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While subtracting a year form current date, if current day is February 28 2013 then below statement returns February 28 2012, but correct result should be February 29 2012 as 2012 is a leap year. How can this scenario be handled.

SELECT DATEADD(year, -1, GETDATE())
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7  
Whether February 29 is the correct result is a question of interpretation. –  Pekka 웃 May 7 '13 at 9:53
2  
As Pekka says, it's a matter of interpretation. Now, if you want the last day of the month, that's a different story... –  Strawberry May 7 '13 at 9:54
    
Yeah. Do you want the last day of the month a year ago, the day 365 days ago, or the date 365/366 days ago depending on whether there's a leap day? –  Pekka 웃 May 7 '13 at 9:55
    
Either way, this is going to be relatively complex to 'push up the hill' in MySQL. I'd do the calc in my application, if possible. –  Thomas W May 7 '13 at 9:57
2  
Are you sure you use mySQL it looks like MS SQL Server T-sql –  valex May 7 '13 at 10:03

3 Answers 3

*Use this code *

SELECT DATE_SUB('2013-02-28', INTERVAL 365 DAY)
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Well, here's something to think about...

SELECT CASE WHEN DAY(LAST_DAY('2012-02-28'))=29 THEN 'foo' ELSE 'bar' END x;
+------+
| x    |
+------+
| foo  |
+------+
1 row in set (1.22 sec)

SELECT CASE WHEN DAY(LAST_DAY('2013-02-28'))=29 THEN 'foo' ELSE 'bar' END x;
+------+
| x    |
+------+
| bar  |
+------+
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Using your logic you should use case to process last day of the month in different way. If today is a last day of the month it will be the last day of the month one year ago.

SELECT CASE WHEN LAST_DAY(CURDATE())=CURDATE()
            THEN LAST_DAY(DATE_SUB(CURDATE(),INTERVAL 1 YEAR)) 
            ELSE DATE_SUB(CURDATE(),INTERVAL 1 YEAR)
       END     

But what you will do if today is 29.02 ? WHAT day a year ago it should be? In this case for 28.02 and 29.02 you get the same 28.02 a year ago. What logic we should use here?

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