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I'm trying to GROUP BY some data using SQL Server.

Here's the data:

Computer    VisitDate
ComputerA   2012-04-28 09:00:00
ComputerA   2012-04-28 09:05:00
ComputerA   2012-04-28 09:10:00
ComputerB   2012-04-28 09:30:00
ComputerB   2012-04-28 09:32:00
ComputerB   2012-04-28 09:44:00
ComputerB   2012-04-28 09:56:00
ComputerB   2012-04-28 10:25:00
ComputerA   2012-04-28 12:25:00
ComputerC   2012-04-28 12:30:00
ComputerC   2012-04-28 12:35:00
ComputerC   2012-04-28 12:45:00
ComputerC   2012-04-28 12:55:00

What I'm trying to achieve is to group the data by Computer but also group if a Computer has a difference between a visit time longer than 1 hour. Here is the result of what I'm trying to do:

Computer     VisitDate
ComputerA    2012-04-28 09:00:00
ComputerB    2012-04-28 09:30:00
ComputerA    2012-04-28 12:25:00
ComputerC    2012-04-28 12:30:00

So Computer A is shown twice because it visited at 09:10:00 and then visited again at 12:25:00 which means a difference of over 1 hour.

It's easy to 'GROUP BY Computer' but the other, I wouldn't know where to start. Any help on this problem would be much appreciated.

share|improve this question
    
Welcome to StackOverflow: if you post code, XML or data samples, please highlight those lines in the text editor and click on the "code samples" button ( { } ) on the editor toolbar to nicely format and syntax highlight it! Also: this is NOT an HTML site - no need to use tons of <p> and <br /> tags - just use two or more cr/lf .... –  marc_s Apr 28 '12 at 14:34
3  
What version of SQL Server are you running? SELECT @@VERSION –  Bogdan Sahlean Apr 28 '12 at 15:14
1  
What's the output if this ComputerA 2012-04-28 12:25:00 is this instead ComputerA 2012-04-28 09:11:00 ? –  Michael Buen Apr 28 '12 at 16:03
    
Unfortunately, I'm using SQL Server 2005 –  Jefferson Apr 30 '12 at 12:26

4 Answers 4

up vote 3 down vote accepted

You cannot do this with a simple GROUP BY. This operator only works on single columns - e.g. you could group by computer name or something, but you cannot add additional logic like difference in time must be greater than one hour or anything like that to the grouping.

What you can do - provided you're on SQL Server 2005 or newer (you didn't mention the version in your question) would be to use CTE's (Common Table Expressions). Those provide a way to slice'n'dice your data.

Here, I'm doing several things - first I'm "partitioning" the data by ComputerName and order by VisitDate and using ROW_NUMBER() to get a sequential number for each partition. Then the second CTE determines the "first" entry for each computer - the one with row number = 1 - and the third finally determines the difference in the VisitDate for each entry, compared to the entry with row number = 1. From that third CTE, I finally select those entries that either have row number = 1 (the first for each "partition"), or anything that has a difference in minutes of 60 or more.

Here's the code:

;WITH Computers AS
(
    SELECT
        ComputerName, VisitDate,
        RN = ROW_NUMBER() OVER(PARTITION BY ComputerName ORDER BY VisitDate)
    FROM    
        dbo.YourComputerTable
),
FirstComputers AS
(
    SELECT ComputerName, VisitDate
    FROM Computers
    WHERE RN = 1
),
SelectedComputers AS
(
    SELECT 
        c.ComputerName, c.VisitDate, c.RN,
        DiffToFirst = ABS(DATEDIFF(MINUTE, c.VisitDate, fc.VisitDate))
    FROM Computers c
    INNER JOIN FirstComputers fc ON c.ComputerName = fc.ComputerName
)
SELECT * 
FROM SelectedComputers
WHERE RN = 1 OR DiffToFirst >= 60
share|improve this answer
    
@Siva ABS returns the ABSolute value of a number (without the sign). –  rcdmk Apr 28 '12 at 15:01
    
@Siva: no, but depending on which order you have the two dates in, you might get +60 or -60 - thus I chose to use ABS() around it to not have to deal with those two possibilities. –  marc_s Apr 28 '12 at 15:01
1  
Many thanks for your help, you're an absolute genius! –  Jefferson Apr 28 '12 at 16:37
1  
+1 A simple solution. –  Bogdan Sahlean Apr 28 '12 at 17:45
    
This does not work when multiple dates are used. Try this: INSERT YourComputerTable (ComputerName,VisitDate) VALUES ('ComputerA','1/1/2012 09:00'); Now run the solution above. –  brian Apr 28 '12 at 19:24

If you've upgraded to SQL Server 2012, you can use LAG for this.

with Lagged as (
  select
    Computer,
    VisitDate,
    LAG(VisitDate,1) over (
      partition by Computer
      order by VisitDate
    ) as LastVisit
  from @Visit
)
  select
    Computer,
    VisitDate
  from Lagged
  where LastVisit is null
  or VisitDate > dateadd(hour,1,LastVisit);

SQL Fiddle here.

share|improve this answer
    
Unfortunately, I'm using SQL Server 2005 –  Jefferson Apr 30 '12 at 12:17

This solution is based on a recursive CTE. You may find an online demo here.

WITH CteBase
AS
(
        SELECT  v.Computer,
                v.VisitDate,
                ROW_NUMBER() OVER(PARTITION BY v.Computer ORDER BY v.VisitDate) AS RowNum
        FROM    @Visit v
),  CteRecursive
AS
(
        SELECT  crt.Computer,
                crt.VisitDate,
                crt.VisitDate AS GroupStartVisitDate,
                crt.RowNum,
                1 AS ComputerVisitRowNum
        FROM    CteBase crt
        WHERE   crt.RowNum = 1
        UNION ALL
        SELECT  crt.Computer,
                crt.VisitDate,
                CASE 
                    WHEN DATEDIFF(MINUTE, prv.GroupStartVisitDate, crt.VisitDate) <= 60 THEN prv.GroupStartVisitDate 
                    ELSE crt.VisitDate 
                END,
                crt.RowNum,
                CASE 
                    WHEN DATEDIFF(MINUTE, prv.GroupStartVisitDate, crt.VisitDate) <= 60 THEN prv.ComputerVisitRowNum + 1
                    ELSE 1
                END             
        FROM    CteBase crt
        INNER JOIN CteRecursive prv ON crt.Computer = prv.Computer 
        AND     crt.RowNum = prv.RowNum + 1
)
SELECT  r.Computer,
        r.GroupStartVisitDate
FROM    CteRecursive r
WHERE   r.ComputerVisitRowNum = 1;

Results:

Computer             GroupStartVisitDate
-------------------- -----------------------
ComputerA            2012-04-28 09:00:00.000
ComputerB            2012-04-28 09:30:00.000
ComputerC            2012-04-28 12:30:00.000
ComputerA            2012-04-28 12:25:00.000

If you have questions, feel free to ask.

share|improve this answer
    
+1 This looks great –  brian Apr 28 '12 at 19:34

CTEs to show all computers having at least one visit, or visits before and after gaps > 60 minutes.

create table compVisits (Computer varchar(20), VisitDate datetime)
go
insert into compVisits values
('ComputerA', '2012-04-28 09:00:00')
, ('ComputerA', '2012-04-28 09:05:00')
, ('ComputerA', '2012-04-28 09:10:00')
, ('ComputerB', '2012-04-28 09:30:00')
, ('ComputerB', '2012-04-28 09:32:00')
, ('ComputerB', '2012-04-28 09:44:00')
, ('ComputerB', '2012-04-28 09:56:00')
, ('ComputerB', '2012-04-28 10:25:00')
, ('ComputerA', '2012-04-28 12:25:00')
, ('ComputerC', '2012-04-28 12:30:00')
, ('ComputerC', '2012-04-28 12:35:00')
, ('ComputerC', '2012-04-28 12:45:00')
, ('ComputerC', '2012-04-28 12:55:00')

; WITH a as ( --Initial row count
    select *, r=ROW_NUMBER()OVER(PARTITION BY Computer ORDER BY VisitDate)
    FROM compVisits
)
, b as ( -- gaps >60 minutes
    SELECT a1.Computer, a1.VisitDate
    FROM a a1
    INNER JOIN a a2 ON a1.Computer=a2.Computer AND (a1.r+1)=a2.r
    AND DATEDIFF(MINUTE,a1.VisitDate,a2.VisitDate)>60
    UNION
    SELECT a2.Computer, a2.VisitDate
    FROM a a1
    INNER JOIN a a2 ON a1.Computer=a2.Computer AND (a1.r+1)=a2.r
    AND DATEDIFF(MINUTE,a1.VisitDate,a2.VisitDate)>60
)
-- at least one visit
SELECT a1.Computer, a1.VisitDate
FROM a a1
WHERE r=1
AND NOT EXISTS(SELECT 1 FROM b WHERE Computer=a1.Computer)

UNION

-- gaps >60 minutes
SELECT * FROM b
ORDER BY VisitDate

Result:

enter image description here

share|improve this answer
    
I believe that the INNER JOIN will remove all computers where only 1 visit has been recorded. –  brian Apr 28 '12 at 19:29

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