94

If I set the logging module to DEBUG with a command line parameter like this:

if (opt["log"] == "debug"):
  logging.basicConfig(level=logging.DEBUG)

How can I later tell if the logger was set to DEBUG? I'm writing a decorator that will time a function if True flag is passed to it, and if no flag is given, it defaults to printing timing information when the root logger is set to DEBUG.

1
  • You will eventually want to use something specific instead of coupling this to the logger, such as opt["time_functions"] (which you might default to True/False based on some other option). – Roger Pate Jan 1 '10 at 0:19
119
logging.getLogger().getEffectiveLevel()

logging.getLogger() without arguments gets the root level logger.

http://docs.python.org/library/logging.html#logging.Logger.getEffectiveLevel

4
  • Excellent, thanks! I was doing something like that (except passing explicit "root" to getLogger), but I was doing it in the init function of my decorator, before the logger was set to debug :\ – gct Dec 31 '09 at 23:40
  • 5
    If you want the name of level, not the number, you can use this to convert the number to a string (like 'INFO'): logging.getLevelName() – guettli Jul 13 '17 at 10:09
  • 2
    @guettli, getLevelName() requires one argument containing the level whose textual representation you want to get. So the call is actually this beast: logging.getLevelName(logging.getLogger().getEffectiveLevel()). It would be nice to have a simpler syntax when all you want is the string for the current level. – Trutane Jan 25 '19 at 22:30
  • To convert the level integer to the name: docs.python.org/3/library/logging.html#levels – EddyTheB Feb 21 '19 at 11:03
114

Actually, there's one better: use the code logging.getLogger().isEnabledFor(logging.DEBUG). I found it while trying to understand what to do with the result of getEffectiveLevel().

Below is the code that the logging module itself uses.

def getEffectiveLevel(self):
    """
    Get the effective level for this logger.

    Loop through this logger and its parents in the blogger hierarchy,
    looking for a non-zero logging level. Return the first one found. 
    """
    logger = self
    while logger:
        if logger.level:
            return logger.level
        logger = logger.parent
    return NOTSET

def isEnabledFor(self, level):
    """
    Is this logger enabled for level ‘level’?
    """
    if self.manager.disable >= level:
        return 0
    return level >= self.getEffectiveLevel()
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  • 4
    This should be the accepted answer, since it does the same thing with lower runtime complexity. – AndyJost Sep 21 '17 at 16:57
  • 1
    If it would be actual code and not an image. Still: upvoted. – kaiser Sep 3 '18 at 12:20
4

Just

logging.getLogger().level == logging.DEBUG
2

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