sqlserver 每个月连续五天的日期为一组 有什么办法列出来吗?
sqlserver 每个月连续五天的日期为一组 有什么办法列出来吗?
使用 row_number 排出序号,然后序号减一后,比5取整,即可得到分组序号
select number,(ROW_NUMBER() over(order by number)-1)/5 as group_sn from master..spt_values where type='p'
至于每个月连续5天这个问题,你需要自行补全日期
declare @sd date,@ed date
set @sd='2021-1-1'
set @ed=GETDATE()
;with t as (
select number,DATEADD(d,number,@sd) as dt
from master..spt_values
where type='p' and number<=DATEDIFF(D,@sd,@ed)
),t1 as (
select *,(ROW_NUMBER() over(partition by convert(varchar(6),dt,112) order by dt)-1)/5 as group_sn,convert(varchar(6),dt,112) as mon
from t
)
select * from t1
还可以行转列后看的更清晰
declare @sd date,@ed date
set @sd='2021-1-1'
set @ed=GETDATE()
;with t as (
select number,DATEADD(d,number,@sd) as dt
from master..spt_values
where type='p' and number<=DATEDIFF(D,@sd,@ed)
),t1 as (
select dt,(ROW_NUMBER() over(partition by convert(varchar(6),dt,112) order by dt)-1)/5 as group_sn,convert(varchar(6),dt,112) as mon
from t
)
select mon,'第'+convert(varchar,group_sn+1)+'个五天',[1] as 第一天日期,[2] as 第二天日期,[3] as 第三天日期,[4] as 第四天日期,[5] as 第五天日期
from (
select *,ROW_NUMBER() over(partition by group_sn,mon order by dt) as sn from t1
) a
pivot(max(dt) for sn in ([1],[2],[3],[4],[5])) p
请问要怎么列出来呢?用日期除以5或者取模都可以。