0

What is the optimize way to append this element to my specific DIV Class using JQUERY. This will generate dynamic elements. I use .AppendTo then display dynamically the element inside <div class='parent-list-workorder'>.

Here's my code so far but it doesn't work:

$(document).ready(function(){

    var ListOfWorkOrders = [];

    $("#button").click(function(){

        //var _WOID = $('.list-workorder-id').text();

        var _WOID = $('#txtWOID').val();

        //alert(_WOID);

        $.ajax({
          url:'getWorkOrders.php',
          type:'POST',
          data:{id:_WOID},
          dataType:'json',
          success:function(output){


            for (var key in output) {

                if (output.hasOwnProperty(key)) {

                    $("<div class='child-list-workorder'>

                        <div class='list-workorder'>

                            <div class='list-workorder-header'>

                                <h3 class='list-workorder-id'>" + output[key] + "</h3>

                            </div>

                            <p>" + Sample + ":" + key + "</p>

                        </div>

                    </div>").appendTo("<div class='parent-list-workorder'>");

                    //alert(output[key]);

                }
            }

            console.log(output);              

          }

        });

    });

});

Am I missing something?

  • 1
    You're appending to a new DIV, but never adding that new DIV to the DOM. – Barmar Oct 17 '14 at 3:41
  • if your're referring to this <div class='parent-list-workorder'>, that already exist inside my body tag – Waelhi Oct 17 '14 at 3:50
  • 1
    $("<...>") is not how you access an existing element, it's how you create a new element. See @Kuma's answer. – Barmar Oct 17 '14 at 3:54
  • yes sir. I already updated my code. but still it doesn't work. can you make your own answer sir? – Waelhi Oct 17 '14 at 4:05
  • @Unknownymous2 Something you should read up on is XSS exploits. – Joseph Lennox Oct 17 '14 at 4:10
1

You have two problems. First, you need to use a selector as an argument to .appendTo(), not an HTML string. Second, you need to remove or escape the newlines in the HTML string.

$("<div class='child-list-workorder'>\
     <div class='list-workorder'>\
       <div class='list-workorder-header'>\
         <h3 class='list-workorder-id'>" + output[key] + "</h3>\
       </div>\
       <p>" + Sample + ":" + key + "</p>\
    </div>\
 </div>").appendTo("div.parent-list-workorder");
  • I already tried your code sir but i get this error in console.log: HERE! – Waelhi Oct 17 '14 at 5:31
  • You haven't set the variable Sample. Where is that supposed to come from? – Barmar Oct 17 '14 at 5:33
  • oopps.. sorry bout that.. it already works sir! thanks! – Waelhi Oct 17 '14 at 5:46
  • last question sir., How can I click those dynamically created elements since they are not created in DOM? – Waelhi Oct 17 '14 at 6:00
  • 1
2

Your problem is in the code below:

.appendTo("<div class='parent-list-workorder'>");

The parameter of appendTo() should also be a valid selector.

you can try this instead:

.appendTo("div.parent-list-workorder");

granting that div.parent-list-workorder already exists.

  • yes .. div.parent-list-workorder is already exist in body. ANyways I tried your code but my console.log give me this error: Uncaught SyntaxError: Unexpected token ILLEGAL. in line 25 which is the $("<div class='child-list-workorder'>. – Waelhi Oct 17 '14 at 3:48
  • @Unknownymous2 To split a string across multiple lines, you need to escape the newlines with ``. – Barmar Oct 17 '14 at 3:53
  • @Barmar can you make a post so i can trace to my code what are you trying to say? – Waelhi Oct 17 '14 at 4:04

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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