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I need to write a function or SP that will return the first occurance of the 15th. For example, if I pass the date as May 8th, then it should return May 15th. If I pass May 30th, then it should return June 15th.

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Question, why in sql? –  rsplak May 13 '11 at 14:27
1  
Did you gave it a shot? Do you have some code that you tried? –  YetAnotherUser May 13 '11 at 14:27
    
Will this function always be passed the current date, or can it be passed any date at any time? –  mellamokb May 13 '11 at 14:43
1  
+1 @YAU I agree, SO seems to be becoming a "do my job for me" resource rather than a place for assistance with tough problems. It's hard to know where to draw the line, but I do think this question could be easily solved by reading the MSSQL Date functions (msdn.microsoft.com/en-us/library/ms186724%28v=SQL.100%29.aspx) and Control Logic (msdn.microsoft.com/en-us/library/ms174290.aspx) documentation. I understand the OP might learn something from the answers provided below, but it would be frustrating if not. –  James McCormack May 13 '11 at 15:14

8 Answers 8

One way

   DECLARE @d DATETIME
    SELECT @d = '20110508'
    --SELECT @d = '20110530'


    SELECT  CASE WHEN DAY(@d)  > 15 
    THEN  dateadd(mm, datediff(mm, 0, @d)+1, 0) + 14
    ELSE dateadd(mm, datediff(mm, 0, @d)+0, 0)+ 14 end
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If you change getdate() to @d I think you'd have it. It works now only if you are using a day that becomes 5-15 (or whatever is the correct result for today.) –  mellamokb May 13 '11 at 14:37
    
???, see added code, it uses getdate() –  SQLMenace May 13 '11 at 14:40
    
In your first example: SELECT CASE WHEN DAY(@d) > 15 THEN dateadd(mm, datediff(mm, 0, getdate())+1, 0) + 14 ELSE dateadd(mm, datediff(mm, 0, getdate())+0, 0)+ 14 end this is wrong. Try it with '20110710' and you will get 5-15. Obviously that is wrong. Because those getdate() in your first example need to be @d. There is no indication by OP that you've assumed they will always pass the current date. –  mellamokb May 13 '11 at 14:40
    
@mellamok, fixed thanks –  SQLMenace May 13 '11 at 14:45
    
+1: Works beautifully now :) –  mellamokb May 13 '11 at 14:47

How about;

create function udf_getNextDate(@base datetime, @day int) returns datetime as begin
    set @base = case when day(@base) > @day         
            then dateadd(month, 1, @base)
        else @base
    end
    return dateadd(day, -day(@base) + @day, @base)
end

select 
  dbo.udf_getNextDate('08 may 2011', 15),
  dbo.udf_getNextDate('30 may 2011', 15),
  dbo.udf_getNextDate('16 dec 2011', 15),
  dbo.udf_getNextDate('01 may 2011', 15)

2011-05-15 00:00:00.000 
2011-06-15 00:00:00.000 
2012-01-15 00:00:00.000 
2011-05-15 00:00:00.000
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Just another way of doing it:

Declare @d datetime

Set @d = getdate()


Select  Case 
            When    DateDiff(Day, Day(@d), 15) < 0 then 
                    DateAdd(month, 1, DateAdd(Day, DateDiff(Day, Day(@d), 15), @d))
            Else    DateAdd(Day, DateDiff(Day, Day(@d), 15), @d) 
        End as [Next15th]
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this function may helps you

create function Get15th(@date datetime)
returns datetime 
as
begin
declare @resultdate datetime
declare @y int
declare @m int
declare @d int
set @y = datepart(year,@date)
set @m = datepart(month,@date)
set @d = datepart(day,@date)
if( @d<=15)
set @resultdate =cast((str(@y)+'-'+str(@m)+'-15') as datetime)
else
set @resultdate =cast((str(@y)+'-'+str(@m+1)+'-15') as datetime)
return  @resultdate 
end
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Rob's answer is close...

if you take the datediff in months, rather than days, and make your base the 15'th of a month, then add one extra month...

DATEADD(MONTH, DATEDIFF(MONTH, 14, Created) + 1, 14)

EDIT

Modified to use DATEDIFF MONTH how it works, not how I thought it should work ;)

DATEADD(MONTH, DATEDIFF(MONTH, 0, Created - 15) + 1, 14)

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Not quite: 5-1 -> 6-15, is not the next occurrance. 5-1 should return 5-15. You need an extra check like @SQLMenace to handle before the 15th vs. after the 15th. –  mellamokb May 13 '11 at 14:35
    
My mistake, should test. Offset the created date by -15 days, to avoid using the CASE WHEN THEN. –  MatBailie May 13 '11 at 15:00

I usually do something like this:

declare
  @date       datetime ,
  @target_day int

set @date       = 'June 16, 2009'
set @target_day = 15

select date      = @date ,
       next_date = case when day(@date) <= @target_day
                     then dateadd(day,15-day(@date),@date)
                     else dateadd(day,15,dateadd(month,1,dateadd(day,-day(@date),@date)))
                   end

dealing with the last day of the month is a wee bit trickier, since month's have variable numbers of days, and SQL Server's date math is sometimes a wee bit baroque.

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Here's a select statement to get the first occuring 15th of the month of a given date (here: @mydate)

    declare @mydate datetime
           , @first15th datetime
    set @mydate = convert(datetime,'2011/05/29 11:14:20.334')
    set @first15th = 
        (select
          dateadd(
           day,
           15 - day( dateadd ( day, 
                               day(@mydate) - (day(@mydate)-15) , 
                               @mydate )
           ),
           dateadd ( day, 
                     day(@mydate) - (day(@mydate)-15) , 
                     @mydate)
        )
     select @first15th //for 2011/05/29 11:14:20.334 => 2011/06/15 11:14:20.334
                       //for 2011/05/09 11:14:20.334 => 2011/05/15 11:14:20.334

Now you should be able to cook some SP or Function from it.

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try

DATEADD(Day, DATEDIFF(Day, 15, Created), 0) AS CreatedDay 

explained here http://improve.dk/archive/2006/12/13/sql-server-datetime-rounding-made-easy.aspx

using that link you can achive what you want

UPDATE: got it wrong ... see Dems answer

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Can you plug in 20110508 I get back 2011-04-23 00:00:00.000 –  SQLMenace May 13 '11 at 14:33
    
-1 This one didn't provide a single correct answer for my 7 test cases... –  mellamokb May 13 '11 at 14:34
1  
The DateDiff's need to diff the months, not the days. You're code is rounding the Created down to the nearest day, and subtracting 15 days... –  MatBailie May 13 '11 at 14:35
    
@mellamokb - sorry I was unable to test this but did provide a link for the user to try to work it out for themselves. –  Rob May 13 '11 at 14:36
    
@Dems - thanks thats a constructive comment –  Rob May 13 '11 at 14:37

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