12

I am developing a website and I have this on the side menu :

<a href="#" class="leftMenu" id="contact">Contact Us</a>

then I have this script

$(document).ready(function(){
  $("#contact").click(function(){
    $("#contents").load('home.php');
  });
});

and I have this DIV inside my page :

<div class="contentWrapper" id="contents"></div>

Obviously, what I am trying to do is to load home.php when I click on the Contact Us hyperlink, which doesn't work. What is wrong with my code?

7
  • Can you show us where you have set this up?
    – techie_28
    Commented Sep 21, 2012 at 4:28
  • 2
    Do you get any errors? This code should work.
    – Blender
    Commented Sep 21, 2012 at 4:28
  • 3
    Your error is probably in home.php. Try using firebug (or Developer console) to watch the request and response.
    – Ben D
    Commented Sep 21, 2012 at 4:29
  • 1
    Does home.php really exist where specified?
    – m90
    Commented Sep 21, 2012 at 4:30
  • Sorry, I cannot show where this is set up due to customer request. However, I am very sure that my jQuery is working as the toggling of link display works. However, when I click on the Contact Us link, it doesn't load up the contents inside the div as it should.
    – JudeJitsu
    Commented Sep 21, 2012 at 4:44

4 Answers 4

18

add home.php page url instead of file name.

$(document).ready(function(){
  $("#contact").click(function(){
    $("#contents").load('url to home.php');
  });
});
4
  • Thanks, for some weird reasons, it worked! But I am wondering why it doesn't work without the URL. It should be the same, right?
    – JudeJitsu
    Commented Sep 21, 2012 at 4:48
  • Yes, relative URL's should work. Try appending using /home.php?
    – Mike H.
    Commented Oct 16, 2013 at 12:32
  • how can you load two different pages in two different div in one click of a button?
    – user2805663
    Commented Aug 6, 2014 at 3:38
  • after loading dose it takes the CSS style from the destination page? Commented Jun 19, 2020 at 23:21
11

You can use $.load() like this, to get more data of whats happening. When you see the error message, you probably can solve it yourself ^^

$("#contents").load("home.php", function(response, status, xhr) {
  if (status == "error") {
      // alert(msg + xhr.status + " " + xhr.statusText);
      console.log(msg + xhr.status + " " + xhr.statusText);
  }
});
3

@user2805663 I know this post is pretty old but though let me post the solution it might help someone else, as it helped me.

Thanks to @Mangala Edirisinghe

by following method you can load two separate files in two different DIVs with single click(Link).

$(document).ready(function(){ 
 $("#clickableLink").click(function(){ 
  $("#contents").load('url/file1.php');
  $("#contents2").load('url/file2.php'); 
 }); 
});
2
  • dose it maintain the css style too? Commented Jun 19, 2020 at 23:23
  • @KamelLabiad Yes it does maintain because normally you load your CSS in the HEAD section so it's available in DOM already.
    – TechYogi
    Commented Dec 15, 2021 at 16:51
1

You have to use the path of "home.php" from index dir and not from script dir.

If you site is :

/
  index.php  
  scripts
     /script.js 
     /home.php

You have to modify your parameter passing "scripts/home.php"

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