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I am making an attendance system in which I will add monthly records of employee time in and time out. At the end of the month average time in and time out will be created.

Please tell me how to apply avg() to datatype of time(7)?

declare @tblPK table
(
    timeinat varchar(13) not null,
    timeoutat varchar(13) not null
) ;

insert into @tblPK 
select cast((onattendance) as varchar(13))ONTime, 
       cast((offattendance) as varchar(13))OFFTime 
from t_attendancedetails ;

select * from @tblPK ;

This is only giving output of all entries.

share|improve this question
2  
Your code doesn't make a lot of sense. Why aren't you storing timeinat and timeoutat as time fields? Also, why are you casting them back to the exact same type they already are? – JohnFx Jan 31 '13 at 7:32
    
dude, in my table i am storing time(7) object, this code demonstrate a temporary table in which i used varchar(13). so i only want a way to calculate the average. please suggest. t_attendancedetails table contains time object – Atif Imtiaz Jan 31 '13 at 7:35
2  
Tip 1: Don't store times in a varchar field. The query will be a lot easier if you use the proper type, especially since i see no good reason to use varchar in the first place. Use the Time Data type – JohnFx Jan 31 '13 at 7:37
1  
And follow @JohnFx's suggestion. Store your time/dates as long values (for instance time since the epoch in the GMT time zone). – Vincent Mimoun-Prat Jan 31 '13 at 7:41
4  
I think this should be re-opened. The linked "duplicate" is a question for Teradata. But this is for SQL-Server and date-time functions differ. No answer there can be used for this question, only as a scetch. – ypercubeᵀᴹ Feb 2 '13 at 14:42
up vote 4 down vote accepted

Calculating average with a precision of millisecond using time(7) columns.

select dateadd(millisecond, avg(datediff(millisecond, onattendance, offattendance)), cast('00:00' as time(7)) )
from t_attendancedetails

The query uses datediffto get the difference in milliseconds between onattendance and offattendance. Then it uses the aggregate function avg to calculate the average difference in milliseconds and finally it uses dateadd to add the average number of milliseconds to the time(7) value 00:00.

Ref:
DATEDIFF (Transact-SQL)
DATEADD (Transact-SQL)
AVG (Transact-SQL)
CAST and CONVERT (Transact-SQL)

Update:

When calculating the average with a precision of time(7) you need to split the time in two parts because datediff and dateadd does not deal with bigint.

The time difference values is converted to nanoseconds before average is calculated and the conversion back to time(7) is done in two steps, first the seconds and then the nanoseconds.

declare @T0 time(7) = '00:00:00'
declare @G bigint = 1000000000  
declare @H bigint = 100         

select dateadd(nanosecond, cast(right(T.A, 9) as int), dateadd(second, T.A / @G, @T0))
from
  (
  select avg(
              @G * datediff(second, @T0, offattendance) + @H * right(offattendance, 7) -
              @G * datediff(second, @T0, onattendance ) + @H * right(onattendance,  7)
            )
  from t_attendancedetails
  ) as T(A)
share|improve this answer
    
now that is called the REAL answer. it worked. i am new to sql so i know little about it. :) – Atif Imtiaz Jan 31 '13 at 9:20
    
@AtifImtiaz Added a bit of explanation as well. – Mikael Eriksson Jan 31 '13 at 9:31
    
Another way is just to convert the datediff result to bigint: select dateadd(millisecond, avg(convert(bigint,datediff(millisecond, onattendance, offattendance))), cast('00:00' as time(7)) ) from t_attendancedetails – Boanerge Aug 1 '13 at 13:21

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