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I would like to use it to generate html log files inside the process_exception() method of my custom middleware class, e.g:

  • Exception caught.
  • process_exception(request) called.
  • process_exception calls whatever function returns default error html.
  • process_exception writes returned html to logs folder somewhere where django server is running.

I know that Django is capable of sending emails for these exceptions but i'd rather not use this. I'm working on a RESTful application using JSON and so it feels more appropriate to return a json string stating error 500 and then placing the html somewhere else.

Thanks in advance.

Sorry maybe I need to clarify: I don't want to create my own 500.html, I want to use the one that django uses when Debug=True. i.e. generate the error file and place it in a log folder.

Thanks to Mark for the help - here is my solution for anyone interested:

import logging
import settings
import sys
import datetime

from response import get_json_response
from django.views.debug import ExceptionReporter

logging.config.dictConfig(settings.LOGGING)
LOGGER = logging.getLogger('console_logger')

class LoggingMiddleware(object):

    def process_exception(self,request,exception):
        exc_type, exc_value, exc_traceback = sys.exc_info()
        er = ExceptionReporter(request,exc_type,exc_value,exc_traceback)
        file_path = settings.LOG_FOLDER+'/'+str(datetime.datetime.now())+'.html'
        LOGGER.error("Writing error 500 traceback to %s" % file_path)
        file_handle = open(file_path,'w')
        file_handle.write(er.get_traceback_html())
        file_handle.close()
        return get_json_response(500,"HTTP Error 500: Internal Server Error")

The code intercepts any exceptions, uses the sys module and djangos default error template to generate the nicely formatted traceback/exception info page and then places this in a log folder before returning a JSON object stating that there has been a http error 500.

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3 Answers 3

up vote 3 down vote accepted

The 500 traceback page uses a template string (TECHNICAL_500_TEMPLATE) which is hard coded into django.views.debug. The report is generated by an ExceptionReporter class which is also included in django.views.debug which you should be able to re-purpose for your own log generation.

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Great, thanks! Posted my solution in the question. –  Michael Oct 17 '12 at 22:31
    
One can monkey patch a new template over that one... –  boxed Jun 12 '13 at 13:51

Duplicate: Template does not exist: 500.html

Basically just put a 500.html in your template folder and it will use that.

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Sorry maybe I need to clarify: I don't want to create my own 500.html, I want to use the one that django uses when Debug=True. –  Michael Oct 17 '12 at 12:42
1  
@Michael oh, sorry for misunderstanding and I'm glad someone else answered with the right answer. –  Mikle Oct 18 '12 at 13:06
    
No problem, I think my question could have been a lot clearer ;) –  Michael Oct 18 '12 at 21:41

If we want to show exceptions which are generated , on ur template(500.html) then we could write your own 500 view, grabbing the exception and passing it to your 500 template.

Steps:

#.In views.py:

import sys,traceback

def custom_500(request):
t = loader.get_template('500.html')

print sys.exc_info()
type, value, tb = sys.exc_info()
return HttpResponseServerError(t.render(Context({
'exception_value': value,
'value':type,
'tb':traceback.format_exception(type, value,
                                      tb)

},RequestContext(request))))

#.In Main Urls.py:

from django.conf.urls.defaults import *
handler500 = 'patman.web.services.views.custom_500'

#.In Template(500.html):

{{ exception_value }}{{value}}{{tb}}

more about it here: https://docs.djangoproject.com/en/dev/topics/http/views/#the-500-server-error-view

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