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I'm creating an SQL statement that will return a list of products and the quantity of each one of them I can find in every store.

The structure of my table (with some sample data) is as follows:

productID - size - color - stock - storeID  
1         - S    - RED01 - 1     - BCN   
1         - S    - RED01 - 3     - MAD   
2         - S    - YEL02 - 0     - BCN   
2         - S    - YEL02 - 2     - MAD   
1         - S    - RED01 - 1     - BCN2  

I need a result similar to this one:

productID - size - stockBCN (BCN + BCN2) - stockMAD  
1         - S    - 2                     - 3  
2         - S    - 0                     - 2

I'm using this statement, and works fine just for an unique product

SELECT DISTINCT prodID, size,
    (SELECT SUM(stock) FROM stocks WHERE storeID IN ('BCN','BCN2') AND prodID = 1 AND size = 'S' AND color = 'RED01' GROUP BY prodID, size, color) AS stockBCN,
    (SELECT SUM(stock) FROM stocks WHERE storeID = 'MAD' AND prodID = 1 AND size = 'S' AND color = 'RED01' GROUP BY prodID, size, color) AS stockMAD,
FROM stocks WHERE storeID IN ('BCN','BCN2','MAD')
AND prodID = (1) AND size = 'S' AND color = 'RED01'

How can I change it to make it work for all the rows in the table?

share|improve this question
up vote 7 down vote accepted

You probably want to leverage the GROUP BY clause instead of going with DISTINCT there, i.e.:

SELECT productId, Size,
SUM(CASE WHEN storeID IN ('BCN', 'BCN2') THEN stock ELSE 0 END) AS stockBCN,
SUM(CASE WHEN storeID = 'MAD' THEN stock ELSE 0 END) AS stockMAD
FROM stocks
GROUP BY productId, Size
share|improve this answer
    
this solution will perform much better – Kaii Feb 15 '12 at 18:27
    
This is exactly what I needed. Thanks! – Cpt. Awesome Feb 16 '12 at 7:29

IMO prime time to use a case statement

Select productID, Size, Color,
SUM(CASE WHEN STOREID IN ('BCN','BCN2') THEN stock else 0 end) as StockBCN,
SUM(Case WHEN STOREID = 'MAD') THEN stock else 0 end) as StockMad
FROM STOCKS 
Where storeID in ('BCN', 'BCN2','MAD')
GROUP BY productID, Size, Color
share|improve this answer

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