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I have a link which links to a page which echoes out information depending on the id of the link but it is not echoing out the information. Thanks in advance for the help.

if($connect) {
            mysql_selectdb('phplogin');
            $id = $_GET['id'];
            $query = mysql_query("SELECT * FROM forum WHERE id = '$id'");
            $data = mysql_fetch_array($query);

           echo "<div class='post'>" . "<div class='leftside'>" . "<h3 class='by'>" . $data['user'] . "</h3>" . "<h5 class='date'>" . $data['time'] . "</h5>" . "</div>" . "<div class='after'>" . "</div>" . "<div class='rightside'>" . "<h2 class='title'>" . htmlspecialchars($data['title']) . "</h2>" . "<p class='description'>" . htmlspecialchars($data['description']) . "</p>"  . "</div>" . "<div class='clear'>" . "</div>" . "</div>";

        } else {
            die ('failed to connect to database');
        }
share|improve this question
    
var_dump($connect) ? –  samitha Mar 23 at 13:30
    
resource(3) of type (mysql link) –  Tom Mar 23 at 13:33
    
var_dump($connect) output ? –  samitha Mar 23 at 13:34
1  
Your code is vulnerable to SQL injections. You should read on how to prevent them in PHP. –  Gumbo Mar 23 at 13:41
1  
I have never heard of mysql_selectdb maybe replace with mysql_select_db('phplogin', $connect); works better. –  Wilmer Mar 23 at 13:46

1 Answer 1

up vote 1 down vote accepted

Under this Query String: localhost/Website/HTML/Post.php?id=7

Try this:

if(isset($_GET['id']))
{
     $id       = $_GET['id'];
     $query    = mysql_query("SELECT * FROM forum WHERE id = '$id'");
     $countQry = mysql_num_rows($query);
     if($countQry>0)
     {
          $data     = mysql_fetch_array($query);
          //-- Fetch your Data here ---//
     }
     else
     {
          echo "No record found.";
     }
}
else
{
     echo "Invalid Id";
}

Your MYSQL Connection should be like this :

<?php
$link = mysql_connect('localhost', 'mysql_user', 'mysql_password');
if (!$link) {
    die('Could not connect: ' . mysql_error());
}
echo 'Connected successfully';
mysql_close($link);
?>
share|improve this answer
    
this gives me invalid id –  Tom Mar 23 at 13:50
    
Can you provide me your query string ? –  Hassan Sardar Mar 23 at 13:56
    
I think you mean this $query = mysql_query("SELECT * FROM forum WHERE id = '$id'"); –  Tom Mar 23 at 13:57
    
No no. The link from your address bar –  Hassan Sardar Mar 23 at 13:58
    
sorry about that localhost/Website/HTML/Post.php?7 –  Tom Mar 23 at 13:58

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