Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have this query that has no problem:

SELECT m.movie_name, cd.times_requested
FROM movie m,
  (select *
  from(
    select movie_id, count(movie_id) as times_requested
    from movie_queue
    where status_id=0 or status_id=1
    group by movie_id
    ) ab
  where times_requested>1) cd
WHERE m.movie_id=cd.movie_id;


It returns the following list.

MOVIE_NAME                                            TIMES_REQUESTED
----------------------------------------------------------------------
E.T. the Extra-Terrestrial                                    2 
Indiana Jones and the Kingdom of the Crystal Skull            2 
War of the Worlds                                             3 
Unbreakable                                                   3 


Question:
How do I add another column showing the amount of DVDs available for each movie, I can not just join it because I need to group DVDs by movie_id first?.

Table above is OK, but I want to add a third column, the third column will contain information about the number of DVDs available for each movie. the problem is that the number of dvds is stored in another table call DVDS. The structure of the table DVDs is similar to this:

    DVD_ID   MOVIE_ID DVD_ENTRY_DATE
---------- ---------- --------------
         1          1 24-JUL-12      
         2          1 24-JUL-12      
         3          1 24-JUL-12      
         4          2 24-JUL-12      
         5          2 24-JUL-12   

Desired Result:
Final table should look similar to the one below:

MOVIE_NAME                         TIMES_REQUESTED   DVDS_AVAILABLE
-------------------------------------------------------------------
E.T. the Extra-Terrestrial               2               3
Indiana Jones and the Kingdom            2               1
War of the Worlds                        3               3
Unbreakable                              3               1



I tried the following code, but did not get the result I wanted
I am assuming I need to go to dvd table first and find all dvds that match the movie_id I want and group them by movie_id. I tried the code below, but instead of returning the 4 rows I want it is returning 72.

SELECT m.movie_name, pomid.times_requested, d.dvds_available
FROM movie m,
  (select *
  from(
    select movie_id, count(movie_id) as times_requested
    from movie_queue
    where status_id=0 or status_id=1
    group by movie_id
    ) mid
  where times_requested>1) pomid, 
  (select movie_id, count(movie_id) as dvds_available
   from dvd
   group by movie_id) d
WHERE m.movie_id=pomid.movie_id;


Thanks for your suggestions in how to fix this.

share|improve this question

2 Answers 2

A join to d.movie_id is missing, that's why you get too many rows. (Quick check: how many tables do I have? How many joins do I have?)

And I'd also add an outer join to get all movies, even when there are no dvd or movie_queue entries.

SELECT m.movie_name
      ,NVL(pomid.times_requested,0) times_requested
      ,NVL(d.dvds_available,0) dvds_available
  FROM movie m
      ,(SELECT *
          FROM (SELECT   movie_id
                        ,COUNT (movie_id) AS times_requested
                    FROM movie_queue
                   WHERE status_id = 0
                      OR status_id = 1
                GROUP BY movie_id) mid
         WHERE times_requested > 1) pomid
      ,(SELECT   movie_id
                ,COUNT (movie_id) AS dvds_available
            FROM dvd
        GROUP BY movie_id) d
 WHERE m.movie_id    = pomid.movie_id(+)
   AND d.movie_id(+) = pomid.movie_id;

http://www.sqlfiddle.com/#!4/5437a/11

share|improve this answer

Not sure I really understand your table structure, but this might get you started:

select movie_id, 
       sum(case when status_id in (0,1) then 1 else 0 end) as times_requested,
       count(movie_id) as dvd_available,
from movie_queue
group by movie_id;
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.