课程表st
① 各国小学课表对比:教育的差距到底在哪
1美国小学生
一切都是科学:美国基础教育中的科学课理念
在纽约市一所小学的校长Frederick C. Wright和科学课教师Lori Berkowitz和Chris Tang向记者提供的美国五年级课表中,美国小学阶段的科学素养培育占了相当大的比例。
美国小学五年级具体课表(Class Schele)
我们可以看到,美国孩子学习的科目有MATH(数学)、ELA(英语)、S. S.(社会科学)、Sci(科学)、Com(计算机)、Art(艺术)。
和国内相比,美国S.S(社会科学)和Sci(科学)占的比例要大得多,一周35节课里,竟然有6节社会科学和科学课,和国内一周一节的社会课和科学课比起来,确实是有诚意多了。
知名的儿童教育专家,毕业于斯坦福大学的陈丁鸿女士也曾晒出过一张自家儿子在美国学校的课程表,从周一到周六,每天都会有Science(科学)和Social Studies(社会科学)的内容,和数学、英语的比例甚至不相上下。
美国具备科学素养的孩子的占比是40%,中国只有6%,在美国,男孩女孩的梦想已经不再是成为王子公主,而是成为科学家、程序员和艺术家,去改变世界。
2英国小学生
再来看看英国小学生的课表。
下面这张课程表由一位英国的小学老师分享。英国小学一共开设英语、数学、科学三门主科(国家考试科目)和艺术、历史、地理、计算机等辅课。
英国的小学更看重孩子的综合能力,他们希望孩子在和别人交流时能落落大方,历史、地理让孩子胸中有干货有谈资,而数学、计算机和科学则帮助孩子锻炼起逻辑思维和思辨能力,在表达自己的观点时做到井井有条。
在英国著名的St John's School的官网上,也有这所学校的孩子们的课程表,它分为A周和B周,交替使用课表。
我们可以看到,历史、地理、科学、技术等科目几乎占据了孩子们课程的半壁江山,这一点和上面所提的培养孩子综合能力的理念也不谋而合。
② 下面是sql数据库作业的一部分,里面有些不知道是啥意思,求好心人翻成中文 Student(Student_id,st...
学生表(学号,姓名,性别,出生日期,班级,电话,入学时间,地址)
课程表(课程号,课程名,课程类型,学分,课程简介)
成绩表(学号,课程号,成绩)
③ sql sever 2008r2查询各系各科成绩最高分的学生的学号,姓名,系名,课程名称,成绩
select
a.sno学号,a.sname姓名,a.sdept系名,c.cname课程名称版,b.maxgrade成绩权
from
studenta
innerjoin(selectcno,max(sno)sno,max(grade)maxgradefromscgroupbycno)bona.sno=b.sno
innerjoincourseconb.con=c.cno
④ 怎样从下面这张EXCEL表中提取单个老师的周课程表
点击上方工具栏的“数据”,再点“筛选”,自动或高级筛选随你自己的需要了。
⑤ 2.查询选课表中成绩有不及格的学生学号和专业班级,正确的SQL语句是( )。
(B)SELECT ST.学号,专业班级 FROM ST,XK WHERE ST.学号=XK.学号AND成绩<=60 正确
首先数据库没有≤用法
另外,学号同时属于版ST和XK表,所以要加前缀,也就是权ST.学号,否则数据库会混乱,找不到字段了
另外,=60应该是及格吧?
⑥ 用excel汇总教师任课表
万能的vba可以完成。举例说明:
例如有表格如图:
⑦ SQL语句的一道题 三个基本表:学生表(Student)、课程表(Course)、学生选课表(SC)
1. select * from SC
2. select Sname,Sage from Student where Sdept = '计算机'
3. select Sno,Cno,Grade from SC where Grade >= 70 and Grade <= 80
4. select Sname,Sage from Student where Sage between 18 and 20 and Ssex = '男'
5. select top 1 Grade from SC where Cno = 'C01'
6. select max(Sage),min(Sage) from Student
7. select Sdept,sum(Sno) from Student group by Sdept
8. select course.Cname,sum(sc.Sno),max(Grade) from SC
join studet on Student.Sno = SC.Sno
join Course on Course.Cno = SC.Cno
group by course.cname,max(grade)
9. select sum(Cno),avg(Grade) from SC
join Course on Course.Cno = SC.Cno
join Student on Student.Sno= SC.Sno
order by SC.Sno
10. select Stuent.Sno,Stuent.Sname,sum(Grade) A from SC
join Student on Student.Sno = SC.Sno
group by sc.Sno,student.Sname
having A > 200
11. select Student.Sname,Student.Sdept from Student
join Course on Course.Cno = SC.Cno
join SC on SC.Sno = Student.Sno
where SC.Cno = 'C02'
12. select Student.sname,course.cno,sc.grade from sc
join student on student.sno = sc.sno
join course on course.cno = sc.cno
where sc.grade >= 80
order by sc.grade desc
13. select cno,cname from
(
select course.cno,course.cname,sun(sno) from student
join course on course.cno = sc.cno
join sc on sc.sno = student.sno
group by cno,cname
having sun(sno) > 0
)
14. ① select student.sname,student.sdept from
(
select student.sname,student.sdept,course.cname from student
join sc on sc.sno = student.sno
join course on course.cno = sc.cno
where course.cname = 'C01'
)
② select student.sno,student.sname from
(
select student.sno,student.sname,student.sdept,sc.grade from sc
join student on student.sno = sc,sno
where student.sdept = '信息' and sc.grade >= 80
)
③ select top 1 student.sname from
(
select student.sname,student.sdept,sum(sc.grade) from sc
join student on student.sno = sc.sno
where student.sdept = '计算机'
group by student.sname,student.sdept
order by
)
15. delete from sc where grade < 50
16. update sc set grade += 5 from sc
join course on course.cno = sc.cn
join student on student.sno = sc.sno
where student.sno =
(
select student.sno from sc
join course on course.cno = sc.cno
where course.cname = 'c01'
)
17. update sc set grade += 10 from sc
join student on student.sno = sc.sno
where student.sno =
(
select student.sno from student
join sc on sc.sno = student.sno
join course on course.cno = sc.cno
where student.sdept = '计算机' and course.cname = '计算机文化基础'
)
18. create view [A] as
select student.sno,student.sname,student.sdept,course.cno,course.cname,sc.grade from sc
join student on student.sno = sc.sno
join course on course.cno = sc.cno
19. create view [A] as
select student.sno,avg(sc.grade) from sc
join student on student.sno = sc.sno
group by student.sno
20. create view [A] as
select student.sno,sum(sc.grade) from sc
join student on student.sno = sc.sno
group by student.sno
21. create index A on student(sname)
22. 不会
⑧ 初中英语语法及课程安排
推荐你到这个链接去下载专:属
http://wenku..com/view/aaec6b37b90d6c85ed3ac606.html?st=1
⑨ 设在学生数据库中有三张表,表结构如下所示: Student(学生表): Student表的主键:sno(学号) Course(课程
(1) create table S_C
(sno char(10) not null
,cno char(8) not null
,score int null
,constraint PK_SC primary key (sno,cno)
)
(2)insert into Student (sno,sname,ssex)
values('1010','李小丽','女')
(3)create index IND_CName on Course (cname)
(4)update student set sage=23 where sno='1005'
(5)delete from course where cname='管理信息系统'
(6)select cno,cname,ctime
from course
where teacher='李元'
order by cno ASC
(7)select sno,sum(score) as score
from S_C
group by sno
(8)create view V_Student
as
select *
from student
where ssex='男' and sage>=18 and sage<=24
(9)select sno,sname
from student
where sno in (select sno from S_C where cno='001')
(10)select A.sno,A.sname
from student A
left join S_C B on A.sno=B.sno
left join Course C on B.cno=C.cno
where C.cname='关系数据库'
(11)select sno,sname from
(select A.sno,A.sname,count(1) as count_
from student A
left join S_C B on A.sno=B.sno
group by A.sno,A.sname) A
where count_>3
(12)select C.sname
from
(select * from S_C where cno='002') A
inner join
(select * from S_C where cno='004' on) B on A.sno=B.sno
left join student C on A.sno=C.sno
⑩ 学生表、成绩表、课程表作为数据基础表,写出如下SQL语句,谢谢
查询所有学生的成绩信息(无成绩的学生也需显示)
SELECT ST.SNO, ST.SNAME, AVG(GRD.GRADE) AS AVG_GRADE FROM STUDENT ST LEFT JOIN GRADE GRD
ON (ST.SNO = GRD.SNO) GROUP BY ST.SNO, ST.NAME
查询8002课程的平均分、最高分以及课程名称,且平均分保留2位小数
SELECT C.CNAME, ROUND(AVG(GRD.GRADE),2) AS AVERAGE_GRADE, ROUND(MAX(GRD.GRADE),2) AS MAX_GRADE FROM COURSE C INNER JOIN GRADE GRD ON (C.CNO = GRD.CNO)
WHERE C.CNO = 8002