以下表达式也适用于leap年:
YEAR(date1) - YEAR(date2) - (DATE_FORMAT(date1, '%m%d') < DATE_FORMAT(date2, '%m%d'))
这工作,因为表达
(DATE_FORMAT(date1, '%m%d') < DATE_FORMAT(date2,'%m%d'))是
true,如果DATE1小于DATE2“今年早些时候” 和 因为在MySQL中,
true = 1并且
false =0,这样的调整是简单地减去比较的“真理”的问题。
这为您的测试用例提供了正确的值,但测试#3除外-我认为应该与测试#1一致为“ 3”:
create table so7749639 (date1 date, date2 date);insert into so7749639 values('2011-07-20', '2011-07-18'),('2011-07-20', '2010-07-20'),('2011-06-15', '2008-04-11'),('2011-06-11', '2001-10-11'),('2007-07-20', '2004-07-20');select date1, date2,YEAR(date1) - YEAR(date2) - (DATE_FORMAT(date1, '%m%d') < DATE_FORMAT(date2, '%m%d')) as diff_yearsfrom so7749639;输出:
+------------+------------+------------+| date1 | date2 | diff_years |+------------+------------+------------+| 2011-07-20 | 2011-07-18 | 0 || 2011-07-20 | 2010-07-20 | 1 || 2011-06-15 | 2008-04-11 | 3 || 2011-06-11 | 2001-10-11 | 9 || 2007-07-20 | 2004-07-20 | 3 |+------------+------------+------------+
参见SQLFiddle
