2

I am in a database class currently and am stuck on number 3 on this problem.

Problem 2 A university database has the following relations:

STUDENTS (Sno: int, Sname: varchar(64), Gender: ‘F’ or ‘M’, Age: int),
COURSES (Cno: int, Cname: varchar(32)),
ENROLLMENT (Sno: int, Cno:int, Grade: int).

Write SQL statements to perform the following tasks:

  1. Find the names of the youngest students.
  2. Find the Sno for students who enroll at least in courses with Cno = 1 and Cno = 3.
  3. Find the names of the students who enroll in all the courses.
  4. Find the names of the students who enroll more than 3 courses.
  5. Find the name and the average grade for each course.
  6. Find the names of students whose grades in the course “DBMS” is above the average grade.
2
  • 2
    Show us what you've tried, then we'll know how to help.
    – 逆さま
    Nov 1 '11 at 19:46
  • THis sounds like the homework assignments from the database course at Stanford college of engineering.
    – JonH
    Nov 1 '11 at 19:48
5

3

SELECT S.Sname
FROM Students AS S INNER JOIN Enrollment AS E ON S.Sno = E.Sno
GROUP BY S.Sno, S.Sname 
HAVING COUNT(*) = (SELECT COUNT(*) FROM Courses)

4

SELECT S.Sname
FROM Students AS S INNER JOIN Enrollment AS E ON E.Sno = S.Sno
GROUP BY S.Sno, S.Sname
HAVING COUNT(*) > 3

5

SELECT C.CName, AVG(E.Grade) AS AvgGrade
FROM Courses AS C INNER JOIN Enrollment AS E ON C.CNo = E.CNo 
GROUP BY C.Cno, C.CName
1
  • 10
    Don't answer his homework - point him in the right direction.
    – drdwilcox
    Nov 1 '11 at 19:48
0

Number 4. select count(*)

'nuff said.

Same idea, different aggregate for number 5.

2
  • Thanks! I meant 3 and 4, I understand 4, it's just 3 now. Nov 1 '11 at 19:50
  • multiple solutions come to mind. here's one: you know how many courses there are, you know how many courses each student is enrolled in, compare them.
    – drdwilcox
    Nov 1 '11 at 19:52

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