Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have two tables:

product (idproduct, name, description, tax)

product_storage (idstorage, idproduct, added, quantity, price)

for each product it could be different price and oldest are "first-to-sell"

for example in storage I have:

1, 1, 2010-01-01,  0, 10.0
2, 1, 2010-01-02,  0, 11.0
3, 1, 2010-01-03, 10, 12.0
4, 2, 2010-01-04,  0, 12.0
5, 2, 2010-01-05, 10, 11.0
6, 2, 2010-01-06, 10, 13.0
7, 3, 2010-01-07, 10, 14.0
8, 3, 2010-01-08, 10, 16.0
9, 3, 2010-01-09, 10, 13.0

and now I need to select all products with current price, which is in the oldest row in product_storage where quantity > 0 for each product:

SELECT p.idproduct, p.name, p.tax,
       (SELECT s.price
        FROM product_storage s
        WHERE s.idproduct=p.idproduct AND s.quantity > 0
        ORDER BY s.added ASC
        LIMIT 1) AS price
FROM product p;

works fine, but it doesn't when I want to calculate price with tax in query:

SELECT p.idproduct, p.name, p.tax,
       (SELECT s.price
        FROM product_storage s
        WHERE s.idproduct=p.idproduct AND s.quantity > 0
        ORDER BY s.added ASC
        LIMIT 1) AS price,
        (price * (1 + tax/100)) AS price_with_tax
FROM product p;

MySQL says:

Unknown column 'price' in 'field list'

Update

Using subquery as a table almost solves problem (look at answers) - the only question now is how to select oldest rows from product_storage for multiple foreign keys (one and only one for each idproduct).

Update 2

Thanks to cmptrgeekken for great solution :))

share|improve this question

5 Answers 5

up vote 1 down vote accepted

The reason you're getting the price doesn't exist error is because you can't reference aliased columns in the column list. To fix this, store the price value in a user-defined variable and reference that, like so:

SELECT p.idproduct, p.name, p.tax,
       @price := (SELECT s.price
        FROM product_storage s
        WHERE s.idproduct=p.idproduct AND s.quantity > 0
        ORDER BY s.added ASC
        LIMIT 1) AS price,
        (@price * (1 + tax/100)) AS price_with_tax
FROM product p;
share|improve this answer
    
superb - thanks a lot :) –  Marek Mar 9 '10 at 16:18

This might work better using the subquery as a table:

SELECT p.idproduct, p.name, p.tax, s.price, (s.price * (1 + p.tax/100)) as price_with_tax
FROM product p
INNER JOIN (SELECT idproduct, price
        FROM product_storage
        WHERE quantity > 0) s
ON p.idproduct = s.idproduct
INNER JOIN (SELECT idproduct, MIN(added) min
        FROM product_storage
        GROUP BY idproduct) f
ON s.idproduct = f.idproduct AND s.added = f.min

Edit: Updated because tax is in the other table, so I had to move that calculation's location.

Edit 2: OK, changed things around again to try to filter the product_storage table properly.

share|improve this answer
    
"Unknown column 'tax' in 'field list'" –  Marek Mar 9 '10 at 14:31
    
maybe I should denormalize tables and repeat tax data in product_storage? –  Marek Mar 9 '10 at 14:33
    
@Marek: Oh whoops, tax is in the other table isn't it. –  Powerlord Mar 9 '10 at 15:12
    
yeah... but still it's not ok - with LIMIT 1 subquery is a table with 1 row and without it has all rows WHERE quantity > 0... in particular it has more than 1 row for each product (with different prices) - look at my first answer to this question ;) –  Marek Mar 9 '10 at 15:50
    
@Marek: I should have thought of that. It's possible to fix it, but the query may become more complicated. –  Powerlord Mar 9 '10 at 16:03

this works almost fine:

SELECT p.idproduct, p.name, p.tax,
       sub.price, (sub.price * (1+tax/100)) as price_with_tax
FROM product p,
    (SELECT s.idproduct, s.price
     FROM product_storage s
     WHERE quantity > 0
     ORDER BY added ASC) sub
WHERE p.idproduct=sub.idproduct

but all rows from product_storage are returned for each product :/

share|improve this answer

As far as MySQL is concerned, that last occurrence of the word "price" is referring to a field in Product p, hence the error. You need to refer again to the aliased subquery right above that:

SELECT p.idproduct, p.name, p.tax,
       (SELECT s.price
        FROM product_storage s
        WHERE s.idproduct=p.idproduct AND s.quantity > 0
        ORDER BY s.added ASC
        LIMIT 1) AS price,
        (       (SELECT s.price
        FROM product_storage s
        WHERE s.idproduct=p.idproduct AND s.quantity > 0
        ORDER BY s.added ASC
        LIMIT 1) * (1 + tax/100)) AS price_with_tax
FROM product p;
share|improve this answer
    
there isn't any 'price' field in 'product' table - are you sure that this repeated subquery isn't calculated again? –  Marek Mar 9 '10 at 14:28
    
That was the point that I failed to make clear in my post. You can't use your aliased field to calculate the tax value, because MySQL is looking for a 'price' column in the Product table. So what I wrote explicitly asks for the calculated value from Product_Storage again. At any rate, I think PowerLord's answer is altogether better (go figure.) –  LesterDove Mar 9 '10 at 14:35

First, you want to get the lowest storage id for the product(s).

SELECT idproduct, MIN(idstorage) idstorage FROM product_storage 
WHERE quantity>0 AND idproduct IN (#, #, ...)
GROUP BY idstorage

idstorage, idproduct, added, quantity, price Then you can join on that query and the product_storage table (again), using the min storage ID, to get your product info with the correct pricing info.

SELECT idproduct, name, description, tax, ps.price, ps.quantity,
FROM product AS p
JOIN 
(SELECT idproduct, MIN(idstorage) idstorage FROM product_storage 
WHERE quantity>0 AND idproduct IN (#, #, ...)
GROUP BY idstorage) AS min_id
ON p.idproduct=min_id.idproduct
RIGHT JOIN product_storage AS ps ON ps.idstorage=min_id.idstorage
WHERE idproduct IN (#, #, ...)
share|improve this answer
    
"... idproduct IN (#, #, ...) ..." - idproduct isn't specified - for example I take newest products, products from category X etc. –  Marek Mar 9 '10 at 17:49

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.