sql试题

原文http://bbs.csdn.net/topics/280002741

表架构

Student(S#,Sname,Sage,Ssex) 学生表 
Course(C#,Cname,T#) 课程表 
SC(S#,C#,score) 成绩表 
Teacher(T#,Tname) 教师表

建表语句

CREATE TABLE student
  (
     s#    INT,
     sname nvarchar(32),
     sage  INT,
     ssex  nvarchar(8)
  ) 

CREATE TABLE course
  (
     c#    INT,
     cname nvarchar(32),
     t#    INT
  ) 

CREATE TABLE sc
  (
     s#    INT,
     c#    INT,
     score INT
  ) 

CREATE TABLE teacher
  (
     t#    INT,
     tname nvarchar(16)
  ) 

插入测试数据语句

insert into Student select 1,N‘刘一‘,18,N‘男‘ union all
 select 2,N‘钱二‘,19,N‘女‘ union all
 select 3,N‘张三‘,17,N‘男‘ union all
 select 4,N‘李四‘,18,N‘女‘ union all
 select 5,N‘王五‘,17,N‘男‘ union all
 select 6,N‘赵六‘,19,N‘女‘ 

 insert into Teacher select 1,N‘叶平‘ union all
 select 2,N‘贺高‘ union all
 select 3,N‘杨艳‘ union all
 select 4,N‘周磊‘

 insert into Course select 1,N‘语文‘,1 union all
 select 2,N‘数学‘,2 union all
 select 3,N‘英语‘,3 union all
 select 4,N‘物理‘,4

 insert into SC
 select 1,1,56 union all
 select 1,2,78 union all
 select 1,3,67 union all
 select 1,4,58 union all
 select 2,1,79 union all
 select 2,2,81 union all
 select 2,3,92 union all
 select 2,4,68 union all
 select 3,1,91 union all
 select 3,2,47 union all
 select 3,3,88 union all
 select 3,4,56 union all
 select 4,2,88 union all
 select 4,3,90 union all
 select 4,4,93 union all
 select 5,1,46 union all
 select 5,3,78 union all
 select 5,4,53 union all
 select 6,1,35 union all
 select 6,2,68 union all
 select 6,4,71

问题

问题:
1、查询“001”课程比“002”课程成绩高的所有学生的学号;
  select a.S# from (select s#,score from SC where C#=‘001‘) a,(select s#,score
  from SC where C#=‘002‘) b
  where a.score>b.score and a.s#=b.s#;
2、查询平均成绩大于60分的同学的学号和平均成绩;
    select S#,avg(score)
    from sc
    group by S# having avg(score) >60;
3、查询所有同学的学号、姓名、选课数、总成绩;
  select Student.S#,Student.Sname,count(SC.C#),sum(score)
  from Student left Outer join SC on Student.S#=SC.S#
  group by Student.S#,Sname
4、查询姓“李”的老师的个数;
  select count(distinct(Tname))
  from Teacher
  where Tname like ‘李%‘;
5、查询没学过“叶平”老师课的同学的学号、姓名;
    select Student.S#,Student.Sname
    from Student
    where S# not in (select distinct( SC.S#) from SC,Course,Teacher where  SC.C#=Course.C# and Teacher.T#=Course.T# and Teacher.Tname=‘叶平‘);
6、查询学过“001”并且也学过编号“002”课程的同学的学号、姓名;
  select Student.S#,Student.Sname from Student,SC where Student.S#=SC.S# and SC.C#=‘001‘and exists( Select * from SC as SC_2 where SC_2.S#=SC.S# and SC_2.C#=‘002‘);
7、查询学过“叶平”老师所教的所有课的同学的学号、姓名;
  select S#,Sname
  from Student
  where S# in (select S# from SC ,Course ,Teacher where SC.C#=Course.C# and Teacher.T#=Course.T# and Teacher.Tname=‘叶平‘ group by S# having count(SC.C#)=(select count(C#) from Course,Teacher  where Teacher.T#=Course.T# and Tname=‘叶平‘));
8、查询课程编号“002”的成绩比课程编号“001”课程低的所有同学的学号、姓名;
  Select S#,Sname from (select Student.S#,Student.Sname,score ,(select score from SC SC_2 where SC_2.S#=Student.S# and SC_2.C#=‘002‘) score2
  from Student,SC where Student.S#=SC.S# and C#=‘001‘) S_2 where score2 <score;
9、查询所有课程成绩小于60分的同学的学号、姓名;
  select S#,Sname
  from Student
  where S# not in (select S.S# from Student AS S,SC where S.S#=SC.S# and score>60);
10、查询没有学全所有课的同学的学号、姓名;
    select Student.S#,Student.Sname
    from Student,SC
    where Student.S#=SC.S# group by  Student.S#,Student.Sname having count(C#) <(select count(C#) from Course);
11、查询至少有一门课与学号为“1001”的同学所学相同的同学的学号和姓名;
    select distinct S#,Sname from Student,SC where Student.S#=SC.S# and SC.C# in (select C# from SC where S#=‘1001‘);
12、查询至少学过学号为“001”同学所有一门课的其他同学学号和姓名;
    select distinct SC.S#,Sname
    from Student,SC
    where Student.S#=SC.S# and C# in (select C# from SC where S#=‘001‘);
13、把“SC”表中“叶平”老师教的课的成绩都更改为此课程的平均成绩;
    update SC set score=(select avg(SC_2.score)
    from SC SC_2
    where SC_2.C#=SC.C# ) from Course,Teacher where Course.C#=SC.C# and Course.T#=Teacher.T# and Teacher.Tname=‘叶平‘);
14、查询和“1002”号的同学学习的课程完全相同的其他同学学号和姓名;
    select S# from SC where C# in (select C# from SC where S#=‘1002‘)
    group by S# having count(*)=(select count(*) from SC where S#=‘1002‘);
15、删除学习“叶平”老师课的SC表记录;
    Delect SC
    from course ,Teacher
    where Course.C#=SC.C# and Course.T#= Teacher.T# and Tname=‘叶平‘;
16、向SC表中插入一些记录,这些记录要求符合以下条件:没有上过编号“003”课程的同学学号、2、
    号课的平均成绩;
    Insert SC select S#,‘002‘,(Select avg(score)
    from SC where C#=‘002‘) from Student where S# not in (Select S# from SC where C#=‘002‘);
17、按平均成绩从高到低显示所有学生的“数据库”、“企业管理”、“英语”三门的课程成绩,按如下形式显示: 学生ID,,数据库,企业管理,英语,有效课程数,有效平均分
    SELECT S# as 学生ID
        ,(SELECT score FROM SC WHERE SC.S#=t.S# AND C#=‘004‘) AS 数据库
        ,(SELECT score FROM SC WHERE SC.S#=t.S# AND C#=‘001‘) AS 企业管理
        ,(SELECT score FROM SC WHERE SC.S#=t.S# AND C#=‘006‘) AS 英语
        ,COUNT(*) AS 有效课程数, AVG(t.score) AS 平均成绩
    FROM SC AS t
    GROUP BY S#
    ORDER BY avg(t.score)
18、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 L.C# As 课程ID,L.score AS 最高分,R.score AS 最低分
    FROM SC L ,SC AS R
    WHERE L.C# = R.C# and
        L.score = (SELECT MAX(IL.score)
                      FROM SC AS IL,Student AS IM
                      WHERE L.C# = IL.C# and IM.S#=IL.S#
                      GROUP BY IL.C#)
        AND
        R.Score = (SELECT MIN(IR.score)
                      FROM SC AS IR
                      WHERE R.C# = IR.C#
                  GROUP BY IR.C#
                    ); 自己写的:select c# ,max(score)as 最高分 ,min(score) as 最低分 from dbo.sc  group by c#
19、按各科平均成绩从低到高和及格率的百分数从高到低顺序
    SELECT t.C# AS 课程号,max(course.Cname)AS 课程名,isnull(AVG(score),0) AS 平均成绩
        ,100 * SUM(CASE WHEN  isnull(score,0)>=60 THEN 1 ELSE 0 END)/COUNT(*) AS 及格百分数
    FROM SC T,Course
    where t.C#=course.C#
    GROUP BY t.C#
    ORDER BY 100 * SUM(CASE WHEN  isnull(score,0)>=60 THEN 1 ELSE 0 END)/COUNT(*) DESC
20、查询如下课程平均成绩和及格率的百分数(用"1行"显示): 企业管理(001),马克思(002),OO&UML (003),数据库(004)
    SELECT SUM(CASE WHEN C# =‘001‘ THEN score ELSE 0 END)/SUM(CASE C# WHEN ‘001‘ THEN 1 ELSE 0 END) AS 企业管理平均分
        ,100 * SUM(CASE WHEN C# = ‘001‘ AND score >= 60 THEN 1 ELSE 0 END)/SUM(CASE WHEN C# = ‘001‘ THEN 1 ELSE 0 END) AS 企业管理及格百分数
        ,SUM(CASE WHEN C# = ‘002‘ THEN score ELSE 0 END)/SUM(CASE C# WHEN ‘002‘ THEN 1 ELSE 0 END) AS 马克思平均分
        ,100 * SUM(CASE WHEN C# = ‘002‘ AND score >= 60 THEN 1 ELSE 0 END)/SUM(CASE WHEN C# = ‘002‘ THEN 1 ELSE 0 END) AS 马克思及格百分数
        ,SUM(CASE WHEN C# = ‘003‘ THEN score ELSE 0 END)/SUM(CASE C# WHEN ‘003‘ THEN 1 ELSE 0 END) AS UML平均分
        ,100 * SUM(CASE WHEN C# = ‘003‘ AND score >= 60 THEN 1 ELSE 0 END)/SUM(CASE WHEN C# = ‘003‘ THEN 1 ELSE 0 END) AS UML及格百分数
        ,SUM(CASE WHEN C# = ‘004‘ THEN score ELSE 0 END)/SUM(CASE C# WHEN ‘004‘ THEN 1 ELSE 0 END) AS 数据库平均分
        ,100 * SUM(CASE WHEN C# = ‘004‘ AND score >= 60 THEN 1 ELSE 0 END)/SUM(CASE WHEN C# = ‘004‘ THEN 1 ELSE 0 END) AS 数据库及格百分数
  FROM SC 

21、查询不同老师所教不同课程平均分从高到低显示
  SELECT max(Z.T#) AS 教师ID,MAX(Z.Tname) AS 教师姓名,C.C# AS 课程ID,MAX(C.Cname) AS 课程名称,AVG(Score) AS 平均成绩
    FROM SC AS T,Course AS C ,Teacher AS Z
    where T.C#=C.C# and C.T#=Z.T#
  GROUP BY C.C#
  ORDER BY AVG(Score) DESC
22、查询如下课程成绩第 3 名到第 6 名的学生成绩单:企业管理(001),马克思(002),UML (003),数据库(004)
    [学生ID],[学生姓名],企业管理,马克思,UML,数据库,平均成绩
    SELECT  DISTINCT top 3
      SC.S# As 学生学号,
        Student.Sname AS 学生姓名 ,
      T1.score AS 企业管理,
      T2.score AS 马克思,
      T3.score AS UML,
      T4.score AS 数据库,
      ISNULL(T1.score,0) + ISNULL(T2.score,0) + ISNULL(T3.score,0) + ISNULL(T4.score,0) as 总分
      FROM Student,SC  LEFT JOIN SC AS T1
                      ON SC.S# = T1.S# AND T1.C# = ‘001‘
            LEFT JOIN SC AS T2
                      ON SC.S# = T2.S# AND T2.C# = ‘002‘
            LEFT JOIN SC AS T3
                      ON SC.S# = T3.S# AND T3.C# = ‘003‘
            LEFT JOIN SC AS T4
                      ON SC.S# = T4.S# AND T4.C# = ‘004‘
      WHERE student.S#=SC.S# and
      ISNULL(T1.score,0) + ISNULL(T2.score,0) + ISNULL(T3.score,0) + ISNULL(T4.score,0)
      NOT IN
      (SELECT
            DISTINCT
            TOP 15 WITH TIES
            ISNULL(T1.score,0) + ISNULL(T2.score,0) + ISNULL(T3.score,0) + ISNULL(T4.score,0)
      FROM sc
            LEFT JOIN sc AS T1
                      ON sc.S# = T1.S# AND T1.C# = ‘k1‘
            LEFT JOIN sc AS T2
                      ON sc.S# = T2.S# AND T2.C# = ‘k2‘
            LEFT JOIN sc AS T3
                      ON sc.S# = T3.S# AND T3.C# = ‘k3‘
            LEFT JOIN sc AS T4
                      ON sc.S# = T4.S# AND T4.C# = ‘k4‘
      ORDER BY ISNULL(T1.score,0) + ISNULL(T2.score,0) + ISNULL(T3.score,0) + ISNULL(T4.score,0) DESC); 

23、统计列印各科成绩,各分数段人数:课程ID,课程名称,[100-85],[85-70],[70-60],[ <60]
    SELECT SC.C# as 课程ID, Cname as 课程名称
        ,SUM(CASE WHEN score BETWEEN 85 AND 100 THEN 1 ELSE 0 END) AS [100 - 85]
        ,SUM(CASE WHEN score BETWEEN 70 AND 85 THEN 1 ELSE 0 END) AS [85 - 70]
        ,SUM(CASE WHEN score BETWEEN 60 AND 70 THEN 1 ELSE 0 END) AS [70 - 60]
        ,SUM(CASE WHEN score < 60 THEN 1 ELSE 0 END) AS [60 -]
    FROM SC,Course
    where SC.C#=Course.C#
    GROUP BY SC.C#,Cname; 

24、查询学生平均成绩及其名次
      SELECT 1+(SELECT COUNT( distinct 平均成绩)
              FROM (SELECT S#,AVG(score) AS 平均成绩
                      FROM SC
                  GROUP BY S#
                  ) AS T1
            WHERE 平均成绩 > T2.平均成绩) as 名次,
      S# as 学生学号,平均成绩
    FROM (SELECT S#,AVG(score) 平均成绩
            FROM SC
        GROUP BY S#
        ) AS T2
    ORDER BY 平均成绩 desc; 

25、查询各科成绩前三名的记录:(不考虑成绩并列情况)
      SELECT t1.S# as 学生ID,t1.C# as 课程ID,Score as 分数
      FROM SC t1
      WHERE score IN (SELECT TOP 3 score
              FROM SC
              WHERE t1.C#= C#
            ORDER BY score DESC
              )
      ORDER BY t1.C#;
26、查询每门课程被选修的学生数
  select c#,count(S#) from sc group by C#;
27、查询出只选修了一门课程的全部学生的学号和姓名
  select SC.S#,Student.Sname,count(C#) AS 选课数
  from SC ,Student
  where SC.S#=Student.S# group by SC.S# ,Student.Sname having count(C#)=1;
28、查询男生、女生人数
    Select count(Ssex) as 男生人数 from Student group by Ssex having Ssex=‘男‘;
    Select count(Ssex) as 女生人数 from Student group by Ssex having Ssex=‘女‘;
29、查询姓“张”的学生名单
    SELECT Sname FROM Student WHERE Sname like ‘张%‘;
30、查询同名同性学生名单,并统计同名人数
  select Sname,count(*) from Student group by Sname having  count(*)>1;;
31、1981年出生的学生名单(注:Student表中Sage列的类型是datetime)
    select Sname,  CONVERT(char (11),DATEPART(year,Sage)) as age
    from student
    where  CONVERT(char(11),DATEPART(year,Sage))=‘1981‘;
32、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,按课程号降序排列
    Select C#,Avg(score) from SC group by C# order by Avg(score),C# DESC ;
33、查询平均成绩大于85的所有学生的学号、姓名和平均成绩
    select Sname,SC.S# ,avg(score)
    from Student,SC
    where Student.S#=SC.S# group by SC.S#,Sname having    avg(score)>85;
34、查询课程名称为“数据库”,且分数低于60的学生姓名和分数
    Select Sname,isnull(score,0)
    from Student,SC,Course
    where SC.S#=Student.S# and SC.C#=Course.C# and  Course.Cname=‘数据库‘and score <60;
35、查询所有学生的选课情况;
    SELECT SC.S#,SC.C#,Sname,Cname
    FROM SC,Student,Course
    where SC.S#=Student.S# and SC.C#=Course.C# ;
36、查询任何一门课程成绩在70分以上的姓名、课程名称和分数;
    SELECT  distinct student.S#,student.Sname,SC.C#,SC.score
    FROM student,Sc
    WHERE SC.score>=70 AND SC.S#=student.S#;
37、查询不及格的课程,并按课程号从大到小排列
    select c# from sc where scor e <60 order by C# ;
38、查询课程编号为003且课程成绩在80分以上的学生的学号和姓名;
    select SC.S#,Student.Sname from SC,Student where SC.S#=Student.S# and Score>80 and C#=‘003‘;
39、求选了课程的学生人数
    select count(*) from sc;
40、查询选修“叶平”老师所授课程的学生中,成绩最高的学生姓名及其成绩
    select Student.Sname,score
    from Student,SC,Course C,Teacher
    where Student.S#=SC.S# and SC.C#=C.C# and C.T#=Teacher.T# and Teacher.Tname=‘叶平‘ and SC.score=(select max(score)from SC where C#=C.C# );
41、查询各个课程及相应的选修人数
    select count(*) from sc group by C#;
42、查询不同课程成绩相同的学生的学号、课程号、学生成绩
  select distinct  A.S#,B.score from SC A  ,SC B where A.Score=B.Score and A.C# <>B.C# ;
43、查询每门功成绩最好的前两名
    SELECT t1.S# as 学生ID,t1.C# as 课程ID,Score as 分数
      FROM SC t1
      WHERE score IN (SELECT TOP 2 score
              FROM SC
              WHERE t1.C#= C#
            ORDER BY score DESC
              )
      ORDER BY t1.C#;
44、统计每门课程的学生选修人数(超过10人的课程才统计)。要求输出课程号和选修人数,查询结果按人数降序排列,查询结果按人数降序排列,若人数相同,按课程号升序排列
    select  C# as 课程号,count(*) as 人数
    from  sc
    group  by  C#
    order  by  count(*) desc,c#
45、检索至少选修两门课程的学生学号
    select  S#
    from  sc
    group  by  s#
    having  count(*)  >  =  2
46、查询全部学生都选修的课程的课程号和课程名
    select  C#,Cname
    from  Course
    where  C#  in  (select  c#  from  sc group  by  c#)
47、查询没学过“叶平”老师讲授的任一门课程的学生姓名
    select Sname from Student where S# not in (select S# from Course,Teacher,SC where Course.T#=Teacher.T# and SC.C#=course.C# and Tname=‘叶平‘);
48、查询两门以上不及格课程的同学的学号及其平均成绩
    select S#,avg(isnull(score,0)) from SC where S# in (select S# from SC where score <60 group by S# having count(*)>2)group by S#;
49、检索“004”课程分数小于60,按分数降序排列的同学学号
    select S# from SC where C#=‘004‘and score <60 order by score desc;
50、删除“002”同学的“001”课程的成绩
delete from Sc where S#=‘001‘and C#=‘001‘; 

问题描述:

本题用到下面三个关系表:

CARD 借书卡。 CNO 卡号,NAME 姓名,CLASS 班级

BOOKS 图书。 BNO 书号,BNAME 书名,AUTHOR 作者,PRICE 单价,QUANTITY 库存册数

BORROW 借书记录。 CNO 借书卡号,BNO 书号,RDATE 还书日期

备注:限定每人每种书只能借一本;库存册数随借书、还书而改变。

要求实现如下15个处理:

1. 写出建立BORROW表的SQL语句,要求定义主码完整性约束和引用完整性约束
--实现代码:
CREATE TABLE BORROW(
    CNO int FOREIGN KEY REFERENCES CARD(CNO),
    BNO int FOREIGN KEY REFERENCES BOOKS(BNO),
    RDATE datetime,
    PRIMARY KEY(CNO,BNO)) 

2. 找出借书超过5本的读者,输出借书卡号及所借图书册数
--实现代码:
SELECT CNO,借图书册数=COUNT(*)
FROM BORROW
GROUP BY CNO
HAVING COUNT(*)>5

3. 查询借阅了"水浒"一书的读者,输出姓名及班级
--实现代码:
SELECT * FROM CARD c
WHERE EXISTS(
    SELECT * FROM BORROW a,BOOKS b
    WHERE a.BNO=b.BNO
        AND b.BNAME=N‘水浒‘
        AND a.CNO=c.CNO) 

4. 查询过期未还图书,输出借阅者(卡号)、书号及还书日期
--实现代码:
SELECT * FROM BORROW
WHERE RDATE<GETDATE() 

5. 查询书名包括"网络"关键词的图书,输出书号、书名、作者
--实现代码:
SELECT BNO,BNAME,AUTHOR FROM BOOKS
WHERE BNAME LIKE N‘%网络%‘ 

6. 查询现有图书中价格最高的图书,输出书名及作者
--实现代码:
SELECT BNO,BNAME,AUTHOR FROM BOOKS
WHERE PRICE=(
    SELECT MAX(PRICE) FROM BOOKS) 

7. 查询当前借了"计算方法"但没有借"计算方法习题集"的读者,输出其借书卡号,并按卡号降序排序输出
--实现代码:
SELECT a.CNO
FROM BORROW a,BOOKS b
WHERE a.BNO=b.BNO AND b.BNAME=N‘计算方法‘
    AND NOT EXISTS(
        SELECT * FROM BORROW aa,BOOKS bb
        WHERE aa.BNO=bb.BNO
            AND bb.BNAME=N‘计算方法习题集‘
            AND aa.CNO=a.CNO)
ORDER BY a.CNO DESC 

8. 将"C01"班同学所借图书的还期都延长一周
--实现代码:
UPDATE b SET RDATE=DATEADD(Day,7,b.RDATE)
FROM CARD a,BORROW b
WHERE a.CNO=b.CNO
    AND a.CLASS=N‘C01‘ 

9. 从BOOKS表中删除当前无人借阅的图书记录
--实现代码:
DELETE A FROM BOOKS a
WHERE NOT EXISTS(
    SELECT * FROM BORROW
    WHERE BNO=a.BNO) 

10. 如果经常按书名查询图书信息,请建立合适的索引
--实现代码:
CREATE CLUSTERED INDEX IDX_BOOKS_BNAME ON BOOKS(BNAME)

11. 在BORROW表上建立一个触发器,完成如下功能:如果读者借阅的书名是"数据库技术及应用",就将该读者的借阅记录保存在BORROW_SAVE表中(注ORROW_SAVE表结构同BORROW表)
--实现代码:
CREATE TRIGGER TR_SAVE ON BORROW
FOR INSERT,UPDATE
AS
IF @@ROWCOUNT>0
INSERT BORROW_SAVE SELECT i.*
FROM INSERTED i,BOOKS b
WHERE i.BNO=b.BNO
    AND b.BNAME=N‘数据库技术及应用‘ 

12. 建立一个视图,显示"力01"班学生的借书信息(只要求显示姓名和书名)
--实现代码:
CREATE VIEW V_VIEW
AS
SELECT a.NAME,b.BNAME
FROM BORROW ab,CARD a,BOOKS b
WHERE ab.CNO=a.CNO
    AND ab.BNO=b.BNO
    AND a.CLASS=N‘力01‘

13. 查询当前同时借有"计算方法"和"组合数学"两本书的读者,输出其借书卡号,并按卡号升序排序输出
--实现代码:
SELECT a.CNO
FROM BORROW a,BOOKS b
WHERE a.BNO=b.BNO
    AND b.BNAME IN(N‘计算方法‘,N‘组合数学‘)
GROUP BY a.CNO
HAVING COUNT(*)=2
ORDER BY a.CNO DESC 

14. 假定在建BOOKS表时没有定义主码,写出为BOOKS表追加定义主码的语句
--实现代码:
ALTER TABLE BOOKS ADD PRIMARY KEY(BNO) 

15.1 将NAME最大列宽增加到10个字符(假定原为6个字符)
--实现代码:
ALTER TABLE CARD ALTER COLUMN NAME varchar(10) 

15.2 为该表增加1列NAME(系名),可变长,最大20个字符
--实现代码:
ALTER TABLE CARD ADD 系名 varchar(20)

问题描述: 为管理岗位业务培训信息,建立3个表:

S (S#,SN,SD,SA) S#,SN,SD,SA 分别代表学号、学员姓名、所属单位、学员年龄

C (C#,CN ) C#,CN 分别代表课程编号、课程名称

SC ( S#,C#,G ) S#,C#,G 分别代表学号、所选修的课程编号、学习成绩

要求实现如下5个处理:

1. 使用标准SQL嵌套语句查询选修课程名称为’税收基础’的学员学号和姓名
--实现代码:
SELECT SN,SD FROM S
WHERE [S#] IN(
    SELECT [S#] FROM C,SC
    WHERE C.[C#]=SC.[C#]
        AND CN=N‘税收基础‘)

2. 使用标准SQL嵌套语句查询选修课程编号为’C2’的学员姓名和所属单位
--实现代码:
SELECT S.SN,S.SD FROM S,SC
WHERE S.[S#]=SC.[S#]
    AND SC.[C#]=‘C2‘

3. 使用标准SQL嵌套语句查询不选修课程编号为’C5’的学员姓名和所属单位
--实现代码:
SELECT SN,SD FROM S
WHERE [S#] NOT IN(
    SELECT [S#] FROM SC
    WHERE [C#]=‘C5‘)

4. 使用标准SQL嵌套语句查询选修全部课程的学员姓名和所属单位
--实现代码:
SELECT SN,SD FROM S
WHERE [S#] IN(
    SELECT [S#] FROM SC
        RIGHT JOIN C ON SC.[C#]=C.[C#]
    GROUP BY [S#]
    HAVING COUNT(*)=COUNT(DISTINCT [S#]))

5. 查询选修了课程的学员人数
--实现代码:
SELECT 学员人数=COUNT(DISTINCT [S#]) FROM SC

6. 查询选修课程超过5门的学员学号和所属单位
--实现代码:
SELECT SN,SD FROM S
WHERE [S#] IN(
    SELECT [S#] FROM SC
    GROUP BY [S#]
    HAVING COUNT(DISTINCT [C#])>5)
时间: 2024-10-17 18:10:43

sql试题的相关文章

一些SQL试题

create database SC on (name='SC', filename='d:\SC.mdf') log on (name='SC_log', filename='d:\SC_log.dlf') go use SC go create table 商品供应记录 (商家姓名 nvarchar(20) not null, 商品名称 nvarchar(20), 商品价格 decimal(7,2) ) insert into 商品供应记录 values('长虹公司','彩电',4500.0

oracle sql 试题解答笔记

待验证 1.创建一张学生信息表student_info,包含以下信息:学号.姓名.性别.生日.家庭住址.联系电话:创建一张学生成绩表student_score 包含学号.学科.成绩. CREATE TABLE student_info( ID INT, NAME VARCHAR2(10), sex VARCHAR2(4), brithday DATE, address VARCHAR2(50), phone INT); CREATE TABLE student_score( ID INT, su

转----------数据库常见笔试面试题 - Hectorhua的专栏 - CSDN博客

数据库基础(面试常见题) 一.数据库基础 1. 数据抽象:物理抽象.概念抽象.视图级抽象,内模式.模式.外模式 2. SQL语言包括数据定义.数据操纵(Data Manipulation),数据控制(Data Control) 数据定义:Create Table,Alter Table,Drop Table, Craete/Drop Index等 数据操纵:Select ,insert,update,delete, 数据控制:grant,revoke 3. SQL常用命令: CREATE TAB

机房收费系统合作——再看数据库设计

机房合作我负责了最简单的D层,接口层,工厂层.反正D层是我来写,于是数据库索性也就顺便设计了.已经是第三次敲机房收费系统了,每次都是相隔半年左右吧.需求搞得透透的了,数据库也就好设计了.基本跟第二次没什么大的区别,就是把Student表和Card表分开了. 重构的时候,我的数据库几乎什么都用到了:事务,存储过程,触发器,视图,联合查询等等.所以,这次设计数据库还是SO Easy的..并且,为了让婵婵和牛迁迁师哥写的方便,我把组合查询都写成了存储过程!!!!费了一番功夫,但是D层简单了不少.还记得

数据库基础(面试常见题)

一.数据库基础 1. 数据抽象:物理抽象.概念抽象.视图级抽象,内模式.模式.外模式 2. SQL语言包括数据定义.数据操纵(Data Manipulation),数据控制(Data Control) 数据定义:Create Table,Alter Table,Drop Table, Craete/Drop Index等 数据操纵:Select ,insert,update,delete, 数据控制:grant,revoke 3. SQL常用命令: CREATE TABLE Student( I

有MySQL的经典面试

https://www.cnblogs.com/cctv4/p/11533554.html Beta测试和Alpha测试有什么区别? Answer:区别:两者的主要区别是测试的场所不同.Alpha测试是指把用户请到开发方的场所来测试,beta测试是指在一个或多个用户的场所进行的测试.Alpha测试的环境是受开发方控制的,用户的数量相对比较少,时间比较集中.而beta测试的环境是不受开发方控制的,谁也不知道用户如何折磨软件,用户数量相对比较多,时间不集中.一般地,alpha测试先于beta测试执行

一道SQL的面试题之联想

一道SQL的面试题之联想 本人工作在一家小型的民营企业,主要从事业务系统的日常维护,二次开发,菜鸟一枚.周五经理准备面试两个开发人员,据简历,都还比较不错,让经理产生了想法,于是准备了一套面试题目,给我们亮了一道SQL题目,非他之手,据出此题者说,如果面试者只能写出一种方法,基本可以pass.请读者仔细看题: 题目:如下表,用一条select语句求出所有课程在80分(含80分)以上的学生姓名,请写出所有可行方案.(注意:表名为sc,字段为name,kc,score) 这道题目并不陌生吧,相信大家

SQL面试题

有3个表S,C,SC S(SNO, SNAME)代表(学号,姓名) C(CNO,CNAME,CTEACHER)代表(课号,课名,教师) SC(SNO, CNO, SCGRADE)代表(学号,课号成绩) 问题: 1.找出没选过'黎明"老师的所有学生姓名. 2.列出两门以上(含2门)不及格学生姓名及平均成绩. 3.即学过1号课程有学过2号课所有学生的姓名. 请用标准SQL语言写出答案,方言也行(请说明是使用什么方言). 1.select sname from s join sc on (s.sno

sql面试题(学生表_课程表_成绩表_教师表)

sql面试题(学生表_课程表_成绩表_教师表) 原帖链接:http://bbs.csdn.net/topics/280002741 表架构 Student(S#,Sname,Sage,Ssex) 学生表 Course(C#,Cname,T#) 课程表 SC(S#,C#,score) 成绩表 Teacher(T#,Tname) 教师表 建表语句 CREATE TABLE student ( s# INT, sname nvarchar(32), sage INT, ssex nvarchar(8)