From the data below I need to select the record nearest to a specified date for each Linked ID using SQL Server 2005:
ID Date Linked ID ........................... 1 2010-09-02 25 2 2010-09-01 25 3 2010-09-08 39 4 2010-09-09 39 5 2010-09-10 39 6 2010-09-10 34 7 2010-09-29 34 8 2010-10-01 37 9 2010-10-02 36 10 2010-10-03 36
So selecting them using 01/10/2010 should return:
1 2010-09-02 25 5 2010-09-10 39 7 2010-09-29 34 8 2010-10-01 37 9 2010-10-02 36
I know this must be possible, but can't seem to get my head round it (must be too near the end of the day :P) If anyone can help or give me a gentle shove in the right direction it would be greatly appreciated!
EDIT: Also I have come across this sql to get the closest date:
abs(DATEDIFF(minute, Date_Column, '2010/10/01'))
but couldn开发者_开发技巧't figure out how to incorporate into the query properly...
Thanks
you can try this.
DECLARE @Date DATE = '10/01/2010';
WITH cte AS
(
SELECT ID, LinkedID, ABS(DATEDIFF(DD, @date, DATE)) diff,
ROW_NUMBER() OVER (PARTITION BY LinkedID ORDER BY ABS(DATEDIFF(DD, @date, DATE))) AS SEQUENCE
FROM MyTable
)
SELECT *
FROM cte
WHERE SEQUENCE = 1
ORDER BY ID
;
You didn't indicate how you want to handle the case where multiple rows in a LinkedID group represent the closest to the target date. This solution will only include one row And, in this case you can't guarantee which row of the multiple valid values is included.
You can change ROW_NUMBER() with RANK() in the query if you want to include all rows that represent the closest value.
You want to look at the absolute value of the DATEDIFF function (http://msdn.microsoft.com/en-us/library/ms189794.aspx) by days.
The query can look something like this (not tested)
with absDates as
(
select *, abs(DATEDIFF(day, Date_Column, '2010/10/01')) as days
from table
), mdays as
(
select min(days) as mdays, linkedid
from absDates
group by linkedid
)
select *
from absdates
inner join mdays on absdays.linkedid = mdays.linkedid and absdays.days = mdays.mdays
You can also try to do it with a subquery in the select statement:
select [LinkedId],
(select top 1 [Date] from [Table] where [LinkedId]=x.[LinkedId] order by abs(DATEDIFF(DAY,[Date],@date)))
from [Table] X
group by [LinkedId]
精彩评论