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ACTOR (id, fname, lname, gender)
MOVIE (id, name, year, rank)
CASTS (pid, mid, role)
WHERE pid references ACTOR id
mid references Movie id

List the movies that x has been in without y (x and y are actors).

I am finding it difficult to construct an SQL with NOT in. This is my attempt. Im unable to fininsh it off due to the second actor not being present

SELECT m.name
FROM MOVIE m
WHERE m.id NOT IN (SELECT c.mid
                       FROM CASTS c, ACTOR a
                       WHERE c.pid = a.id AND a.name = "adam..") 
share|improve this question
    
No, your query is not correct. For instance, it only mentions one actor, but your question mentions two actors. –  Gordon Linoff May 2 '13 at 16:07
    
is there another subquery to take into account the Non existence of the second actor? how would you do it? –  Hoody May 2 '13 at 16:12

4 Answers 4

up vote 3 down vote accepted

Using NOT EXISTS:

SELECT m.name                       -- Show the names                      
FROM movie m                        -- of all movies
WHERE EXISTS                        -- that there was
      ( SELECT *                    -- a role
        FROM casts c                -- casted to
          JOIN actor a              -- actor with
            ON c.pid = a.id
        WHERE c.mid = m.id  
          AND a.name = 'Actor X'    -- name X
      ) 
  AND NOT EXISTS                    -- and there was not
      ( SELECT *                    -- any role
        FROM casts c                -- casted
          JOIN actor a              -- to actor with
            ON c.pid = a.id
        WHERE c.mid = m.id 
          AND a.name = 'Actor Y'    -- name Y
      ) ;

You can also use NOT IN. Note that this may give you unexpected results if there are rows with NULL in the movie.id or casts.mid column:

SELECT m.name                       -- Show the names                      
FROM movie m                        -- of all movies
WHERE m.id IN                       -- but keep only the movies that
      ( SELECT c.mid                -- movies that
        FROM casts c                -- had a role casted to
          JOIN actor a              -- actor with
            ON c.pid = a.id
        WHERE a.name = 'Actor X'    -- name X
      ) 
  AND m.id NOT IN                   -- and not the movies
      ( SELECT c.mid                -- that
        FROM casts c                -- had a role casted
          JOIN actor a              -- to actor with
            ON c.pid = a.id
        WHERE a.name = 'Actor Y'    -- name Y
      ) ;
share|improve this answer
    
Two correlated subqueries instead of one? My Oracle is a little rusty, but in SQL Server, this would be more overhead than doing a traditional join for Actor X. –  imthepitts May 2 '13 at 16:43
    
i think this is something i was looking for, thanks :D –  Hoody May 2 '13 at 16:48
    
@imthepitts The problem with a join in this case is that we need a semi-join, not a join. If there are actors with more than one role in the same movie, a join will give duplicate results. All other join answers seem to have missed this point. –  ypercube May 2 '13 at 18:07
    
@ypercube That's true, but it's easy enough to add a DISTINCT to the SELECT clause and call it a day. –  imthepitts May 2 '13 at 18:13
1  
@imthepitts Would a JOIN + DISTINCT be more efficient than a correlated EXISTS subquery? –  ypercube May 2 '13 at 18:17

You can also use the often-overlooked MINUS:

SELECT Movie.id, Movie.name
  FROM Actor
  INNER JOIN Casts ON Actor.id = Casts.pid
  INNER JOIN Movie ON Casts.mid = Movie.id
  WHERE Actor.id = 1
MINUS SELECT Movie.id, Movie.name
  FROM Actor
  INNER JOIN Casts ON Actor.id = Casts.pid
  INNER JOIN Movie ON Casts.mid = Movie.id
  WHERE Actor.id = 2

The WHERE Actor.id in the queries above can be substituted with some other way to uniquely identify the actor, for example by their name.

share|improve this answer

First get all the movies for Actor X. Then check filter out any movies that also contain Actor Y.

SELECT m.name
FROM MOVIE m, CASTS c, ACTOR a
WHERE m.id = c.mid
    AND c.pid = a.id
    AND a.name = "ACTOR X"
    AND NOT EXISTS (
        SELECT 1
        FROM CASTS c1, ACTOR a1
        WHERE c1.pid = a1.id
            AND m.id = c1.mid
            AND a1.name = "ACTOR Y"
    )
share|improve this answer
    
whats 1 after the SELECT in the subquery? –  Hoody May 2 '13 at 16:25
    
EXISTS and NOT EXISTS are boolean comparisons. For each row in the outer query, it returns true if a row is found, false if a row is not found. In that way it filters the outer query with the results of the inner query. Since all we care about is a true/false, we want to select something that is trivial for the database. You could just as easily SELECT *, but it increases overhead. –  imthepitts May 2 '13 at 16:28
1  
Why are you avoiding the JOIN keyword? –  ypercube May 2 '13 at 16:31
1  
You can select anything in an EXISTS, it won't be evaluated. I normally use select 1/0, just for fun. –  jonearles May 2 '13 at 18:19
1  
To tack on to what @jonearles said, all RDBMS I am aware of ignore the SELECT list in an EXISTS subquery. Using 1 is still a good practice to show that you don't care about what's returned, but there would be no overhead by using * or some other column name. –  JNK May 2 '13 at 19:15
SELECT  a.*
FROM    Movie a
        INNER JOIN Casts b
            ON a.ID = b.mID
        INNER JOIN Actor c
            ON b.pid = c.ID
        LEFT JOIN
        (
            SELECT  aa.mid
            FROM    Casts aa
                    INNER JOIN Actor bb
                        ON aa.pid = bb.ID
            WHERE   bb.fName = 'Y_Name'
        ) d ON  a.id = d.mid
WHERE   c.fname = 'X_Name' AND
        d.mid IS NULL

The reason for having extra join on the subquery is because we are filtering the records by the name of the actor.


Assuming you have these set of records

ACTOR

╔════╦════════╗
║ ID ║ FNAME  ║
╠════╬════════╣
║  1 ║ X_Name ║
║  2 ║ Y_Name ║
╚════╩════════╝

MOVIE

╔════╦══════╗
║ ID ║ NAME ║
╠════╬══════╣
║  1 ║ Mov1 ║
║  2 ║ Mov2 ║
║  3 ║ Mov3 ║
╚════╩══════╝

CAST

╔═════╦═════╗
║ PID ║ MID ║
╠═════╬═════╣
║   1 ║   1 ║ <<== EXPECTED OUTPUT since Y_NAME is not present
║   1 ║   2 ║                      on Movie Mov1
║   2 ║   2 ║
║   1 ║   3 ║
║   2 ║   3 ║
╚═════╩═════╝

THE OUTPUT

╔════╦══════╗
║ ID ║ NAME ║
╠════╬══════╣
║  1 ║ Mov1 ║
╚════╩══════╝
share|improve this answer
    
thank you for the explanation and demonstration using the SQL fiddle. –  Hoody May 2 '13 at 17:01

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