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Problem Specification and Database Condition: There are 3 tables (Highschooler, Friend and Likes) in the database and Here is database :

Highschooler
ID  name    grade
1510    Jordan  9
1689    Gabriel 9
1381    Tiffany 9
1709    Cassandra   9
1101    Haley   10
1782    Andrew  10
1468    Kris    10
1641    Brittany    10
1247    Alexis  11
1316    Austin  11
1911    Gabriel 11
1501    Jessica 11
1304    Jordan  12
1025    John    12
1934    Kyle    12
1661    Logan   12

Friend
ID1 ID2
1510    1381
1510    1689
1689    1709
1381    1247
1709    1247
1689    1782
1782    1468
1782    1316
1782    1304
1468    1101
1468    1641
1101    1641
1247    1911
1247    1501
1911    1501
1501    1934
1316    1934
1934    1304
1304    1661
1661    1025
1381    1510
1689    1510
1709    1689
1247    1381
1247    1709
1782    1689
1468    1782
1316    1782
1304    1782
1101    1468
1641    1468
1641    1101
1911    1247
1501    1247
1501    1911
1934    1501
1934    1316
1304    1934
1661    1304
1025    1661

Likes
ID1 ID2
1689    1709
1709    1689
1782    1709
1911    1247
1247    1468
1641    1468
1316    1304
1501    1934
1934    1501
1025    1101

Question is : For every student who likes someone 2 or more grades younger than themselves, return that student's name and grade, and the name and grade of the student they like.

My query is :

select HS11.name,HS11.grade,HS22.name,HS22.grade from
( select ID1,ID2 from Likes where ID1 in
(
select HS1.ID from Highschooler HS1, Highschooler HS2 
where HS1.ID<> HS2.ID and (HS1.grade - HS2.grade) >=2 
)
and ID2 in
(
select HS2.ID from Highschooler HS1, Highschooler HS2 
where HS1.ID<> HS2.ID and (HS1.grade - HS2.grade) >=2 
)
) as G, Highschooler HS11, Highschooler HS22
where HS11.ID=G.ID1 and HS22.ID = G.ID2

My query's output is :

Alexis 11 Kris 10
John 12 Haley 10

Expected output is:

John 12 Haley 10

So, I am getting 1 row extra which incorrect. Could anyone please point out what I am doing wrong here ?

share|improve this question
1  
Woah... How many subselects!!! :o Pity the DB Server... –  Praveen Kumar Jan 28 '13 at 6:55
    
Could you please suggest some better idea ? @Praveen Kumar –  Keen Learner Jan 28 '13 at 6:56
1  
It does not work because what you do is the following: From the table of likes you select those pairs where there exists someone that is 2 years younger than the one in id1 and someone that is 2 years older than the one from id2. but there can be 4 people involved: There are 9th graders, hence Alexis' 11th grade is ok, and there are 12th graders, hence Kris' 10th grade is ok. –  user1965813 Jan 28 '13 at 7:30
    
Also: It would be better to use select distinct in your "Where id1 in select DISTINCT..." because otherwise you generate unwanted replica. –  user1965813 Jan 28 '13 at 7:31

5 Answers 5

up vote 1 down vote accepted

I would go for

select a.name as liker, a.grade as liker_grade, c.name as likee, c.grade as likee_grade from
highschooler a inner join likes b on a.id = b.id1
left join highschooler c on b.id2 = c.id
where a.grade >= c.grade +2

and if the likes are always mutual (which usually is not the case, combine with itself and union all

select a.name as liker, a.grade as liker_grade, c.name as likee, c.grade as likee_grade from
highschooler a inner join likes b on a.id = b.id1
left join highschooler c on b.id2 = c.id
where a.grade >= c.grade +2
union all
select a.name as liker, a.grade as liker_grade, c.name as likee, c.grade as likee_grade from
highschooler a inner join likes b on a.id = b.id2
left join highschooler c on b.id1 = c.id
where a.grade >= c.grade +2
share|improve this answer
    
great ! nice answer, +1 :) –  Keen Learner Jan 28 '13 at 7:22

Your SELECT statement can be simplified by using INNER JOIN. Then you can have one WHERE clause that specifies the requirement:

SELECT HS1.name, HS1.grade, HS2.name, HS2.grade
FROM Likes
INNER JOIN Highschooler HS1
  ON Likes.ID1 = HS1.ID
INNER JOIN Highschooler HS2
  ON Likes.ID2 = HS2.ID
WHERE (HS1.grade - HS2.grade) >=2 

In other words, instead of trying to find the IDs you need by using subqueries with convoluted requirements, you select one virtual table, and place requirements on it directly.

share|improve this answer

Something like this (sytax maybe wrong) and replace select * with the correct columns

select * from highschooler as me
left join on friend where me.id = friend.id1
left join on highschooler as f where f.id = freind.id2
where me.grade - f.grade >= 2
share|improve this answer
    
You are missing the restriction to only show persons which have at least 2 likes. –  alzaimar Jan 28 '13 at 18:51

If yes, then this should work

Select main.*
  from Highscooler main
       join Likes lk on main.ID = lk.ID1
       join Highscooler mate on mate.ID = lk.ID2
  where main.Grade >= mate.Grade+2

EDIT: Corrected the answer (I thought 'likes' is expressed using the 'friends' table). Also did not understand 'like' (I am not using FB ;-) )

Corrected again : I am not good in reading text ...

share|improve this answer
    
Friend is bijective but the query is not working. Thanks for your answer though. –  Keen Learner Jan 28 '13 at 7:04
1  
Uh... the requirement doesn't involve "Friend" at all. –  Gustav Bertram Jan 28 '13 at 7:06
1  
Sorry for my misunderstanding. I corrected the query accordingly. Now it looks for all people who like at least persons –  alzaimar Jan 28 '13 at 7:12
SELECT   liker.ID AS LikerID,
         liker.Name AS LikerName,
         liker.Grade AS LikerGrade,
         liked.ID AS LikedID,
         liked.Name AS LikedName,
         liked.Grade AS LikedGrade
FROM     Likes
JOIN     HighSchooler Liker ON Likes.ID1 = Liker.ID
JOIN     HighSchooler Liked ON Likes.ID2 = Liked.ID
WHERE    2 <= (Liker.Grade - Liked.Grade)

Should get you close

share|improve this answer
    
"Not working" doesn't tell me anything. –  Sam Axe Jan 28 '13 at 7:11
    
Thanks a lot. It's working. But, it would be great if you could point out the problem in my query as well. –  Keen Learner Jan 28 '13 at 7:13
    
That's probably not going to happen. I don't make it a habit to delve deep into other people's insanity. :) –  Sam Axe Jan 28 '13 at 7:14
    
No problem. Thanks for your nice answer. I learned some good techniques from your query :-) –  Keen Learner Jan 28 '13 at 7:19
    
-1 for berating the OP, shame on you. –  Richard Schneider Jan 28 '13 at 7:19

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