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In drupal 7, i use function image_style_url('style', uri) to generate new image with style and return image's path. so what will be instead of it in drupal 8? thanks

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up vote 9 down vote accepted

Per the change records:

use Drupal\image\Entity\ImageStyle;

$path = 'public://images/image.jpg';
$url = ImageStyle::load('style_name')->buildUrl($path);
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thanks! it work fine – user3810914 Jul 16 '14 at 2:38
    
I need to do this inside a Twig template but here I can't use PHP. How can I do? – Fred K Apr 22 at 15:28
1  
@FredK You're looking at that wrongly: you don't need to do it in a template; you might want to for whatever reason, but it's a bad idea, and you definitely don't need to. A template preprocess function is the right place for this code. But if you're adamant that it has to be done in Twig, you'll need to write some PHP to expose the ImageStyle class methods to it. That'll take longer than just doing it the recommended way, though – Clive Apr 22 at 15:31

You should try to use the new Drupal functions wherever possible.

Instead, use:

use Drupal\file\Entity\File;
use Drupal\image\Entity\ImageStyle;

$fid = 123;
$file = File::load($fid);
$image_uri = ImageStyle::load('your_style-name')->buildUrl($file->getFileUri());

Edited as per https://www.drupal.org/node/2050669:

$original_image = 'public://images/image.jpg';

// Load the image style configuration entity
use Drupal\image\Entity\ImageStyle;
$style = ImageStyle::load('thumbnail');

$uri = $style->buildUri($original_image);
$url = $style->buildUrl($original_image);
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I used in Drupal 8 this code. It's working fine.

$fid = 374; //get your file id, this value just for example 
$fname = db_select('file_managed', 'f')->fields('f', array('filename'))->condition('f.fid', $fid)->execute()->fetchField();
$url = entity_load('image_style', 'YOUR_STYLE_NAME')->buildUrl($fname);
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