sql中集合的概念和数学中集合的概念是一致的,把sql中的表和视图理解为集合,从集合的角度去看待表和视图的操作就很好理解了。下面看习题:

练习题5.1

找出 product 和 product2 中售价高于 500 的商品的基本信息。
解答:
SELECT * FROM product WHERE sale_price > 500
UNION
SELECT * FROM product2 WHERE sale_price > 500;

练习题5.2

借助对称差的实现方式, 求 product 和 product2 的交集。
解答:
SELECT *
FROM product
WHERE product_id IN (SELECT product_id FROM product2)
UNION
SELECT *
FROM product2
WHERE product_id IN (SELECT product_id FROM product);

练习题5.3

每类商品中售价最高的商品都在哪些商店有售?
解答:
SELECT product_type, product_name, shop_name, sale_price
FROM product p1
INNER JOIN shopproduct sp ON p1.product_id = sp.product_id
WHERE (product_type, sale_price) IN (
SELECT product_type, max(sale_price)
FROM product
GROUP BY product_type)
ORDER BY product_type

练习题5.4

分别使用内连结和关联子查询每一类商品中售价最高的商品。
解答:
1,使用内连结:
SELECT p1.product_type,p1.product_name,p1.sale_price
FROM product p1
INNER JOIN(
SELECT product_type,MAX(sale_price) AS sale_price
FROM product
GROUP BY product_type
) a
ON p1.product_type = a.product_type
AND p1.sale_price = a.sale_price
ORDER BY product_type
2,使用关联子查询:
SELECT product_type, product_name, sale_price
FROM product p1
WHERE (product_type, sale_price) IN (
SELECT product_type, max(sale_price)
FROM product
GROUP BY product_type)
ORDER BY product_type

练习题5.5

用关联子查询实现:在 product 表中,取出 product_id, product_name, sale_price, 并按照商品的售价从低到高进行排序、对售价进行累计求和。
解答:
SELECT product_id, product_type, product_name, sale_price,
(SELECT sum(sale_price)
FROM product p2
WHERE p1.sale_price > p2.sale_price
OR p1.sale_price = p2.sale_price
) AS total_sale_price
FROM product p1
ORDER BY sale_price;

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