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I have two dates:

2012-10-04 12:48:56:000 and 2012-10-04 12:48:58:000

Expected result is
2012-10-04 12:48:57:000


2012-10-04 12:48:56:000 and 2012-10-04 12:48:56:010

Expected result is
2012-10-04 12:48:56:005

(the dates are fictional, since in sql server the millisecond part is increasing by 3 )

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do you mean you have 2 date columns and want to output the middle point by a select or are the 2 dates diffrent rows? – Iggy Van Der Wielen Oct 5 '12 at 11:37
up vote 7 down vote accepted

With your own dates...

SELECT DATEADD(ms, 
          DATEDIFF(ms,'2012-10-04 12:48:56:000', '2012-10-04 12:48:58:000')/2,
         '2012-10-04 12:48:56:000')
share|improve this answer
    
Anyone know how to do this in postgresql with time(6) values? I'm sad and desperate and porting this exact code over to Postgres from Sql Server. I feel this comment might be appropriate in case someone finds this and are in postgres (the title doesn't say sql server which is how I ended up here) and the question gets answered. stackoverflow.com/questions/34711115/… – InsidiousForce Jan 10 at 21:47

Something like this:

with sample_data (start_dt, end_dt) as 
( 
   select cast('2012-10-04 12:48:56:000' as datetime), cast('2012-10-04 12:48:58:000' as datetime)
   union all
   select cast('2012-10-04 12:48:56:000' as datetime), cast('2012-10-04 12:48:56:010' as datetime)
)
select start_dt, end_dt, dateadd(millisecond, datediff(millisecond, start_dt, end_dt) / 2, start_dt)
from sample_data

Although the second pair doesn't compute properly. Probably because of the 3 milliseconds resolution.

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declare @date1 datetime;
declare @date2 datetime;

set @date1 = '2012-10-04 12:48:56:000';
set @date2 = '2012-10-04 12:48:58:000';

select DateAdd(ms, DateDiff(ms, @date1, @date2)/2, @date1)
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-- let's day d1 and d2 are DateTime variables (d1 < d2)

-- get the differnce in milliseconds 
-- (you can change it but be careful with oveflow situations)
declare @diff integer = datediff (ms, @d1, @d2)
-- the middle is the first date + half of the difference
declare @middle DateTime = dateadd (ms, @diff / 2, @d1)
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Try this (you can replace the date part depending on how accurate you want to be):

DateAdd(ms, DateDiff(ms, date1, date2), date1)/2
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This cannot be correct. 1. DateAdd function, 2. You need to divide the difference by 2 and then add it to the date1 – Kaf Oct 5 '12 at 11:41
    
Correct, typo on my part DateAdd(ms, DateDiff(ms, date1, date2), date1)/2 – Paddy Oct 5 '12 at 11:42
    
Still answer is not correct. You need to divide the output of the datediff function by 2 and then add it to date1 – Kaf Oct 5 '12 at 11:44
    
there's a missing , and this returns date2 (aproximated). – Paciv Oct 5 '12 at 11:45

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