http://www.cnblogs.com/finejob/articles/974900.html
题目1:
======
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
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
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
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
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
网上流传的错误答案:
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([S#]
) )
经过调试验证的正确答案:
SELECT SN, SD
FROM S
WHERE S#
IN (
SELECT SC.S#
FROM SC
RIGHT
JOIN C
ON SC.C#
= C.C#
GROUP
BY SC.S#
--
在结果集中以学生分组,分组后的 SC.C#选课数=C.C#课程数 即为全部课程
HAVING
COUNT(
distinct(SC.C#))
--
注意:一个学生同一门课程可能有多条成绩记录,需要distinct
= (
select
count(
*)
from C )
--
注意:HAVING条件不能用COUNT(distinct(SC.C#)) = COUNT(distinct(C.C#))--子查询获得选修全部课程的学生学号
5. 查询选修了课程的学员人数
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
Select SN,SD
FROM S
Where
[
S#
]
IN (
Select
[
S#
]
FROM SC
GROUP BY [ S# ]
HAVING
COUNT(
DISTINCT
[
C#
] )
>
5 )
题目2:
======
已知关系模式:
S (SNO,SNAME) 学生关系。SNO 为学号,SNAME 为姓名
C (CNO,CNAME,CTEACHER) 课程关系。CNO 为课程号,CNAME 为课程名,CTEACHER 为任课教师
SC(SNO,CNO,SCGRADE) 选课关系。SCGRADE 为成绩
1. 找出没有选修过“李明”老师讲授课程的所有学生姓名
Select SNAME
FROM S
Where
NOT
EXISTS (
Select
*
FROM SC,C
Where SC.CNO
=C.CNO
AND CNAME
=
'
李明
'
AND SC.SNO
=S.SNO)
2. 列出有二门以上(含两门)不及格课程的学生姓名及其平均成绩
Select S.SNO,S.SNAME,AVG_SCGRADE
=
AVG(SC.SCGRADE)
FROM S , SC ,
( Select SNO FROM SC
Where SCGRADE
<
60
GROUP
BY SNO
HAVING
COUNT(
DISTINCT CNO)
>=
2
) A
Where S.SNO =A.SNO AND SC.SNO =A.SNO
GROUP
BY S.SNO,S.SNAME
3. 列出既学过“1”号课程,又学过“2”号课程的所有学生姓名
Select S.SNO,S.SNAME
FROM S,
( Select SC.SNO FROM SC,C
Where SC.CNO
=C.CNO
AND C.CNAME
IN(
'
1
',
'
2
')
GROUP
BY SNO
HAVING
COUNT(
DISTINCT CNO)
=
2
)SC
Where S.SNO =SC.SNO
4. 列出“1”号课成绩比“2”号同学该门课成绩高的所有学生的学号
Select S.SNO,S.SNAME
FROM S,
( Select SC1.SNO
FROM SC SC1,C C1,SC SC2,C C2
Where SC1.CNO
=C1.CNO
AND C1.NAME
=
'
1
'
AND SC2.CNO
=C2.CNO
AND C2.NAME
=
'
2
'
AND SC1.SCGRADE
>SC2.SCGRADE ) SC
Where S.SNO =SC.SNO
5. 列出“1”号课成绩比“2”号课成绩高的所有学生的学号及其“1”号课和“2”号课的成绩
Select S.SNO,S.SNAME,SC.
[
1号课成绩
],SC.
[
2号课成绩
]
FROM S,
( Select SC1.SNO, [ 1号课成绩 ] =SC1.SCGRADE, [ 2号课成绩 ] =SC2.SCGRADE
FROM SC SC1,C C1,SC SC2,C C2
Where SC1.CNO
=C1.CNO
AND C1.NAME
=
'
1
'
AND SC2.CNO
=C2.CNO
AND C2.NAME
=
'
2
'
AND SC1.SCGRADE
>SC2.SCGRADE
) SC
Where S.SNO =SC.SNO
题目3:
======
有如下表记录:
ID Name EmailAddress LastLogon
100 test4 test4@yahoo.cn 2007-11-25 16:31:26
13 test1 test1@yahoo.cn 2007-3-22 16:27:07
19 test1 test1@yahoo.cn 2007-10-25 14:13:46
42 test1 test1@yahoo.cn 2007-11-20 14:20:10
45 test2 test2@yahoo.cn 2007-4-25 14:17:39
49 test2 test2@yahoo.cn 2007-5-25 14:22:36
用一句sql查询出每个用户最近一次登录的记录(每个用户只显示一条最近登录的记录)
方法一:
SELECT a.
*
from users a
inner
join
(
SELECT
[
Name
], LastLogon
=
MAX(LastLogon)
FROM users
GROUP
BY
[
Name
]) b
on a.
[
Name
]
=b.
[
Name
]
and a.
[
LastLogon
]
=b.
[
LastLogon
]
方法二:
SELECT a.
*
from users a
inner
join
( SELECT Name, MAX(LogonID) LogonID FROM users GROUP BY [ Name ]) b
on a.LogonID
=b.LogonID
--
where a.LogonId=b.LogonId
SELECT a.
*
from users a
inner
join
(
SELECT
[
Name
], LastLogon
=
MAX(LastLogon)
FROM users
GROUP
BY
[
Name
]) b
on a.
[
Name
]
=b.
[
Name
]
and a.
[
LastLogon
]
=b.
[
LastLogon
]方法二:
SELECT a.
*
from users a
inner
join
( SELECT Name, MAX(LogonID) LogonID FROM users GROUP BY [ Name ]) b
on a.LogonID
=b.LogonID
--
where a.LogonId=b.LogonId
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