SQL查询面试题,会这些基本够用了
写在前面
我已经记不起来,有多久没更新文章了。
5月中旬我还在上班,中旬以后一系列发生的事情,真的远远超出了可承受范围,只能硬着头皮面对!
我是谁,我应该是谁,又能怎样,只能向前·····
数据库实例
class表
course表
score表
student表
teacher表
实际语句
1、查询所有的课程的名称以及对应的任课老师姓名
# 自链接
SELECT c.name,t.name FROM course c,teacher t WHERE c.teacher_id=t.id
# 内连接
SELECT course.name,teacher.name FROM course
INNER JOIN teacher ON course.teacher_id=teacher.id
结果:
2、查询学习课程"数据结构"比课程"java语言"成绩低的学生的学号;
# 内连接
SELECT shuju.student_id FROM
(SELECT score.course_id,
score.student_id,
score.mark
FROM score
INNER JOIN course
ON score.course_id=course.id
WHERE course.name='数据结构') AS shuju
INNER JOIN
(SELECT score.course_id,
score.student_id,
score.mark
FROM score
INNER JOIN course
ON score.course_id=course.id
WHERE course.name='java') AS java
ON shuju.student_id=java.student_id
WHERE shuju.mark<java.mark
# 自连接
SELECT shuju.student_id
FROM
(SELECT s.course_id,
s.student_id,
s.mark
FROM score s, course c
WHERE c.`name`='数据结构'
AND s.course_id=c.id) shuju,
(SELECT s.course_id,
s.student_id,
s.mark
FROM score s, course c
WHERE c.`name`='java'
AND s.course_id=c.id) java
WHERE shuju.student_id=java.student_id
AND shuju.mark<java.mark
结果:
3、查询平均成绩大于65分的同学的id和平均成绩(保留两位小数)
SELECT score.student_id,
round(AVG(score.mark),2) AS avgScore
FROM score
GROUP BY score.student_id
HAVING avgScore>65
结果:
4、查询平均成绩大于65分的同学的姓名和平均成绩(保留两位小数)
SELECT student.`name`,
ROUND(AVG(score.mark),2) AS avgScore
FROM score
INNER JOIN student
ON student.id=score.student_id
GROUP BY score.student_id
HAVING avgScore>65
结果:
5、查询所有同学的姓名、选课数、总成绩
SELECT student.name AS '名字', COUNT(score.course_id) AS '选课数',SUM(score.mark) AS '总成绩'FROM score
INNER JOIN student
ON student.id=score.student_id
GROUP BY student_id
结果:
6、查询没学过"大牛"老师课的同学的姓名
select student.name from student
where id not in(select student_id from score where course_id in(select course.id from course inner join teacher
on course.teacher_id = teacher.id where teacher.name='大牛'))
结果:
7、查询学过"大牛"老师所教的全部课程的同学的姓名
select student.name from student
where id in(select student_id from score where course_id in(3,3))
结果:
8、查询所有课程成绩小于60分的同学的姓名
select student.name from student inner join score on student.id = score.student_id
where score.mark<60 group by score.student_id
结果:
9、查询选修了全部课程的学生姓名
select student.name from student
where id in (select score.student_id from score group by score.student_id having count(1)=(select count(1) from course))
结果:
10、查询至少有一门课程与"小草"同学所学课程相同的同学姓名
SELECT student.name
FROM student
WHERE id IN
(SELECT student_id
FROM score
WHERE course_id IN
(SELECT course_id
FROM score
WHERE student_id=5))
AND student.name!='小草'
结果:
11、查询至少有一门课程和"小草"同学所学课程不相同的同学姓名
select student.name from student
where id in (select student_id from score
where course_id not in (select course_id from score
where student_id=5)) and student.name!='小草'
结果:
12、查询各科成绩最高和最低的分:以如下形式显示:课程id,最高分,最低分
select course_id as '课程id',max(mark) as '最高分',min(mark) as '最低分'from score group by course_id
结果:
13、查询只选修了一门课程的学生的学号和姓名
# 感觉有点low,但是能查出来
select student.id as '学号',student.name as '姓名'from student inner join score on student.id = score.student_id
where student.id=(select student_id from score group by student_id having count(course_id)=1)
# 这个好一些
select student.id as '学号',student.name as '姓名'from student inner join score on student.id = score.student_id
group by student_id having count(course_id)=1
结果:
14、查询每门课程的平均成绩,结果按平均成绩升序排列,平均成绩相同时,按课程id降序排列
select course.id as '课程id',course.name AS "课程名称",avg(mark) as "平均成绩" from course
inner JOIN score on course.id = score.course_id
group by course_id order by avg(mark) ,"平均成绩",course_id desc
结果:
15、按平均成绩倒序显示所有学生的"数据库原理"、“java语言”、"C语言"三门的课程成绩,
按如下形式显示: 学生id、数据库原理、java语言、C语言、课程数、平均分;(高级应用较难)
select sc.student_id as '学生id',
(select mark from score inner join course on course.id=score.course_id where course.name='数据库原理' and score.student_id=sc.student_id) as '数据库原理',
(select mark from score inner join course on course.id=score.course_id where course.name='java' and score.student_id=sc.student_id) as 'java',
(select mark from score inner join course on course.id=score.course_id where course.name='C语言' and score.student_id=sc.student_id) as 'C语言',
count(course_id) as '课程数',
round(avg(sc.mark),2) as '平均分'
from score as sc group by sc.student_id
order by avg(sc.mark) desc
结果:
写在最后
整个数据库这部分的复习,早在近一个月前就开始了。
在做了两道题后,就遇到了各种事情,就被搁置了,差点被遗忘了。。。
今天有时间,接着把学习的感觉续上,总体下来,算是初步复习了下sql
的一些常用查询操作,就一个测试仔来说,我个人感觉这些都能写正确写出来,真的很厉害,我也是用了近6小时呢。
不管遇到了什么难事,学习、跑步都不能停(我又胖了5斤,好扎心).....
明天继续我的5公里,加油!
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