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I have this diagram POST WITH FEEDS

What I wanna do is have this output: Likes post - like Facebook

How do you manage to do the query of this one?

I have this code

SELECT users.firstname, users.lastname, 
       users.screenname, posts.post_id, posts.user_id,
       posts.post, posts.upload_name, 
       posts.post_type, posts.date_posted
FROM website.users users
INNER JOIN website.posts posts ON (users.user_id = posts.user_id)
ORDER BY posts.pid DESC
//PROBLEM with this one is that it only views the post from all users.

//SO I added
SELECT COUNT(user_id) AS friends, SUM(user_id = ?) AS you, user_id
FROM feeds WHERE post_id = ?
//This one will give you two fields containing how many different users **feeds** the
post

Please help guys. Actually this one I am just following Facebook's "LIKE" status the only thing is I'm not an amateur with this kind of stuff so I'd be glad to hear all your answers. I really need your help

share|improve this question

2 Answers 2

up vote 3 down vote accepted

If I've understood you correctly, you want an outer join with the feeds table (in order to retain all posts even if there are no associated feeds), then GROUP BY post.pid in order to amalgamate together all such feeds for each post, and SELECT the desired information.

I use MySQL's GROUP_CONCAT() function to obtain a comma-separated list of all users (up to group_concat_max_len) who have a "feed" for the given post (you can change the delimiter with the SEPARATOR modifier, if so desired).

SELECT users.firstname, users.lastname, 
       users.screenname, posts.post_id, posts.user_id,
       posts.post, posts.upload_name, 
       posts.post_type, posts.date_posted,
       COUNT(feeds.user_id) AS friends,   -- number of "likes"
       SUM(feeds.user_id = ?) AS you,     -- did I like this?
       GROUP_CONCAT(feeds.user_id)        -- who likes it?
FROM website.users users
INNER JOIN website.posts posts ON (users.user_id = posts.user_id)
LEFT  JOIN website.feeds feeds ON (posts.post_id = feeds.post_id)
GROUP BY posts.pid
ORDER BY posts.pid DESC

UPDATE

To obtain the full name of users who have "liked" the post, excluding oneself, one needs to join the users table a second time:

SELECT users.firstname, users.lastname, 
       users.screenname, posts.post_id, posts.user_id,
       posts.post, posts.upload_name, 
       posts.post_type, posts.date_posted,
       COUNT(feeds.user_id) AS friends,                      -- number of "likes"
       SUM(feeds.user_id = ?) AS you,                        -- did I like this?
       GROUP_CONCAT(
         CASE WHEN NOT likes.user_id = ? THEN                -- exclude self
           CONCAT_WS(' ', likes.firstname, likes.lastname)   -- full names
         END
       )
FROM website.users users
INNER JOIN website.posts posts ON (users.user_id = posts.user_id)
LEFT  JOIN website.feeds feeds ON (posts.post_id = feeds.post_id)
LEFT  JOIN website.users likes ON (feeds.user_id = likes.user_id)
GROUP BY posts.pid
ORDER BY posts.pid DESC
share|improve this answer
    
THanks much mate! But bro, about this line "SUM(user_id = ?) AS you, -- did I like this? GROUP_CONCAT(user_id)" should it be "feeds.user_id"? I'm having an error saying: "Column user_id in field list is ambiguous –  Peter Wateber May 3 '12 at 12:20
    
Yes, sorry: feeds.user_id. Updated. –  eggyal May 3 '12 at 12:27
    
Thank you so much guys for all your help! –  Peter Wateber May 3 '12 at 12:28
1  
@PeterWateber: GROUP_CONCAT(NULLIF(feeds.user_id, ?)) where ? is "my" id. Bear in mind the COUNT also includes oneself too (unless you add a similar NULLIF around its argument). –  eggyal May 3 '12 at 13:19
1  
@PeterWateber: See my update above. –  eggyal May 3 '12 at 13:45

If You want to do it for all the users and simultaneously get the feeds, You have to join this feed table:

SELECT u.firstname, u.lastname, 
   u.screenname, p.post_id, p.user_id,
   p.post, p.upload_name, 
   p.post_type, p.date_posted,
   COUNT(f.user_id) AS friends, SUM(f.user_id = ?) AS you
FROM website.users u
INNER JOIN website.posts p ON (u.user_id = p.user_id)
LEFT  JOIN website.feeds f ON (p.post_id = f.post_id)
GROUP BY p.pid
ORDER BY p.pid DESC

This one should do the trick...

share|improve this answer
    
Thanks mate! trying to understand everything –  Peter Wateber May 3 '12 at 12:30
    
@PeterWateber You're welcome. –  shadyyx May 3 '12 at 12:52

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