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I'm using the code below to print the out the field of nodes to specific areas and it works great. But theres an instance where I just want to print the value you of field without the label. Seems as it should be pretty easy but I'm having a bit of trouble. I'd appreciate any help as i'm pretty new to drupal. Thanks

<?php 
  print drupal_render(field_view_field('node', $node, 'field_description')); ?>
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1 Answer 1

up vote 20 down vote accepted

field_view_value() takes a $display argument that you can use to hide the label:

$display = array('label' => 'hidden');
$view = field_view_field('node', $node, 'field_description', $display);
print drupal_render($view);

If you just want to extract the raw value of the field you can use field_get_items() instead:

$items = field_get_items('node', $node, 'field_description');
$first_item = array_shift($items);
$description = $first_item['value'];

The column name ($first_item['whatever']) will depend on the type of field you're using. For text fields it will be value. Remember to sanitise the input with check_plain() before you output it as Drupal's convention is to store the raw input data and sanitise it upon output.

share|improve this answer
    
Thanks. Thats exactly what I asked for. But I am having an issue with what I'm trying to do. Im trying to print the value of the field in a link, like such href="whatever.com/<?php echo 'field value' ?>" Is there a way to print just the value of the field not wrapped in a div? Thanks Again –  John Phelan Jul 28 '12 at 14:42
    
Yeah there's a different API function for that, I've updated the answer –  Clive Jul 28 '12 at 14:54
    
Thanks your awesome worked perfect!!! –  John Phelan Jul 28 '12 at 17:10

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