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I'm using SQL Server 2008 With this table : enter image description here

and i have the following query :

SELECT caller, called, SUM(duration) as duration, 
      dateadd(DAY,0, datediff(day,0, time))as Batch2 ,
      CONVERT(VARCHAR(8), time, 4) AS Batch  
FROM  Calls oc
WHERE caller='somevalue'
GROUP BY called, dateadd(DAY,0, datediff(day,0, time)),
          CONVERT(VARCHAR(8), time, 4),
          caller
ORDER BY duration DESC,called

Now i want to order the query by the amount of rows in the query that contain the same called value, meaning first results will be the called that appeared in most days.

Now the closest i got was using :

order by (select count(called) from Calls where called=oc.called ),
         duration DESC,
         called

But this returns all the appearnces of called in general and not grouped by as my initial query distincts values.

And i can't use OVER() as that will just return the number of rows in general.

This is an example of the output i have for now :

callervalue   somecalledvalue   589 2012-11-21 00:00:00.000 21.11.12
callervalue   somecalledvalue   551 2012-11-20 00:00:00.000 20.11.12
callervalue   somecalledvalue   506 2012-11-22 00:00:00.000 22.11.12

How can i achive this?

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Not having your table structures, nor your data, I'm unable to run your queries. Could you give an example of what the output is from the first query, and how you'd like the output to be? (Or if you're feeling really nice, the above, plus table structures and sample data that matches them) –  Damien_The_Unbeliever Nov 26 '12 at 7:40
    
Damien i edited the question and Kuya, what do you mean? –  eric.itzhak Nov 26 '12 at 7:43
    
what will be your final output? –  John Woo Nov 26 '12 at 7:44
1  
The best you could simply create, insert your table schema, data in SQLFIDDLE makes easy for both parties and along the way you might find your answer yourself. ;-) –  bonCodigo Nov 26 '12 at 7:45
1  
@ChrisBednarski I think this solves it, not sure as it's alot of data that i don't know. submit as answer and i'll mark it. Thanks m8! –  eric.itzhak Nov 26 '12 at 7:52

1 Answer 1

up vote 0 down vote accepted

The answer was posted by Chris Bednarski as a comment :

try COUNT(called) OVER (PARTITION BY called)

Which did the trick.

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