目录
1.学生表
2.一道SQL语句面试题,关于group by表内容:
3.表中有A B C三列,用SQL语句实现:当A列大于B列时选择A列否则选择B列,当B列大于C列时选择B列否则选择C列
4.
5.姓名:name 课程:subject 分数:score 学号:stuid
1.计算每个人的总成绩并排名(要求显示字段:姓名,总成绩)
2.计算每个人的总成绩并排名(要求显示字段: 学号,姓名,总成绩)
3.计算每个人单科的最高成绩(要求显示字段: 学号,姓名,课程,最高成绩)
4.计算每个人的平均成绩(要求显示字段: 学号,姓名,平均成绩)
5.列出各门课程成绩最好的学生(要求显示字段: 学号,姓名,科目,成绩)
6.列出各门课程成绩最好的两位学生(要求显示字段: 学号,姓名,科目,成绩)
7.统计如下:学号 姓名 语文 数学 英语 总分 平均分
8.列出各门课程的平均成绩(要求显示字段:课程,平均成绩)
9.列出数学成绩的排名(要求显示字段:学号,姓名,成绩,排名)
10.列出数学成绩在2-3名的学生(要求显示字段:学号,姓名,科目,成绩)
11.求出李四的数学成绩的排名
12.统计如下:课程 不及格(0-59)个 良(60-80)个 优(81-100)个
13.统计如下:数学:张三(50分),李四(90分),王五(90分),赵六(76分)
14.计算科科及格的人的平均成绩
总结
(学生id,姓名,性别,分数)student(s_id,name,sex,score)
班级表(班级id,班级名称)class(c_id,c_name)
学生班级表(班级id,学生id)student_class(s_id,c_id)
1.查询一班得分在80分以上的学生
2.查询所有班级的名称,和所有版中女生人数和女生的平均分
题解:
1 .select * from student where score> 80 and s_id
in ( select sid from student_class where c_id=( select c_id from class where c_name= '一班' ))
2 .select c.c_name,女生人数= sum (s.s_id),平均分= avg (s.score) from classes c
inner join student_class sc on sc.c_id=c.c_id
inner join students s on s.s_id=sc.s_idwhere s.sex= '女' group by c.c_name
info 表
date result
2005-05-09 win
2005-05-09 lose
2005-05-09 lose
2005-05-09 lose
2005-05-10 win
2005-05-10 lose
2005-05-10 lose
如果要生成下列结果, 该如何写sql语句?
win lose
2005-05-09 2 2
2005-05-10 1 2
答案:
( 1 ) select date , sum ( case when result = "win" then 1 else 0 end ) as "win",
sum ( case when result = "lose" then 1 else 0 end ) as "lose" from info group by date ;
( 2 ) select a.date, a.result as win, b.result as lose from
( select date , count ( result ) as result from info where result = "win" group by date ) as a
join
( select date , count ( result ) as result from info where result = "lose" group by date ) as b
on a.date = b.date; 2.学生成绩表(stuscore):
select ( case when a > b then a else b end ), ( case when b > c then b else c end ) from table ;
|
张三 数学 89 1
张三 语文 80 1
张三 英语 70 1
李四 数学 90 2
李四 语文 70 2
李四 英语 80 2
题解:
答案:select name,sum(score) as allscore from stuscore group by name order by allscore
答案:select distinct t1.name,t1.stuid,t2.allscore from stuscore t1,( select stuid,sum(score) as allscore from stuscore group by stuid)t2where t1.stuid=t2.stuidorder by t2.allscore desc
答案:select t1.stuid,t1.name,t1.subject,t1.score from stuscore t1,(select stuid,max(score) as maxscore from stuscore group by stuid) t2where t1.stuid=t2.stuid and t1.score=t2.maxscore
答案:select distinct t1.stuid,t1.name,t2.avgscore from stuscore t1,(select stuid,avg(score) as avgscore from stuscore group by stuid) t2where t1.stuid=t2.stuid
答案:select t1.stuid,t1.name,t1.subject,t2.maxscore from stuscore t1,(select subject,max(score) as maxscore from stuscore group by subject) t2where t1.subject=t2.subject and t1.score=t2.maxscore
答案:select distinct t1.* from stuscore t1 where t1.id in (select top 2 stuscore.id from stuscore where subject = t1.subject order by score desc) order by t1.subject
答案:select stuid as 学号,name as 姓名,sum(case when subject=’语文’ then score else 0 end) as 语文,sum(case when subject=’数学’ then score else 0 end) as 数学,sum(case when subject=’英语’ then score else 0 end) as 英语,sum(score) as 总分,(sum(score)/count(*)) as 平均分from stuscoregroup by stuid,name order by 总分desc
答案:select subject,avg(score) as avgscore from stuscoregroup by subject
答案:
declare @tmp table(pm int,name varchar(50),score int,stuid int)
insert into @tmp select null,name,score,stuid from stuscore where subject=’数学’ order by score desc
declare @id int
set @id=0;
update @tmp set @id=@id+1,pm=@id
select * from @tmp
oracle:
select DENSE_RANK () OVER(order by score desc) as row,name,subject,score,stuid from stuscore where subject=’数学’order by score desc
ms sql(最佳选择)
select (select count(*) from stuscore t1 where subject =’数学’ and t1.score>t2.score)+1 as row ,stuid,name,score from stuscore t2 where subject =’数学’ order by score desc
答案:select t3.* from(select top 2 t2.* from (select top 3 name,subject,score,stuid from stuscore where subject=’数学’order by score desc) t2 order by t2.score) t3 order by t3.score desc
答案:
declare @tmp table(pm int,name varchar(50),score int,stuid int)insert into @tmp select null,name,score,stuid from stuscore where subject=’数学’ order by score descdeclare @id intset @id=0;update @tmp set @id=@id+1,pm=@idselect * from @tmp where name=’李四’
答案:select subject, (select count(*) from stuscore where score<60 and subject=t1.subject) as 不及格,(select count(*) from stuscore where score between 60 and 80 and subject=t1.subject) as 良,(select count(*) from stuscore where score >80 and subject=t1.subject) as 优from stuscore t1 group by subject
答案:
declare @s varchar(1000)set @s=”select @s =@s+’,’+name+'(‘+convert(varchar(10),score)+’分)’ from stuscore where subject=’数学’ set @s=stuff(@s,1,1,”)print ‘数学:’+@s
答案:select distinct t1.stuid,t2.avgscore from stuscore t1,(select stuid,avg(score) as avgscore from stuscore group by stuid ) t2,(select stuid from stuscore where score<60 group by stuid) t3 where t1.stuid=t2.stuid and t1.stuid!=t3.stuid;
select name,avg(score) as avgscore from stuscore s where (select sum(case when i.score>=60 then 1 else 0 end) from stuscore i where i.name= s.name)=3 group by name
1. 用一条SQL 语句 查询出每门课都大于80 分的学生姓名
name kecheng fenshu
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
A: select distinct name from table where name not in (select distinct name from table where fenshu<=80)
select name from table group by name having min(fenshu)>80
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