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I have a problem with mysql alias.

I have this query:

SELECT (`number_of_rooms`) AS total, id_room_type, 
     COUNT( fk_room_type ) AS reservation , 
     SUM(number_of_rooms - reservation) AS result
FROM room_type
    LEFT JOIN room_type_reservation 
         ON id_room_type = fk_room_type
WHERE  result > 10
GROUP BY id_room_type

My problem start from SUM, cannot recognize reservation and then i want to use the result for a where condition. Like (where result > 10)

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up vote 1 down vote accepted

Not 100% but to the best of my knowledge you cant use aliases in your declarations, and thats why you are getting the column issue. Try this:

 SELECT (`number_of_rooms`) AS total, id_room_type,
     COUNT( fk_room_type ) AS reservation , 
     SUM(number_of_rooms - COUNT( fk_room_type ) ) AS result
 FROM room_type
     LEFT JOIN room_type_reservation 
         ON id_room_type = fk_room_type
 GROUP BY id_room_type
 Having SUM(number_of_rooms - COUNT( fk_room_type ) ) > 10
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Thanks for your answer but i have ready do this and returns me #1111 - Invalid use of group function – John Memb Jun 8 '13 at 17:47
    
Lets see, one more try, it might be a bracketing issue. SELECT ('number_of_rooms') AS total, id_room_type, COUNT( fk_room_type ) AS reservation , SUM(number_of_rooms) - COUNT( fk_room_type ) AS result FROM room_type LEFT JOIN room_type_reservation ON id_room_type = fk_room_type GROUP BY id_room_type Having SUM(number_of_rooms) - COUNT( fk_room_type ) > 10 – mee Jun 8 '13 at 17:53
    
Thanks again but the results its not correct total id_room_type reservation result 20 10 201 3819 200 11 10 1990 10 22 100 900 22 25 0 22 – John Memb Jun 8 '13 at 17:59
    
can you show a screenshot of your tables structures ? – mee Jun 8 '13 at 18:20
    
Thanks for your time but i find the solution with nested select SELECT ( number_of_rooms ) AS total, id_room_type, c.reservation, SUM( number_of_rooms - c.reservation ) AS result FROM room_type LEFT JOIN ( SELECT number_of_rooms AS moutsela, fk_room_type, COUNT( fk_room_type ) AS reservation FROM room_type LEFT JOIN room_type_reservation ON id_room_type = fk_room_type GROUP BY id_room_type )c ON id_room_type = fk_room_type GROUP BY id_room_type LIMIT 0 , 30 but i ll try to find the way to optimize my query – John Memb Jun 8 '13 at 18:34

To apply a predicate (filter condition) on the result of an aggregate function, you use a Having clause. Where clause expressions are only applicable to intermediate result sets created prior to any aggregation.

 SELECT (`number_of_rooms`) AS total, id_room_type,
     COUNT( fk_room_type ) AS reservation , 
     SUM(number_of_rooms - reservation) AS result
 FROM room_type
     LEFT JOIN room_type_reservation 
         ON id_room_type = fk_room_type
 GROUP BY id_room_type
 Having SUM(number_of_rooms - reservation) > 10
share|improve this answer
    
Thanks for your answer but SUM(number_of_rooms - reservation) AS result returns me #1054 - Unknown column 'reservation' in 'field list' – John Memb Jun 8 '13 at 17:28

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