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I have some code and a database that does not really speak together the way I want. But taken this information, you might be able to help. I have a MySQL database which looks like this:

house_room1:

enter image description here

objects: enter image description here

I then have a database connection using PHP prepared statements which uses INNER JOIN to connect these two tables together with object_id -> ref_id.

As you can see, I have 5 different images in the objects table that I display with the PHP, however I want one of the images, the one with object_id = 2 to be displayed twice.

My PHP code looks like this:

 $n = 0;
    $item_number = 0;
    //Array which iterates over all objects in a given users object_id
    $ref[$n];

    for ($i = 0; $i < $rowsize; $i++) {
        if ($i == $ref[$n]) {
            $stmt = $mysqli->stmt_init();
            $stmt->prepare('SELECT x, y, src, link, div_id FROM house_room1 INNER JOIN objects ON house_room1.ref_id=objects.object_id WHERE house_room1.ref_id = ?'); 
            $stmt->bind_param('i', $i
            );
            if ($stmt->execute()) {
                $stmt->bind_result($x, $y, $src, $link, $div_id);
                while($stmt->fetch()) {
                    if ($link != "") { 
                        echo '<a href="' . $link . '"> '; 
                    }
                    if ($div_id != "") { 
                        echo '<a href="#" onClick="' . $div_id . '"> '; 
                    }
                    echo '<img src="' . $src . '"class="item' . $item_number . '" style="position:absolute; left:' . $x . 'px; top:' . $y . 'px;">'; if ($x != 0) { echo'</a>'; }
                }
            } else {
                echo 'Something went terrible wrong' . $mysqli->error;
            }
            $stmt->close();
            $n++;
            $item_number++;
        }
    }

What happens is that only 5 images are displayed and the last one is missing. I guess it has something to do with the fact that the two tables does not have the same amount of rows but I am not quite sure, and if that is the case, I have some DB issues. I hope you understood my problem and have some advice/suggestions, thanks in advance.

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If the MySQL query is your main issue, then leave out the PHP part for now, and see that you get the query fixed. Providing an sqlfiddle.com example could help. –  CBroe Feb 23 at 20:45

1 Answer 1

up vote 1 down vote accepted

Why are you joining object_id -> ref_id? It seems like it should be house_room1.object_id=objects.object_id

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OMFG YOU FIXED IT!!!! –  user3287771 Feb 23 at 20:59
    
Can't believe that was it! I have been sitting with this for 3 hours lol thanks! –  user3287771 Feb 23 at 21:00
1  
I've been there. Don't worry, the more time you spend and the more frustrated you get, the more likely you are to be able to solve a similar problem. –  Carl Porter Feb 23 at 21:03

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