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I am new to cakephp 3.0 and trying to get my head around the whole auth components, I am trying to use a button in my template that allows me to login, However once the user is logged in, it displays logout.

This is my current HTML code

<li><a href="#"><i class="fa fa-user"></i> Login</a></li>

I have tried to call the AuthComponent::user() to check if the user is logged in but got an error, So I done some further researcha and found this way of doing it, not sure if its correct or not:

                <?php
                if($this->request->session()->read('Auth.User.id')){
                    echo $this->Html->link(
                        $this->Html->tag('i', '', array('class' => 'fa fa-lock')) . " logout",
                        array('action' => 'logout'),
                        array('escape' => false),
                        array('controller' => 'users')
                        );


                }else{
                    echo $this->Html->link(
                        $this->Html->tag('i', '', array('class' => 'fa fa-lock')) . " login",
                        array('action' => 'login'),
                        array('escape' => false),
                        array('controller' => 'users')
                        );

                }



                ?>

However I am having 2 issues.

  1. login does not change to logout once logged in.
  2. It dose not go to the correct controller to find the login or logout features (Not finding the user controller link, Tried moving it up above action, excepts this breaks the tag code

Any help with this would be appreciated.

Regards Syn


[Update - Working Code]

Hi, I have working code now, However I need to figure out how to add bootstrap icons into the buttons, Anyone know how to do this?

My working code :

            <?php
            if($this->request->session()->read('Auth.User')) {
            // user is logged in, show logout..user menu etc
                echo $this->Html->link('Logout', array('controller'=>'users', 'action'=>'logout')); 
            } else {
            // the user is not logged in
                echo $this->Html->link( 'Login', array('controller'=>'users', 'action'=>'login')); 

            }

            ?>
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1 Answer 1

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my bad, you was talking about Glyphicon ?

if yes :

$this->Html->link(
    '<span class="glyphicon glyphicon-pencil" aria-hidden="true"></span> Login',
    array(
        'controller' => 'users',
        'action' => 'login',
        ),
    array(
        'escapeTitle' => false,
        'class' => 'btn btn-default',
        )
    );

For the bootstrap button css, just like this :

echo $this->Html->link(
    'Login', 
    array('controller'=>'users', 'action'=>'login'), 
    array('class'=>'btn btn-default');
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  • Hi, The issue isn't so much the class, Its the adding off the <i class="fa fa-user"></i> into the link, Any ideas how I can do this?
    – Syn
    Jan 23, 2016 at 19:48
  • @Syn I've update, go for a <span class="fa fa-user" aria-hidden="true">, with the 'escapeTitle' => false, parameter
    – Blag
    Jan 23, 2016 at 19:50
  • I think the problem is the fact that its a link tag, Its taking it as a text value rather than adding it as a tag, Because what happens when I do it is it displays the <i class="fa fa-users"></i> or the span, as text inside the button.
    – Syn
    Jan 23, 2016 at 19:53
  • Sorry i just seen you updated the code above, I have tweaked your code to suit font-awesome, But that works perfectly, Thank you very much for your help.
    – Syn
    Jan 23, 2016 at 19:56

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