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SQL Server, trying to get day of week via a deterministic UDF.

Im sure this must be possible, but cant figure it out.


		dbo.FN_DayNumeric_DateTime(MD.DateTime) AS [Day], 
		dbo.FN_TimeNumeric_DateTime(MD.DateTime) AS [Time], 
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Please show some of your code, and how you intend to use this. – Adriaan Stander Nov 26 '09 at 13:10

9 Answers 9

up vote 4 down vote accepted

Ok, i figured it..

CREATE FUNCTION [dbo].[FN_DayNumeric_DateTime] 
(@DT DateTime)
DECLARE @Result int	
SELECT @FIRST_DATE = convert(DATETIME,-53690+((7+5)%7),112)
SET  @Result = datediff(dd,dateadd(dd,(datediff(dd,@FIRST_DATE,@DT)/7)*7,@FIRST_DATE), @DT)
RETURN (@Result)
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I just posted you should make your implementation :) +1 for you – Alex Bagnolini Nov 26 '09 at 13:27 is better – Brad Oct 29 '14 at 15:36

Slightly similar approach to aforementioned solution, but just a one-liner that could be used inside a function or inline for computed column.


  1. You don't have dates before 1899-12-31 (which is a Sunday)
  2. You want to imitate @@datefirst = 7
  3. @dt is smalldatetime, datetime, date, or datetime2 data type

If you'd rather it be different, change the date '18991231' to a date with the weekday that you'd like to equal 1. The convert() function is key to making the whole thing work - cast does NOT do the trick:

((datediff(day, convert(datetime, '18991231', 112), @dt) % 7) + 1)

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Taken from Deterministic scalar function to get week of year for a date

Dates(DateValue) as 
    select cast('2000-01-01' as date)
    union all 
    select dateadd(day, 1, DateValue) from Dates where DateValue < '2050-01-01'
    year(DateValue) * 10000 + month(DateValue) * 100 + day(DateValue) as DateKey, DateValue,        
    datediff(day, dateadd(week, datediff(week, 0, DateValue), 0), DateValue) + 2 as DayOfWeek,
    datediff(week, dateadd(month, datediff(month, 0, DateValue), 0), DateValue) + 1 as WeekOfMonth,
    datediff(week, dateadd(year, datediff(year, 0, DateValue), 0), DateValue) + 1 as WeekOfYear
    from Dates option (maxrecursion 0)
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There is an already built-in function in sql to do it:

SELECT DATEPART(weekday, '2009-11-11')

EDIT: If you really need deterministic UDF:

RETURN DATEPART(weekday, @myDate)
SELECT dbo.DayOfWeek('2009-11-11')

EDIT again: this is actually wrong, as DATEPART(weekday) is not deterministic.

UPDATE: DATEPART(weekday) is non-deterministic because it relies on DATEFIRST (source).
You can change it with SET DATEFIRST but you can't call it inside a stored function.

I think the next step is to make your own implementation, using your preferred DATEFIRST inside it (and not considering it at all, using for example Monday as first day).

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DatePart is non-deterministic, so this is not possible – Dve Nov 26 '09 at 13:13

The proposed solution has one problem - it returns 0 for Saturdays. Assuming that we're looking for something compatible with DATEPART(WEEKDAY) this is an issue.

Nothing a simple CASE statement won't fix, though.

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I know this post is way-super-old, but I was trying to do a similar thing and came up with a different solution and figured I'd post for posterity. Plus I did some searching around and did not find much content on this question.

In my case, I was trying to use a computed column PERSISTED, which requires the calculation to be deterministic. The calculation I used is:

datediff(dd,'2010-01-03',[DateColumn]) % 7 + 1

The idea is to figure out a known Sunday that you know will occur before any possible date in your table (in this case, Jan 3 2010), then calculate the modulo 7 + 1 of the number of days since that Sunday.

The problem is that including a literal date in the function call is enough to mark it as non-deterministic. You can work around that by using the integer 0 to represent the epoch, which for SQL Server is Jan 1st, 1900, a Sunday.

datediff(dd,0,[DateColumn]) % 7 + 1

The +1 just makes the result work the same as datepart(dw,[datecolumn]) when datefirst is set to 7 (default for US), which sets Sunday to 1, Monday to 2, etc

I can also use this in conjunction with case [thatComputedColumn] when 1 then 'Sunday' when 2 then 'Monday' ... etc. Wordier, but deterministic, which was a requirement in my environs.

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this was an interesting idea, but doesn't work. in my tests, i had to make your 0 a 4. i'm guessing this has to do with the first day of this year, which was on a Wednesday. i'm not sure how this worked in 2013 when you wrote it because that year started on a Tuesday. @scottE's answer accounts for this – Brad Oct 29 '14 at 15:35
according to the definition of deterministic ( this solution is deterministic. The reason you probably got a different result was your database setting firstdate ( You cannot make a calculated column persisted if it is not deterministic, and this calculation can be persisted – liver.larson Oct 29 '14 at 20:29
(guess I don't understand what you mean by "doesn't work" ) – liver.larson Oct 29 '14 at 20:40
you state in your solution that you're assuming @@datefirst of 7 which is the same as me, so i'm not sure what's causing this to not work for me. – Brad Oct 30 '14 at 15:48
I think the confusion was that liver had mixed up @@datefirst being 7 and 1. I've updated the answer with a little more clarification and an explanation how it works. I also changed it slightly as I think using the epoch for this is a bit too magical. You can just pick any date from the past that falls on your desired @datefirst and that will occur before all possible dates that you will use. – Tmdean Apr 10 at 23:01

Not sure what you are looking for, but if this is part of a website, try this php function from

function weekday($fyear, $fmonth, $fday) //0 is monday
  return (((mktime ( 0, 0, 0, $fmonth, $fday, $fyear) - mktime ( 0, 0, 0, 7, 17,   2006))/(60*60*24))+700000) % 7;
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Thanks but im looking for an SQL Server scalar function – Dve Nov 26 '09 at 13:12

The day of the week? Why don't you just use DATEPART?

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DatePart is non-deterministic, so this is not possible – Dve Nov 26 '09 at 13:16

Can't you just select it with something like:

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Question is to get the DayOfWeek not the name. – Bharat Dec 7 '11 at 18:58

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