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I have some query which works fine for me:

Select Name,sum(number_hours)/8)*100
from 
T1
where name='PERSON_A'
group by name,booked_date

Name is always ONE same person which I put in where clause.Result will be:

PERSON_A  100
PERSON_A  140
PERSON_A  120 

This is calculating some daily utilization for workers for each booked date. Now I want to calculate AVERAGE daily utilization((120+120+100)/3=120) But when I put

Select Name,AVG(sum(number_hours)/8)*100)
FROM
T1
WHERE name='PERSON_A'
group by name,booked_date

I am getting error Invalid use of group function. Why? How can I calculate average value after summuryzing values for daily utilization. Thanks

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2 Answers 2

up vote 2 down vote accepted

Try using a subquery for the sum and calculate the average in the outer query, like in:

SELECT Name, AVG (hsum)
FROM
(
    SELECT Name,sum((number_hours)/8)*100 AS hsum
    FROM
    T1
    WHERE name='PERSON_A'
    GROUP BY name,booked_date
) t
share|improve this answer
    
THANK YOU!!!!!! –  Stefke Jan 7 '13 at 11:25
1  
@ederbf there will be two syntax errors though. You need to give table alias for inner table. And sum(number_hours)/8) missing bracket. Not much, but still ;) –  bonCodigo Jan 7 '13 at 11:38
    
Thanks for pointing it out. Code edited :) –  ederbf Jan 7 '13 at 11:55

I understand you already have accepted the answer. But give this a try too :) No subquery. Quite fast too. I added extra Count of workdates column for you to see the dates.

* SQLFIDDLE DEMO

Sample data table:

ID      NAME    HOURS       WORKDATE
100     j       20          December, 03 2012 00:00:00+0000
200     k       10          December, 03 2012 00:00:00+0000
100     j       10          December, 04 2012 00:00:00+0000
300     l       20          December, 04 2012 00:00:00+0000
100     j       5           December, 05 2012 00:00:00+0000
300     l       15          December, 03 2012 00:00:00+0000
100     j       10          December, 04 2012 00:00:00+0000
400     m       20          December, 03 2012 00:00:00+0000

Query:

SELECT Name, ((sum(hours)/8)*100) AS sum
,count(distinct workdate) workdates, ((sum(hours)/8)*100)/count(
  distinct workdate) as avg    
FROM
    works
    WHERE name='j'
    GROUP BY name
;

Results:

NAME    SUM     WORKDATES   AVG
j       562.5   3           187.5
share|improve this answer
    
@stefke Here is another way to do it ;) Check Explain Plan as well. –  bonCodigo Jan 7 '13 at 11:55

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