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I currently have some php that changes the background image of a div everytime the page is refreshed.

In the head of my HTML I have this

<?php 
$bg = rand(1, 6); 
$bgchange = $bg.".jpg"; 
?>

and then this

<style type="text/css">
.cover {
  background-image: url('../img/backgrounds/<?php echo $bgchange; ?>');
}
</style>

As you can see this is a very simple bit of php it does do the job but I am having problems when the site is first loaded on a computer or if the internet is slow where the image fails to load.

Any javascript guys that can recommend a solution to this I would greatly appreciate, I'm also thinking javascript will be better as the image can 'fade' in etc. I am referencing jquery-1.10.2 in my project.

P.S. Solution does not have to be javascript if anyone knows how to improve my php code or can offer a reason why the code fails sometimes, that would be really helpful.

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2 Answers

Check out this tutorial: http://briancray.com/2009/12/28/simple-image-randomizer-jquery/

First create an array of images:

var images = ['image1.jpg', 'image2.jpg', 'image3.jpg', 'image4.jpg', 'image5.jpg'];

Then, set a random image as the background image:

 $('body').css({'background-image': 'url(images/' + images[Math.floor(Math.random() *      images.length)] + ')'});

That should work no problem.

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you can do (and should) do this action in js.

on the document load function you can do this. //document load function

$(function(){

    var bgImage = (Math.floor(Math.random() * 6))+ ".jpg;"
    $('.cover').css('background-image',"../img/backgrounds/"+bgImage);
});

and this way you can keep using the folders you are using and not change anything.

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I removed my current .php code and tried including this code in-between two script tags in the head of my HTML, did not work for some reason, I got an unexpected token error in the console. –  user2078845 Nov 10 '13 at 12:23
    
I can't see why it should not work, hmm... –  user2078845 Nov 10 '13 at 12:23
    
    
copy paste this two lines of code two your head tag and you will be good to go. –  Idan Magled Nov 10 '13 at 12:43
    
<script src="//ajax.googleapis.com/ajax/libs/jquery/1.10.2/jquery.min.js"></script> <script>window.jQuery || document.write('<script src="js/vendor/jquery-1.10.2.min.js"><\/script>')</script> –  user2078845 Nov 10 '13 at 13:03
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