Home/ Questions/Q 704505
In Process

The Archive Base Latest Questions

Editorial Team
  • 0
Asked: 2026-05-14T03:56:58+00:00

Here is my error: Warning: mysql_query() expects parameter 2 to be resource, null given…

  • 0

Here is my error:

Warning: mysql_query() expects parameter 2 to be resource, null given…

This refers to line 23 of my code which is: 

$result = mysql_query($sql, $connection)

My entire query code looks like this:

$query = "SELECT * from users WHERE userid='".intval( $_SESSION['SESS_USERID'] )."'"; 
                $result = mysql_query($query, $connection)
                or die ("Couldn't perform query $query <br />".mysql_error());

                $row = mysql_fetch_array($result);

I don’t have a clue what has happpened here. All I wanted to do was to have the value of the users ‘fullname’ displayed in the header section of my web page. So I am outputting this code immediately after to try and achieve this:

echo 'Hello '; echo $row['fullname'];

Before this change, I had it working perfectly, where the session variable of fullname was echoed $_SESSION[‘SESS_NAME’]. However, because my user can update their information (including their name), I wanted the name displayed in the header to be updated accordingly, and not displaying the session value.

Share

Leave an answer

You must login to add an answer.

Need An Account,

1 Answer

  1. Editorial Team

    Your $connection variable is NULL that’s what your error message is referring to.

    Reason being is that you have not called mysql_connect. Once called it will assign you a resource where you can set it to the $connection variable, thus being non-null.

    As an example:

    $connection = mysql_connect('localhost', 'mysql_user', 'mysql_password');
// now $connection has a resource that you can pass to mysql_query
$query = "SELECT * from users WHERE userid='".
                                         intval( $_SESSION['SESS_USERID'] )."'"; 
$result = mysql_query($query, $connection)
    • 0