Laravel 拒绝重定向并返回 JSON 响应

问题

重定向至 /login 登录页面

Laravel 默认设置捕获异常后响应为跳转至页面,而我们希望应用只返回json格式数据。

以下为源码定位

app\Exceptions\Handle.php

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<?php

namespace App\Exceptions;

use Exception;
use Illuminate\Foundation\Exceptions\Handler as ExceptionHandler;

class Handler extends ExceptionHandler
{
/**
* A list of the exception types that are not reported.
*
* @var array
*/
protected $dontReport = [
//
];

/**
* A list of the inputs that are never flashed for validation exceptions.
*
* @var array
*/
protected $dontFlash = [
'password',
'password_confirmation',
];

/**
* Report or log an exception.
*
* @param \Exception $exception
* @return void
*/
public function report(Exception $exception)
{
parent::report($exception);
}

/**
* Render an exception into an HTTP response.
*
* @param \Illuminate\Http\Request $request
* @param \Exception $exception
* @return \Illuminate\Http\Response
*/
public function render($request, Exception $exception)
{
return parent::render($request, $exception);
}
}

上面是 Laravel 错误和异常处理 app\exceptions\handler 类, 用于记录应用程序触发的所有异常。它继承了Illuminate\Foundation\Exceptions\Handler类。

Illuminate\Foundation\Exceptions\Handler

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···

/**
* Render an exception into a response.
*
* @param \Illuminate\Http\Request $request
* @param \Exception $e
* @return \Illuminate\Http\Response|\Symfony\Component\HttpFoundation\Response
*/
public function render($request, Exception $e)
{
if (method_exists($e, 'render') && $response = $e->render($request)) {
return Router::toResponse($request, $response);
} elseif ($e instanceof Responsable) {
return $e->toResponse($request);
}

$e = $this->prepareException($e);

if ($e instanceof HttpResponseException) {
return $e->getResponse();
} elseif ($e instanceof AuthenticationException) {
return $this->unauthenticated($request, $e);
} elseif ($e instanceof ValidationException) {
return $this->convertValidationExceptionToResponse($e, $request);
}

return $request->expectsJson()
? $this->prepareJsonResponse($request, $e)
: $this->prepareResponse($request, $e);
}

/**
* Convert an authentication exception into a response.
*
* @param \Illuminate\Http\Request $request
* @param \Illuminate\Auth\AuthenticationException $exception
* @return \Symfony\Component\HttpFoundation\Response
*/
protected function unauthenticated($request, AuthenticationException $exception)
{
// 重点函数
return $request->expectsJson()
? response()->json(['message' => $exception->getMessage()], 401)
: redirect()->guest($exception->redirectTo() ?? route('login'));
}

···

Illuminate\Http\Concerns\InteractsWithContentTypes

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<?php

namespace Illuminate\Http\Concerns;

use Illuminate\Support\Str;

trait InteractsWithContentTypes
{
/**
* Determine if the current request probably expects a JSON response.
*
* @return bool
*/
public function expectsJson()
{
return ($this->ajax() && ! $this->pjax() && $this->acceptsAnyContentType()) || $this->wantsJson();
}
}

举个例子,当我们用户认证失败时,捕获了AuthenticationException异常,调用了unauthenticated方法,这个方法返回了一个三元表达式,当$request->expectsJson()返回 true 时,响应为 json 格式, http code 为 401。返回 false 则跳转到指定链接,如果没有指定链接则跳转至 login 页面。

解决方案

  1. 定义一个路由中间件,将请求头改为 application/json
  2. 重写 Illuminate\Http\RequestWiki 中就是这么做的,并不太推荐这种做法。

References