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I'm trying to generate a SQL query to extract an average montly powerusage (of a year) for an ID.

+----+------------+------------+
| id | powerusage |    date    |
+----+------------+------------+
|  1 |        750 | 2011-12-2  |
|  1 |       1000 | 2011-12-1  |
|  1 |       1500 | 2011-11-15 |
|  1 |        100 | 2011-11-13 |
|  1 |         50 | 2011-11-10 |
|  2 |        500 | 2011-11-15 |
|  2 |        200 | 2011-11-13 |
+----+------------+------------+

So if ID = 1 I want (avg november + avg december) / 2 = (1750/2 + 1650/3) / 2 = 712.5

select AVG(powerusage) as avgMontlyPowerUsage
from usagetable 
where id = 1 and YEAR(date) = 2011

But this will give me 680.

How do I do a average on a group?

Many thanks for all the answers! But I see my question is incorrect. See updated question

share|improve this question
    
And what if you had dates from October and December but not November? Should the sum be divided by 3 or 2 ? –  ypercube Dec 2 '11 at 16:27
    
Did you try group by id? –  Mike Purcell Dec 2 '11 at 16:28
    
Is your power data stored daily? –  a'r Dec 2 '11 at 16:28
    
You probably want to nest queries, in the inner query you group by id and month and calculate the sum. The outer query you group by id and find the avg of the sums on the first query. –  Danny Dec 2 '11 at 16:30
    
@ypercube: by 2, because only 2 months available. –  RvdK Dec 2 '11 at 16:30

5 Answers 5

up vote 3 down vote accepted

Something like

select AVG(montlyPowerUsage) from (

SELECT MONTH(date) as mnth,sum(powerusage) as montlyPowerUsage
from usagetable 
where id = 1 and YEAR(date) = 2011 group by MONTH(date)

) t1

For Edited question

select AVG(montlyPowerUsage) from (

SELECT MONTH(date) as mnth,AVG(powerusage) as montlyPowerUsage
from usagetable 
where id = 1 and YEAR(date) = 2011 group by MONTH(date)

) t1
share|improve this answer
    
+1. Nice way to achieve the question. –  ypercube Dec 2 '11 at 16:38
    
Thanks. I think ajreal got the same answer as I did a minute earlier –  Jaydee Dec 2 '11 at 16:45

This should give you monthly averages for every year and user. Some of the syntax may be MS SQL specific, but the logic should be good.

SELECT id, AVG(usage), year FROM
(SELECT id, SUM(powerusage) as usage, YEAR(date) as Year, MONTH(date) as Month
  FROM usagetable 
  GROUP BY id, YEAR(date), MONTH(date)) as InnerTable
GROUP BY id, year
share|improve this answer
    
It's tagged MySQL, not SQL-Server –  ypercube Dec 2 '11 at 16:37
    
PS. Remove the last group by "year" and the year selector if you just want all time monthly averages –  Kevin Coulombe Dec 2 '11 at 16:40
    
it should be pretty much the same code. I just don't have a mysql db on hands to try the inner select syntax –  Kevin Coulombe Dec 2 '11 at 16:41
mysql> select avg(powerusage) 
from 
(select monthname(date), sum(powerusage) as powerusage 
from usagetable 
where id=1 and year(date)=2011
group by monthname(date)) as avg_usage;
+-----------------+
| avg(powerusage) |
+-----------------+
|       1700.0000 |
+-----------------+
select avg(total_powerusage) 
from 
(select monthname(date), sum(powerusage) as total_powerusage 
 from usagetable 
 where id=1 and year(date)=2011
 group by monthname(date)
) as avg_usage;

/* the use of subquery 
   is to return total of unique occurrences, 
   and sum powerusage of each occurrence,
   which mean, you just need to apply AVG into the subquery */
share|improve this answer
    
+1 for beating me to it –  Jaydee Dec 2 '11 at 16:45
SELECT SUM(powerusage) / (MONTH(MAX(`date`)) - MONTH(MIN(`date`)) + 1)
           AS avgMontlyPowerUsage
FROM usagetable 
WHERE id = 1 
  AND YEAR(`date`) = 2011

or (depending on what you need when data is sparse):

SELECT SUM(powerusage) / COUNT( DISTINCT MONTH(`date`) )
           AS avgMontlyPowerUsage
FROM usagetable 
WHERE id = 1 
  AND YEAR(`date`) = 2011

Warning: Neither of the above is optimized for performance.

share|improve this answer

Try adding a group by on the id

GROUP BY id

Or the date, whichever suits.

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