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This is a php question in the WordPress context. I need the join button to only show if if the (is_user_logged_in()) value is false.

This is my current code:

<div align="right"><a href="www.google.com" class="join-button">Join</a>
 |<?php wp_loginout(); ?></div>

I would like to modify this code to follow this logic:

if user is logged in = false
    display join button 'class="join-button"
else
    do not display join button
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3 Answers 3

<?php if( ! is_user_logged_in()): ?>
show button
<?php endif; ?>
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http://codex.wordpress.org/Function_Reference/is_user_logged_in

<div align="right">
<?php if ( !is_user_logged_in() ): ?>
    <a href="www.google.com" class="join-button">Join</a>
    |
<?php endif; ?>
<?php wp_loginout(); ?>
</div>

EDIT because of comment ;)

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Other way round ;) if(!is_user_logged_in()): showButton(); endif; –  knittl Mar 6 '13 at 20:02
    
@knittl thanks! That worked perfectly :) Is it possible for the '<?php wp_loginout(); ?>' to show with the button instead of just a text link/button? –  Patrick Mar 6 '13 at 20:15
    
@user22507: I guess you have to apply the join-button class to a wrapper span: <span class="join-button"><a href="…">Join</a> | <?php wp_loginout(); ?></span>. But I'm just guessing here, I don't know nothing about the styles the join-button class defines. –  knittl Mar 6 '13 at 20:17

This didn't work for me either. I found the solution in the codex.

<?php
    if ( is_user_logged_in() ) {
        echo 'Welcome, registered user!';
    } else {
        echo 'Welcome, visitor!';
    }
?> 
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