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How do you cause uncaught exceptions to output via the logging module rather than to stderr?

I realize the best way to do this would be:

try:
    raise Exception, 'Throwing a boring exception'
except Exception, e:
    logging.exception(e)

but my situation is such that it would be really nice if logging.exception(...) were invoked automatically whenever an exception isn't caught.

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7 Answers 7

up vote 40 down vote accepted

As Ned pointed out, sys.excepthook is invoked every time an exception is raised and uncaught. The practical implication of this is that in your code you can override the default behavior of sys.excepthook to do whatever you want (including using logging.exception).

As a straw man example:

>>> import sys
>>> def foo(exctype, value, tb):
...     print 'My Error Information'
...     print 'Type:', exctype
...     print 'Value:', value
...     print 'Traceback:', tb
... 

Override sys.excepthook:

>>> sys.excepthook = foo

Commit obvious syntax error (leave out the colon) and get back custom error information:

>>> def bar(a, b)
My Error Information
Type: <type 'exceptions.SyntaxError'>
Value: invalid syntax (<stdin>, line 1)
Traceback: None

For more information about sys.excepthook: http://docs.python.org/library/sys.html#sys.excepthook

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Thanks for a very clear example. –  Jacob Marble Jun 5 '11 at 0:21
    
I assume the function argument type would not work, since it's a reserved keyword..? –  Hubro Dec 12 '12 at 8:50
    
@Codemonkey It's not a reserved keyword, it's a preexisting type name. You can use type as a function argument, although IDEs will complain about hiding the global type (much like using var self = this in Javascript). It doesn't really matter unless you need to access the type object inside your function, in which case you can use type_ as the argument instead. –  Ryan P Jan 2 '13 at 17:08

The method sys.excepthook will be invoked if an exception is uncaught: http://docs.python.org/library/sys.html#sys.excepthook

When an exception is raised and uncaught, the interpreter calls sys.excepthook with three arguments, the exception class, exception instance, and a traceback object. In an interactive session this happens just before control is returned to the prompt; in a Python program this happens just before the program exits. The handling of such top-level exceptions can be customized by assigning another three-argument function to sys.excepthook.

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1  
Why does it send the exception class? Can't you always get that by calling type on the instance? –  Neil G Jun 5 '11 at 20:58

Here's a complete small example that also includes a few other tricks:

import os, sys
import logging
logger = logging.getLogger(__name__)
handler = logging.StreamHandler(stream=sys.stdout)
logger.addHandler(handler)

def handle_exception(exc_type, exc_value, exc_traceback):
    if issubclass(exc_type, KeyboardInterrupt):
        sys.__excepthook__(exc_type, exc_value, exc_traceback)
        return

    logger.error("Uncaught exception", exc_info=(exc_type, exc_value, exc_traceback))

sys.excepthook = handle_exception

if __name__ == "__main__":
    raise RuntimeError("Test unhandled")
  • Ignore KeyboardInterrupt so a console python program can exit with Ctrl + C.

  • Rely entirely on python's logging module for formatting the exception.

  • Use a custom logger with an example handler. This one changes the unhandled exception to go to stdout rather than stderr, but you could add all sorts of handlers in this same style to the logger object.

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+1 for logging built-in kwarg exc_info –  qarma Dec 4 '13 at 11:10

Why not:

import sys
import logging
import traceback

def log_except_hook(*exc_info):
    text = "".join(traceback.format_exception(*exc_info))
    logging.error("Unhandled exception: %s", text)

sys.excepthook = log_except_hook
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Wrap your app entry call in a try...except block so you'll be able to catch and log (and perhaps re-raise) all uncaught exceptions. E.g. instead of:

if __name__ == '__main__':
    main()

Do this:

if __name__ == '__main__':
    try:
        main()
    except Exception as e:
        logger.exception(e)
        raise
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To build on Jacinda's answer, but using a logger object:

def catchException(logger, typ, value, traceback):
    logger.critical("My Error Information")
    logger.critical("Type: %s" % typ)
    logger.critical("Value: %s" % value)
    logger.critical("Traceback: %s" % traceback)

# Use a partially applied function
func = lambda typ, value, traceback: catchException(logger, typ, value, traceback)
sys.excepthook = func
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Maybe you could do something at the top of a module that redirects stderr to a file, and then logg that file at the bottom

sock = open('error.log', 'w')               
sys.stderr = sock

doSomething() #makes errors and they will log to error.log

logging.exception(open('error.log', 'r').read() )
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