (value int);
INSERT INTO x SELECT generate_series(1,10000);
INSERT INTO x VALUES (NULL),(NULL),(NULL),(3);
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I think you want the MEDIAN value. This is either the middle value or the average of the middle two. There's a whole discussion about it elsewhere on Stack Overflow:

http://stackoverflow.com/questions/1291152/simple-way-to-calculate-median-with-mysql

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1  
postgres sql will have a better way than mysql as it supports analytic functions and user defined aggregates such as wiki.postgresql.org/wiki/Aggregate_Median –  Martin Smith Sep 17 '10 at 12:27

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