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In my table I have a Month(tinyint) and a Day(tinyint) field. I would like to have a function that takes this month and day and produces a datetime for the next date(including year) given this month and day.

So if I had Month = 9, Day = 7 it would produce 9/7/2009.
If I had Month 1, Day 1 it would produce 1/1/2010.

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how do you know what year to use? Are you just assuming it will always be based off the current date? Also, what database are you using? – northpole Jun 23 '09 at 20:21
It's based off of today. So lets say today is 6/23/2009. The date in the table is month=6, day = 22. Then I want it to return 6/22/2010 because that is the next date. – Justin Balvanz Jun 23 '09 at 20:22

4 Answers 4

up vote 2 down vote accepted

something like this would work. It's variation on your method, but it doesn't use the MM/DD/YYYY literal format, and it won't blowup against bad input (for better or for worse).

declare @month tinyint
declare @day tinyint
set @month = 9
set @day = 1

declare @date datetime

-- this could be inlined if desired
set @date = convert(char(4),year(getdate()))+'0101'
set @date = dateadd(month,@month-1,@date)
set @date = dateadd(day,@day-1,@date)

if @date <= getdate()-1
  set @date = dateadd(year,1,@date)

select @date

Alternatively, to create a string in YYYYMMDD format:

set @date = 
+ right('00'+convert(char(2),@month),2)
+ right('00'+convert(char(2),@day),2)

Another method, which avoids literals all together:

declare @month tinyint
declare @day tinyint
set @month = 6
set @day = 24

declare @date datetime
declare @today datetime

-- get todays date, stripping out the hours and minutes
-- and save the value for later
set @date = floor(convert(float,getdate()))
set @today = @date

-- add the appropriate number of months and days
set @date = dateadd(month,@month-month(@date),@date)
set @date = dateadd(day,@day-day(@date),@date)

-- increment year by 1 if necessary
if @date < @today set @date = dateadd(year,1,@date)

select @date
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Here is my sql example so far. I don't really like it though...

DECLARE @month tinyint,
    @day tinyint,
    @date datetime

SET @month = 1
SET @day = 1

SET @date = CONVERT(datetime, CONVERT(varchar,@month) + '/' + CONVERT(varchar,@day) + '/' + CONVERT(varchar,YEAR(GETDATE())))

IF (DATEDIFF(DAY, GETDATE(), @date) < 0)
    SET @date = DATEADD(YEAR, 1, @date)

SELECT @date
share|improve this answer
Don't use MM/DD/YYYY format for date literals. Use YYYYMMDD instead. It will avoid localization issues, and it sorts properly. – Peter Radocchia Jun 23 '09 at 20:35
Otherwise, I don't see a problem with your method. Do you dislike the conversion from a literal? – Peter Radocchia Jun 23 '09 at 20:45
It seems like something that there should be some easy solution to. – Justin Balvanz Jun 23 '09 at 20:48
Can you give me an example on how to format it this way? I'm having troubles turning Month=1 into a string of "01". – Justin Balvanz Jun 23 '09 at 20:54
I added another method that doesn't require date literals at all. – Peter Radocchia Jun 23 '09 at 21:06

Here's a solution with PostgreSQL

your_date_calculated = Year * 10000 + Month * 100 + Day

gives you a date like 20090623.

select cast( cast( your_date_calculated as varchar )  as date ) + 1
share|improve this answer

Here's my version. The core of it is just two lines, using the DATEADD function, and it doesn't require any conversion to/from strings, floats or anything else:


SET @Month = 9
SET @Day = 7


SET @Result =
    DATEADD(month, ((YEAR(GETDATE()) - 1900) * 12) + @Month - 1, @Day - 1)
IF (@Result < GETDATE())
    SET @Result = DATEADD(year, 1, @Result)

SELECT @Result
share|improve this answer
Nice. How about an in-line version to avoid the function call overhead? eg, SELECT DATEADD(year,<expression here>,DATEADD(month, ((YEAR(GETDATE()) - 1900) * 12) + MonthField - 1, DayField - 1)) as NewDate FROM .... – Peter Radocchia Jun 24 '09 at 2:10

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