Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am stuck in one query. Need your help.

I have table tblEventCalendarEvents

id    name      start_date   end_date    rec_type
891 Bob Lehman  2012-05-01   2099-02-01  0_2_1_1
892 Bob Lehman  2012-11-01   2099-02-01  1_4_3_1
893 Bob Lehman  2012-05-03   2099-02-01  0_0_2_2

I want to do such task. I want such record in which if today is between startdate and enddate also based on rec type.

In RecType Filed value is store like 0_2_1_1 mean this event repeat on every second month, first week and third day.

So if event start on 2012-05-01 mean 1st May, 2012 so now that event repeat on such a date which fulfill repeat condition like then it will repeat on every two month so next month is July, 1st week and 3rd day mean next repeat date is 2012-07-03 3rd July,2012.

So it will repeat on

2012/07/01
2012/09/02
2012/11/04
2013/01/06
share|improve this question
1  
That is going to be fearsomely fiddly, no matter which DBMS you're using. It can be done; it is not going to be fun to do. Simply parsing the notation month_n_w_d_#no is messy. It is not clear what the fields mean in the year_n_x_y_#no version (every nth year on the xth month and the yth day of the month?). Your question could usefully omit the 'created_date' and `updated_date' columns as they are immaterial to the question and would avoid the horizontal scroll bar (which conceals the crucial column). You could probably omit the 'url' column too. –  Jonathan Leffler Dec 28 '12 at 9:39
    
@JonathanLeffler Now check my question again in rec_type field now data like (year_month_week_day) it mean data will be repeated this way. if rec_type is 0_2_1_1 then output data will be repeated on every 2month , first week and first day –  AB Vyas Dec 28 '12 at 9:53
1  
For 0_2_1_1 it means every 2 month , first week and first day right? So in your example, it should come 2012/07/01, 2012/09/01 etc no? –  TechDo Dec 28 '12 at 9:58
    
@techdo Yes something like that but in last argument mean day in that day of week not the date so it is like if 1 then sunday, 2 then Monday......n so on 7 mean saturday.... –  AB Vyas Dec 28 '12 at 10:04
    
Does your question " I want such record in which if today is between startdate and enddate also based on rec type." mean that the task has to happen, if both conditions are met? –  Raj Dec 28 '12 at 10:17

2 Answers 2

up vote 2 down vote accepted

Finally I got my answer.

USE [Database]
GO
/****** Object:  UserDefinedFunction [dbo].[getNextDay]    Script Date: 12/28/2012 17:10:19 ******/

SET ANSI_NULLS ON

GO
SET QUOTED_IDENTIFIER ON
GO
CREATE function [dbo].[getNextDay](@SDate datetime, @Rec varchar(max))
returns datetime
as
BEGIN
--Find the next day based on Condition


Declare @SecArg varchar(max)
Declare @NYear varchar(max)
Declare @NMonth varchar(max)
Declare @NWeek varchar(max)
Declare @NDay varchar(max)

select @NYear = substring(@rec,0,CHARINDEX('_',@rec)) 

SET @REC = SUBSTRING(@rec,CHARINDEX('_',@rec)+1,LEN(@REC))

select @NMonth = substring(@rec,0,CHARINDEX('_',@rec)) 

SET @REC = SUBSTRING(@rec,CHARINDEX('_',@rec)+1,LEN(@REC))

select @NWeek = substring(@rec,0,CHARINDEX('_',@rec)) 

SET @REC = SUBSTRING(@rec,CHARINDEX('_',@rec)+1,LEN(@REC))

Declare @NewDate datetime
set @NewDate = @SDate
if (@NYear != 0 or @NYear != '')
begin

    set @SDate = DateAdd(Year,Convert(int,@Nyear),@SDate)
end


if (@NMonth != 0 or @NMonth != '')
begin
    set @SDate = DateAdd(Month,Convert(int,@NMonth),@SDate)
end

    return Convert(varchar, dbo.getWeekDay(Convert(int,@NWeek),Convert(Int,@rec),DATEADD(dd,-(DAY(@SDate)-1),@SDate)),120)
end

Now i Created One another function getWeekDay for find the day of particular week of particular month

USE [Database]
GO
/****** Object:  UserDefinedFunction [dbo].[getWeekDay]    Script Date: 12/28/2012 17:15:35 ******/
SET ANSI_NULLS ON
GO
SET QUOTED_IDENTIFIER ON
GO
CREATE function [dbo].[getWeekDay]( @var_weeknum int, @var_weekday int, @var_date datetime)
returns datetime
as
BEGIN
     declare @cnt int
     declare @startDay int
     declare @DayDiffrence int 
     declare @ReturnDate datetime
     set @cnt = 1
     set @startday =  datepart(dw, dateadd(mm, datediff(mm, 0, @var_Date),0))
     set @DayDiffrence = @var_weekday - @startday
     set @ReturnDate = dateadd(mm, datediff(mm, 0, @var_date),0)

     if(@DayDiffrence > 0)
     begin
              set @ReturnDate = dateadd(d,@DayDiffrence,@ReturnDate)
              set @ReturnDate = dateadd(wk,@var_weeknum - 1,@ReturnDate)
     end
     else
     begin
              set @ReturnDate = dateadd(d,7 - (@DayDiffrence * -1),@ReturnDate)
              set @ReturnDate = dateadd(wk,@var_weeknum - 1,@ReturnDate)
     end

             return @ReturnDate
    end

Now finally i got my answer by just single query

 select dbo.getNextDay('2012-07-01','0_2_3_3')

 In this my date is 2012-07-01 
 my condition is every 0 year, 2 month, and 3rd week and 3rd dayofweek.

 so this will return 2012-09-18

Thanks to www.google.com and blog.sqlauthority.com and also thanks to my Stackoverflow friends.... :)

share|improve this answer

First of all I highly recommend restructure (normalize) your table for the rec_type field instead of being varchar to be Four tinyint Fields as follows: rec_y rec_m rec_w rec_d

And so simply write a User Defined Function as follows:

CREATE FUNCTION GetNextEvent 
(
    @curevent datetime, @rec_y tinyint, @rec_m tinyint, @rec_w tinyint, @rec_d tinyint, @end_date datetime
)
RETURNS datetime AS
BEGIN
    DECLARE @nextevent datetime
    set @nextevent=DATEADD(DAY,@rec_d,DATEADD(WEEK,@rec_w,DATEADD(MONTH,@rec_m,DATEADD(YEAR,@rec_y,@curevent))))
    if @nextevent>@end_date set @nextevent=null
    RETURN @nextevent
END

Then you can write a Cursor loop to get all Event Dates as long as they are less than end_date based on your requirement being saved in database in another table on creation and on update or being viewed and calculated upon request.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.