2

If I print my link field in the node template like: [?php print render($content['field_link']); ?] I will get this field rendered the way it's set in the display settings of the content-type.

But what if I want the url and the title of this field print out separately? I could print out a specific value in the array but that's not the way according to http://www.computerminds.co.uk/articles/rendering-drupal-7-fields-right-way

Is there a simple way of doing this in Drupal 7. Thank you!

2
$field = field_get_items('node', $node, 'field_link');
print render($field[0]['url']);
?>" target='_blank'>View Link</a>
1
$field_title = field_view_field('node', $node, 'field_link', array(
    'label'=>'hidden',
    'type'=>'link_title_plain',
));

$field_url = field_view_field('node', $node, 'field_link', array(
    'label'=>'hidden',
    'type'=>'link_plain',
));

print render($field_url);
print render($field_title);
0

As your link points out, you should use:

$field = field_view_field('node', $node, 'field_name');

That will return the renderable array which you can dig into and grab individual pieces.

Full example:

$node = node_load($nid);
$field = field_get_items('node', $node, 'field_name');
$output = render(field_view_field('node', $node, 'field_name', $field[0]));
echo $output;
  • Thanks for your respons. This is what I did: 1. Create a field "field_link" in the content-type 2. In the node template I print out the $field array code <?php $field = field_view_field('node', $node, 'field_link'); print "<pre>"; print_r($field); print "</pre>"; ?> 'code' But then the full array of the node is printed out ... like: code Array ( [#theme] => field [#weight] => 0 [#title] => link [#access] => 1 [#label_display] => above [#view_mode] => _custom_display [#language] => und [#field_name] => field_link – stormy Apr 16 '13 at 21:10
  • Added a full example to my answer. – Mike Crittenden Apr 22 '13 at 21:38
  • Thanks again Mike, I just tried your snippet but what work for me eventualy was the following print render($field[0]['url']); print render($field[0]['title']); – stormy Apr 24 '13 at 7:02
  • The example you provided printed out the rendered link with label again. So I don't use the "field_view_field". Am I missing something here? – stormy Apr 24 '13 at 7:14

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