从数据库中取出某一天记录的最大和最小
师姐问了这个问题,就顺便想了想,这里是转来的,这个方法应该比较靠谱:
http://club.topsage.com/thread-493697-1-1.html
表结构如下
number date
8 2009/1/11 2:00
7 2009/1/11 5:00
6 2009/1/11 12:00
5 2009/1/11 18:00
4 2009/1/12 4:00
3 2009/1/12 10:00
2 2009/1/12 12:00
1 2009/1/11 17:00
想得到当天的最早时间与最晚时间的number的差值, 即如下的结果:
差
2
3
- create table #date
- (
- number int identity(1,1) primary key,
- date datetime
- )
- insert into #date select ‘2009/1/11 17:00’
- insert into #date select ‘2009/1/12 12:00’
- insert into #date select ‘2009/1/12 10:00’
- insert into #date select ‘2009/1/12 4:00’
- insert into #date select ‘2009/1/11 18:00’
- insert into #date select ‘2009/1/11 12:00’
- insert into #date select ‘2009/1/11 5:00’
- insert into #date select ‘2009/1/11 2:00’
- select (d2.number-d1.number) number
- from
- (
- select number,date from #date where date in
- (select max(date) from #date group by convert(varchar(10),date,120) )
- ) d1
- ,
- (
- select number,date from #date where date in
- (select min(date) from #date group by convert(varchar(10),date,120) )
- ) d2
- where convert(varchar(10),d1.date,120)=convert(varchar(10),d2.date,120)
复制代码
number
-—————
2
3
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