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I am trying to group records by week, storing the aggregated date as the first day of the week. However, the standard technique I use for rounding off dates does not appear to work correctly with weeks (though it does for days, months, years, quarters and any other timeframe I've applied it to).

Here is the SQL:

select "start_of_week" = dateadd(week, datediff(week, 0, getdate()), 0);

This returns 2011-08-22 00:00:00.000, which is a Monday, not a Sunday. Selecting @@datefirst returns 7, which is the code for Sunday, so the server is setup correctly in as far as I know.

I can bypass this easily enough by changing the above code to:

select "start_of_week" = dateadd(week, datediff(week, 0, getdate()), -1);

But the fact that I have to make such an exception makes me a little uneasy. Also, apologies if this is a duplicate question. I found some related questions but none that addressed this aspect specifically.

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3  
(@@DATEFIRST + DATEPART(DW, @SomeDate)) % 7 remains constant irrespective of @@datefirst setting I think. With Monday = 2. –  Martin Smith Aug 24 '11 at 0:05

9 Answers 9

up vote 40 down vote accepted

To answer why you're getting a Monday and not a Sunday:

You're adding a number of weeks to the date 0. What is date 0? 1900-01-01. What was the day on 1900-01-01? Monday. So in your code you're saying, how many weeks have passed since Monday, January 1, 1900? Let's call that [n]. Ok, now add [n] weeks to Monday, January 1, 1900. You should not be surprised that this ends up being a Monday. DATEADD has no idea that you want to add weeks but only until you get to a Sunday, it's just adding 7 days, then adding 7 more days, ... just like DATEDIFF only recognizes boundaries that have been crossed. For example, these both return 1, even though some folks complain that there should be some sensible logic built in to round up or down:

SELECT DATEDIFF(YEAR, '2010-01-01', '2011-12-31');
SELECT DATEDIFF(YEAR, '2010-12-31', '2011-01-01');

To answer how to get a Sunday:

If you want a Sunday, then pick a base date that's not a Monday but rather a Sunday. For example:

DECLARE @dt DATE = '1905-01-01';
SELECT [start_of_week] = DATEADD(WEEK, DATEDIFF(WEEK, @dt, CURRENT_TIMESTAMP), @dt);

This will not break if you change your DATEFIRST setting (or your code is running for a user with a different setting) - provided that you still want a Sunday regardless of the current setting. If you want those two answers to jive, then you should use a function that does depend on the DATEFIRST setting, e.g.

SELECT DATEADD(DAY, 1-DATEPART(WEEKDAY, CURRENT_TIMESTAMP), CURRENT_TIMESTAMP);

So if you change your DATEFIRST setting to Monday, Tuesday, what have you, the behavior will change. Depending on which behavior you want, you could use one of these functions:

CREATE FUNCTION dbo.StartOfWeek1 -- always a Sunday
(
    @d DATE
)
RETURNS DATE
AS
BEGIN
    RETURN (SELECT DATEADD(WEEK, DATEDIFF(WEEK, '19050101', @d), '19050101'));
END
GO

...or...

CREATE FUNCTION dbo.StartOfWeek2 -- always the DATEFIRST weekday
(
    @d DATE
)
RETURNS DATE
AS
BEGIN
    RETURN (SELECT DATEADD(DAY, 1-DATEPART(WEEKDAY, @d), @d));
END
GO

Now, you have plenty of alternatives, but which one performs best? I'd be surprised if there would be any major differences but I collected all the answers provided so far and ran them through two sets of tests - one cheap and one expensive. I measured client statistics because I don't see I/O or memory playing a part in the performance here (though those may come into play depending on how the function is used). In my tests the results are:

"Cheap" assignment query:

Function - client processing time / wait time on server replies / total exec time
Gandarez     - 330/2029/2359 - 0:23.6
me datefirst - 329/2123/2452 - 0:24.5
me Sunday    - 357/2158/2515 - 0:25.2
trailmax     - 364/2160/2524 - 0:25.2
Curt         - 424/2202/2626 - 0:26.3

"Expensive" assignment query:

Function - client processing time / wait time on server replies / total exec time
Curt         - 1003/134158/135054 - 2:15
Gandarez     -  957/142919/143876 - 2:24
me Sunday    -  932/166817/165885 - 2:47
me datefirst -  939/171698/172637 - 2:53
trailmax     -  958/173174/174132 - 2:54

I can relay the details of my tests if desired - stopping here as this is already getting quite long-winded. I was a bit surprised to see Curt's come out as the fastest at the high end, given the number of calculations and inline code. Maybe I'll run some more thorough tests and blog about it... if you guys don't have any objections to me publishing your functions elsewhere.

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2  
That is quite an epic answer. I certainly have no objections to any of my code being used for such blogging purposes. –  Quick Joe Smith Aug 24 '11 at 4:52
    
@Aaron - please continue this blog! –  Ryk Aug 24 '11 at 5:31
    
wow. That is epic testing indeed. –  trailmax Aug 25 '11 at 18:49
    
Superb. Great explanation. –  Taher Jan 25 '13 at 11:51
    
So, if I consider my weeks to start on Sunday and end on Saturday, I can get the last day of the week for any date @d like this: SELECT DATEADD(wk, DATEDIFF(wk, '19041231', @d), '19041231') –  Baodad Dec 10 '13 at 17:19

This works wonderfully for me:

CREATE FUNCTION [dbo].[StartOfWeek]
(
  @INPUTDATE DATETIME
)
RETURNS DATETIME

AS
BEGIN
  -- THIS does not work in function.
  -- SET DATEFIRST 1 -- set monday to be the first day of week.

  DECLARE @DOW INT -- to store day of week
  SET @INPUTDATE = CONVERT(VARCHAR(10), @INPUTDATE, 111)
  SET @DOW = DATEPART(DW, @INPUTDATE)

  -- Magic convertion of monday to 1, tuesday to 2, etc.
  -- irrespect what SQL server thinks about start of the week.
  -- But here we have sunday marked as 0, but we fix this later.
  SET @DOW = (@DOW + @@DATEFIRST - 1) %7
  IF @DOW = 0 SET @DOW = 7 -- fix for sunday

  RETURN DATEADD(DD, 1 - @DOW,@INPUTDATE)

END
share|improve this answer
    
This seems to return Monday given today's date, not Sunday. The OP already has a function that returns Monday, he wants it to return Sunday. :-) –  Aaron Bertrand Aug 24 '11 at 1:22
    
doh! I should read questions more careful next time. However, my solution can be easily adjusted, if still required. Seems like OP is happy with the accepted answer anyway -) –  trailmax Aug 24 '11 at 1:49

Googled this script:

create function dbo.F_START_OF_WEEK
(
    @DATE           datetime,
    -- Sun = 1, Mon = 2, Tue = 3, Wed = 4
    -- Thu = 5, Fri = 6, Sat = 7
    -- Default to Sunday
    @WEEK_START_DAY     int = 1 
)
/*
Find the fisrt date on or before @DATE that matches 
day of week of @WEEK_START_DAY.
*/
returns     datetime
as
begin
declare  @START_OF_WEEK_DATE    datetime
declare  @FIRST_BOW     datetime

-- Check for valid day of week
if @WEEK_START_DAY between 1 and 7
    begin
    -- Find first day on or after 1753/1/1 (-53690)
    -- matching day of week of @WEEK_START_DAY
    -- 1753/1/1 is earliest possible SQL Server date.
    select @FIRST_BOW = convert(datetime,-53690+((@WEEK_START_DAY+5)%7))
    -- Verify beginning of week not before 1753/1/1
    if @DATE >= @FIRST_BOW
        begin
        select @START_OF_WEEK_DATE = 
        dateadd(dd,(datediff(dd,@FIRST_BOW,@DATE)/7)*7,@FIRST_BOW)
        end
    end

return @START_OF_WEEK_DATE

end
go

http://www.sqlteam.com/forums/topic.asp?TOPIC_ID=47307

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Maybe you need this:

SELECT DATEADD(DD, 1 - DATEPART(DW, GETDATE()), GETDATE())

Or

DECLARE @MYDATE DATETIME
SET @MYDATE = '2011-08-23'
SELECT DATEADD(DD, 1 - DATEPART(DW, @MYDATE), @MYDATE)

Function

CREATE FUNCTION [dbo].[GetFirstDayOfWeek]
( @pInputDate    DATETIME )
RETURNS DATETIME
BEGIN

SET @pInputDate = CONVERT(VARCHAR(10), @pInputDate, 111)
RETURN DATEADD(DD, 1 - DATEPART(DW, @pInputDate),
               @pInputDate)

END
GO
share|improve this answer
3  
DATEPART(DW is dependant upon @@datefirst –  Martin Smith Aug 24 '11 at 0:03
    
@Martin Smith well-minded! –  Gandarez Aug 24 '11 at 0:06
    
I like the simplicity of this one. It seems to run quite well for very large sets of data too. –  Quick Joe Smith Aug 24 '11 at 0:55
1  
Why not just make the input parameter DATE then you don't have to do any sub-optimal conversions to VARCHAR and back just to strip any accidental time component that's passed in. –  Aaron Bertrand Aug 24 '11 at 1:06
    
The Convert function was used because the returned value doesn't needs Time values. –  Gandarez Aug 24 '11 at 2:00
CREATE FUNCTION dbo.fnFirstWorkingDayOfTheWeek
(
    @currentDate date
)
RETURNS INT
AS
BEGIN
    -- get DATEFIRST setting
    DECLARE @ds int = @@DATEFIRST 
    -- get week day number under current DATEFIRST setting
    DECLARE @dow int = DATEPART(dw,@currentDate) 

    DECLARE @wd  int =  1+(((@dow+@ds) % 7)+5) % 7  -- this is always return Mon as 1,Tue as 2 ... Sun as 7 

    RETURN DATEADD(dd,1-@wd,@currentDate) 

END
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This is the only function that worked for me in SQL Server 2005. Thank you –  Fernando68 Mar 11 at 2:36

For these that need to get:

Monday = 1 and Sunday = 7:

SELECT 1 + ((5 + DATEPART(dw, GETDATE()) + @@DATEFIRST) % 7);

Sunday = 1 and Saturday = 7:

SELECT 1 + ((6 + DATEPART(dw, GETDATE()) + @@DATEFIRST) % 7);

Above there was a similar example, but thanks to double "%7" it would be much slower.

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This works great too to get the day number from the start of the week being Sun or Mon. Thanks –  Fernando68 Mar 11 at 2:37

I don't have any issues with any of the answers given here, however I do think mine is a lot simpler to implement, and understand. I have not run any performance tests on it, but it should be neglegable.

So I derived my answer from the fact that dates are stored in SQL server as integers, (I am talking about the date component only). If you don't believe me, try this SELECT CONVERT(INT, GETDATE()), and vice versa.

Now knowing this, you can do some cool math equations. You might be able to come up with a better one, but here is mine.

/*
TAKEN FROM http://msdn.microsoft.com/en-us/library/ms181598.aspx
First day of the week is
1 -- Monday
2 -- Tuesday
3 -- Wednesday
4 -- Thursday
5 -- Friday
6 -- Saturday
7 (default, U.S. English) -- Sunday
*/

--Offset is required to compensate for the fact that my @@DATEFIRST setting is 7, the default. 
DECLARE @offSet int, @testDate datetime
SELECT @offSet = 1, @testDate = GETDATE()

SELECT CONVERT(DATETIME, CONVERT(INT, @testDate) - (DATEPART(WEEKDAY, @testDate) - @offSet))
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I find that this doesn't work for me. My @@DATEFIRST is also 7, but if your @testDate is the start of the week, then this returns a date that is the day before. –  row1 Oct 18 '12 at 0:45

Maybe I'm over simplifying here, and that may be the case, but this seems to work for me. Haven't ran into any problems with it yet...

CAST('1/1/' + CAST(YEAR(GETDATE()) AS VARCHAR(30)) AS DATETIME) + (DATEPART(wk, YOUR_DATE) * 7 - 7) as 'FirstDayOfWeek'
CAST('1/1/' + CAST(YEAR(GETDATE()) AS VARCHAR(30)) AS DATETIME) + (DATEPART(wk, YOUR_DATE) * 7) as 'LastDayOfWeek'
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You can get different answers here if you try different settings for SET DATEFIRST. –  Aaron Bertrand Jul 24 '12 at 12:59

I had a similar problem. Given a date, I wanted to get the date of the Monday of that week.

I used the following logic: Find the day number in the week in the range of 0-6, then subtract that from the originay date.

I used: DATEADD(day,-(DATEPART(weekday,)+5)%7,)

Since DATEPRRT(weekday,) returns 1 = Sundaye ... 7=Saturday, DATEPART(weekday,)+5)%7 returns 0=Monday ... 6=Sunday.

Subtracting this number of days from the original date gives the previous Monday. The same technique could be used for any starting day of the week.

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