Seb*_*ski 26 php laravel-routing laravel-5 laravel-middleware
我正在尝试为管理部分创建一个组路由,并将中间件应用于除登录和注销之外的所有路径.
到目前为止我所拥有的是:
Route::group(['prefix' => 'admin', 'namespace' => 'Admin', 'middleware' => 'authAdmin'], function() {
Route::resource('page', 'PageController');
Route::resource('article', 'ArticleController');
Route::resource('gallery', 'GalleryController');
Route::resource('user', 'UserController');
// ...
});
如何通过上述设置声明中间件的异常?
luk*_*ter 44
只需嵌套组,然后您可以排除特定路线:
Route::group(['prefix' => 'admin', 'namespace' => 'Admin'], function() {
Route::get('login', 'AuthController@login');
Route::get('logout', 'AuthController@logout');
Route::group(['middleware' => 'authAdmin'], function(){
Route::resource('page', 'PageController');
Route::resource('article', 'ArticleController');
Route::resource('gallery', 'GalleryController');
Route::resource('user', 'UserController');
// ...
});
});
您还可以使用 laravel 的 withoutMiddleware 方法,如下所示;
Route::group(['prefix' => 'admin', 'namespace' => 'Admin', 'middleware' => 'authAdmin'], function() {
Route::resource('page', 'PageController');
Route::resource('article', 'ArticleController');
Route::resource('gallery', 'GalleryController');
Route::resource('user', 'UserController');
Route::get('login', 'AuthController@login')->withoutMiddleware([AuthAdminMiddleware::class]);
Route::get('logout', 'AuthController@logout')->withoutMiddleware([AuthAdminMiddleware::class]);
});
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