-2

Im trying to check and find if the value has exists in my database so that i can execute this line of code.

Database content

enter image description here

My basis there is the moviesId table field. so when I click the modal 11 then if it does exist on the database then the link Unfavorite should display and vice versa

$data = mysqli_query($con,"SELECT * FROM movies_favorites where moviesId= '$moviesid'");
$count = mysqli_num_rows($data);
if ($count > 0) {
    echo '<a class="btn btn-sm btn-dark" data-toggle="tooltip" data-placement="right" title="Favorites" href="movies-modal.php?moviesid='.$row2['id'].'&&action=moviesfavorites">
             <i class="fa fa-heart"></i>&nbsp; Favorite
          </a>';
} else {
    echo '<a class="btn btn-sm btn-dark" data-toggle="tooltip" data-placement="right" title="DeleteFavorites" href="movies-modal.php?moviesid='.$row2['id'].'&&action=deletefavorites">
             <i class="fa fa-heart-o"></i>&nbsp; Unfavorite
          </a>';
}
?>

If the value exists then the Favorite link will display and if it doesn't exists, the Unfavorite link will display. but for now im getting nothing. and the Unfavorite link is the one which is displaying even tho data are not exists.

Expected Output
Display Unfavorite link when data exists and when the data doesn't exist, display Favorite link.

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Uzumaki Naruto is a new contributor to this site. Take care in asking for clarification, commenting, and answering. Check out our Code of Conduct.
  • 1
    Possible duplicate of MySql php: check if Row exists – Tim Biegeleisen Feb 12 at 6:16
  • Can you please give some sample data – JIJOMON K.A Feb 12 at 6:22
  • @JIJOMONK.A ok, please give me a sec ill post my database content – Uzumaki Naruto Feb 12 at 6:24
  • Isn't your logic reversed? You're saying that "If there are rows, we display the first block (Favorite). Else we display the other block (Unfavorite)" - shouldn't it be if ($count === 0)? – Qirel Feb 12 at 6:26
  • @JIJOMONK.A , hello please see my edit code above i edited my question and added the image plus the info thanks – Uzumaki Naruto Feb 12 at 6:28
0

You should look for the data returned by the query first.

Code should only be run if the data returned by the query is not null.

So first check if result is not null then only continue further.

You can refer the below code:

$data = mysqli_query($con,"SELECT * FROM movies_favorites where moviesId= '$moviesid'");

//check if $data is not null
if (true == $data){
//further processing continue
if(mysqli_num_rows($data) <= 0) {
    echo '<a class="btn btn-sm btn-dark" data-toggle="tooltip" data-placement="right" title="Favorites" href="movies-modal.php?moviesid='.$row2['id'].'&&action=moviesfavorites">
             <i class="fa fa-heart"></i>&nbsp; Favorite
          </a>';
} else {
    echo '<a class="btn btn-sm btn-dark" data-toggle="tooltip" data-placement="right" title="DeleteFavorites" href="movies-modal.php?moviesid='.$row2['id'].'&&action=deletefavorites">
             <i class="fa fa-heart-o"></i>&nbsp; Unfavorite
          </a>';
}
}
?>
0
Expected Output - display Unfavorite link when data exists and
when not Favorite link will display.

That is from your question. But your code logic is reversed. Replace your whole code snippet with this:

$data = mysqli_query($con,"SELECT * FROM movies_favorites where moviesId= '$moviesid'");

/* If $data exists */
if ($data) {
  if (mysqli_num_rows($data) > 0) {
    /* Displays Unfavorite if $data is not empty */
    echo '<a class="btn btn-sm btn-dark" data-toggle="tooltip" data-placement="right" title="DeleteFavorites" href="movies-modal.php?moviesid='.$row2['id'].'&&action=deletefavorites">
      <i class="fa fa-heart-o"></i>&nbsp; Unfavorite
    </a>';
  }
  else {
    /* Displays Favorite if $data is empty */
    echo '<a class="btn btn-sm btn-dark" data-toggle="tooltip" data-placement="right" title="Favorites" href="movies-modal.php?moviesid='.$row2['id'].'&&action=moviesfavorites">
      <i class="fa fa-heart"></i>&nbsp; Favorite
    </a>';
  }
}
?>

Check first if your $data, returned by your mysqli_query, exists before executing your if-else code. I modified your code a bit and interchanged your conditions.

New contributor
Sarah Dominguez Perea is a new contributor to this site. Take care in asking for clarification, commenting, and answering. Check out our Code of Conduct.
0

You really should be using prepared statements for security/stability.

I am assuming you need another condition in your WHERE logic to associate the movieId to with a userId.

Here is an untested snippet:

if (!$stmt = $conn->prepare("SELECT COUNT(*) FROM movies_favorites WHERE userId=? AND moviesId=?")) {   
    echo "Prepare Syntax Error: " , $conn->error;   // don't show this to the public
} else {
    if (!$stmt->bind_param("ii", $userid, $movieid) // if trouble while binding to ? placeholder
        || !$stmt->execute()                        // or if trouble while executing
        || !$stmt->bind_result($num_rows)           // or if trouble while binding to $num_rows
        || !$stmt->fetch()) {                       // or if trouble while fetching the one row.
        echo "Statement Error: " , $stmt->error;    // don't show this to the public
    } else {
        if ($num_rows) {                            // if not zero, enable deletion
            $title = "DeleteFavorites";
            $action = "deletefavorites";
            $icon = "fa-heart-o";
            $text = "Unfavorite";
        } else {                                    // if zero, allow to add
            $title = "Favorites";
            $action = "moviesfavorites";
            $icon = "fa-heart";
            $text = "Favorite";
        }
        $stmt->close();                               // no longer need statement
        echo "<a class=\"btn btn-sm btn-dark\" data-toggle=\"tooltip\" data-placement=\"right\" title=\"{$title}\" href=\"movies-modal.php?moviesid={$row2['id']}&action={$action}\">";
            echo "<i class=\"fa {$icon}\"></i>&nbsp; $text";
        echo "</a>";
    }
}

If I have the logic reversed, then I was simply confused by your question requirements... I can happily edit my answer to fix it up if you find something a bit off.

-1
$data = mysqli_query($con,"SELECT * FROM movies_favorites where moviesId= '$moviesid'");

Can you change your code as like that and try again?

$data = mysqli_query($con,"SELECT * FROM movies_favorites WHERE moviesId= '".$moviesid."'");

or

$data = mysqli_query($con,"SELECT * FROM movies_favorites WHERE moviesId= '{$moviesid}'");
  • 1
    Taspinar , it does not work what is the different of your code to mine? – Uzumaki Naruto Feb 12 at 6:21
  • This makes virtually no difference, they are effectively the same three queries. – Qirel Feb 12 at 6:24
  • According to the php version you use, SQL may also differ in variable usage. i just thought – Kerem Taşpınar Feb 12 at 6:26
  • SQL doesn't care how you concat it, and these three lines will generate the same string, which forms the query. :-) php.net/manual/en/language.types.string.php – Qirel Feb 12 at 6:27

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