Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a fun challenge with some time data in my application. I have a table of start and end times; and need to subtract out shift times keeping the difference to get multiple rows. Im trying to do this on my SQL Server 2008 box at the moment.

The idea is if i have a time row like

Start 09:00 End 19:12

And the shift says 09:00 -> 17:00 I need to split / break the data into two rows

Start 09:00 End 17:00
Start 17:00 End 19:12

This needs to work over midnight too; created some scratch data as I have been playing around with some ideas but am wondering if there is a way out of case statement heck.

Create Table dbo.tblClockEvents
(
DayOfWeek Int,
ClockOn Time,
ClockOff Time
)

Create Table dbo.tblShiftPattern
(
DayOfWeek Int,
StartTime Time,
EndTime Time
)

insert into dbo.tblShiftPattern
select 1, '07:30', '17:00'
union select 2, '09:30', '18:00'
union select 3, '09:30', '18:00'
union select 4, '09:30', '18:00'
union select 5, '20:30', '04:00'


insert into dbo.tblClockEvents
select 1, '07:30', '17:00'
union select 2, '09:22', '18:14'
union select 3, '09:12', '18:01'
union select 4, '09:22', '18:14'
union select 5, '20:22', '04:14'

Select * 
from dbo.tblClockEvents aa
inner join tblShiftPattern bb
on  aa.DayOfWeek = bb.DayOfWeek
share|improve this question
add comment

1 Answer

up vote 3 down vote accepted
    WITH cte AS
(
  SELECT aa.*,bb.StartTime,bb.EndTime
  FROM dbo.tblClockEvents aa
  INNER JOIN tblShiftPattern bb
  ON  aa.DayOfWeek = bb.DayOfWeek
 )
SELECT DayOfWeek,ClockOn as [start],
CASE WHEN EndTime > ClockOff THEN ClockOff ELSE EndTime END AS [end]
FROM cte
UNION ALL
SELECT DayOfWeek,EndTime,ClockOff
FROM cte
WHERE ClockOff>EndTime
ORDER BY 1,3

SQL Fiddle

share|improve this answer
    
+1 but i think - order by should be 1,3 –  rs. Nov 5 '12 at 20:36
    
@rs. thank you. It's should be order by 1,3. I updated answer –  EricZ Nov 5 '12 at 20:42
    
This is such a simple solution. Many thanks for a great answer :) –  u07ch Nov 5 '12 at 20:44
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.