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So I have a table that holds two different dates and I am selecting the minutes difference between:

    select customerID, customers.telNumber,
   sum(round((enddate - startdate) * 1440)) over (partition by telNumber) total_mins
    from table;

And after that I want to get only the top 5 that have the highest amount of minutes, something like

     rank() over (partition by total_mins order by total_mins)

How would one go about doing that?

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2 Answers 2

up vote 1 down vote accepted

Something like this should work for you:

SELECT * 
FROM (
  SELECT customerId, telNumber, rank() over (order by total_mins) rnk
  FROM (
    SELECT customerId,telNumber,
     sum(round((enddate - startdate) * 1440)) over (partition by telNumber) total_mins
    FROM YourTable
  ) t
) t
WHERE rnk <= 10

This will get you ties, so it could return more than 10 rows. If you only want to return 10 rows, use ROW_NUMBER() instead of RANK().

SQL Fiddle Demo

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Thank you so much, just what I needed :) –  junkystu Feb 27 '13 at 18:03
    
@junkystu -- np, glad we could help! –  sgeddes Feb 27 '13 at 18:04

I would add to sgeddes's example that the combination of rank() and row_number() is the best as rank() may return the same rank values for all or few rows. But row_number() will always be different. I'd use row_number() in Where clause, not rank().

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