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I'm trying to do something like below (I've simplified the problem, to try and solve this individual part).

PRINT DATEADD(week, 0.2,  GETDATE())

Which I realise will not work due to the number parameter of dateadd is truncated to an int.

I'm trying to come up with a way of converting 0.2 to a number of hours and then being able to use something like (I'm ok with it being as accurate to the hour).

PRINT DATEADD(hour, X,  GETDATE())

Any ideas how to get started? I'm finding it tricky to find anything to get a decimal representation of one datepart in another datepart.

It's got to be a set based query for performance.

In theory I've got to make it so decimal years can be used as well, but I'll come to that as a seperate problem...

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What does 0.2 of a week even mean? –  Oded Nov 24 '11 at 12:06
    
Hi @Oded good point, I suppose 0.5 of a day would be a better example, where I need to add 12 hours. My problem domain is that I need to add 10% of a defined two part criteria to a date. e.g. 10% of 1 day, or 10% of 1 year or even 10% of 3 weeks. Tricky huh?! It's starting to hurt my head! –  Alex Key Nov 24 '11 at 12:09

2 Answers 2

up vote 5 down vote accepted

1 week = 7 days = 168 hours = 10080 minutes

0.2 weeks = 2016 minutes

PRINT DATEADD(minute, 2016, GETDATE())

To get this to work for years, you could write a User Defined Function where you can input a decimal of years, and then this is multiplied for minutes, and run DATEADD using minutes

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Interesting thanks Curt that simplifies it nicely for me - the problem I'm working on it's easy to get overwhealmed! So I suppose for my problem domain I'll need to pass in a number, it's type (e.g. days, months, years) and then convert that to hours... cool, that shouldn't be tricky... now let's see if I can cram that into my SQL :-) –  Alex Key Nov 24 '11 at 12:14
1  
This should work in principle, so +1. BUT, for years, watch out for leap years! –  Michael Kjörling Nov 24 '11 at 12:15

This is what I came up with incase it comes in useful for anyone. Curt helped me open my eyes to that my problem was infact not as complex as I first thought. I've marked Curt's answer as the solution, but here is some sample code. Notably the 10% wasn't in my original question but it demonstrates why I needed decimals.

DECLARE @DatePart int,
        @DateNumber int;

SET @DatePart = 1
SET @DateNumber = 1                         

PRINT
    DATEADD(
                hour,
                CEILING
                (           
                    CASE @DatePart
                        WHEN 1 THEN @DateNumber * 24.000000 --days
                        WHEN 2 THEN @DateNumber * 168.000000 --weeks
                        WHEN 3 THEN @DateNumber * 730.484398 --months
                        WHEN 4 THEN @DateNumber * 8765.81277 --years
                    END / 100.000000 * 10.000000
                ),
                GETDATE()
            ) 
share|improve this answer
    
Hi @Curt this is what I came up with, thanks for your help. :-) –  Alex Key Nov 24 '11 at 12:39
    
No worries, glad to be of help :) –  Curt Nov 24 '11 at 13:48

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