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$(document).ready(function() {
$('#items').load("<?php echo site_url('home/new_items'); ?>");

Using jQuery I am able to display a whole page, that 'home/new_items' calls using the above code but how do I only display parts of the file? $('#result').load('ajax/test.html #container'); In the example it shows this is possible, so how do I use this in codeigniter?

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2 Answers 2

First of all you cannot insert php code by java script code,
Also using jqery load, you can just load file from directory without any php help

hint: use

$(function(){/*your code*/});

If you are using jquery

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I don't think you understand, this isn't just a PHP code, it's my site URL. – ethio Feb 22 '13 at 12:50

It is possible to display parts of page, however you need either to:

  • parse page and cut only part which you need to show


  • prepare part from server side (PHP), you could make AJAX call with parameters


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