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SQL server 2008

Hello

here is my query which returns the result

SELECT * FROM Rooms
WHERE RoomID in 
(SELECT t1.RoomId FROM 
(Rooms t1 INNER JOIN 
(SELECT RoomID, SUM(quantity) AS QTY FROM Room_Item GROUP BY RoomID
HAVING SUM(Quantity) = 0) t2 ON t1.RoomID = t2.RoomID))

above written query will return me the roomid of the rooms which dosen't have any items in it (quantity = 0), but now i want to filter out the result by buildings,

i got the list of room for specific building as below

select roomid from rooms where buildingblockid in (select buidingblockid from buildingblock where buildigID = 1)

so my query will be

return the roomid from rooms table where allocated items are 0 and filter out room by building number = 1

tables structure is as below - ONLY ESSENTIAL FIELDS ARE SHOWN

rooms => roomid(PK), buildingblockID(FK), roomname
room_item => roomitemid(PK), roomid(FK), itemid(FK), quantity
item => itemid(PK), itemname
buildingblock => buildingblockid(PK), buildingID(FK)
building => buildingID(PK), buildingName
share|improve this question

1 Answer 1

up vote 1 down vote accepted

You could create derived table to find rooms having no items, and join it to buildingWiseRoom to filter building one.

select buildingWiseRoom.roomID
from buildingWiseRoom
inner join
(
   select RoomID
     from Room_Item 
    group by RoomID 
   having SUM(Quantity) = 0
) itemlessRooms
  on buildingWiseRoom.roomID = itemlessRooms.roomID
where buildingWiseRoom.buildingID = 1

UPDATE as table structure changed:

select rooms.roomID
from rooms
inner join buildingblock 
   on rooms.buildingblockID = buildingblock.buildingblockID
inner join
(
   select RoomID
     from Room_Item 
    group by RoomID 
   having SUM(Quantity) = 0
) itemlessRooms
  on rooms.roomID = itemlessRooms.roomID
where buildingblock.buildingID = 1
share|improve this answer
    
hi, @Nikola, I've Updated the table structure for better understanding with new added table, can u have a look at it ? –  IT ppl Mar 26 '12 at 8:39
    
I've updated my answer. –  Nikola Markovinović Mar 26 '12 at 8:47
    
it worked great, thanks a lot :) –  IT ppl Mar 26 '12 at 8:54

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