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I know how to check if the user is logged in through PHP, but I need to do some styling when an event occurs, and I created a separate JavaScript file for this. Is this a Drupal variable or something which I can reference too?

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1  
You're doing styling in javascript? Be very careful about what you do in javascript based on user authentication. It's VERY easy for anyone to manipulate the JS on your page. –  Webnet Oct 1 '12 at 13:34

2 Answers 2

up vote 11 down vote accepted

Create a new custom module with hook_init implementation.

function [YOUR_MODULE]_init()
{
    global $user;
    drupal_add_js(array('user_js_uid' => $user->uid), 'setting');
}

Then in your javascript code, check for the value of the variable defined in the module user_js_uid.

if(Drupal.settings.user_js_uid == 0)
{
    // execute code for non logged in users
}
else
{
    // execute code for logged in users
}

Hope this helps... Muhammad

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1  
jQuery.cookie("DRUPAL_UID"); always returns null –  FLY May 21 '12 at 12:35
1  
There is no "DRUPAL_UID" cookie in 7.12 –  jhoff May 9 '13 at 19:31
    
+1. I added a fix for this case. Thanks. –  Muhammad Reda May 13 '13 at 6:48
    
The second option is good, but note that it only applies if you're not behind Varnish or similar (which in our case is why we're doing something with JS in the first place). –  Joshua Stewardson Jan 8 at 19:49
    
to get it from JS use uid = Drupal.settings.user_js_uid. Simply user_js_uid does not work for me in D7 - drupal.org/node/828916 –  Art Aug 6 at 17:36

If you are waiting for the DOM to be ready and use standard generated Drupal CSS classes, you could do something like (with jQuery):

if( $( "body.not-logged-in" ).length )
{
    // user is not logged in
}
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This way you don't have to add a library to check.. –  Haje May 30 '13 at 6:42
    
This is a great solution and you don't need to write a custom module if you're not using Varnish or similar –  Bery Aug 7 at 7:48

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