I want to add a debug print statement test, if I enable --verbose from the command line and if I have the following in the script.

logger.info("test")

I went through the following questions, but couldn't get the answer...

up vote 66 down vote accepted

You need to combine the wisdom of the Argparse Tutorial with Python's Logging HOWTO. Here's an example...

> cat verbose.py 
#!/usr/bin/env python

import argparse
import logging

parser = argparse.ArgumentParser(
    description='A test script for http://stackoverflow.com/q/14097061/78845'
)
parser.add_argument("-v", "--verbose", help="increase output verbosity",
                    action="store_true")

args = parser.parse_args()
if args.verbose:
    logging.basicConfig(level=logging.DEBUG)

logging.debug('Only shown in debug mode')

Run the help:

> ./verbose.py -h
usage: verbose.py [-h] [-v]

A test script for http://stackoverflow.com/q/14097061/78845

optional arguments:
  -h, --help     show this help message and exit
  -v, --verbose  increase output verbosity

Running in verbose mode:

> ./verbose.py -v
DEBUG:root:Only shown in debug mode

Running silently:

> ./verbose.py   
> 
  • // , I can confirm that this works. How "store_true" works, however, is still a bit of a mystery. – Nathan Basanese Sep 1 '15 at 22:25

I find both --verbose (for users) and --debug (for developers) useful. Here's how I do it with logging and argparse:

import argparse
import logging

parser = argparse.ArgumentParser()
parser.add_argument(
    '-d', '--debug',
    help="Print lots of debugging statements",
    action="store_const", dest="loglevel", const=logging.DEBUG,
    default=logging.WARNING,
)
parser.add_argument(
    '-v', '--verbose',
    help="Be verbose",
    action="store_const", dest="loglevel", const=logging.INFO,
)
args = parser.parse_args()    
logging.basicConfig(level=args.loglevel)

So if --debug is set, the logging level is set to DEBUG. If --verbose, logging is set to INFO. If neither, the lack of --debug sets the logging level to the default of WARNING.

  • 6
    I'm really fond of this approach... let argparse do all the work, no ifs or anything after parse_args – MestreLion Jan 6 '15 at 23:09
  • @MestreLion: thanks. It does feel very pythonic to me. – Matthew Leingang Jan 7 '15 at 2:32
  • There's one catch: logging by default prints everything to stderr and you really want separate your normal program output (the one from --verbose) from dev-only (the one from --debug) – Michał Góral Jan 18 '16 at 22:43
  • 1
    @MichałGóral: That sounds like a good point. Can I use logging.basicConfig to send info() messages to stdout and debug() messages to stderr? – Matthew Leingang Jan 19 '16 at 17:56
  • 2
    @MatthewLeingang: To do that you'll have to use several handlers. Here's the example: stackoverflow.com/a/16066513/1088577 – Michał Góral Jan 19 '16 at 20:27

Here is a more concise method, that does bounds checking, and will list valid values in help:

parser = argparse.ArgumentParser(description='This is a demo.')
parser.add_argument("-l", "--log", dest="logLevel", choices=['DEBUG', 'INFO', 'WARNING', 'ERROR', 'CRITICAL'], help="Set the logging level")

args = parser.parse_args()
if args.logLevel:
    logging.basicConfig(level=getattr(logging, args.logLevel))

Usage:

demo.py --log DEBUG
  • 4
    there's no need for eval: getattr(logging, args.logLevel) – Ned Batchelder Feb 21 '15 at 11:51
  • Thanks Ned, works like a charm! – Stickley Feb 21 '15 at 17:39
  • 8
    There's no need for getattr: level=logging.getLevelName(args.logLevel) – xmedeko Sep 2 '16 at 5:30
  • 6
    Even better is to add default='INFO' to add_argument() as well as (default: %(default)s) to the help text, then delete the if args.logLevel and always call basicConfig(). Then the user can know what the default value will always be. – jfritz42 Mar 8 '17 at 18:05

Another variant would be to count the number of -v and use the count as an index to the a list with the actual levels from logging:

import argparse
import logging

parser = argparse.ArgumentParser()
parser.add_argument('-v', '--verbose', action='count', default=0)
args = parser.parse_args()

levels = [logging.WARNING, logging.INFO, logging.DEBUG]
level = levels[min(len(levels)-1,args.verbose)]  # capped to number of levels

logging.basicConfig(level=level,
                    format="%(asctime)s %(levelname)s %(message)s")

logging.debug("a debug message")
logging.info("a info message")
logging.warning("a warning message")

This works for -vvvv, -vvv, -vv, -v, -v -v , etc, If no -v then logging.WARNING is selected if more -v are provided it will step to INFO and DEBUG

  • 2
    Nice! Just remember to run your script as python script.py -v [other_args]. If you run python -v script.py (-v before the script), you will get a lot of debug output from the Python interpreter itself, but not from your script. (Not a problem with the answer, just a warning to other readers). – logc Sep 21 '16 at 12:59

You can explicity specify a level as an integer after the -v flag:

parser = argparse.ArgumentParser()
parser.add_argument("-v", "--verbose", const=1, default=0, type=int, nargs="?",
                    help="increase verbosity: 0 = only warnings, 1 = info, 2 = debug. No number means info. Default is no verbosity.")
args = parser.parse_args()

logger = logging.getLogger()
if args.verbose == 0:
    logger.setLevel(logging.WARN) 
elif args.verbose == 1:
    logger.setLevel(logging.INFO) 
elif args.verbose == 2:
    logger.setLevel(logging.DEBUG) 

Here's another take on having argparse count the -v option to increase verbosity up two levels from the default WARNING to INFO (-v) to DEBUG (-vv). This does not map to the constants defined by logging but rather calculates the value directly, limiting the input:

print( "Verbosity / loglevel:", args.v )
logging.basicConfig( level=10*(3-max(0,min(args.v,3))) )
logging.debug("debug") # 10
logging.info("info") # 20
logging.warning("warning") # 30 - The default level is WARNING, which means that only events of this level and above will be tracked
logging.error("error") # 40
logging.critical("critical") # 50

if you want to enable logging.DEBUG level for a script you don't want to (or cannot) edit, you can customize your startup:

jcomeau@aspire:~$ python -c "import site; site._script()"
[snip]...
USER_BASE: '/home/jcomeau/.local' (exists)
USER_SITE: '/home/jcomeau/.local/lib/python2.7/site-packages' (exists)
ENABLE_USER_SITE: True
jcomeau@aspire:~$ mkdir -p ~/.local/lib/python2.7/site-packages
jcomeau@aspire:~$ vi ~/.local/lib/python2.7/site-packages/usercustomize.py

enter the following:

import os, logging
if os.getenv('DEBUGGING'):
    logging.basicConfig(level = logging.DEBUG)

then you can just:

jcomeau@aspire:~$ mkdir -p /tmp/some/random/
jcomeau@aspire:~$ echo 'import logging; logging.debug("test")' >> /tmp/some/random/script.py
jcomeau@aspire:~$ DEBUGGING=1 python /tmp/some/random/script.py 
DEBUG:root:test

from Paul Ollis at http://nedbatchelder.com/blog/201001/running_code_at_python_startup.html


2017-07-18: I've since switched to a different method:

logging.basicConfig(level=logging.DEBUG if __debug__ else logging.INFO)

what this does is, if you're running without optimization (as in python script.py) you get the DEBUG-level stuff, whereas if you run with python -OO script.py you don't. no environment variables to set.

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