MySQL进阶挑战:解开语言理解的密码🔍,想要证明你是MySQL语句的高手吗?来试试这道精选的单选题,看看你对SQL语言的理解有多深!🌟 DATABASE MASTER准备好了,你准备好了吗?🎯
问题:哪个SQL语句用于在表中查找所有年龄大于30岁的用户?
A) SELECT * FROM users WHERE age > 30 ;
B) SELECT * FROM users WHERE age = 30+ ;
C) SELECT * FROM users WHERE age >= 30 Years;
D) SELECT * FROM users WHERE age > 30 Years Old;
问题:以下哪条语句能正确返回名字以 A 开头并且性别为 F 的用户?
A) SELECT * FROM users WHERE name LIKE A% AND gender = Male ;
B) SELECT * FROM users WHERE name LIKE A% OR gender = Female ;
C) SELECT * FROM users WHERE name LIKE A% & AND gender = Female ;
D) SELECT * FROM users WHERE name LIKE A% && gender = Female ;
问题:你有两个表,users和orders,如何通过JOIN获取每个用户的订单总数?
A) SELECT users.name, COUNT(orders.id) FROM users JOIN orders ON users.id = orders.user_id;
B) SELECT users.name, SUM(orders.quantity) FROM users INNER JOIN orders;
C) SELECT users.name, GROUP_CONCAT(orders.id) FROM users JOIN orders;
D) SELECT users.name, COUNT(DISTINCT orders.id) FROM users LEFT JOIN orders;
问题:找出所有销售额超过平均值的产品ID?
A) SELECT product_id FROM products WHERE sales > (SELECT AVG(sales) FROM products);
B) SELECT product_id FROM products WHERE sales > ALL(SELECT AVG(sales) FROM products);
C) SELECT product_id FROM products WHERE sales > MAX(SELECT AVG(sales) FROM products);
D) SELECT product_id FROM products WHERE sales > MIN(SELECT AVG(sales) FROM products);
问题:获取每个部门员工的平均工资,按部门名称降序排列?
A) SELECT department, AVG(salary) FROM employees GROUP BY department ORDER BY department ASC;
B) SELECT department, AVG(salary) FROM employees GROUP BY department ORDER BY department DESC;
C) SELECT department, MAX(salary) FROM employees GROUP BY department ORDER BY department ASC;
D) SELECT department, MIN(salary) FROM employees GROUP BY department ORDER BY department DESC;
现在,是时候展示你的MySQL实力了!正确答案就在你心中,快来分享你的答案,看是否能解锁下一个数据库挑战!🏆
记住,学习永无止境,掌握SQL就像掌握一门魔法语言,每一次正确的查询都是你通往数据海洋的一步。祝你好运,MySQL大师!🔮📚