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I load pages into a div , my question is i cant execute javascript code in page1.php.. How can i execute code when i load page in to div.. thanks for your help..

here is my codes

index.php :

<script language="JavaScript" type="text/javascript">
function swapContent(cv) {
    $("#content").html('<img  class="loader" src="images/loader.gif"/>').show();
    var url = "load.php";
    $.post(url, {contentVar: cv} ,function(data) {
       $("#content").html(data).show();
    });

}
</script>

<a href="#" onClick="return false" onmousedown="javascript:swapContent('page1');"> Button1 </a>
<a href="#" onClick="return false" onmousedown="javascript:swapContent('page2');"> Button2 </a>


<div id="content"></div>

load.php :

<?php 
if(isset($_GET['contentVar']))
{
$contentVar = $_GET['contentVar'];  
    }else{
    $contentVar = $_POST['contentVar']; }
if ($contentVar == "page1") {
   include("page1.php");
} else if ($contentVar == "page2") {
   include("page2.php");
}

and example for page1.php

<script type="text/javascript" src="nicEdit.js"></script>
<script type="text/javascript">
    bkLib.onDomLoaded(function() { nicEditors.allTextAreas() });
</script>
<textarea name="message" id="message" cols="45" rows="5"></textarea>
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1 Answer 1

Data returned from Ajax is treated like plain text, so any Javascript within it is not executed by default. See this article.

Try using .load() instead of $.post() :

function swapContent(cv) {
    $("#content").html('<img  class="loader" src="images/loader.gif"/>').show();
    var url = "load.php";

    $("#content").load(url, {contentVar: cv});
}
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