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We are now doing embedded mysql queries for a small local website. I am wondering how I might do this query "Ask the user for a price and find the PC whose price is closest to the desired price. Print the maker, model number, and speed of the PC."

How might I find the pc with the price closest to the entered price from the user? I know I need to do a natural join between product and pc, something along these lines

SELECT maker, model, speed FROM 
(SELECT * FROM product NATURAL JOIN pc) AS t1 
WHERE price (is close to) '$p';

Relations:

product(maker, model, type(pc, printer, laptop))
pc(model, price, speed, ram, hd size)
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Set range or will the range be adjustable? –  adam2510 May 16 '12 at 15:10
1  
You could compute ABS(price - $P) as pricedifference, order by pricedifference –  Rup May 16 '12 at 15:12
    
So in my query would be something as such "SELECT maker, model, speed FROM (SELECT * FROM product NATURAL JOIN pc) AS t1 ABS(price - '$p') AS priceDif ORDER BY priceDif;" –  user1311286 May 16 '12 at 15:18
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3 Answers

up vote 1 down vote accepted

Create an offset variable by taking the price and subtracting the inputed price. Make this an absolute (no negatives) then order by this and limit

SELECT product.maker, pc.model, pc.speed, ABS(pc.price - '$p') AS offset FROM pc LEFT JOIN product ON pc.model=product.model ORDER BY offset ASC LIMIT 1
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SELECT maker, model, speed FROM 
( SELECT model FROM pc NATURAL JOIN product )
WHERE price
BETWEEN value1 AND value2;
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You haven't provided very good schema info, so I have assumed that the tables join on the model column.

select p.maker, pc.model, pc.speed
from product p
inner join pc on p.model = pc.model
order by abs(pc.price - '$p')
limit 10

Also, I don't know how to eliminate the product you are comparing from the results list. It would probably be something like:

select p.maker, pc.model, pc.speed
from product p
inner join pc on p.model = pc.model
where pc.model <> '$model'
order by abs(pc.price - '$p')
limit 10
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