1

I'm trying to select the students who do not have a score for assignment 11, and return their names. Here are my tables & attempted solution.. each select works separately but not together.

CREATE TABLE Student(
    Student_ID INT,
    Student_Name VARCHAR(10)
    )
INSERT INTO Student (Student_ID, Student_Name) VALUES (1,'Alex'),(2, 'Brett1'),(3,'Cora'),(4,'David'),(5,'Eleanor'),(6,'Brett2')

CREATE TABLE Grades(
    Student_ID INT,
    Assignment_ID INT,
    Grade INT
    )
INSERT INTO Grades (Student_ID, Assignment_ID, Grade) VALUES (1,10,90),(2,10,85),(3,10,75),(4,10,74),(1,11,80),(2,11,81),(4,11,88),(6,11,86),(2,12,84)`

SELECT *
    FROM Student s
LEFT OUTER JOIN Grades g on s.Student_ID=g.Student_ID
    WHERE g.Student_ID NOT IN(
    SELECT * FROM Grades g
    WHERE g.Assignment_ID = 11
    )
  • Hi and welcome to SO. It is a real joy to see a new person post a great question. While this has probably been asked and answered dozens and dozens of times you took the effort to post the tables, sample data and desired output. Well done!!! – Sean Lange Feb 7 '18 at 16:05
  • Always welcome to be here, thanks to you and everyone else for the responses. – matrixfox Feb 7 '18 at 16:07
1

I would use NOT EXISTS with a correlated subquery here.

select *
from Student s
where not exists
(
    select *
    from Grades g
    where g.Student_ID = s.Student_ID
        AND g.Assignment_ID = 11
)
0

You were alomst there:

SELECT Student_ID 
FROM Student s
WHERE g.Student_ID NOT IN(
                           SELECT Student_ID FROM Grades g
                           WHERE g.Assignment_ID = 11 
                             AND Student_ID IS NOT NULL)
  • Does not compile, WHERE g.Student_ID NOT IN( should read WHERE Student_ID NOT IN( and also he asked for the student names, not ID's. – that-ben Feb 7 '18 at 16:08
0

You can use a query like:

;with cte (stId,asgId) as
(
   select s.Student_ID as stId ,g.Assignment_Id as asgId
   from Student s
   inner join Grades g on s.Student_Id = g.Student_ID
   where g.Assignment_Id = 11
)
select distinct Student_Name
from Student s
where s.Student_ID not in (select stId from cte)
  • Hey Eray, thanks for the response. That returns over names who have assignments 10 and 12 also, I'm looking for solely names that do not have assignment 11. Thank though! I tried the same thing :) – matrixfox Feb 7 '18 at 16:01
  • Not good, Alex, Brett1 and David are popping up but they DO have a score in assignment 11, please read OP's question carefully again. – that-ben Feb 7 '18 at 16:06
  • Yeah, sorry I understood the question incorrectly, fixed my answer. – Eray Balkanli Feb 7 '18 at 16:08
  • We all did initially! – that-ben Feb 7 '18 at 16:10
0

I like Sean Lange's answer, but you could also use a sub-query and LEFT JOIN:

SELECT s.student_name
FROM student s
LEFT JOIN
(SELECT student_id
 FROM grades
 WHERE assignment_id = 11) sub
ON s.student_id = sub.student_id
WHERE sub.student_id IS NULL
0
SELECT Student_Name FROM Student AS s
LEFT JOIN Grades AS g
ON s.Student_ID = g.Student_ID AND g.Assignment_ID = 11
WHERE g.Grade IS NULL

enter image description here

Note that if these were very large tables there would be a small performance hit with the above compared to @SeanLange answer which might execute a tiny bit faster if all indices are properly set on each very large tables:

SELECT Student_Name FROM Student s
WHERE NOT EXISTS
(
    SELECT * FROM Grades g
    WHERE g.Student_ID = s.Student_ID AND g.Assignment_ID = 11
)
  • Trying to isolate student names omitted from assignment 11, thanks for your answer though. – matrixfox Feb 7 '18 at 16:03
  • 1
    @that-ben you might consider changing your profile picture before you get banned. – Sean Lange Feb 7 '18 at 16:09
  • 1
    @that-ben Don't beg for your answers to be accepted please, it's bad behaviour. Also, be careful when answering, this question is using SQL Server, not MySQL as you are showing. – DavidG Feb 7 '18 at 16:10
  • @DavidG I was the only one with a working solution when I posted this. Also, out of curiosity, what did I put in here that does not work with straight SQL? – that-ben Feb 7 '18 at 16:14
  • It doesn't matter if your solution is working or not, begging for an accept is just bad behaviour. And your solution probably works with either server, but it may not have done, I'm just suggesting your take more care. The screenshot of MySQL could be very confusing to many users. – DavidG Feb 7 '18 at 16:16

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