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I have a form that posts data on click of the submit button an AJAX function is called which should GET the PHP processing page. However the processing page does not seem to getting called or receiving the posted data..the code snippets are below:

//the form


<form name="quicktransfer" action="" method="post">
 <td style="width: 214px;padding-left: 5px;padding-right: 5px; cell-spacing:10px ">
  <dl id='accService'>
          <dt id='accHeader1'>Quick transfer</dt> 
      <dt class='accLinks1'>From.. </dt>
    <dt class='accLinks1'>
<!-- Creates a select drop down box with useres bank account numbers as the options -->

<?php
    $acc_tbl='accounts';
    $cust = $_SESSION['custno'];
    $result = mysql_query("SELECT  accountNo FROM  $acc_tbl WHERE custNo = '$cust'");
    echo '<select name="acc_from">';
    echo "<option value=\" \"></option>";
    while($array = mysql_fetch_assoc($result)) 
    {
    echo "<option value=\"{$array['accountNo']}\">{$array['accountNo']}</option>\n";
    }
    echo '</select>';
?>

<!-- end of the select drop down -->

    </dt>
      <dt class='accLinks1'>To... </dt> <dt class='accLinks1'>

<!-- Creates a select drop down box with useres bank account numbers as the options -->

<?php
    $acc_tbl='accounts';
    $cust = $_SESSION['custno'];
    $result = mysql_query("SELECT  accountNo FROM  $acc_tbl WHERE custNo = '$cust'");
    echo '<select name="acc_to">';

    echo "<option value=\" \"></option>";
    while($array = mysql_fetch_assoc($result)) 
    {
    echo "<option value=\"{$array['accountNo']}\">{$array['accountNo']}</option>\n";
    }
    echo '</select>';
?>

<!-- end of the select drop down -->

    </dt>
    <dt class='accLinks1'>Amount.. </dt>
    <dt class='accLinks1'><input type="input" name="amount" id="amount" size="10"/></dt>
       <dt class='accLinks1'><input type="submit" name="transfer" value="transfer" onclick="loadQuickTransfer()"><br/><br/></dt>
      </dl>     
    </form>


//the AJAX script


function loadQuickTransfer()
{
var xmlhttp;
if (window.XMLHttpRequest)
  {// code for IE7+, Firefox, Chrome, Opera, Safari
  xmlhttp=new XMLHttpRequest();
  }
else
  {// code for IE6, IE5
  xmlhttp=new ActiveXObject("Microsoft.XMLHTTP");
  }
xmlhttp.onreadystatechange=function()
  {
  if (xmlhttp.readyState==4 && xmlhttp.status==200)
    {
    document.getElementById("QuickTransfer").innerHTML=xmlhttp.responseText;
    }
  }
xmlhttp.open("GET","quicktransfer.php",true);
xmlhttp.send();
}




// the form processing page getting called


if(isset($_POST['transfer']) && $_POST['amount'] == "")
{       
    echo '<b><i>Select account (From..To..)<br/><br/>Type amount to transfer.</i></b>';
}
else
{
    $transFrom = $_POST['acc_from'];
    $transTo = $_POST['acc_to'];
    $amount = $_POST['amount'];
    $acc_tbl = 'accounts';
    $trans_tbl = 'transactions';
    $cust = $_SESSION['custno'];

    $transfer = mysql_query("UPDATE $acc_tbl SET accountBalance = accountBalance -'$amount' WHERE custNo = '$cust' AND accountNo = '$transFrom'");
    if($transfer)
    {
        $transfer2 = mysql_query("UPDATE $acc_tbl SET accountBalance = accountBalance + '$amount' WHERE custNo = '$cust' AND accountNo = '$transTo'");
    }   
    else
    {

        echo '<b>Error.. Could not transfer<br/> Please try again!</b>';
        exit();

    }
        if($transfer2)
        {

            echo '<b>Transfer complete..</b> ';
            exit();
        }

}
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1 Answer 1

I just had a quick look, but it seems you never send any post variables on the XMLHttpRequest.send() call.

share|improve this answer
    
I was under the impression that since I was posting the browser would carry the variables in the POST array or is it just when working with forms and PHP? –  kay Apr 13 '11 at 23:26
    
Exactly - you are not submitting the form, but sending a custom http request, so you will have to take care of it yourself. –  weltraumpirat Apr 13 '11 at 23:33
    
And also, you are using the "GET" method on that request. –  weltraumpirat Apr 13 '11 at 23:34
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