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A logging.FileHandler is constructed with a file name, so is there any way to get the file name from the logging.FileHandler object?

I tried dir(logging.FileHandler) but didn't see any possible solutions.

share|improve this question… – Dan Oct 10 '12 at 6:43

2 Answers 2

up vote 11 down vote accepted
>>> import logging
>>> fh = logging.FileHandler('/Users/defuz/test.txt')
>>> fh.baseFilename
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Please find dir(logging.FileHandler)

 ['__class__', '__delattr__', '__dict__', '__doc__', '__format__', 
  '__getattribute__', '__hash__', '__init__', '__module__', '__new__', 
  '__reduce__', '__reduce_ex__', '__repr__', '__setattr__', '__sizeof__', 
  '__str__', '__subclasshook__', '__weakref__', '_name', '_open', 'acquire', 
  'addFilter', 'baseFilename', 'close', 'createLock', 'emit', 'encoding', 'filter', 
  'filters', 'flush', 'format', 'formatter', 'get_name', 'handle', 'handleError', 
  'level', 'lock', 'mode', 'name', 'release', 'removeFilter', 'setFormatter', 'setLevel', 
  'set_name', 'stream']

You have option obj.baseFilename to get the file name.

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