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I want to log using python's logging to both the screen and a file

this is how I log to the screen:

import logging
logging.basicConfig(level=logging.DEBUG)    
logging.debug('hello')

and this is how I log to a file:

import logging
logging.basicConfig(level=logging.DEBUG,filename='a.log')   
logging.debug('hello2')

Is there a way to log to both the file and the screen? preferably using logging.basicConfig

I am using python 2.7.14

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2 Answers 2

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If you want one logger for the screen and one for the log file, try this:

import logging


log = logging.getLogger('logger')
log.setLevel(logging.DEBUG)

formatter = logging.Formatter('%(message)s')

fh = logging.FileHandler('test.log', mode='w', encoding='utf-8')
fh.setLevel(logging.DEBUG)
fh.setFormatter(formatter)
log.addHandler(fh)

ch = logging.StreamHandler()
ch.setLevel(logging.INFO)
ch.setFormatter(formatter)
log.addHandler(ch)

This creates two log handlers. When you call log.debug/info/warning etc, it will log to each of your handlers. If the level they are set at is the same or higher, it will log the message, otherwise it won't.

In this example calling log.debug("test message") will save the str "test message to test.log, but you will not see the output on the screen because the StreamHandler()'s level is above the debug debug.

When you call log.info("test message"), it will save the str "test message to test.log and output it to the console because StreamHandler()'s level is info

log.setLevel(logging.DEBUG) ensures that everything will be logged. If you exclude this line, the default of WARNING will be enforced, and even if you set the level lower in a separate handler, you won't be able to log anything >= that level

The levels for logging are as follows:

DEBUG
INFO
WARNING
ERROR
CRITICAL
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  • I copied your code, added at the end this line: log.info('test') and nothing happend
    – Goolmoos
    Commented Mar 29, 2018 at 18:37
  • it printed this: test3 and in the next line: DEBUG:logger:test3
    – Goolmoos
    Commented Mar 29, 2018 at 18:59
  • @Goolmoos this question is turning out to be harder than I thought. The last edit I made should do it. Commented Mar 29, 2018 at 19:00
  • FYI: just tested with python 3.7.2 and it works perfectly. Thanks. Commented Jun 30, 2021 at 9:24
  • Tried on Python 3.8 and it works nice. However, I see that the output file becomes readable only after the script has finished, I would need to access it also while the execution is ongoing (i.e. with Tail command). Is that possible? Commented Nov 9, 2022 at 16:22
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I succeeded. here is my code:

import logging
formatter = logging.Formatter('%(message)s')
logging.getLogger('').setLevel(logging.DEBUG)
fh = logging.FileHandler('a.log')
fh.setLevel(logging.DEBUG)
fh.setFormatter(formatter)
logging.getLogger('').addHandler(fh)
ch = logging.StreamHandler()
ch.setLevel(logging.DEBUG)
ch.setFormatter(formatter)  
logging.getLogger('').addHandler(ch)
logging.debug('debug message')

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