13

I am currently integrating some logic in App/Exceptions/Handler.php. I would like to be able to access the HTTP Status Code on the $exception variable:

public function report(Throwable $exception)
{
    dd($exception->statusCode);
    parent::report($exception);
}

However I get the following error:

ErrorException Undefined property: ErrorException::$statusCode

When I dd($exception) I get the following:

Symfony\Component\HttpKernel\Exception\NotFoundHttpException {#1214 ▼
  -statusCode: 404
  -headers: []
  #message: ""
  #code: 0
  #file: "C:\Users\CEX\Documents\GitHub\unified\vendor\laravel\framework\src\Illuminate\Routing\AbstractRouteCollection.php"
  #line: 43
  trace: {▶}
}

How do I access the statusCode?

3 Answers 3

11

If you look at the source code of Symfony\Component\HttpKernel\Exception\NotFoundHttpException you will find that it extends Symfony\Component\HttpKernel\Exception\HttpException if you look at the declaration of the class you will see that $statusCode is private but it has a getter method

class HttpException extends \RuntimeException implements HttpExceptionInterface
{
    private $statusCode;
    private $headers;

    public function __construct(int $statusCode, string $message = null, \Throwable $previous = null, array $headers = [], ?int $code = 0)
    {
        $this->statusCode = $statusCode;
        $this->headers = $headers;

        parent::__construct($message, $code, $previous);
    }

    public function getStatusCode()
    {
        return $this->statusCode;
    }
    //...
}

As such you simply need to do $exception->getStatusCode() to retrieve the status code (404 in your case) though you should do a check to make sure your throwable implements the HttpExceptionInterface because that might not always be the case and so the method would not exist and you would get a fatal error

if ($exception instanceof \Symfony\Component\HttpKernel\Exception\HttpExceptionInterface) {
  $code = $exception->getStatusCode();
}
5
  • Thank you so much. Can you think of any edge cases where a different kind of exception may be thrown, so that I could test this out please?
    – party-ring
    Aug 7, 2020 at 8:40
  • 1
    Any other exception thrown in your code like LogicException or a php error can be caught as a throwable and be reported, you can check it by throw new LogicException('') within your controller and see what you get, the NotFoundHttpException is likely only thrown because your route is not being matched but you can definitely have non HttpException in there
    – Tofandel
    Aug 7, 2020 at 8:44
  • Is this supposed to work in Laravel 8? I can't get it to work in Laravel 8.41.0 :/ Aug 9, 2021 at 13:53
  • Yes it is, "I can't get it to work" is not very descriptive of the problem you're encountering
    – Tofandel
    Aug 9, 2021 at 14:42
  • I've managed to get it worse in Laravel 8 but there's no space between "Error" and "404", not ideal for showing to users. Jan 30 at 23:54
0

follow @Tofandel answer, my practice is as follows,
Since this question is relatively new I presume you are suing Laravel version 7 or 8. According to the documentary of Error Handling, the correct page rendering method has now been as

public function render($request, Throwable $exception)
{
    if ($exception instanceof CustomException) {
    return response()->view('errors.custom', [], 500);
    }

    return parent::render($request, $exception);
}

In order to use customised error view, you would have to tell Laravel what kind of Exception instance your thrown $exception is. To overwrite the internal error handling you would want to catch the thrown as a HTTP exception. For these versions the correct Class is as Symfony\Component\HttpKernel\Exception\. Therefore,

  1. bring in the handling Class by
    use Symfony\Component\HttpKernel\Exception\HttpExceptionInterface;
    on the top of your app\Exceptions\Handler.php

  2. modify the default render() method to something like follows in accordance to your scenario,

use Symfony\Component\HttpKernel\Exception\HttpExceptionInterface;
    //
    //
public function render($request, Throwable $exception)
{
    // return parent::render($request, $exception);
    if ($exception instanceof HttpExceptionInterface) {
        if (env('APP_ENV') === 'production' && $exception->getStatusCode() == 404) {
            return response()->view('errors.404', [], 404);
        }
        if (env('APP_ENV') === 'production' && $exception->getStatusCode() == 500) {
            return response()->view('errors.500', [], 500);
        }
    }
    return parent::render($request, $exception);
}
-3

Check the docs here https://www.php.net/manual/en/exception.getcode.php
Try $exception->getCode()

2
  • 2
    The OP is not referring to the basic php exception so this will not get the correct code
    – Tofandel
    Aug 7, 2020 at 8:19
  • 1
    Have you tried it? The result will be 0 in this case... Feb 25, 2021 at 11:58

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