In SQL Server 2008 the isoweek can be found with this:

SELECT datepart(iso_week, getdate())

Before SQL Server 2008 there were no built-in function to find isoweek.

I have been searching high and low for a good syntax to find a userdefined iso_week for SQL Server 2005. I found quite a few solutions. Didn't like any of the solutions I found, most of them didn't work, and they were way too long.

Since the issue is very old, I would expect this issue is depleted and the best solution has been found. I was unable to find a good method though.

I wrote a solution, which I am going to post later. But before I do, I want to make absolutely sure that no one else can match the solution I wrote.

I am hoping to earn the self-learner badge. I urge people to find the best answers out there for this ancient question.

I am going to post my answer after giving people a chance of finding a good solution.

  • Along with the week number it is important to include the ISO week year, because it can differ from the normal date year. That seems to be non-trivial. – Michel de Ruiter Apr 20 '16 at 10:22
  • @MicheldeRuiter link to iso_year here – t-clausen.dk Apr 20 '16 at 11:31
  • I already found your answer there, good to make other readers aware. – Michel de Ruiter Apr 20 '16 at 12:20
up vote 13 down vote accepted

Here's an approach that is similar to yours in that it also relies on this week's Thursday. But in the end it uses the date differently.

  1. Get the date of this (ISO) week's Thursday.

    Your own solution uses the hard coded date of a known Thursday. Alternatively, this week's Thursday could be found with the help of @@DATEFIRST:

    SELECT Th = DATEADD(DAY, 3 - (DATEPART(WEEKDAY, @date) + @@DATEFIRST - 2) % 7, @date)
    

    (I wasn't struggling too much for the right formula because it was already known to me.)

  2. Get the Thursday's day of year:

    SELECT DY = DATEPART(DAYOFYEAR, Th)
    
  3. Use the number to find out the week like this:

    SELECT ISOWeek = (DY - 1) / 7 + 1
    

Here are the above calculations in a single statement:

SELECT ISOWeek = (DATEPART(DAYOFYEAR, Th) - 1) / 7 + 1
FROM (
  SELECT Th = DATEADD(DAY, 3 - (DATEPART(WEEKDAY, @date) + @@DATEFIRST - 2) % 7, @date)
) s;
  • +1 awsome, took me a while to realize what you were doing, so far I decided you are cheating, why didn't i think of that. I combined our answers to a very short compact solution. – t-clausen.dk Sep 7 '11 at 20:00
  • You really deserve credit for this solution, good job mate. – t-clausen.dk Sep 8 '11 at 16:07
  • Thank you very much! – Andriy M Sep 8 '11 at 16:43

There is a link here for other earlier attempts http://www.sqlteam.com/forums/topic.asp?TOPIC_ID=60510

This is the OLD code for the function

CREATE function f_isoweek(@date datetime)
RETURNS INT
as
BEGIN
DECLARE @rv int

SELECT @rv = datediff(ww, dateadd(ww, datediff(d, 0, dateadd(yy, datediff(yy, 0, day4),3))/7,-4),day4)
FROM (SELECT dateadd(ww, datediff(day, 0, @date)/7, 3) day4) a

RETURN @rv
END

After combining @AndriyM 's brilliant answer with my own, we are down to 1 line. This is the NEW code.

CREATE function f_isoweek(@date datetime)
RETURNS INT
as
BEGIN

RETURN (datepart(DY, datediff(d, 0, @date) / 7 * 7 + 3)+6) / 7
-- replaced code for yet another improvement.
--RETURN (datepart(DY, dateadd(ww, datediff(d, 0, @date) / 7, 3))+6) / 7

END

Explanation for the old code (not going to explain the new code. It is fragments from my code and AndriyM's code):

Finding weekday 4 of the chosen date

dateadd(week, datediff(day, 0, @date)/7, 3) 

Finding isoyear - year of weekday 4 of a week is always the same year as the isoyear of that week

datediff(yy, 0, day4)

When adding 3 days to the first day of the isoyear a random day of the first isoweek of the isoyear is found

dateadd(yy, datediff(yy, 0, day4),3)

finding relative week of the first isoweek of the isoyear

datediff(d, 0, dateadd(yy, datediff(yy, 0, day4),3))/7

Finding the monday minus 4 days of the first isoweek results in thursday of the week BEFORE the first day of the first isoweek of the isoyear

dateadd(ww, datediff(d, 0, dateadd(yy, datediff(yy, 0, day4),3))/7,-4)

Knowing first thursday of the week before the first isoweek and first thursday of the chosen week, makes it is quite easy to calculate the week, it doesn't matter which setting datefirst has since the weekdays of both dates are thursdays.

datediff(ww, dateadd(ww, datediff(d, 0, dateadd(yy, datediff(yy, 0, day4),3))/7,-4),day4)
  • 1
    +1. Compared to this version msdn.microsoft.com/en-us/library/ms186755.aspx yours are multitudes better because it is not dependent on set datefirst 1. – Mikael Eriksson Sep 7 '11 at 13:01
  • Nice! And I like your (n + 6) / 7 better than my (n - 1) / 7 + 1. Would have upvoted this again, if I could. – Andriy M Sep 7 '11 at 20:09
  • +1000 Brilliant formula reduction. – Jeff Moden Mar 23 '13 at 13:48
  • What if i want my weeks to start on Sunday? – Martin Oct 27 '15 at 9:54
  • 1
    @Martin iso weeks does not start on a sunday – t-clausen.dk Oct 27 '15 at 9:55

Wow! Very good topic and solution to avoid using "set datefirst 1". I just want to add something. If like me, you also want to return the year with the ISO week, like "2015-01" as being "Year 2015, Week 01", it might be useful for reporting purpose. Since the year from ISO week can be different from the actual year of the date! Here is how I did in combination to your code.

DECLARE @Date AS DATETIME
SET @Date = '2014-12-31'
SELECT 
       CAST(CASE WHEN MONTH(@Date) = 1 AND Q.ISOweek > 50 THEN YEAR(@Date) - 1
                 WHEN MONTH(@Date) = 12 AND Q.ISOweek < 3 THEN YEAR(@Date) + 1
                 ELSE YEAR(@Date)
            END
            AS VARCHAR(4))
    + '-'
    + RIGHT('00' + CAST(Q.ISOweek AS NVARCHAR(2)), 2) AS ISOweek
FROM (SELECT (datepart(DY, datediff(d, 0, @Date) / 7 * 7 + 3) + 6) / 7 AS ISOweek) Q

Will return "2015-01".

I needed something similar for PowerQuery & PowerBI and based on t-clausen.dk's response I was able to make this equation. It works the same as his but uses PowerQuery syntax. Also the base date for the DATEDIFF of 0 was 1/1/1900 in SQL but in PowerQuery it is 12/30/1899 so I use 2 instead of the 0.

ISO Week = Number.RoundDown((Date.DayOfYear(Date.From(Duration.Days(([Date]-Date.From(2))/7)*7+5))+6)/7)

I also needed the ISO Year so I made an adjustment to the ISO Week calculation and came up with:

ISO Year = Date.Year(Date.From(Duration.Days(([Date]-Date.From(2))/7)*7+3))

Change the [Date] to reference the date column in the data.

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