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I want to display data from three separate tables including a count for likes on the images/signs. Currently the result array only prints one result. When I remove the count it prints all of the 5 I want.

$query = "
    SELECT 
        image_url, image_path, date, location, fname, lname, rating,
        COUNT(DISTINCT likes.sign_id) as 'count'

    FROM 
        signs 
        INNER JOIN users ON signs.user_id=users.user_id
        INNER JOIN likes ON (signs.sign_id=likes.sign_id) 
        WHERE location='Oslo' LIMIT 5";

$result = mysqli_query ( $db_server, $query ) or die ( "Could not find uploads" . mysqli_error ( $db_server ) );
while ( $row = mysqli_fetch_assoc ( $result ) ) {
                            print_r($row);} 

I have tried different approaches but the issues seems to only be with the COUNT, which does count the correct amount of likes. Therefore I don't know why it wont output all the results.

2

You are missing a group by clause :

    SELECT 
        image_url, image_path, date, location, fname, lname, rating,
        COUNT(DISTINCT likes.sign_id) as 'count'

    FROM 
        signs 
        INNER JOIN users ON signs.user_id=users.user_id
        INNER JOIN likes ON (signs.sign_id=likes.sign_id) 
        WHERE location='Oslo'
        GROUP BY image_url, image_path, date, location, fname, lname, rating
        LIMIT 5;

This will work only when all this columns are the same, if not, you need to specify which of them you want.

If you meant you just want to have a column total next to each row, then you can use a correlated query like this:

    SELECT 
        image_url, image_path, date, location, fname, lname, rating,
        (SELECT COUNT(DISTINCT l.sign_id) FROM likes l
         WHERE signs.sign_id=l.sign_id) as `count`
    FROM 
        signs 
        INNER JOIN users ON signs.user_id=users.user_id
        INNER JOIN likes ON (signs.sign_id=likes.sign_id) 
        WHERE location='Oslo'
        LIMIT 5;
  • Thank you for the swift reply! Another tiny issue arises, I can't seem to query out images that have no likes. Is there a simple solution for this as well? – Øyvind May 18 '16 at 11:39
  • @ØyvindHjartnes Replace INNER JOIN with LEFT JOIN , it will return null instead of nothing. If you want 0 instead of null, use COALESCE(count(distinct like.sign_id),0) in addition in the select. – sagi May 18 '16 at 11:41
  • Alright, great. I was stuck for a few hours trying to figure this out :). – Øyvind May 18 '16 at 11:47
  • Hi again, I am now trying to order results by the count. And this doesn't seem to work ORDER BY 'count' DESC Any ideas? – Øyvind May 19 '16 at 8:39
  • Use back ticks ` and not quote marks ' . @ØyvindHjartnes – sagi May 19 '16 at 8:40

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