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I have a table which stores Login information for employees

Sample Data for the login Table is

 EmpID  Status     [Time]
 100    SignIn    2013-03-07 11:41:44.473
 101    SignIn    2013-03-07 10:41:44.473
 100    SignOut   2013-03-07 12:41:44.473
 101    SignOut   2013-03-07 11:41:44.473
 101    SignIn    2013-03-08 11:41:44.473

I want the result to be

EmpID   SignIn                    SignOut
 100    2013-03-07 11:41:44.473    2013-03-07 12:41:44.473
 101    2013-03-07 10:41:44.473    2013-03-07 11:41:44.473
 101    2013-03-08 11:41:44.473    NULL

I tried to use PIVOT

Select EmpID,[SignIn],[SignOut]
from 
(Select EmpId,status,LoginTime from Login)p
 pivot
(
 min(Logintime)
 For status in ([SignIn],[SignOut])
)pvt

But the above query leaves out the last row for the Employee 101 having SignIn Time but no SignOut value

SQLFiddle for generating table data

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2 Answers

up vote 3 down vote accepted

You could get it like this:

SELECT  l1.EmpID
        , l1.LoginTime [SignIn]
        , l2.LoginTime [SignOut]
FROM    Login l1
LEFT JOIN   
        Login l2 ON 
        l2.EmpID = l1.EmpID
AND     CAST(l2.LoginTime AS DATE) = CAST(l1.LoginTime AS DATE)
AND     l2.status = 'SignOut'
WHERE   l1.status = 'SignIn'

Note that in case if you had more than one signin/signout per day for an employee and you wanted to get his first SignIn and last SignOut for a day, you would have to change the query:

SELECT  l1.EmpID
        , MIN(l1.LoginTime) [SignIn]
        , MAX(l2.LoginTime) [SignOut]
FROM    Login l1
LEFT JOIN   
        Login l2 ON 
        l2.EmpID = l1.EmpID
AND     CAST(l2.LoginTime AS DATE) = CAST(l1.LoginTime AS DATE)
AND     l2.status = 'SignOut'
WHERE   l1.status = 'SignIn'
GROUP BY
        l1.EmpID, CAST(l1.LoginTime AS DATE)

And here is another query that also works for multiple signin/signouts of a user during the same day. This will list all of his signin/signouts in a day:

;WITH cte1 AS
(
    SELECT  *
            , ROW_NUMBER() OVER 
                (PARTITION BY EmpID, CAST(LoginTime AS DATE) ORDER BY LoginTime) 
                AS num
    FROM    Login
)

SELECT  l1.EmpID
        , l1.LoginTime [SignIn]
        , l2.LoginTime [SignOut]
FROM    cte1 l1
LEFT JOIN   
        cte1 l2 ON 
        l2.EmpID = l1.EmpID
AND     CAST(l2.LoginTime AS DATE) = CAST(l1.LoginTime AS DATE)
AND     l2.num = l1.num + 1
WHERE   l1.status = 'SignIn'

Here is SQL Fiddle for last two queries that handle multiple signin/signout scenarios of a user in a single day, for that purpose I added user with EmpID 102 to sample data.

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Thanks for providing different solutions ! –  praveen Mar 7 '13 at 8:26
1  
You're welcome, I thought it might be good to cover some additional situations so I added second and third query. –  Ivan G Mar 7 '13 at 8:29
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You were on the right track using the PIVOT function, you just needed a way to assign a row_number() to each row based on the empid, status and date/ You can use the following pivot code:

Select EmpID,[SignIn],[SignOut]
from 
(
  Select EmpId, status, 
    LoginTime, 
    cast(logintime as date) date,
    row_number() over(partition by empid, status, cast(logintime as date)
                      order by logintime) rn
  from Login
)p
pivot
(
  min(Logintime)
  For status in ([SignIn],[SignOut])
)pvt

See SQL Fiddle with Demo.

You will notice two new columns in the subquery. One to generate a row_number() for each row and the second to generate the date without the time. Both of these columns are used in the GROUP BY but not displayed in the final select. They are used so you will can get multiple rows for each employee on everyday (if needed).

The result using @IvanG's data from the sql fiddle is:

| EMPID |              SIGNIN |             SIGNOUT |
-----------------------------------------------------
|   100 | 2013-03-07 11:41:44 | 2013-03-07 12:41:44 |
|   101 | 2013-03-07 10:41:44 | 2013-03-07 11:41:44 |
|   101 | 2013-03-08 11:41:44 |              (null) |
|   102 | 2013-04-08 12:41:44 | 2013-04-08 13:41:44 |
|   102 | 2013-04-08 16:41:44 | 2013-04-08 17:41:44 |
|   102 | 2013-04-08 19:41:44 |              (null) |
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1  
@praveen I cannot help it, I love these questions! :) –  bluefeet Mar 7 '13 at 11:35
1  
When I saw this question was about pivot and wasn't solved, I thought "bluefeet probably isn't online" :) –  Ivan G Mar 7 '13 at 11:44
1  
@IvanG It is kind of sad that people just expect my answers! :D –  bluefeet Mar 7 '13 at 11:45
1  
@bluefeet I guess they can't help it because you're so good at it :D –  Ivan G Mar 7 '13 at 11:52
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