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The code below will exclude the content type 'name' from being printed on a Page and Story type. Question, how can I do the opposite of this and print the content type name on only a Page and Story type?

    <?php
    if (!in_array($node->type, array('story', 'page'))) {
    print node_get_types('name', $node);
    }
    ?>

I removed the (!) and it works. How can I embed a css style into this scprit. I get error when I tried it this way. I just need the style to show on Page or Story types.

    <?php
    if (in_array($node->type, array('story', 'page'))) {
    <div class="mystyle">
    print node_get_types('name', $node);
    </div>
    }
    ?>

I got the css style in using 'print'

    <?php
    if (in_array($node->type, array('story', 'page'))) {
    { print '<div class="mystyle"> ';
    print node_get_types('name', $node);
    }
    print '</div>';
    }
    ?>  
share|improve this question
    
I found it.. <?php if($node && in_array($node->type, array('story', 'page'))) { print node_get_types('name', $node);} ?> –  paulcap1 Apr 12 '12 at 17:02

2 Answers 2

up vote 0 down vote accepted

Assuming I understand the question correctly, just remove the not (!) operator, e.g:

<?php
if (in_array($node->type, array('story', 'page'))) {
     print node_get_types('name', $node);
}
?>
share|improve this answer

Just remove the ! operator:

if (in_array($node->type, array('story', 'page'))) {
  print node_get_types('name', $node);
}
share|improve this answer
    
It works, thank you. –  paulcap1 Apr 12 '12 at 17:48
    
How can I embed a css style into this. I get errors when I do it this way. <?php if (in_array($node->type, array('congressionaltestimony', 'newsletter', 'event', 'factsheet', 'pressrelease', 'speech'))) { <div class="mystyle"> print node_get_types('name', $node); </div> } ?> –  paulcap1 Apr 12 '12 at 17:50

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