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Editorial Team
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Asked: 2026-06-05T20:04:29+00:00

Hello again codes masters, I’m stuck at this piece of codes for dropdown menu.

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Hello again codes masters,

I’m stuck at this piece of codes for dropdown menu. Here is the codes

echo '<h3>Select Supplier</h3>';    
$deliver_sql = mysql_query("SELECT supplier_name FROM delivery") or die(mysql_error());

echo '<div align="left">';
echo '<form class="forms" action="returns.php" method="post" name="companyform">';

echo "<select class=\"input\" name=\"companyNames\" onChange=\"this.form.submit()\">"; 

        while($row = mysql_fetch_array($deliver_sql) or die(mysql_error())) 
        { 
        echo '<option value="'.$row['supplier_name'].'">'.$row['supplier_name'].'</option>'; 
        } 
    break;
    echo '</select>'; 

echo '</form>';
echo '</div>';

My question is, Is there something wrong with this code? Because when I open this particular page, the footer aint displaying.

Its like there is something that is breaking the whole html codes that causes the footer to doesnt display, even if I used $_POST['companyform'] cannot also detected.

Can someone please find what causes this error.

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1 Answer

  1. Editorial Team

    The problem is in this line

    while($row = mysql_fetch_array($deliver_sql) or die(mysql_error()))

    when there are no more rows in the $deliver_sql, mysql_fetch_array will return false and die(mysql_error()) will be executed. mysql_fetch_array returning false is not an error so you should not call die in this case
    Just use

    while($row = mysql_fetch_array($deliver_sql))
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