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Can anyone help? I am getting the following error: Fatal Error: Function name must be a string in .... on line 120

Here is the code - it looks fine to me, but maybe a second pair of eyes? I will highlight line 120.

function display($name, $display_name, $id, $package_results, $payment_type, $before_percent_box, $before_price_box, $after_percent_box, $after_price_box, $min_price_box)
{
    LINE 120 -> $records = $mysql_num_rows($package_results);   

    if ($records > 0)   //If there are records
    {
        while($package_row = mysql_fetch_assoc($results))
        {

        }
    }
    else    //If there were no records found
    {
        if ($payment_type == 1)     //If it is a PAYG
        {
            createPricePackageTable($name, $display_name, $id, "", $before_percent_box, $before_price_box, $after_percent_box, $after_price_box, $min_price_box, $records, 1);  //Create one blank table, 1 month
        }
        else    //If it is any other payment type other than PAYG
        {
            createPricePackageTable($name, $display_name, $id, "", $before_percent_box, $before_price_box, $after_percent_box, $after_price_box, $min_price_box, $records, 2);  //Create two blank tables, 6 and 12 months 
        }
    }
}

I have also includes the code leading up to the calling of the above function:

function build($name, $id, $memberid, $results) 
{
    echo "<div class='popup-column' style='width: 100%;'>";
        echo "<h3>Payment Option " . $memberid . "</h3>";

        echo "<p>Which payment options do you offer?</p>";

        echo "<div class='payment-options'>";
            $payment_type = 0;

            $display_name = $name;      //Get the name of the Payment Type
            $name = str_replace(" ", "", $name);

            $disable  = 'readonly="readonly" class="readonly"';
            $before_percent_box = '';   //Setup variables to hold whether a input box is disabled or not
            $before_price_box = '';
            $after_percent_box  = '';
            $after_price_box  = '';
            $min_price_box    = '';

            switch($name)   //Disable some input box fields
            {
                case "Split1" :
                    $payment_type = 5;

                    break;

                case "Split2" :
                    $payment_type = 6;

                    break;

                case "Fixed1" :
                    $payment_type = 3;

                    $before_percent_box = $disable;
                    $after_percent_box  = $disable;
                    $after_price_box  = $disable;
                    $min_price_box    = $disable;

                    break;

                case "Fixed2" :
                    $payment_type = 4;

                    $before_percent_box = $disable;
                    $after_percent_box  = $disable;
                    $after_price_box  = $disable;
                    $min_price_box    = $disable;

                    break;

                case "PAYG" :
                    $payment_type = 1;

                    $before_percent_box = $disable;
                    $after_percent_box  = $disable;
                    $after_price_box  = $disable;
                    $min_price_box    = $disable;

                    break;

                case "Commission" :
                    $payment_type = 2;

                    $before_percent_box = $disable;
                    $before_price_box = $disable;

                    break;
            }

            displayPackagePricesTable($name, $display_name, $id, $results, $payment_type, $before_percent_box, $before_price_box, $after_percent_box, $after_price_box, $min_price_box);    //Display the table with the prices

...

share|improve this question

closed as off-topic by tereško, Amal Murali, HamZa, andrewsi, rene Dec 6 '13 at 16:28

  • This question does not appear to be about programming within the scope defined in the help center.
If this question can be reworded to fit the rules in the help center, please edit the question.

    
$mysql_num_rows is null – tereško Dec 4 '13 at 17:47
4  
This question appears to be off-topic because it is about a typo. – tereško Dec 4 '13 at 17:47
    
You really need to learn how to read error messages... – Marc B Dec 4 '13 at 17:47
    
Also, on a related note: the mysql_* functions are no longer maintained and shouldn't be used in any new codebase. It is being phased out in favor of newer APIs. Instead you should use prepared statements with either PDO or MySQLi. – tereško Dec 4 '13 at 18:01
up vote 3 down vote accepted

Since it is possible to call a variable function, PHP tries to call a function named $mysql_num_rows. That variable isn't defined anywhere in your code and is NULL. So you'll essentially be trying to call a function whose name is not a string and causes PHP to trigger that Fatal error.

Change that line to:

$records = mysql_num_rows($package_results);   
          ^-- remove the $
share|improve this answer
    
ahh, thank you thank you! – Pippa Rose Smith Dec 4 '13 at 17:47

You have a function name that starts with a $ sign. Remove it:

$records = mysql_num_rows($package_results);
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