用一条sql语句查询出所有课程都大于80分的学生名单:
| name | cource | score |
| 张三 | 语文 | 81 |
| 张三 | 数学 | 75 |
| 李四 | 语文 | 76 |
| 李四 | 数学 | 90 |
| 王五 | 语文 | 81 |
| 王五 | 数学 | 100 |
| 王五 | 英语 | 90 |
1 SET FOREIGN_KEY_CHECKS=0; 2 3 -- ---------------------------- 4 -- Table structure for grade 5 -- ---------------------------- 6 DROP TABLE IF EXISTS `grade`; 7 CREATE TABLE `grade` ( 8 `name` varchar(255) NOT NULL, 9 `class` varchar(255) NOT NULL, 10 `score` tinyint(4) NOT NULL 11 ) ENGINE=InnoDB DEFAULT CHARSET=utf8mb4; 12 13 -- ---------------------------- 14 -- Records of grade 15 -- ---------------------------- 16 INSERT INTO `grade` VALUES ('张三', '语文', '81'); 17 INSERT INTO `grade` VALUES ('张三', '数学', '75'); 18 INSERT INTO `grade` VALUES ('李四', '语文', '76'); 19 INSERT INTO `grade` VALUES ('李四', '数学', '90'); 20 INSERT INTO `grade` VALUES ('王五', '语文', '81'); 21 INSERT INTO `grade` VALUES ('王五', '数学', '100'); 22 INSERT INTO `grade` VALUES ('王五', '英语', '90'); 23 SET FOREIGN_KEY_CHECKS=1;
查询每门课都大于80分的同学的姓名:
1 select distinct name from grade where name not in (select distinct name from grade where score<=80);
还有一种简单的写法:
1 select name from grade group by name having min(score)>80;
查询平均分大于80的学生名单:
1 select name from ( 2 select count(*) t, sum(score) num, name from grade group by name 3 ) as a where a.num>80*t;
也有一种简单的写法:
1 select name, avg(score) as sc from grade group by name having avg(score)>80;