我需要找到一种方法来获取具有最高版本号的数据.
这是我的数据库设计:
VERSIONNUMBER - varchar(15) DOWNLOADPATH - varchar(100)
可以说我有以下记录:
VERSIONNUMBER -------- DOWNLOADPATH 1.1.2 a.com 1.1.3 b.com 2.1.4 c.com 2.1.5 d.com 2.2.1 e.com
我需要使用版本号2.2.1获取记录.需要一些sql的帮助:)
感谢您的任何帮助
解决方法
试试这个:
with a as
(
select * from (values
('1.1.2'),('1.1.3'),('2.1.4 '),('2.1.5'),('2.2.1') ) as b(c)
)
select c,PARSENAME(c,1),2),3)
from a
order by
convert(int,3)),convert(int,2)),1))
灵感来自:http://www.sql-server-helper.com/tips/sort-ip-address.aspx
with a as
(
select * from (values
('1.1.2'),('2.2.1') ) as b(c)
),x as
(
select c,3)) * 100
+ convert(int,2)) * 10
+ convert(int,1)) * 1 as the_value
from a
)
select c from x where the_value = (select MAX(the_value) from x)
在软件开发中,通常会找到一个包含两位数的次要版本号,版本号与数字值没有任何关系,因此版本1.12大于1.5;为了弥补这一点,你必须充分填充数字:
-- Use this,the query above is not future-proof :-)
with a as
(
select * from (values
('2.1.4 '),('2.1.12'),3)) * 100*100*100
+ convert(int,2)) * 100*100
+ convert(int,1)) * 100 as the_value
from a
)
select c,the_value from x
order by the_value
输出:
2.1.4 2010400 2.1.5 2010500 2.1.12 2011200 2.2.1 2020100
如果您不考虑这一点(如下面的查询):
with a as
(
select * from (values
('2.1.4 '),3)) * 100
+ convert(int,2)) * 10
+ convert(int,1)) * 1 as the_value
from a
)
select c,the_value from x
order by the_value;
-- KorsG's answer has a bug too
with a as
(
select * from (values
('2.1.4 '),CAST(REPLACE(c,'.','') AS int) as the_value
from a
)
select c,the_value from x
order by the_value
c the_value 2.1.4 214 2.1.5 215 2.2.1 221 2.1.12 222
2.2.1和2.1.12的值重叠.当您仅删除点并将结果字符串直接转换为int时,也会发生这种情况. 2.1.12成为二千一百二十二,2.2.1成为二百二十二. 2.2.1大于2.1.12,不小于
