Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to input name and phone in form and get data from mysql based on input values. When I run query by on click function the browser displays my php and query but instead of values from database it displays 'object HTMLInputElement'.

I must be missing something in my script but can't figure out what it is. Can anybody tell me when I submit this ajax/mysql why the value is not being displayed. See code below and hanks for your help...

HTML and SCRIPT

<script type="text/javascript" src="jquery-1.8.3.min.js"></script>
<script language="javascript" type="text/javascript">

function ajaxFunction(){
var ajaxRequest;  

try{

    ajaxRequest = new XMLHttpRequest();
} catch (e){

    try{
        ajaxRequest = new ActiveXObject("Msxml2.XMLHTTP");
    } catch (e) {
        try{
            ajaxRequest = new ActiveXObject("Microsoft.XMLHTTP");
        } catch (e){

            alert("Your browser broke!");
            return false;
        }
    }
}

ajaxRequest.onreadystatechange = function(){
    if(ajaxRequest.readyState == 4){
        var ajaxDisplay = document.getElementById('ajaxDiv');
        ajaxDisplay.innerHTML = ajaxRequest.responseText;
    }
}
var age = document.getElementById('lname').value;
var queryString = "?lname=" + lname + "&phone=" + phone ;
ajaxRequest.open("GET", "find.php" + queryString, true);
ajaxRequest.send(null); 
}

</script>
<form name='myForm'>
Last Name: <input type='text' id='lname' />
Phone: <input type='text' id='phone' />
<input type='button' onclick='ajaxFunction()' value='Query MySQL' />
</form>
<div id='ajaxDiv'>Your result will display here</div>
</body>
</html>

PHP

$inputedname = $_GET['lname'];
$inputedphone = $_GET['phone'];

$inputedname = mysql_real_escape_string($inputedname);
$inputedphone = mysql_real_escape_string($inputedphone);

$query = "SELECT FirstName, Phone FROM ClientInfo WHERE LastName = '$inputedname' AND Phone = '$inputedphone'";

$qry_result = mysql_query($query) or die(mysql_error());


$display_string = "<table>";
$display_string .= "<tr>";
$display_string .= "<th>Name</th>";
$display_string .= "<th>Phone</th>";
$display_string .= "</tr>";


while($row = mysql_fetch_array($qry_result)){
$display_string .= "<tr>";
$display_string .= "<td>$row[FirstName]</td>";
$display_string .= "<td>$row[Phone]</td>";
$display_string .= "</tr>";

}
echo "Query: " . $query . "<br />";
$display_string .= "</table>";
echo $display_string;

In Browser

enter image description here

share|improve this question
add comment

1 Answer 1

up vote 1 down vote accepted

That's because you never defined the variables lname and phone in your var queryString = "?lname=" + lname + "&phone=" + phone ; line. Therefore, browsers generate variables from your input element IDs. When you use a DOM element in string concatenation, its toString() is called and it outputs [object HTMLInputElement]. That's a feature that IE gave us from the early days and other browsers copied to be IE compatible. It's a feature you should not use.

The following code will fix your problem.

var lname = document.getElementById('lname').value;
var phone = document.getElementById('phone').value;
var queryString = "?lname=" + lname + "&phone=" + phone ;
ajaxRequest.open("GET", "find.php" + queryString, true);

As an aside, to prevent SQL injection, you should use prepared statements instead of http://php.net/manual/en/function.mysql-real-escape-string.php which is deprecated

share|improve this answer
    
That was it. I will look into prepared statements. Thank You for your help! –  user1933115 Dec 29 '12 at 20:26
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.