Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Whenever a lengthy HTTP requests is aborted by the client (e.g. Browser is closed) Django views seem to raise a IOError exception.

What's the proper way to detect such an aborted request if I just want to ignore them? Just catching IOError seems too wide.. might accidentally ignore other IO problems.

share|improve this question

4 Answers 4

In django 1.3 and up, you can use a logging filter class to suppress the exceptions which you aren't interested in. Here's the logging filter class I'm using to narrowly suppress IOError exceptions raised from _get_raw_post_data():

import sys, traceback
class _SuppressUnreadablePost(object):
    def filter(self, record):
        _, exception, tb = sys.exc_info()
        if isinstance(exception, IOError):
            for _, _, function, _ in traceback.extract_tb(tb):
                if function == '_get_raw_post_data':
                    return False
        return True

In Django 1.4, you will be able to do away with most of the complexity and suppress the new exception class UnreadablePostError. (See this patch).

share|improve this answer

The best way to do it would be to use a custom middleware class that implements process_exception() to return a custom HTTP response, say a rendered errors/request_aborted.html template, if an IOException is caught.

share|improve this answer
    
But what if some other IOError is thrown, not as a result of aborting but for some other reason? I would then suppress that error... –  Assaf Lavie Aug 14 '11 at 14:33
    
This works for uncaught exceptions. You'll generally try to catch all the possible exceptions when your doing IO to make sure that only aborted requests are uncaught. –  Filip Dupanović Aug 14 '11 at 19:00
    
But it's not that easy to tell where an IOError can come from. E.g. I see it often being raised just by accessing request.POST. I need a way of telling apart client disconnection from every other type of IO error, while assuming that an IOError can be raised by almost any framework function. –  Assaf Lavie Aug 15 '11 at 4:27
    
If you really want to be precise about it, your middleware can catch the exception and evaluate the exception message. –  Filip Dupanović Aug 15 '11 at 13:01
    
The exception message doesn't seem like it contains anything that would identify exception as a connection-terminated exception. I also think it's brittle, because the message itself may change slightly between machines (e.g. depending on the directories where django/python files are located). –  Assaf Lavie Aug 25 '11 at 5:53

If you want to ignore the IOError, then just let it be. You don't need to catch it. If you absolutely must catch it, you can do what @Filip Dupanović suggested, and maybe return a django.http.HttpResponseServerError to set the response code to 500.

share|improve this answer
1  
I don't want to let it be because I log all uncaught errors, and this produces log noise. –  Assaf Lavie Aug 14 '11 at 14:33

Raven now connects itself to the got_request_exception() signal to catch unhandled exceptions, bypassing the logging system entirely, so the solution proposed by dlowe does not work anymore.

However raven looks for a skip_sentry attribute on the exception instance, so you can use a middleware to set it on the errors you want to ignore:

import sys
import traceback


class FilterPostErrorsMiddleware(object):
    """
    A middleware that prevents unreadable POST errors to reach Sentry.
    """

    def process_exception(self, request, exception):
        if isinstance(exception, IOError):
            tb = sys.exc_info()[2]
            for _, _, function, _ in traceback.extract_tb(tb):
                if function == '_get_raw_post_data':
                    exception.skip_sentry = True
                    break

Note: you have to use a recent version of raven (e.g. 1.8.4), as previous versions mistakenly checked for the skip_sentry attribute on the exception type rather than instance.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.