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I'm currently taking the online standford class on databases, If you could help me solve this sql problem I would greatly appreciate it. Sorry I'm a complete noob.

Table Movie:

mID | title | year | director

Table Rating

rID | mID | stars | ratingDate

Table Reviewer

rID | name

For all pairs of reviewers such that both reviewers gave a rating to the same movie, return the names of both reviewers. Eliminate duplicates, don't pair reviewers with themselves, and include each pair only once. For each pair, return the names in the pair in alphabetical order.

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1  
Do you have some sample data? You want an average rating per movie and the unique names of the reviewers. Is that a correct translation? –  Jacco Jan 12 '13 at 21:09
    
@lester for quick and better answers - you at least need to provide short sample data and corresponding resultant table –  exex zian Jan 12 '13 at 21:33

4 Answers 4

This will get you started.

SELECT m.*, ra.*, re.*
FROM Movie m
JOIN Rating ra ON ra.mID = m.mID
JOIN Reviewer re ON re.rID = ra.rID
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Find the average rating per movie:

SELECT 
    [m].[mID],
    [m].[title],
    AVG([r].[stars]) AS [AvgRating]
  FROM [Movie] [m]
  LEFT JOIN [Rating] [r] ON [m].[mID] = [r].[mID]
  GROUP BY 
    [m].[mID],
    [m].[title]

Find the unique reviewers per movie:

SELECT
    [r].[mID],
    [v].[rID],
    [v].[name]
  FROM [Reviewer] [v]
  INNER JOIN [Rating] [r] ON [v].[rID] = [r].[rID]
  GROUP BY
    [v].[rID],
    [v].[name],
    [r].[mID]

Combine:

SELECT 
  [rat].[mID],
  [rat].[title],
  [rev].[rID],
  [rev].[name],
  [rat].[AvgRating]
FROM
(
  SELECT 
    [m].[mID],
    [m].[title],
    AVG([r].[stars]) AS [AvgRating]
  FROM [Movie] [m]
  LEFT JOIN [Rating] [r] ON [m].[mID] = [r].[mID]
  GROUP BY 
    [m].[mID],
    [m].[title]
) AS [rat]
LEFT JOIN
(
  SELECT
    [r].[mID],
    [v].[rID],
    [v].[name]
  FROM [Reviewer] [v]
  INNER JOIN [Rating] [r] ON [v].[rID] = [r].[rID]
  GROUP BY
    [v].[rID],
    [v].[name],
    [r].[mID]
) AS [rev] ON [rat].[mID] = [rev].[mID]
ORDER BY 
  [rat].[mID] ASC,
  [rev].[name] ASC

For a Fiddle, look here.

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Maybe something like this:

SELECT rev.rID, rev.name, m.title
FROM [Reviewer] rev 
   JOIN [Rating] rate ON rev.rID = rate.rID
   JOIN [Movie] m ON rate.mID = m.mID
   JOIN (
     SELECT mID
     FROM [Rating] 
     GROUP BY mID
     HAVING COUNT(Distinct rID) > 1
   ) m2 on m.mID = m2.mID
ORDER BY rev.name

--EDIT

If you need to get the average as well:

SELECT rev.rID, rev.name, m.title, ar.avgRating
FROM [Reviewer] rev 
   JOIN [Rating] rate ON rev.rID = rate.rID
   JOIN [Movie] m ON rate.mID = m.mID
   JOIN (
     SELECT mID
     FROM [Rating] 
     GROUP BY mID
     HAVING COUNT(Distinct rID) > 1
   ) m2 on m.mID = m2.mID
   JOIN (
     SELECT mID, AVG(stars) as avgRating
     FROM [Rating] 
     GROUP BY mID
   ) ar on m.mID = ar.mID
ORDER BY rev.name

And the SQL Fiddle.

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Your missing the title of this post... "average rating" –  Jacco Jan 12 '13 at 21:10
    
Hehe -- didn't even read the title, just read the paragraph asking for what he needed returned. I can add that :-) Thanks @Jacco. –  sgeddes Jan 12 '13 at 21:12
    
I read the paragraph too and was then looking for the real question... Found it in the title. But your answer is off for the part "don't pair reviewers with themselves", when using a larger data sample. –  Jacco Jan 12 '13 at 21:51
select distinct r2.name, r1.name
from 
(select r1.rid, r1.mid, r2.name
from (select * from reviewer order by name) r2
join (select r1.rid, r1.mid from rating r1 join reviewer r2 on r1.rid = r2.rid order by r2.name) r1
on r2.rid = r1.rid
group by mid
order by r2.name) r1,
(select r1.rid, r1.mid, r2.name
from reviewer r2,
rating r1
where r1.rid = r2.rid)r2
where r1.rid <> r2.rid and r1.mid = r2.mID
order by r2.name, r1.name
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