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I have a php application that fetches the requests from mysql database and displays them for further approval. The form is fetched from send_req.php and is displayed inside the div on showrequests.php. This is the code for send_req.php

<table style="border:0;border-color:transparent">
<tr style="background-color:lightblue">
<td>Product ID</td>
<td>Name</td>
<td>Quantity</td>
<td><input type="checkbox" name="selectAll" /></td>
<td>Authorized Quantity</td>
</tr>
<form method="post" action="send_req.php">
<?php
$reqNum = $_POST['rId'];
echo "<h3>Request # $reqNum</h3>";

$showReqs = mysql_query("Select * from request where request_number='".$reqNum."' and status=0");
    while($resultA = mysql_fetch_array($showReqs))
    {
        $rBy = $resultA['requested_by'];
        $rTime = $resultA['request_time'];
        $rId = $resultA['id'];
        $pId = $resultA['product_id'];
        $getPrName = mysql_query("select name from products where id='$pId'");
        $prN = mysql_fetch_array($getPrName);
        $prName = $prN['name'];
        $rQuantity = $resultA['requested_quantity'];
        $status = $resultA['status'];

?>
    <tr>
        <input type="hidden" name="rId[]" value="<?php echo $rId; ?>"/>
    <td style="background-color:orange"><input type="text" name="prId[]" value="<?php echo $pId; ?>" readonly="readonly" style="border:0px"/></td>
    <td style="background-color:orange"><input type="text" name="prName[]" value="<?php echo $prName; ?>" readonly="readonly" style="border:0px"/></td>
    <td style="background-color:orange"><input type="text" name="quantity[]" value="<?php echo $rQuantity; ?>" readonly="readonly" style="border:0px"/></td>
    <td style="background-color:orange"></td>
    <td><input type="text" name="pQuantity[]" /></td>
    </tr>
<?php }
?>
    <tr>
<td></td>
<td></td>
<td></td>
<input type="hidden" name="rNum" value="<?php echo $reqNum; ?>" />
<td></td>
<td><input type="submit" name="submitReq" value="Send" id="submit_req" style="backgroundColor:Transparent;border:0;color:blue;width:100;"/></td>
</tr>
</form>
</table>
<?php
echo "Requested By:$rBy at ".substr($rTime,11,18)." ".substr($rTime,0,10);
?>

This is the showrequests.php page

<html>
<head>
<script type="text/javascript">
function getRequest(ob)
{
    var id = ob.id;
    if(window.XMLHttpRequest)
{
    ajaxOb = new XMLHttpRequest();
}
else if(window.ActiveXObject)
{
    ajaxOb = new ActiveXObject("Microsoft.XMLHTTP");
}  
     ajaxOb.open("POST", "send_req.php");   
     ajaxOb.setRequestHeader("Content-Type", "application/x-www-form-urlencoded");                    
     ajaxOb.send("rId=" + id);  
     ajaxOb.onreadystatechange = function()  
    {  
        if(ajaxOb.readyState == 4)
        {
            if(ajaxOb.status == 200)
            {
                document.getElementById("showTable").innerHTML = ajaxOb.responseText;
            }
        }

    }  
}
</script>
</head>
<body>
<?php
$mysql_con = mysql_connect("localhost","root","") or die("Could not connect ".mysql_error());
$mysql_db = mysql_select_db("cart",$mysql_con) or die("Unable to select db ".mysql_error());
echo "<h2 align='center'>Pending Requests</h2>";
$showReq = mysql_query("Select distinct(request_number) as rNums from request where status=0");
?>
<div style="float:left;margin-right:15px;">
<br/>
<?php
while($result = mysql_fetch_array($showReq))
{
    $rNum = $result['rNums'];
?>
<input type="button" name="fetchReq" id="<?php echo $rNum; ?>" value="<?php echo "Request # $rNum"; ?>" style="margin-bottom:5px;backgroundColor:Transparent;border:0;color:blue;width:100;text-Decoration:underline" onclick="getRequest(this)"/>

<?php
    echo "<br/>";
}
?>
</div>
<div id="showTable" style="float: left">
</div>
</body>
</html>

My problem now is that everything works fine in chrome and IE but the form is not submitted when i click the submit button in firefox. I am using firefox 20.0.1. Update: I have removed the html,head and body tags from send_req.php still not working

share|improve this question
    
Please read the FAQ section of this site carefully. It clearly advises you to post only the relevant bits of code, all info that might be relevant to the question (as in: check your console if FF), and shows some effort of your own as to what is causing the problem. Also: stop using mysql_* in php, as it is deprecated –  Elias Van Ootegem Apr 27 '13 at 15:48
    
you are probably using very very very old firefox. try to update it to that latest release and check again. I do not see any error in your ode –  shnisaka Apr 27 '13 at 15:50
1  
If this is a public form, you have a rather big issue. You are not sanitizing your input before feeding it into your sql query, which leaves it wide open for a sql injection hack. –  David Apr 27 '13 at 15:53
    
Clean up your code and only show relevant parts, I cannot find your opening <form> line to save my life (if you feel it necessary to show the entire thing, link a paste bin, but please, just show relevant parts –  Datsik Apr 27 '13 at 16:32
    
If an answer did fix you problem, please mark it as accepted for future visitors! –  Bigood Apr 28 '13 at 3:27

2 Answers 2

up vote 0 down vote accepted

form is not allowed inside table. Please see also Form inside a table

Regards, Michael

share|improve this answer
    
well what do you know. i put the table inside the form and it works. Also i fixed the html issues as well. put the div inside the body. Thanks alot –  ra_ie_darkness Apr 27 '13 at 16:44

Reminder : the structure of an HTML document is :

<!-- No div before html tag -->
    <!DOCTYPE html> <!-- Doctype for HTML5 ; use whatever doctype you need -->
    <html>
        <head>

        </head>

        <!-- No div before body tag -->
        <body>
             <!-- Divs only belongs here -->
        </body>    
    </html>
<!-- No div after html tag -->

If you don't follow this basic structure, you're forcing the browser to interpret your invalid code (+ quirks mode when you don't provide a doctype).

Some browser guess well what you tried to do, others don't, as Firefox might.

Please use a HTML validator as W3's validator to check your syntax.

share|improve this answer
    
I fixed the issues you pointed out. Also, i put the table inside the form tag. thank you for helping –  ra_ie_darkness Apr 27 '13 at 16:46

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