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SQL query to get list of Authors who have written at least a book on all Genres

Tables are

      Author_id  |  Author_info  => authors
      Genre_id   |  Genre_info   => genres
      Author_id  |  Genre_id  |  Book_id  => books

I'm using Mysql, what would be the best way to do this?

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What did you try, what results did it gave you ? –  remi bourgarel Nov 18 '11 at 9:18
    
Have you tried something yourself already? As a tip, start by finding authors where there is a gender that they have NOT written about. Those are the authors that you DON'T want. –  njr101 Nov 18 '11 at 9:19
    
My idea was counting the number of genres from 'genres' and then matching them with distinct mapping of (author_id,genre_id), but as I have been away from SQL for a while, I couldn't put it together in SQL –  theReverseFlick Nov 18 '11 at 9:25
    
This is a good approach as well and it will probably be faster. The answer from Thilo is nice and does exactly this. –  njr101 Nov 18 '11 at 9:49
    
yes it is what i could do in English but needed someone like Thilo to put down as SQL –  theReverseFlick Nov 18 '11 at 9:52

3 Answers 3

up vote 2 down vote accepted

If N is the number of distinct genres:

select author_id, count(distinct genre_id) as genres
from books 
group by author_id 
having genres = N
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Assumed database schema as this

authors
|-  Author_id  -|- Author_info -|
genres
|-  Genre_id   -|- Genre_info  -|
books
|-  Author_id  -|-  Genre_id   -|-  Book_id -|

Query

SELECT authors.Author_id
FROM authors
LEFT INNER JOIN books ON (authors.Author_id = books.Author_id)
GROUP BY authors.Author_id
HAVING COUNT(DISTINCT books.Genre_id) = (SELECT COUNT(*) FROM genres)
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Are you sure this will work? Looking at the SQL I think it will aggregate the count across all books for all authors as there is no grouping by author. –  njr101 Nov 18 '11 at 9:51
    
thanks for warning, updated query –  Utku Yıldırım Nov 18 '11 at 10:15

Try this:

SELECT Author_id
FROM books
INNER JOIN Genre USING (Genre)
GROUP BY Author_id
HAVING COUNT(Author_id) >= (SELECT COUNT(*) FROM Genre); 
share|improve this answer
    
works, but can be done without join though –  theReverseFlick Nov 18 '11 at 9:47

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