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 want to compile a list of recommended friends.

What I was thinking was something like this (this is semi pseudo (sudo) code!):

recommended_friends = []
friends.each do |friend|
   while recommeded_friends.length < 10
      friend.friends.each do |friend|
         if friend.in?(recommeded_friends)
             recommeded_friends[friend][counter] += 1
         else
             recommeded_friends << [friend, 0]
         end
      end
    end
end

But this obviously doesn't work. How would you guys approach this?

Thanks for any suggestions.

The tables (some are shortened):

Users:
id | name 

Friendships
id | user_1_id | user_2_id | requested_at | accepted_at | declined_at |

A friendship between user1 and user2 only occurs once in the DB.

share|improve this question
    
you are missing the count method, recommended_friends.count <10. Also it seems you have totally confused your array here to such a extent that even iam confused what exactly you are trying to do. –  djd Jul 5 '12 at 10:39
    
Do you mean "semi pseudo code"? –  Andrew Grimm Jul 5 '12 at 23:03
    
@AndrewGrimm Haha yes of course I do... This is me typing while being fuelled by RAGE! ;) –  KimJongIl Jul 6 '12 at 6:25
    
@Stefano Make sure you don't use sudo while fuelled by rage! –  Andrew Grimm Jul 6 '12 at 6:45
    
@AndrewGrimm I will try to keep that in mind :D –  KimJongIl Jul 6 '12 at 6:47

3 Answers 3

up vote 0 down vote accepted

UPDATED. Try something like this, it should work:

recommended_friends = {}
friends.each do |friend|
   if recommeded_friends.length < 10
      friend.friends.each do |other_friend|
         if other_friend != this_user          # exclude myself 
           recommeded_friends[other_friend] =
             (recommeded_friends[other_friend] | 0) + 1
         end
      end
   end
end
recommendend_friends.sort_by{|key, value| value}.reverse
top_ten = recommended_friends.first(10).map{|a| a[0]}

SQL version:

Users.find_by_sql([
  "SELECT u.*
   FROM 
   (SELECT f2.id, f2.user_1_id u_1_id, f2.user_2_id u_2_id, (count(f1.id)) cnt
      FROM friendships f1 
      JOIN friendships f2 ON f1.user_1_id = f2.user_1_id
                          OR f1.user_2_id = f2.user_1_id
                          OR f1.user_2_id = f2.user_2_id
                          OR f1.user_1_id = f2.user_2_id
      WHERE (f1.user_1_id = ? OR f1.user_2_id = ?)
        AND (f2.user_1_id <> ? AND f2.user_2_id <> ?)
      GROUP BY f2.id, f2.user_1_id, f.user_2_id
      HAVING count(f2.id) = 1
      ORDER BY cnt DESC) fs
   JOIN friendships ff ON ff.user_1_id = fs.u_1_id
                       OR ff.user_2_id = fs.u_1_id
                       OR ff.user_2_id = fs.u_2_id
                       OR ff.user_1_id = fs.u_2_id
   JOIN users u ON 
     CASE WHEN (ff.user_1_id = fs.u_1_id OR ff.user_2_id = fs.u_1_id) 
                THEN fs.u_2_id ELSE fs.u_1_id END = u.id ", 
 user.id, user.id, user.id, user.id]).first(10)

In theory it should work, take a try.

share|improve this answer
    
I want 10 friends, and rank them according to how many friends they have in common. I know that the DB is better for this kind of stuff but I am no database architect. –  KimJongIl Jul 5 '12 at 13:38
    
Then this loop won't work properly. I'll write a better solution soon. –  Matzi Jul 5 '12 at 13:53
    
Check the updated answer. –  Matzi Jul 5 '12 at 16:39
    
I will try your answer later today. But you are right about doing this in the DB being better. How would one do that though? After a little bit of Join here and join there my SQL knowledge is exhausted. –  KimJongIl Jul 6 '12 at 6:28
    
If you provide some table names, then I might write SQL for you. Actually it only needs some join and group by. –  Matzi Jul 6 '12 at 7:41

recommeded_friends will always stay an empty array. You can not do this: recommeded_friends < 10

Try this: recommeded_friends.length < 10

share|improve this answer

The simplest method I can think of:

 recommended_friends = friend.friends.sort do |a,b|
   a <=> b # insert your ranking algorithm here
 end.take 10
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.