1
我想修改SonataAdmin模板。我有一个具有路径属性的图像实体。我创建了一个ImageAdmin类,并将其集成到了sonataAdmin中。我想修改管理列表视图以将路径封装在img标签中,以便实际显示图像。有谁知道我该怎么做?Symfony SonataAdmin模板
谢谢!
A
回答
4
有两种方法可以使用自己的模板。
在配置文件:
sonata_doctrine_orm_admin:
entity_manager:
templates:
form:
- SonataDoctrineORMAdminBundle:Form:form_admin_fields.html.twig
filter:
- SonataDoctrineORMAdminBundle:Form:filter_admin_fields.html.twig
types:
list:
...
show:
...
image: YourBundle:YourFolder:yourtemplate.html.twig
,并在字段定义文件:
<?php
namespace ...;
use Sonata\AdminBundle\Admin\Admin;
use Sonata\AdminBundle\Form\FormMapper;
use Sonata\AdminBundle\Datagrid\DatagridMapper;
use Sonata\AdminBundle\Datagrid\ListMapper;
use Sonata\AdminBundle\Show\ShowMapper;
class ImageAdmin extends Admin
{
protected function configureShowField(ShowMapper $showMapper)
{
$showMapper
...
->add('image', 'image')
...
;
}
}
?>
或二号方式:
<?php
namespace ...;
use Sonata\AdminBundle\Admin\Admin;
use Sonata\AdminBundle\Form\FormMapper;
use Sonata\AdminBundle\Datagrid\DatagridMapper;
use Sonata\AdminBundle\Datagrid\ListMapper;
use Sonata\AdminBundle\Show\ShowMapper;
class ImageAdmin extends Admin
{
protected function configureShowField(ShowMapper $showMapper)
{
$showMapper
...
->add('image', 'string', array('template' => 'YourBundle:YourFolder:yourtemplate.html.twig'))
...
;
}
}
?>
然后将下面的代码复制到您的模板:
{% extends 'SonataAdminBundle:CRUD:base_show_field.html.twig' %}
{% block field %}
<img src="{{ asset('uploads/media/') }}{{ value|nl2br }}"/>
{% endblock %}
1
同HuyVu 但我用这个自定义模板
{% extends 'SonataAdminBundle:CRUD:base_list_field.html.twig' %}
{% block field %}
{% thumbnail value, 'small' %}
{% endblock %}