我正在尝试使用 BjyAuthorize 设置 ZfcUser。尝试访问受保护的路由“/user”时出现以下错误。
Fatal error: Uncaught exception 'Zend\Permissions\Acl\Exception\InvalidArgumentException' with message 'Role '3' not found' in /home/brian/dev/ptapp/app/vendor/zendframework/zendframework/library/Zend/Permissions/Acl/Role/Registry.php:106
Stack trace:
#0 /home/brian/dev/ptapp/app/vendor/zendframework/zendframework/library/Zend/Permissions/Acl/Role/Registry.php(67): Zend\Permissions\Acl\Role\Registry->get('3')
#1 /home/brian/dev/ptapp/app/vendor/zendframework/zendframework/library/Zend/Permissions/Acl/Acl.php(112): Zend\Permissions\Acl\Role\Registry->add(Object(Zend\Permissions\Acl\Role\GenericRole), Array)
#2 /home/brian/dev/ptapp/app/vendor/bjyoungblood/bjy-authorize/src/BjyAuthorize/Service/Authorize.php(277): Zend\Permissions\Acl\Acl->addRole('bjyauthorize-id...', Array)
#3 /home/brian/dev/ptapp/app/vendor/bjyoungblood/bjy-authorize/src/BjyAuthorize/Service/Authorize.php(90): BjyAuthorize\Service\Authorize->load()
#4 /home/brian/dev/ptapp/app/vendor/bjyoungblood/bjy-authorize/src/BjyAuthorize/Service/Authorize.php(239) in /home/brian/dev/ptapp/app/vendor/zendframework/zendframework/library/Zend/Permissions/Acl/Role/Registry.php on line 69
我的数据库表是使用 bjyauthorize 存储库中提供的 schema.sql 创建的,其中包含以下代码:
CREATE TABLE IF NOT EXISTS `user_role` (
`id` int(11) NOT NULL AUTO_INCREMENT,
`roleId` varchar(255) NOT NULL,
`is_default` tinyint(1) NOT NULL,
`parent_id` varchar(255) DEFAULT NULL,
PRIMARY KEY (`id`)
) ENGINE=InnoDB DEFAULT CHARSET=utf8;
CREATE TABLE IF NOT EXISTS `user_role_linker` (
`user_id` int(11) unsigned NOT NULL,
`role_id` int(11) NOT NULL,
PRIMARY KEY (`user_id`,`role_id`),
KEY `role_id` (`role_id`)
) ENGINE=InnoDB DEFAULT CHARSET=utf8
;
有条目:
user_role
id | roleId | is_default | parent_id
---------------------------------------------
1 admin 0 therapist
2 therapist 0 patient
3 patient 0 user
4 guest 1 NULL
5 user 0 NULL
user_role_linker
user_id role_id
-------------------
3 3
我不得不修改我的 bjyauthorize.global.php 文件,因为“role_id_field”和“parent_role_field”值与提供的 sql 模式不匹配。它看起来像这样:
<?php
return array(
'bjyauthorize' => array(
'default_role' => 'guest',
'identity_provider' => 'BjyAuthorize\Provider\Identity\ZfcUserZendDb',
'role_providers' => array(
'BjyAuthorize\Provider\Role\ZendDb' => array(
'table' => 'user_role',
'role_id_field' => 'roleId',
'parent_role_field' => 'parent_id',
),
),
'guards' => array(
'BjyAuthorize\Guard\Route' => array(
array('route' => 'zfcuser', 'roles' => array('user')),
array('route' => 'zfcuser/logout', 'roles' => array('user')),
array('route' => 'zfcuser/login', 'roles' => array('guest')),
array('route' => 'zfcuser/register', 'roles' => array('guest')),
// Below is the default index action used by the ZendSkeletonApplication
array('route' => 'home', 'roles' => array('guest', 'user')),
),
),
),
);
我的 application.config.php 看起来像这样:
<?php
return array(
'modules' => array(
'Application',
'ZfcBase',
'ZfcUser',
'User',
'BjyAuthorize',
),
'module_listener_options' => array(
'module_paths' => array(
'./module',
'./vendor',
),
'config_glob_paths' => array(
'config/autoload/{,*.}{global,local}.php',
),
),
);
其中“用户”模块是我的自定义 ZfcUser 实体。
任何想法问题出在哪里?我对 ZF2 和 zfc 还很陌生,所以感谢您的帮助!
编辑:我应该注意,当我没有登录时,我在尝试访问 /user 时正确地得到了 403,当我登录时我收到了这条消息。我在尝试访问任何路线时收到它(无效路线除外,我收到 404)