13

Is it possible to create an sql statement that selects the week number (NOT the day of week - or the day number in a week). I'm creating a view to select this extra information along with a couple of other fields and thus can not use a stored procedure. I'm aware that it's possible to create a UDF to do the trick, but if at all possible i'd rather only have to add a view to this database, than both a view and a function.

Any ideas? Also where i come from, the week starts monday and week 1 is the first week of the year with atleast 4 days.

Related:

How do I calculate the week number given a date?

8 Answers 8

19

Be aware that there are differences in what is regarded the correct week number, depending on the culture. Week numbers depend on a couple of assumptions that differ from country to country, see Wikipedia article on the matter. There is an ISO standard (ISO 8601) that applies to week numbers.

The SQL server integrated DATEPART() function does not necessarily do The Right Thing. SQL Server assumes day 1 of week 1 would be January 1, for many applications that's wrong.

Calculating week numbers correctly is non-trivial, and different implementations can be found on the web. For example, there's an UDF that calculates the ISO week numbers from 1930-2030, being one among many others. You'll have to check what works for you.

This one is from Books Online (though you probably want to use the one from Jonas Lincoln's answer, the BOL version seems to be incorrect):

CREATE FUNCTION ISOweek  (@DATE DATETIME)
RETURNS INT
AS
BEGIN
   DECLARE @ISOweek INT
   SET @ISOweek = DATEPART(wk,@DATE) 
                  +1 
                  -DATEPART(wk,CAST(DATEPART(yy,@DATE) AS CHAR(4))+'0104')
   -- Special cases: Jan 1-3 may belong to the previous year
   IF (@ISOweek=0)
      SET @ISOweek = dbo.ISOweek(CAST(DATEPART(yy,@DATE) - 1
                     AS CHAR(4))+'12'+ CAST(24+DATEPART(DAY,@DATE) AS CHAR(2)))+1
   -- Special case: Dec 29-31 may belong to the next year
   IF ((DATEPART(mm,@DATE)=12) AND
      ((DATEPART(dd,@DATE)-DATEPART(dw,@DATE))>= 28))
      SET @ISOweek=1
   RETURN(@ISOweek)
END
GO
15
  • Thanks - i like the explicit information about the week numbers apart from the UDF - i think i'll solve it by creating a table with the weeknumbers (or first day of week 1) that i can do simple logic on in my view. The bad part is getting the extra table - but i think it beats a hard-to-read UDF ;) Dec 8, 2008 at 9:09
  • 1
    But if you would check if the UDF does it - it will be faster than an extra table (if that matters for you), and you would not have to read it very often either. ;-) As I said, there are other implementations out there if you don't like/cannot use this one.
    – Tomalak
    Dec 8, 2008 at 9:14
  • I would think calling this udf would take longer than a join in an indexed date/week table? I could be wrong, but focus on this task is keeping complexity low (everybody knows how to do an inner join, but not everyone would understand this udf). Thanks for bringing it up - i might have to test it ;) Dec 8, 2008 at 12:04
  • 2
    Ever heard of DATEPART(ISO_WEEK,@DATE) ? Sep 20, 2011 at 9:12
  • 1
    @Quandary yes I have, but sql-server 2005 has not May 3, 2013 at 9:19
18

You need the ISO week. From http://www.sqlteam.com/forums/topic.asp?TOPIC_ID=60510, here's an implementation:

drop function dbo.F_ISO_WEEK_OF_YEAR
go
create function dbo.F_ISO_WEEK_OF_YEAR
    (
    @Date   datetime
    )
returns     int
as
/*
Function F_ISO_WEEK_OF_YEAR returns the
ISO 8601 week of the year for the date passed.
*/
begin

declare @WeekOfYear     int

select
    -- Compute week of year as (days since start of year/7)+1
    -- Division by 7 gives whole weeks since start of year.
    -- Adding 1 starts week number at 1, instead of zero.
    @WeekOfYear =
    (datediff(dd,
    -- Case finds start of year
    case
    when    NextYrStart <= @date
    then    NextYrStart
    when    CurrYrStart <= @date
    then    CurrYrStart
    else    PriorYrStart
    end,@date)/7)+1
from
    (
    select
        -- First day of first week of prior year
        PriorYrStart =
        dateadd(dd,(datediff(dd,-53690,dateadd(yy,-1,aa.Jan4))/7)*7,-53690),
        -- First day of first week of current year
        CurrYrStart =
        dateadd(dd,(datediff(dd,-53690,aa.Jan4)/7)*7,-53690),
        -- First day of first week of next year
        NextYrStart =
        dateadd(dd,(datediff(dd,-53690,dateadd(yy,1,aa.Jan4))/7)*7,-53690)
    from
        (
        select
            --Find Jan 4 for the year of the input date
            Jan4    = 
            dateadd(dd,3,dateadd(yy,datediff(yy,0,@date),0))
        ) aa
    ) a

return @WeekOfYear

end
go
4
  • 2
    Thanks, just needed this today. It's more correct than the accepted answer.
    – dverespey
    Oct 22, 2009 at 18:58
  • 4
    Ever heard of DATEPART(ISO_WEEK,@DATE) ? Sep 20, 2011 at 9:13
  • 2
    @Quandary He was looking for a solution for SQL Server 2005, which does not support ISO_WEEK. Sep 21, 2011 at 6:52
  • 1
    For me this gave better result than answer from Tomalak - for 2014-09-28 it returns 39 (and it's correct! - weeknumber.net/?q=2014-09-28), while Tomalak's answer returns 40.
    – sarh
    Sep 26, 2014 at 13:43
4

Looks like the DATEPART mssql function should help you out with ...

DATEPART(wk, ‘Jan 1, xxxx’) = 1

Well I'll be.. turns out there is a way to set the first day of the week, DATEFIRST

SET DATEFIRST 1 -- for monday

Update: Now I understand better, what the OP wants.. which is custom-logic for this. I don't think MSSQL would have functions with such rich level of customization. But I may be wrong... I think you'll have to roll your own UDF here...sorry

1
  • No, Hojou is looking for the ISO Week Number (ISO 8601). That has to be solved with a UDF. Dec 8, 2008 at 8:50
2

FORGET THE OTHER ANSWERS

The question specifies "the week starts monday and week 1 is the first week of the year with atleast 4 days." This is ISO 8601 standard and what this answer provides. This function is used in production on our site.

This is all you need:

CREATE FUNCTION ISOweek  (@DATE DATETIME)
RETURNS INT
AS
BEGIN
    RETURN (datepart(DY, datediff(d, 0, @DATE) / 7 * 7 + 3)+6) / 7
END
GO
0
1

This will return you the week number of date entered in quotes

SELECT DATEPART( wk, 'enter the date over here' )
1
  • This will not guarantee ISO 8601 standard as the question specifies
    – Ian
    Aug 12, 2016 at 9:16
0

Looks like datepart will get you part of the way there, but you'll have to adjust to get your correct week number, based on the day of week of Jan 1 of the given year. I'm not familiar enough with T-SQL to do that, but it should be possible. Pity there isn't a mode argument as in MySQL

0

have you considered using the WEEK function?

This will get you the week of the year for the specified date that you pass in.

SELECT { fn WEEK(GETDATE()) } AS WeekNumber, { fn WEEK(CONVERT(DATETIME, '2008-01-01 00:00:00', 102)) } AS FirstWeekOfYear, { fn WEEK(CONVERT(DATETIME, '2008-12-31 00:00:00', 102)) } AS LastWeekOfYear

This outputs the following SQL2000 and SQL2005:

  • WeekNumber: 50
  • FirstWeekOfYear: 1
  • LastWeekOfYear: 53

I Hope this helps :)

1
  • It looks like it has the same problem DatePart(wk, getdate()) and will not work. SELECT { fn WEEK('2003-12-31') } AS WeekNumber gives me 53 which is wrong, since the correct week number is 1 Dec 8, 2008 at 11:59
0

Why yet again, people make mountains out of mole-hills, it astounds me?

So simple...

select DATEPART(wk, GETDATE())
4
  • This will not guarantee ISO 8601 standard as the question specifies
    – Ian
    Aug 12, 2016 at 9:16
  • but at least it's a starting point and they can play with their own Culture settings.
    – Fandango68
    Aug 13, 2016 at 23:02
  • @Kleky, incorrect. The OP did not mention anything about an ISO standard
    – Fandango68
    Aug 13, 2016 at 23:03
  • "Also where i come from, the week starts monday and week 1 is the first week of the year with at least 4 days." = ISO standard
    – Ian
    Aug 14, 2016 at 7:35

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