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Clearly, when GROUP BY clause used, columns that are not aggregate function should be part of the group by clause. The problem here is, I cannot contain HTTPADDRESS & DATEENTERED columns in GROUP BY clause. Also, I dont know a function that will give me the latest entries of all.

edit: I use sql-server. I would use LAST function if I were using access.

SQL = "SELECT VISITORIP, HTTPADDRESS, DATEENTERED"
SQL = SQL & " FROM STATS"
SQL = SQL & " WHERE DATEENTERED BETWEEN '" & OnlineTime & "' AND '" & NOW() & "'"
SQL = SQL & " GROUP BY VISITORIP"
SQL = SQL & " ORDER BY DATEENTERED DESC"
Set objOnVisitors = objConn.Execute(SQL)
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1 Answer 1

up vote 13 down vote accepted

You have to self-join back:

WITH LASTVISIT AS (
    SELECT VISITORIP, MAX(DATEENTERED) AS DATEENTERED
    FROM STATS
    WHERE DATEENTERED BETWEEN @STARTTIME AND @ENDTIME
    GROUP BY VISITORIP
)
SELECT STATS.VISITORIP, STATS.HTTPADDRESS, STATS.DATEENTERED
FROM STATS
INNER JOIN LASTVISIT
    ON LASTVISIT.VISITORIP = STATS.VISITORIP
    AND LASTVISIT.DATEENTERED = STATS.DATEENTERED
ORDER BY STATS.DATEENTERED DESC

Note, this assumes a given VISITORIP will have a unique maximum DATEENTERED in the range.

share|improve this answer
    
What if I use MAX on HTTPADDRESS and DATEENTERED directly? –  Efe Jul 11 '09 at 16:42
    
Potentially more incorrect than if the IP has two visits on the same exact datetime which is their last. MAX(HTTPADDRESS) and MAX(DATEENTERED) are potentially independently maximum over the group. For instance, if the user visits abc.com/page2.htm and then abc.com/page1.htm, the max address will be the first page, but the max time will be the second visit. –  Cade Roux Jul 11 '09 at 16:55
    
+1 not because this directly solved my problem, but the self join idea sparked another idea for me to solve my problem. –  Ryan Rodemoyer May 3 '12 at 20:37

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