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Scenario:

The user inputs the reference number and based on his reference number, I should display the location equivalent to it.

SQL:

require_once('conn.php');
$refnum = (isset($_POST['refOff'])) ; //Get filename set in form

$query = mysql_query("SELECT * FROM pilot WHERE geo=$refnum");
// display query results
while($row = mysql_fetch_array($query))
    {
    $rname =$row['rname'];
    $pname =$row['pname'];
    $mname =$row['mname'];                           
} 

HTML:

    <tr>
        <td width="283" height="32">Region:</span> </td>
        <td width="407"> <input type="text"value="<?php echo $rname;?>"/></td>
    </tr>
    <tr>
        <td width="283" height="32">Province:</span> </td>
        <td width="407"> <input type="text"value="<?php echo $pname;?>"/></td>
    </tr>
   <tr>
        <td width="283" height="32">City:</span> </td>
        <td width="407"> <input type="text"value="<?php echo $mname;?>"/></td>
    </tr>

The PROBLEM:

Errors are being displayed saying the rname,pname,and mname are undefined. What is wrong?Thanks again

share|improve this question
    
Is all of this in the same file? –  Darren Aug 1 at 3:03
4  
If you say $refnum = (isset($_POST['refOff'])), then wouldn't $refnum always be a boolean (true/false)? In that case, your query will probably always return zero rows, and your while loop would not be run. --> Thus leading to your variables ($rname, $pname, and $mname) not being set. I would recommend to always prepare/execute queries, but in this case, you could just say $refnum = intval(isset($_POST['refOff'])?$_POST['refOff']:0);. –  Dave Chen Aug 1 at 3:03
    
None of your inputs have a name attribute -> ie. <input type="text"value="<?php echo $rname;?>"/> should be <input type="text" name="rname" value="<?php echo $rname;?>" /> –  Sean Aug 1 at 3:06
2  
and use mysqli or PDO instead –  Ghost Aug 1 at 3:06
    
to piggyback on Dave Chen's point, if the query yielded 0 results then you should not continue assigning stuff at all, or initialize an empty string on those 3 variables. –  Ghost Aug 1 at 3:13

1 Answer 1

up vote 0 down vote accepted

First of all I'm believing that you have an input element of this sort in your html:

<label for='refOff'>Reference Number: </label>
<input type='text' id='refOff' name='refOff'/> 

This line in your code:

$refnum = (isset($_POST['refOff'])) 

only returns a boolean value (i.e. true or false) and never returns the actual value the user has entered into the 'refOff' html input element. This should rather work well using the ternary operator:

$refnum = (isset($_POST['refOff']))? $_POST['refOff'] : null;
if($refnum){
$query = mysql_query("SELECT * FROM pilot WHERE geo=$refnum");
// display query results
while($row = mysql_fetch_array($query))
 {
    $rname =$row['rname'];
    $pname =$row['pname'];
    $mname =$row['mname'];                           
 } 
}

Goodluck!

share|improve this answer
    
thanks Sir for helping –  LadyWinter Aug 1 at 3:59
    
@LadyWinter Glad to have helped. –  AndyG Aug 1 at 4:19

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