Hide traceback unless a debug flag is set
Solution 1:
The short way is using the sys
module and use this command:
sys.tracebacklimit = 0
Use your flag to determine the behaviour.
Example:
>>> import sys
>>> sys.tracebacklimit=0
>>> int('a')
ValueError: invalid literal for int() with base 10: 'a'
The nicer way is to use and exception hook:
def exception_handler(exception_type, exception, traceback):
# All your trace are belong to us!
# your format
print "%s: %s" % (exception_type.__name__, exception)
sys.excepthook = exception_handler
Edit:
If you still need the option of falling back to the original hook:
def exception_handler(exception_type, exception, traceback, debug_hook=sys.excepthook):
if _your_debug_flag_here:
debug_hook(exception_type, exception, traceback)
else:
print "%s: %s" % (exception_type.__name__, exception)
Now you can pass a debug hook to the handler, but you'll most likely want to always use the one originated in sys.excepthook
(so pass nothing in debug_hook
). Python binds default arguments once in definition time (common pitfall...) which makes this always work with the same original handler, before replaced.
Solution 2:
try:
pass # Your code here
except Exception as e:
if debug:
raise # re-raise the exception
# traceback gets printed
else:
print("{}: {}".format(type(e).__name__, e))