Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I would like to build a query that will pull the number of rows that were created on a given date range and time frame. In other words. the date range would be for a given month, but I only want the rows that were created during a given time (say from 08:00 - 17:00) for each day throughout that month.

Is this easily possible?

I was thinking subqueries for each day, but didn't know if there was an easier way.

share|improve this question

4 Answers 4

up vote 0 down vote accepted

This would give you what you want, I think. You could make a stored procedure or function out of it and pass in the start/end dates and start/end hour (now fixed). Note the strictly less than on the end date. You could also use less than or equal to '8/31/2009 11:59:59'.

select count(*),
       datepart(year,created) as [year],
       datepart(month,created) as [month],
       datepart(day,created) as [day]
from table
where created >= '8/1/2009'
      and created < '9/1/2009'
      and datepart(hour,created) >= 8
      and datepart(hour,created) <= 17
group by datepart(year,created), datepart(month,created), datepart(day,created)
share|improve this answer
    
Thank you all for your replies! –  jktravis Sep 3 '09 at 17:10

Use the datepart() function to test for the hours you are interested in.

For example:

select 1,
    datepart(hour,getDate())
where datepart(hour,getDate()) >= 8 and datepart(hour,getDate()) < 17
share|improve this answer

Can do something like this this does it for range of hours(12PM - 1PM) and days(today to 10 days ago):

select * from table where DateColumn < GetDate() and DateColumn > (GetDate() - 11) and DatePart(hh, DateColumn) >= 12 and DatePart(hh, DateColumn) <= 13
share|improve this answer

Why not just do this?

... WHERE MONTH(TheDateColum) = @Month AND HOUR(TheDateColum) >= 8 AND HOUR(TheDateColumn) <= 17

Hm... they beat me to it.

share|improve this answer

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.