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I need to calculate the year diferences between two dates.

Tried using DATEDIFF but that only do the less of the dates, for example:

Date 1: 07/03/2011
Date 2: 07/02/2012

(Date format MM/DD/YYYY)

Then: DATEDIFF([yyyy], '07/03/2011', '07/02/2012') = 1

But the real diferences are 0 year.

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5 Answers 5

up vote 1 down vote accepted

Since noone had a correct solution i post mine even though noone will ever notice.

declare @d1 datetime
declare @d2 datetime

set @d1 = '1968-02-29'
set @d2 = '2011-02-28'

select datediff(year, @d1, @d2)-
case when month(@d1)*32 + day(@d1) > month(@d2) * 32 + day(@d2) then 1 else 0 end
--case when month(@d2)*32 + day(@d1) > month(@d2) * 32 + day(@d2) then 1 else 0 end

This method is basically the same as the next method, difference is that it is done with numbers to avoid the casting, which i was told was slower.

select datediff(year, @d1, @d2)- 
case when convert(char(5),@d1, 1) > convert(char(5),@d2, 1) then 1 else 0 end
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This answer is wrong. See my test cases - it gives 0 years between 2012-02-29 and 2013-03-01 because of the funny maths of 32 days in a month. –  RichardTheKiwi Sep 19 '11 at 20:26
    
@RichardAkaCyberkiwi you are right, typo has been corrected –  t-clausen.dk Sep 20 '11 at 3:18
    
@RichardAkaCyberkiwi my funny maths is the same as Itzik Ben-Gan is using. Only difference is that he multiply with 100. I just saw it now. –  t-clausen.dk Sep 20 '11 at 11:09

This should work

declare @date1 datetime
declare @date2 datetime
select @date1 = '20110703', @date2 = '20120703'

select case
    when dateadd(yy, DATEDIFF(yy, @date1, @date2), @date1) > @date2
    then DATEDIFF(yy, @date1, @date2) -1
    else DATEDIFF(yy, @date1, @date2) end

A fuller test case showing many edge conditions

create table dates(id int identity, date1 datetime, date2 datetime)
insert dates select '20110703', '20120703'
insert dates select '20110703', '20120702'
insert dates select '20110702', '20120703'
insert dates select '20110228', '20120228'
insert dates select '20120229', '20130228'
insert dates select '20120229', '20130301'
insert dates select '20110301', '20120229'
insert dates select '20120229', '20160301'
insert dates select '20120229', '20160229'
insert dates select '20101231', '20110101'
insert dates select '20100101', '20111231'

select date1, date2,
    case
    when dateadd(yy, DATEDIFF(yy, date1, date2), date1) > date2
    then DATEDIFF(yy, date1, date2) -1
    else DATEDIFF(yy, date1, date2) end
from dates
order by id
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DATEADD still just adds to the datepart. It may solve the OP's issue (so +1) unless he defines years by the quantified # of days in contained years (per my answer) –  Matthew Feb 14 '11 at 19:33
    
@Matthew look at each case and let me know if you don't agree with the 3rd column in the output. It agrees with the "birthday" definition where a year has passed if and only if the anniversary date has been reached. –  RichardTheKiwi Feb 14 '11 at 19:36
    
@cyberwiki your answer is great if using the anniversary date criteria (which I agree is most likely :D ) I'm just over-complicating it with varying definitions of "a year" –  Matthew Feb 14 '11 at 19:39
    
@Jeff - I'm well aware of how to check for leap year, but there isn't a need to. –  RichardTheKiwi Feb 14 '11 at 21:00
    
+1 for the approach, although the overused DATEDIFF is crying out for being put into a subselect. –  Andriy M Feb 16 '11 at 8:05

SQL Server just does a year diff if you specify [yyyy].

For DATEDIFF([yyyy], '07/03/2011', '12/31/2011') it will return zero.

For DATEDIFF([yyyy], '07/03/2011', '01/01/2012') it will return 1.

In your case you should count the days if you are looking for 365 or 366 days:

DATEDIFF([dd], '07/03/2011', '07/02/2012') / 366
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1  
The more years go by, the more inaccurate this is since it keeps taking 366 days whereas a year can have 365/366 –  RichardTheKiwi Feb 14 '11 at 19:00
    
Sure, that's why I had said "365 or 366". If you looked at the revision history, you can see it was 365. Then I changed it to be specific for JMira's example data. I can provide the full solution using conditional statements etc, but got no time for that... –  Raj Kashyap Feb 14 '11 at 19:48
    
Well, 365 or 366 are both equally... inaccurate –  RichardTheKiwi Feb 14 '11 at 21:01
    
Good catch kiwi, I've fallen victim to the "not reading to the end" syndrome once again. –  MrBoJangles Feb 16 '11 at 22:51

Yeah, DATEDIFF works that way with all dateparts, so I guess you should calculate the difference in days and then divide by 365 (this, if you don't care about the time of day). Si, try this:

DECLARE @StartDate DATETIME, @EndDate DATETIME
SET @StarDate= '20110307'
SET @EndDate = '20120207'
SELECT DATEDIFF(DAY,@StartDate, @EndDate)/365
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He will want to first determine the number of days in a year. For 2012, per his example, 365 won't work. Also, he needs to check whether his included dates include Feb 29th for leap years. –  Matthew Feb 14 '11 at 17:57
    
Incorrect - end 2012-03-06, start 2011-03-07 result = 1 –  RichardTheKiwi Feb 14 '11 at 19:03

After reviewing the question and answers a bit more, all I've got to offer is some linkage: http://msdn.microsoft.com/en-us/library/ms189794.aspx.

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