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I have a comics website where I'm trying to implement a like/dislike system. Each user can only vote once on a particular comic. The comics are stored in 'comics' table, artwork stored in 'artwork', and I have a 'votes' table with columns (ip, table_name, imgid).

When someone votes, I want to store their IP against that image id and table within "votes" table. If they try to vote again, it will check that table to see if they have voted.

Also, I want to do a ON DUPLICATE KEY UPDATE which will update the Primary Key "ip" in the votes table if someone with that IP tries to vote again.

include 'dbconnect.php';
$site = $_GET['_site'];
$imgid = intval($_GET['_id']);
$input = $_GET['_choice'];


if ($site == "artwork") {
$table = "artwork";
}
else {
$table = "comics";
}

$result = $mysqli->query("SELECT like_count, dislike_count FROM $table WHERE id = $imgid");

list($likes, $dislikes) = $result->fetch_array(MYSQLI_NUM);

$sql = "INSERT INTO 
            votes (ip, table_name, imgid) 
        VALUES 
            (\"".$_SERVER['REMOTE_ADDR']."\", \"$table\", $imgid)
        ON DUPLICATE KEY UPDATE
            ip = VALUES(ip),
            table_name = VALUES(table_name),
            imgid = VALUES(imgid)";


if (!$mysqli->query($sql)) printf("Error: %s\n", $mysqli->error); 

$sql = "SELECT ip FROM votes WHERE ip = '".$_SERVER['REMOTE_ADDR']."' AND table_name = '$table' AND imgid = $imgid";

if ($result = $mysqli->query($sql)) {

    if ($result->num_rows == 0) { 
        if ($input == "like") {
            $sql = "UPDATE $table SET like_count = like_count + 1 WHERE id = $imgid";
            $mysqli->query($sql);           
            $likes++;
        }
        else if ($input == "dislike") {
            $sql = "UPDATE $table SET dislike_count = dislike_count + 1 WHERE id = $imgid";
            $mysqli->query($sql);
            $dislikes++;        
        }
    echo "Likes: " . $likes . ", Dislikes: " . $dislikes;
    }
    else {
        echo "You have already voted";
    }
}
else { 
    printf("Error: %s\n", $mysqli->error); 
}
mysqli_close($mysqli);

Any thoughts?

share|improve this question
1  
What is the error message? –  Mark Byers Nov 24 '12 at 17:31
    
@MarkByers What happened to your answer? lol. I just responded to it. The error message is it's not allowing me to vote again even though I have a new image –  Growler Nov 24 '12 at 17:36
    
So what is the error message? –  symcbean Nov 24 '12 at 17:43
    
@Growler: You changed the question after I answered it so my answer no longer made sense, so I deleted it. –  Mark Byers Nov 24 '12 at 17:56
    
@MarkByers Alright, I'm just going to release the website without the like/dislike functionality for now :/ –  Growler Nov 24 '12 at 18:18

2 Answers 2

up vote 1 down vote accepted

table is a reserved word in MySQL. If you want to use it, you have to enclose it in backticks. In your case, however, I think that the you meant to use table_name instead:

$sql = "INSERT INTO 
            votes (`ip`, `table_name`, `imgid`) 
        VALUES 
            (\"".$_SERVER['REMOTE_ADDR']."\", \"$table\", $imgid)
        ON DUPLICATE KEY UPDATE
           `ip` = VALUES(`ip`),
           `table_name` = VALUES(`table_name`),
           `imgid` = VALUES(`imgid`)";

From the syntax of your query, you should consider using REPLACE:

REPLACE works exactly like INSERT, except that if an old row in the table has the same value as a new row for a PRIMARY KEY or a UNIQUE index, the old row is deleted before the new row is inserted.

So your query would resolve to this:

$sql = "REPLACE INTO 
            votes (`ip`, `table_name`, `imgid`) 
        VALUES 
            (\"".$_SERVER['REMOTE_ADDR']."\", \"$table\", $imgid)";
share|improve this answer
   $sql = "INSERT INTO 
            votes (ip, table_name, imgid) 
        VALUES 
            (\"".$_SERVER['REMOTE_ADDR']."\", \"$table\", $imgid)
        ON DUPLICATE KEY UPDATE
            ip = VALUES(ip),
            table = VALUES(table),
            imgid = VALUES(imgid)";

Your columns are "ip", "table_name" and "imgid" so when you set VALUES it excepts column name as argument for VALUES() + you wrote "table = VALUES(table)" and you're column name is "table_name". Column "table" doesn't exists here. Just change it to "table_name = VALUES(table_name)".

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