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In Drupal 6, it was easy to insert a block into a template with the following code:

$block = module_invoke('views', 'block', 'view', 'block_name');
print $block['content'];

However, using the same instructions in Drupal 7 does not seem to work. I have looked around and cannot find the new method.

Does Drupal 7 have a routine that can allow for pro grammatically inserting a block into a template or node?

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There's a bug now popping up related to a newer version of PHP. See the answer for @canintex below. –  wrburgess Mar 10 at 19:07
    
The above practice isn't recommended. See Load a block in template? for details. –  colan Mar 19 at 16:23
    
The above practice is no longer recommended in 2014. We didn't have much to go on back in 2011. –  wrburgess Mar 20 at 17:02
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11 Answers

up vote 59 down vote accepted

D7:

<?php
  $block = module_invoke('module_name', 'block_view', 'block_delta');
  print $block['content'];
?>

'module_name' = The machine name of the module (i.e. the module's folder name). This is true for core modules too, so for instance 'search', 'user' and 'comment' would all work here.

'block_delta' = The machine name of the block. You can determine what this is by visiting the block administration page and editing the block. The URL for editing a webform block, for instance, would be something like:

Drupal 7: admin/structure/block/manage/webform/*client-block-11*/configure

In this example, 'webform' is the module's name, 'client-block-11' is the block's delta.

Custom blocks will have module name of 'block' and a number for a delta, which you can also find by editing the block.

More information: http://drupal.org/node/26502

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this is a better solution than my answer was back in January –  wrburgess Nov 9 '11 at 1:16
1  
no title or contextual links though :( –  jackocnr May 24 '12 at 22:20
2  
This did not work for me. I had to use print $block['content']; in Drupal 7. –  vr3690 Nov 24 '12 at 5:38
4  
This did not worked for me in the node. I had to use print render($block); for views block and print render($block['content']); for a custom block in Drupal 7. –  Kevin Siji Jun 20 '13 at 8:57
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This appears to be the solution for inserting blocks into templates for Drupal 7, but it seems a bit clunky and I have no idea about impact on performance:

$block = block_load('views', 'block_name');      
$output = drupal_render(_block_get_renderable_array(_block_render_blocks(array($block))));        
print $output;

If anyone has a better procedure, please do add.

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1  
This is the solution I settled on - as it is the only way I have found of including the block title and contextual links. Thanks. –  jackocnr May 24 '12 at 22:38
    
This method will theme the block content with the correct template file. Kloewer's answer will get you the body of the block unthemed. –  Segfault Jun 25 '13 at 19:52
1  
since php 5.4 , you can only call drupal_render on a variable... meaning that you should get your $output up to _block_get_renderable_array(), then print drupal_render($output) –  PatrickS Dec 1 '13 at 8:01
    
This is what I needed to get #attached js included, using render() in a .tpl.php file. –  Shaun Dychko Jun 16 at 22:48
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This work for me:

98 is the id of the block

$block =block_load('block',98);
$output = drupal_render(_block_get_renderable_array(_block_render_blocks(array($block))));
print $output;
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Just tested this in drupal 7 and it works:

$bloqueServicios = module_invoke('views', 'block_view', 'servicios-blo_home');
print render($bloqueServicios);

Good luck!

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for some reason render() doesn't work for me, but this does:

<?php $block = module_invoke('block', 'block_view', '1'); echo $block['content']; ?>

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I had the same experience as this –  Will Nov 20 '12 at 10:24
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The module_invoke() function works. However, I found that rendering a block this way apparently won't use a custom template for that block. This might be OK depending upon your needs.

As commented before in other answers, this works as well and also makes use of custom templates:

$raw_block = block_load('your-module', 'delta');
$rendered_block = drupal_render(_block_get_renderable_array(_block_render_blocks(array($raw_block))));
print $rendered_block;

So, if you have a custom block--your-module--delta.tpl.php template file, it will be used to format the block.

Source: http://api.drupal.org/api/drupal/includes!module.inc/function/module_invoke/7

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In my search to include a block in a template, i came across this post.

As an addition, if you want to include a custom block (that you added through the block interface) you have to use (instead of block_load(); in drupal 7)

$block = block_get_custom_block($bid);
$content = $block['body'];
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This worked for my Drupal 7 , URL: admin/structure/block/manage/addthis/**addthis_block**/configure NOTE:delta and module name present in the url itself

$addblock = module_invoke('addthis','block_view','addthis_block');
print render($addblock['content']);

More information can be found on http://www.ultechspot.com/drupal/insert-block-node-or-template-drupal-7

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With wrburgess's answer you may get an error if your server is using a newer version of PHP.

Strict warning: Only variables should be passed by reference in include()...

This is what I did to not cause/get rid of the error.

  <?php
    $blockObject = block_load('views', 'block_name');
    $block = _block_get_renderable_array(_block_render_blocks(array($blockObject)));
    $output = drupal_render($block);
    print $output;
  ?>
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Thanks for adding this. I got bitten by the issue two days ago and wasn't sure of the cause. –  wrburgess Mar 10 at 19:06
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Have a look how Drupal does it in _block_render_blocks. The result of that function gets passed to drupal_render.

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 $block = module_invoke('menu_block', 'block_view', '6');
 echo render ($block['content']);

This works for me for printing menu block.

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