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Every time I think I understand the logging module, gremlins come in and change the way it works. (Ok, I'll admit, that gremlin may be me changing my code.)

What am I doing wrong here?

> ipython
> import logging
> log = logging.Logger("base")
> log.addHandler(logging.StreamHandler())

> log.critical("Hi")
Hi

> log2 = log.getChild("ment")

> log2.critical("hi")
No handlers could be found for logger "base.ment"

I could have sworn that in the past, I was able to use child loggers without additional configuration...

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Try it in a new session. It works for me using ipython, and also as a script. –  unutbu Jul 27 '12 at 21:45
    
Not working for me either in cPython 2.7.2. I'm wondering if it has something to do with the default configuration of a StreamHandler... When I create log, add handler to log, then create log2, I get No handlers, but if I create log2 first then add the handler to log, logging to log2 doesn't error (though it doesn't print anything either). –  Silas Ray Jul 27 '12 at 21:49
    
@unutbu: Hmmm... that is a new session. I included the 'ipython' command-line at the top to indicate that. That you're able to run this with no problem gives me a bad feeling. I'm running Python 2.7.1 & IPython 0.10. Been that way for a long time, so that wouldn't seem to be the problem. I know its has to do with my code... –  JS. Jul 27 '12 at 21:50
    
@unutbu: When I run it via a script and Python 2.7.1 I get the same behavior. May I ask what version are you running? –  JS. Jul 27 '12 at 21:57
    
@JS.: I made a typo -- When I correct it, I get the same "No handlers" error as you using Python 2.7.2 and IPython 0.10.2. –  unutbu Jul 27 '12 at 21:59

2 Answers 2

up vote 2 down vote accepted

If you change

log = logging.Logger('base')

to

log = logging.getLogger('base')

then it works:

import logging

log = logging.getLogger('base')
log.addHandler(logging.StreamHandler())
log.critical('Hi')
log2 = log.getChild('ment')
log2.critical('hi')

yields

Hi
hi
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I was just about to try that... good catch and thanks for the help! +1 –  JS. Jul 27 '12 at 22:06
2  
Argh, I just tracked this down... Yeah, the logging module invisibly proxies through logging.Manager to create loggers. When you directly create a logger with logging.Logger() you short-circuit the system and things go haywire. –  Silas Ray Jul 27 '12 at 22:12
    
I dug through my mercurial versions and that's exactly what happened. I "cleaned up" my logging code and typed "Logger" instead of "getLogger". @sr2222: Thanks for chasing down the cause. It does help to know why it failed. I can now shift my mental model from "load logging and create a logger" to "load logging and create a child logger". +1. Thanks! –  JS. Jul 27 '12 at 22:18
    
I would say more, "load logging, instantiate the base logger (explicitly or implicitly), spawn descendants from root and its descendants." It is interesting to have looked through the code now though. I know now that even if your code only creates a logger named 'a.b.c.d.e.f' explicitly, the logging module will create loggers for a, b, c, d, and e automatically. Good to remember when you are looking for optimizations... –  Silas Ray Jul 27 '12 at 22:34

More detail: You are using the module wrong. :) From looking at the module code, it looks like they don't expect you to ever create a logging.Logger() directly. Many of the functions available directly on the module (ex getLogger()) and the methods on logging.Logger() (ex getChild()) actually proxy through an instance of logging.Manager that the module creates on import. When you create a Logger with logging.Logger() directly, you are actually creating a Logger instance outside of the Manager. When you subsequently call log.getChild(), the module is actually creating the new logger inside the Manager, but with the name of the Manager-external logger appended to the front of the logger name. So your handler added to log is not in the Manager with the spawned child, and thus the handler doesn't work. I am a little confused still though on why adding a handler to log before or after creating log2 causes logging against log2 to behave differently. I don't see what's causing that...

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:"with logging.Logger() directly, you are actually creating a Logger instance outside of the Manager. When you subsequently call log.getChild(), the module is actually creating the new logger inside the Manager" Interesting. And makes sense. I must remember to always think "create sub-logger"... even when creating my program's "first" logger. –  JS. Jul 28 '12 at 5:46

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