I have a small python project that has the following structure -

Project 
 -- pkg01
   -- test01.py
 -- pkg02
   -- test02.py
 -- logging.conf

I plan to use the default logging module to print messages to stdout and a log file. To use the logging module, some initialization is required -

import logging.config

logging.config.fileConfig('logging.conf')
logger = logging.getLogger('pyApp')

logger.info('testing')

At present, I perform this initialization in every module before I start logging messages. Is it possible to perform this initialization only once in one place such that the same settings are reused by logging all over the project?

  • 2
    In response to your comment on my answer: you don't have to call fileConfig in every module that does logging, unless you have if __name__ == '__main__' logic in all of them. prost's answer is not good practice if the package is a library, though it might work for you - one should not configure logging in library packages, other than to add a NullHandler. – Vinay Sajip Apr 3 '13 at 1:04
  • prost implied that we need to call the import and logger stmts in every module, and only call the fileconfig stmt in the main module. isnt that similar to what you are saying? – Quest Monger Apr 3 '13 at 5:02
  • 4
    prost is saying that you should put the logging config code in package/__init__.py. That's not normally the place you put if __name__ == '__main__' code. Also, prost's example looks like it will call the config code unconditionally on import, which doesn't look right to me. Generally, logging config code should be done in one place and should not happen as a side-effect of import except when you're importing __main__. – Vinay Sajip Apr 3 '13 at 17:03
  • you are right, i totally missed the line '# package/__init__.py' in his code sample. thanks for point that out and your patience. – Quest Monger Apr 4 '13 at 3:04
  • 1
    So what happens if you have multiple if __name__ == '__main__'? (it is not mentioned explicitly in question if this is the case) – kon psych Apr 18 '16 at 1:25
up vote 188 down vote accepted

Best practice is, in each module, to have a logger defined like this:

import logging
logger = logging.getLogger(__name__)

near the top of the module, and then in other code in the module do e.g.

logger.debug('My message with %s', 'variable data')

If you need to subdivide logging activity inside a module, use e.g.

loggerA = logging.getLogger(__name__ + '.A')
loggerB = logging.getLogger(__name__ + '.B')

and log to loggerA and loggerB as appropriate.

In your main program or programs, do e.g.:

def main():
    "your program code"

if __name__ == '__main__':
    import logging.config
    logging.config.fileConfig('/path/to/logging.conf')
    main()

or

def main():
    import logging.config
    logging.config.fileConfig('/path/to/logging.conf')
    # your program code

if __name__ == '__main__':
    main()

See here for logging from multiple modules, and here for logging configuration for code which will be used as a library module by other code.

Update: When calling fileConfig(), you may want to specify disable_existing_loggers=False if you're using Python 2.6 or later (see the docs for more information). The default value is True for backward compatibility, which causes all existing loggers to be disabled by fileConfig() unless they or their ancestor are explicitly named in the configuration. With the value set to False, existing loggers are left alone. If using Python 2.7/Python 3.2 or later, you may wish to consider the dictConfig() API which is better than fileConfig() as it gives more control over the configuration.

  • 11
    if you look at my example, i am already doing what you suggest above. my question was how do i centralize this logging initialization such that i dont have to repeat those 3 statements. also, in your example you missed the 'logging.config.fileConfig('logging.conf')' stmt. this stmt is actually the root cause of my concern. you see, if i have initiate the logger in every module, i would have to type this stmt in every module. that would mean tracking the path of conf file in every module, which does not look like a best practice to me (imagine the havoc when changing module/package locations). – Quest Monger Apr 2 '13 at 22:51
  • 3
    If you call fileConfig after creating the logger, whether in the same or in another module (e.g. when you create the logger at the top of the file) does not work. The logging configuration only applies to loggers created after. So this approach does not work or is not a viable option for multiple modules. @Quest Monger: You can always create another file that holds the location of the config file..;) – Vincent Ketelaars Sep 12 '13 at 14:33
  • 2
    @Oxidator: Not necessarily - see the disable_existing_loggers flag which is True by default but can be set to False. – Vinay Sajip Sep 12 '13 at 23:22
  • @Vinay Sajip, thank you! Finally I can make it work in my main..:) I'm not entirely sure I understand why this works though, care to enlighten me? And perhaps add it to your post..;) – Vincent Ketelaars Sep 13 '13 at 6:51
  • @Oxidator: answer updated. – Vinay Sajip Sep 13 '13 at 7:51

Actually every logger is a child of the parent's package logger (i.e. package.subpackage.module inherits configuration from package.subpackage), so all you need to do is just to configure the root logger. This can be achieved by logging.config.fileConfig (your own config for loggers) or logging.basicConfig (sets the root logger). Setup logging in your entry module (__main__.py or whatever you want to run, for example main_script.py. __init__.py works as well)

using basicConfig:

# package/__main__.py
import logging
import sys

logging.basicConfig(stream=sys.stdout, level=logging.INFO)

using fileConfig:

# package/__main__.py
import logging
import logging.config

logging.config.fileConfig('logging.conf')

and then create every logger using:

# package/submodule.py
# or
# package/subpackage/submodule.py
import logging
log = logging.getLogger(__name__)

log.info("Hello logging!")

For more information see Advanced Logging Tutorial.

  • 6
    this is, by far, the simplest solution to the problem, not to mention it exposes & leverages the parent-child relationship between modules, something that i as a noob was unaware of. danke. – Quest Monger Apr 2 '13 at 22:41
  • you are right. and as vinay pointed out in his post, your solution is right as long as its not in the init.py module. your solution did work when i applied it to main module (point of entry). – Quest Monger Apr 4 '13 at 3:06
  • 1
    actually much more relevant answer since the the question is concerned with separate modules. – Jan Sila Feb 26 at 12:47
  • Dumb question perhaps: if there is no logger in __main__.py (e.g. If I want to use the module in a script that has no logger) will logging.getLogger(__name__) still do some kind of logging in the module or will it raise an exception? – Bill Sep 13 at 1:09
  • @Bill I'm not sure if I understand your question. Do you mean that you have no logging.basicConfig or logging.config.fileConfig? You can definitely use logging.getLogger and do some logging, it just would not print anything anywhere. Many libraries do logging, but they leave the logging setup (like where the logging messages go) to their users. – Stan Prokop Sep 13 at 3:19

I always do it as below.

Use a single python file to config my log as singleton pattern which named 'log_conf.py'

#-*-coding:utf-8-*-

import logging.config

def singleton(cls):
    instances = {}
    def get_instance():
        if cls not in instances:
            instances[cls] = cls()
        return instances[cls]
    return get_instance()

@singleton
class Logger():
    def __init__(self):
        logging.config.fileConfig('logging.conf')
        self.logr = logging.getLogger('root')

In another module, just import the config.

from log_conf import Logger

Logger.logger.info("Hello World")

This is a singleton pattern to log, simply and efficiently.

  • thanks for detailing the singleton pattern. i was planning on implementing this, but then the @prost solution is much more simple and suits my needs perfectly. i however do see your solution being useful is bigger projects that have multiple points of entry (other than main). danke. – Quest Monger Apr 2 '13 at 22:45
  • 12
    This is useless. The root logger is already a singleton. Just use logging.info instead of Logger.logr.info. – Pod Sep 6 '16 at 10:22

@Yarkee's solution seemed better. I would like to add somemore to it -

class Singleton(type):
    _instances = {}

    def __call__(cls, *args, **kwargs):
        if cls not in cls._instances.keys():
            cls._instances[cls] = super(Singleton, cls).__call__(*args, **kwargs)
        return cls._instances[cls]


class LoggerManager(object):
    __metaclass__ = Singleton

    _loggers = {}

    def __init__(self, *args, **kwargs):
        pass

    @staticmethod
    def getLogger(name=None):
        if not name:
            logging.basicConfig()
            return logging.getLogger()
        elif name not in LoggerManager._loggers.keys():
            logging.basicConfig()
            LoggerManager._loggers[name] = logging.getLogger(str(name))
        return LoggerManager._loggers[name]    


log=LoggerManager().getLogger("Hello")
log.setLevel(level=logging.DEBUG)

So LoggerManager can be a pluggable to the entire application. Hope it makes sense and value.

  • 6
    The logging module already deals with singletons. logging.getLogger("Hello") will get the same logger across all of your modules. – Pod Sep 6 '16 at 10:23

Throwing in another solution.

In my module's main init I have something like:

import logging

def get_module_logger(mod_name):
  logger = logging.getLogger(mod_name)
  handler = logging.StreamHandler()
  formatter = logging.Formatter(
        '%(asctime)s %(name)-12s %(levelname)-8s %(message)s')
  handler.setFormatter(formatter)
  logger.addHandler(handler)
  logger.setLevel(logging.DEBUG)
  return logger

Then in each class I need a logger, I do:

from [modname] import get_module_logger
logger = get_module_logger(__name__)

When the logs are missed, you can differentiate their source by the module they came from.

  • What does "my module's main init" mean? And "Then in each class I need a logger, I do:"? Can you provide a sample called_module.py, and an example of its usage as an import from module caller_module.py ? See this answer for an inspiration of the format I'm asking about. Not trying to be patronising. I am trying to understand your answer and I know I would if you wrote it that way. – lucid_dreamer Sep 4 '17 at 15:16

Several of these answers suggest that at the top of a module you you do

import logging
logger = logging.getLogger(__name__)

It is my understanding that this is considered very bad practice. The reason is that the file config will disable all existing loggers by default. E.g.

#my_module
import logging

logger = logging.getLogger(__name__)

def foo():
    logger.info('Hi, foo')

class Bar(object):
    def bar(self):
        logger.info('Hi, bar')

And in your main module :

#main
import logging

# load my module - this now configures the logger
import my_module

# This will now disable the logger in my module by default, [see the docs][1] 
logging.config.fileConfig('logging.ini')

my_module.foo()
bar = my_module.Bar()
bar.bar()

Now the log specified in logging.ini will be empty, as the existing logger was disabled by fileconfig call.

While is is certainly possible to get around this (disable_existing_Loggers=False), realistically many clients of your library will not know about this behavior, and will not receive your logs. Make it easy for your clients by always calling logging.getLogger locally. Hat Tip : I learned about this behavior from Victor Lin's Website.

So good practice is instead to always call logging.getLogger locally. E.g.

#my_module
import logging

logger = logging.getLogger(__name__)

def foo():
    logging.getLogger(__name__).info('Hi, foo')

class Bar(object):
    def bar(self):
        logging.getLogger(__name__).info('Hi, bar')    

Also, if you use fileconfig in your main, set disable_existing_loggers=False, just in case your library designers use module level logger instances.

  • Can you not run logging.config.fileConfig('logging.ini') before import my_module? As suggested in this answer. – lucid_dreamer Sep 4 '17 at 2:17
  • Not sure - but it would definitely also be considered bad practice to mix imports and executable code in that way. You also don't want your clients to have to check whether they need to configure logging before they import, especially when there is a trivial alternative! Imagine if a widely used library like requests had done that....! – phil_20686 Sep 4 '17 at 11:18
  • "Not sure - but it would definitely also be considered bad practice to mix imports and executable code in that way." - why? – lucid_dreamer Sep 4 '17 at 15:08
  • I'm not too clear on why that is bad. And I don't fully understand your example. Can you post your config for this example and show some usage? – lucid_dreamer Sep 4 '17 at 15:10
  • can you post a link to some official python documentation stating this is bad practice? – Tommy Sep 4 '17 at 15:54

You could also come up with something like this!

def get_logger(name=None):
    default = "__app__"
    formatter = logging.Formatter('%(levelname)s: %(asctime)s %(funcName)s(%(lineno)d) -- %(message)s',
                              datefmt='%Y-%m-%d %H:%M:%S')
    log_map = {"__app__": "app.log", "__basic_log__": "file1.log", "__advance_log__": "file2.log"}
    if name:
        logger = logging.getLogger(name)
    else:
        logger = logging.getLogger(default)
    fh = logging.FileHandler(log_map[name])
    fh.setFormatter(formatter)
    logger.addHandler(fh)
    logger.setLevel(logging.DEBUG)
    return logger

Now you could use multiple loggers in same module and across whole project if the above is defined in a separate module and imported in other modules were logging is required.

a=get_logger("__app___")
b=get_logger("__basic_log__")
a.info("Starting logging!")
b.debug("Debug Mode")

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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