Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have a table in Sql Sever 2005 :

id  eid  name      datetime   
-- |----|------- |------------------------
 1 | 1  | john   | 2013-11-18 15:30:00.000
 2 | 1  | john   | 2013-11-18 14:10:00.000
 3 | 1  | john   | 2013-11-18 13:30:00.000
 4 | 1  | john   | 2013-11-18 16:00:00.000
 5 | 1  | john   | 2013-11-18 17:00:00.000
 6 | 2  | Richard| 2013-11-18 13:40:00.000
 7 | 2  | Richard| 2013-11-18 16:20:00.000
 8 | 3  | Mandy  | 2013-11-18 20:22:00.000
 9 | 3  | Mandy  | 2013-11-18 20:20:00.000
 10| 4  | Micheal| 2013-11-18 13:00:00.000

Input will be a date such as - 2013-11-18 15:50:00.000
Expected Output : Need Minimum and Maximum datetime adjacent(closest) to input date...
Grouping by eid is also required.

 id  eid  name      AdjacentMinimumDateTime    AdjacentMaximumDateTime 
-- |----|------- |---------------------------|------------------------
 1 | 1  | john   | 2013-11-18 15:30:00.000   |  2013-11-18 16:00:00.000
 6 | 2  | Richard| 2013-11-18 13:40:00.000   |  2013-11-18 16:20:00.000
 8 | 3  | Mandy  | NULL                      |  2013-11-18 20:20:00.000
 9 | 4  | Micheal| 2013-11-18 13:00:00.000   |  NULL
share|improve this question
    
It makes no sense to return the id... –  Mosty Mostacho Nov 20 '13 at 19:30
    
Id is required in my case, i did it by help of join.Anyways Thanks –  Armaan Dhamija Nov 21 '13 at 16:12

4 Answers 4

up vote 2 down vote accepted

Give this a try:

WITH
BEFORE AS (
  SELECT eid, max(datetime) date FROM t
  WHERE datetime <= '2013-11-18 15:50:00.000'
  GROUP BY eid
),
AFTER AS (
  SELECT eid, min(datetime) date FROM t
  WHERE datetime >= '2013-11-18 15:50:00.000'
  GROUP BY eid
)
SELECT t.eid, t.name, max(b.date) beforeDate, min(a.date) afterDate FROM t
LEFT JOIN BEFORE b ON t.eid = b.eid
LEFT JOIN AFTER a ON t.eid = a.eid
GROUP BY t.eid, t.name
ORDER BY t.eid

Or the non-CTE version:

SELECT t.eid, t.name, max(b.date) beforeDate, min(a.date) afterDate FROM t
LEFT JOIN (
  SELECT eid, max(datetime) date FROM t
  WHERE datetime <= '2013-11-18 15:50:00.000'
  GROUP BY eid
) b ON t.eid = b.eid
LEFT JOIN (
  SELECT eid, min(datetime) date FROM t
  WHERE datetime >= '2013-11-18 15:50:00.000'
  GROUP BY eid
) a ON t.eid = a.eid
GROUP BY t.eid, t.name
ORDER BY t.eid

I've added repeated dates to test it works with them too.

Output:

| EID |    NAME |                 BEFOREDATE |                  AFTERDATE |
|-----|---------|----------------------------|----------------------------|
|   1 | john    | November, 18 2013 15:30:00 | November, 18 2013 16:00:00 |
|   2 | Richard | November, 18 2013 13:40:00 | November, 18 2013 16:20:00 |
|   3 | Mandy   |                     (null) | November, 18 2013 20:20:00 |
|   4 | Michael | November, 18 2013 13:00:00 |                     (null) |
|   5 | Mosty   | November, 18 2013 15:00:00 | November, 18 2013 16:00:00 |

Fiddle here.

share|improve this answer

Try This...

SELECT
    MIN(id) [id],
    eid,
    name,
    (SELECT MAX(datetime) FROM table t1 WHERE t1.datetime < inputdate 
        AND t1.eid = t.eid) [AdjacentMinimumDateTime],
    (SELECT MIN(datetime) FROM table t2 WHERE t2.datetime > inputdate 
        AND t2.eid = t.eid) [AdjacentMaximumDateTime]
FROM table t
GROUP BY t.id, t.Name
share|improve this answer

Start by finding the one before and the one after, then you can combine them into a single query if you like:

declare @TestTable table (ID int, eid int, Name varchar(10), TestDate datetime)
declare @InputDate datetime = '2013-11-18 15:50:00.000'

insert into @TestTable (ID,eid,Name,TestDate) 
values (1,1,'john', '2013-11-18 15:30:00.000')
      ,(2,1,'john', '2013-11-18 14:10:00.000')
      ,(3,1,'john', '2013-11-18 13:30:00.000')
      ,(4,1,'john', '2013-11-18 16:00:00.000')
      ,(5,1,'john', '2013-11-18 17:00:00.000')
      ,(6,2,'richard', '2013-11-18 13:40:00.000')
      ,(7,2,'richard', '2013-11-18 16:20:00.000')
      ,(8,3,'mandy', '2013-11-18 20:22:00.000')
      ,(9,3,'mandy', '2013-11-18 20:20:00.000')
      ,(10,4,'michael', '2013-11-18 13:00:00.000');

SELECT *
FROM @TestTable
ORDER BY TestDate

--get the one previous
SELECT TOP 1 *
FROM @TestTable
WHERE TestDate < @InputDate
ORDER BY TestDate desc

--get the one after
SELECT TOP 1 *
FROM @TestTable
WHERE TestDate > @InputDate
ORDER BY TestDate
share|improve this answer

Try mine. It works:

declare @TestTable table (ID int, eid int, Name varchar(10), TestDate datetime)
declare @InputDate datetime = '2013-11-18 15:50:00.000'

insert into @TestTable (ID,eid,Name,TestDate) 
values (1,1,'john', '2013-11-18 15:30:00.000')
      ,(2,1,'john', '2013-11-18 14:10:00.000')
      ,(3,1,'john', '2013-11-18 13:30:00.000')
      ,(4,1,'john', '2013-11-18 16:00:00.000')
      ,(5,1,'john', '2013-11-18 17:00:00.000')
      ,(6,2,'richard', '2013-11-18 13:40:00.000')
      ,(7,2,'richard', '2013-11-18 16:20:00.000')
      ,(8,3,'mandy', '2013-11-18 20:22:00.000')
      ,(9,3,'mandy', '2013-11-18 20:20:00.000')
      ,(10,4,'michael', '2013-11-18 13:00:00.000');


with cte as 
(
select id, eid, name, TestDate, (datediff(s, TestDate, @InputDate)) as DateDiffSeconds
from @TestTable
)

select cte.eid, cte.name, x.testdate as maxunder, y.testdate as minover,         @InputDate as InputDateForComparison
from cte
left join
(
            select eid, testdate
            from cte

        join (  
                    select eid as eidmin, min(DateDiffSeconds) as datematchunder
                    from cte 
                    where DateDiffSeconds >= 0
                    group by eid

                  ) as datematchunder on datematchunder.datematchunder = cte.DateDiffSeconds

 ) x on x.eid = cte.eid

left join 
(
            select eid, testdate
        from cte

        join (  
                    select eid as eidmin, max(DateDiffSeconds) as datematchover
                    from cte
                    where DateDiffSeconds <= 0
                    group by eid

                  ) as datematchover on datematchover.datematchover = cte.DateDiffSeconds

) y on y.eid = cte.eid

group by cte.eid, cte.name, x.testdate, y.testdate;

BAM!

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.