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I am using python logger. The following is my code:

import os
import time
import datetime
import logging
class Logger :
   def myLogger(self):
      logger = logging.getLogger('ProvisioningPython')
      logger.setLevel(logging.DEBUG)
      now = datetime.datetime.now()
      handler=logging.FileHandler('/root/credentials/Logs/ProvisioningPython'+ now.strftime("%Y-%m-%d") +'.log')
      formatter = logging.Formatter('%(asctime)s %(levelname)s %(message)s')
      handler.setFormatter(formatter)
      logger.addHandler(handler)
      return logger

The problem I have is that I get multiple entries in the log file for each logger.info call. How can I solve this?

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Works for me. Python 3.2 and Windows XP. –  Zuljin Aug 24 '11 at 9:23
1  
Are you sure you don't create multiple logger instances? –  Gandi Aug 24 '11 at 9:26
    
Yes. in different file I am taking new instance as we did in Java projects. Please specify me whether that is creating problem or not. –  user865438 Aug 24 '11 at 9:44

5 Answers 5

up vote 18 down vote accepted

The logging.getLogger() is already a singleton. (Documentation)

The problem is that every time you call myLogger(), it's adding another handler to the instance, which causes the duplicate logs.

Perhaps something like this?

import os
import time
import datetime
import logging

loggers = {}

def myLogger(name):
    global loggers

    if loggers.get(name):
        return loggers.get(name)
    else:
        logger = logging.getLogger(name)
        logger.setLevel(logging.DEBUG)
        now = datetime.datetime.now()
        handler = logging.FileHandler(
            '/root/credentials/Logs/ProvisioningPython' 
            + now.strftime("%Y-%m-%d") 
            + '.log')
        formatter = logging.Formatter('%(asctime)s %(levelname)s %(message)s')
        handler.setFormatter(formatter)
        logger.addHandler(handler)
        loggers.update(dict(name=logger))

        return logger
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1  
I think you should have loggers.update(dict((name,logger))) instead. –  acrophobia Feb 14 '12 at 13:18
import datetime
import logging
class Logger :
    def myLogger(self):
       logger=logging.getLogger('ProvisioningPython')
       if not len(logger.handlers):
          logger.setLevel(logging.DEBUG)
          now = datetime.datetime.now()
          handler=logging.FileHandler('/root/credentials/Logs/ProvisioningPython'+ now.strftime("%Y-%m-%d") +'.log')
          formatter = logging.Formatter('%(asctime)s %(levelname)s %(message)s')
          handler.setFormatter(formatter)
          logger.addHandler(handler)
        return logger

made the trick for me

using python 2.7

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+1 for the logger.handlers length check. –  kakyo Oct 11 '13 at 20:40

You are calling Logger.myLogger() more than once. Store the logger instance it returns somewhere and reuse that.

Also be advised that if you log before any handler is added, a default StreamHandler(sys.stderr) will be created.

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Actually I am trying to access the logger instance as we use in java.But I do not know whether it's need to create a instance only once for a whole project or not. –  user865438 Aug 24 '11 at 9:41
    
@user865483: Just once. All the standard library loggers are singletons. –  Matt Joiner Aug 24 '11 at 9:52

Your logger should work as singleton. You shouldn't create it more than once. Here is example how it might look:

import os
import time
import datetime
import logging
class Logger :
    logger = None
    def myLogger(self):
        if None == self.logger:
            self.logger=logging.getLogger('ProvisioningPython')
            self.logger.setLevel(logging.DEBUG)
            now = datetime.datetime.now()
            handler=logging.FileHandler('ProvisioningPython'+ now.strftime("%Y-%m-%d") +'.log')
            formatter = logging.Formatter('%(asctime)s %(levelname)s %(message)s')
            handler.setFormatter(formatter)
            self.logger.addHandler(handler)
        return self.logger

s = Logger()
m = s.myLogger()
m2 = s.myLogger()
m.info("Info1")
m2.info("info2")
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then again if I am going to take the different instance in different file. Suppose in file 1 s = Logger() m = s.myLogger() and in file 2 s = Logger() It will work or not m2 = s.myLogger() –  user865438 Aug 24 '11 at 9:46
    
Still I am getting copy of same log several times. I have a doubt here whether inside thread Log prints more than one or not.Please help me in this. –  user865438 Aug 24 '11 at 12:10
    
@user865438, we do not need to worry about making the implementation a singleton(It already is). For logging in sub-modules, follow the official Logging Cookbook link. Basically you need to follow the naming hierarchy while naming the loggers and it takes care of the rest. –  narayan Aug 5 at 3:26

The implementation of logger is already a singleton.

Multiple calls to logging.getLogger('someLogger') return a reference to the same logger object. This is true not only within the same module, but also across modules as long as it is in the same Python interpreter process. It is true for references to the same object; additionally, application code can define and configure a parent logger in one module and create (but not configure) a child logger in a separate module, and all logger calls to the child will pass up to the parent. Here is a main module

Source- Using logging in multiple modules

So the way you should utilize this is -

Let's suppose we have created and configured a logger called 'main_logger' in the main module (which simply configures the logger, doesn't return anything).

# get the logger instance
logger = logging.getLogger("main_logger")
# configuration follows
...

Now in a sub-module, if we create a child logger following the naming hierarchy 'main_logger.sub_module_logger', we don't need to configure it in the sub-module. Just creation of the logger following the naming hierarchy is sufficient.

# get the logger instance
logger = logging.getLogger("main_logger.sub_module_logger")
# no configuration needed
# it inherits the configuration from the parent logger
...

And it won't add duplicate handler as well.

See this question for a little more verbose answer.

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