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 have a form that populates input fields using jQuery and AJAX. I can not get the img URL to change in the src when I select the option from the dynamically populated dropdown.

JavaScript:

$(document).ready(function(){
    $("#id").change(function(){
        $.ajax({
            url     : 'get_driver_data2.php',
            type    : 'POST',
            dataType: 'json',
            data    : $('#ContactTrucks').serialize(),
            success: function( data ) {
                   for(var id in data) {        
                          $(id).val( data[id] );
                   }
            }
        });
    });
});

PHP:

$id_selected = $_POST['id']; // Selected  Id
$query  = "SELECT * from admin_dispatch_records where id = '$id_selected' AND     driver LIKE '%$username%'";
$result = mysqli_query($dbcon, $query);
while ($row = mysqli_fetch_array($result, MYSQLI_ASSOC)) {
    $eta = $row['eta'];
    $time = $row['dispatch_time'];
    $date = $row['dispatch_date'];
    $name = $row['name'];
    $phone = $row['phone'];
    $vehicleyear = $row['vehicleyear'];
    $color = $row['color'];
    $make = $row['make'];
    $model = $row['model'];
    $vin = $row['vin'];
    $plate = $row['plate'];
    $mileage = $row['mileage'];
    $pickup = $row['pickup'];
    $dropoff = $row['dropoff'];
    $price = $row['price'];
    $invoice = $row['invoice'];
    $cash = $row['cash'];
    $credit = $row['credit'];
    $check = $row['check'];
    $po = $row['po'];
    $billed = $row['billed'];
    $need_to_bill = $row['need_to_bill'];
    $getphoto = $row['image_path'];
}

$arr = array( 'input#eta' => $eta, 'input#dispatch_time' => $time, 'input#dispatch_date' => $date, 'input#name' => $name, 'input#phone' => $phone, 'input#vehicleyear' => $vehicleyear, 'input#color' => $color, 'input#make' => $make, 'input#model' => $model, 'input#vin' => $vin, 'input#plate' => $plate, 'input#mileage' => $mileage, 'textarea#pickup' => $pickup, 'textarea#dropoff' => $dropoff, 'input#price' => $price, 'input#invoice' => $invoice, 'input#cash' => $cash, 'input#credit' => $credit, 'input#check' => $check, 'input#po' => $po, 'input#billed' => $billed, 'input#need_to_bill' => $need_to_bill, 'image#image_path' => $getphoto);
echo json_encode($arr);

A bit of the HTML:

<td>
<img id="image_path" src="????" />
</td>
</tr>
</table>

<p><strong>
<input type="submit" value="Complete Dispatch">
</strong></p>

How do I populate the src with the database value from the AJAX call when I change the select box? All other data is populated and the string is returned correctly. I have tested that by placing an input box and including input#image_path => $getphoto. Is the syntax for an img tag different from input or textarea? I have tried including the PHP inline and assigning the src to $getphoto with no luck. I was look to make a hidden input field with the AJAX passed data and then taking that data and making it a var but can not figure that out either.

share|improve this question
add comment

3 Answers

up vote 0 down vote accepted

Your JavaScript doesn't set the src attribute of your <img>.

After your for loop, you can pull the data out of the array like this:

$("#image_path").attr("src", data['image#image_path']);

Alternatively, if you want to use the hidden <input> approach, that would look something like:

HTML:

<td>
<input type="hidden" id="image_path" value="default.png" />
<img id="photo" src="default.png" />
</td>

PHP:

$arr = array('input#eta' => $eta,
             ...
             'input#image_path' => $getphoto);

JavaScript:

$(document).ready(function(){
    $("#id").change(function(){
        $.ajax({
            url     : 'get_driver_data2.php',
            type    : 'POST',
            dataType: 'json',
            data    : $('#ContactTrucks').serialize(),
            success : function(data) {
                          for(var id in data) {        
                              $(id).val(data[id]);
                          }
                          $("#photo").attr("src", $("#image_path").val());
                      }
        });
    });
});
share|improve this answer
    
that works great using the hidden field changes when I change the select filed. is there a way to do that without having a hidden field –  user1871596 Dec 3 '12 at 5:38
    
yes added $("#image_path").attr("src", data['image#image_path']); and kept .... 'image#image_path' => $getphoto and it works as well i like the first option as it does not show a broken link thanks for the quick response you rock –  user1871596 Dec 3 '12 at 5:46
    
I also set the the column like this <img id="image_path" /> –  user1871596 Dec 3 '12 at 5:57
add comment

Do you mean

if (id=="image_path") $(id).attr("src", data[id] );
else $(id).val( data[id] );
share|improve this answer
add comment

You can use attr() to change the src like this:

$(id).attr("src", data[id]);   // chnage the source of the img tag

In this case, you can use a conditional statement in your for loop like this:

if(id=="image_path"){
   $(id).attr("src", data[id]);
}else{
   $(id).val(data[id]);
}
share|improve this answer
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.