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Using AdventureWorks, for example, I want to get a list of all employees and their managers, with the managers having the most subordinates at the top. Easy enough to get the number of reports each manager has by using a GROUP BY, but I want the actual list of their subordinates, on separate rows.

SELECT
  Subordinate.LoginID, Subordinate.Title, Manager.LoginID, Manager.Title
FROM
  HumanResources.Employee Subordinate
  JOIN HumanResources.Employee Manager
    ON Subordinate.ManagerID = Manager.EmployeeID
ORDER BY 
  ??
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Do some managers manage managers? –  Will A May 11 '11 at 23:06

1 Answer 1

up vote 3 down vote accepted

Assuming you are on at least SQL Server 2005 you can use

ORDER BY COUNT(*) OVER (PARTITION BY Manager.LoginID)  DESC

Although I suppose

ORDER BY COUNT(*) OVER (PARTITION BY Manager.LoginID) DESC,  Manager.LoginID

might be better to avoid potentially mingling result rows for managers with tied numbers of subordinates.

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Perfect, just what I was looking for. –  Rob G May 12 '11 at 1:00

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