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I'm using the webapp2 framework in Google App Engine (Python). In webapp2 exception handling: exceptions in the WSGI app it's described how to handle 404 errors in a function:

import logging
import webapp2

def handle_404(request, response, exception):
    logging.exception(exception)
    response.write('Oops! I could swear this page was here!')
    response.set_status(404)

def handle_500(request, response, exception):
    logging.exception(exception)
    response.write('A server error occurred!')
    response.set_status(500)

app = webapp2.WSGIApplication([
    webapp2.Route('/', handler='handlers.HomeHandler', name='home')
])
app.error_handlers[404] = handle_404
app.error_handlers[500] = handle_500

How can I handle the 404 error in a webapp2.RequestHandler class, in the .get() method of that class?

Edit:

The reason I want to call a RequestHandler is to access the session (request.session). Otherwise I'm not able to pass the current user to the template of the 404 error page. i.e. on the StackOverflow 404 error page you can see your username. I would like to display the username of the current user on my website's 404 error page as well. Is this possible in a function or does it has to be a RequestHandler?

Correct code based on @proppy's answer:

class Webapp2HandlerAdapter(webapp2.BaseHandlerAdapter):
    def __call__(self, request, response, exception):
        request.route_args = {}
        request.route_args['exception'] = exception
        handler = self.handler(request, response)
        return handler.get()

class Handle404(MyBaseHandler):
    def get(self):
        self.render(filename="404.html",
            page_title="404",
            exception=self.request.route_args['exception']
        )

app = webapp2.WSGIApplication(urls, debug=True, config=config)
app.error_handlers[404] = Webapp2HandlerAdapter(Handle404)
share|improve this question

1 Answer 1

up vote 3 down vote accepted

The calling convention of error handler and request handler callables are different:

  • error_handlers takes (request, response, exception)
  • RequestHandler takes (request, response)

You may use something similar to Webapp2HandlerAdapter to adapt a webapp2.RequestHandler to a callable.

class Webapp2HandlerAdapter(BaseHandlerAdapter):
    """An adapter to dispatch a ``webapp2.RequestHandler``.

    The handler is constructed then ``dispatch()`` is called.
    """

    def __call__(self, request, response):
        handler = self.handler(request, response)
        return handler.dispatch()

But you would have to sneak the extra exception argument in request route_args.

share|improve this answer
    
Could you give an example of a RequestHandler class that is derived from Webapp2HandlerAdapter and that handles the 404 error? –  Korneel May 24 '12 at 12:24
    
Also, every RequestHandler in my application is derived from a BaseRequestHandler. Should the error handler class be derived from both classes (BaseRequestHandler and Webapp2HandlerAdapter) then? –  Korneel May 24 '12 at 12:38
    
You can use callable = Webapp2HandlerAdapter(handlers.HomeHandler) to convert a handler in a callable. –  proppy May 24 '12 at 12:59
    
But you would need to adapt Webapp2HandlerAdapter.__call__ to somehow handle the extra exception argument. –  proppy May 24 '12 at 13:00
    
The following exception is thrown: TypeError: __call__() takes exactly 3 arguments (4 given). You can see my code, based on your answer, in the question. Any idea why the exception is thrown? –  Korneel May 24 '12 at 13:37

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