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I can't make SysLogHandler to work and it's driving me nuts.

This is my code:

   import logging
   import logging.handlers

   logger = logging.getLogger()
   sh = logging.handlers.SysLogHandler(address='/dev/log/', facility='local1')
   logger.addHandler(sh)

   logger.setLevel(logging.INFO)
   logger.info('Test')

And doesn't work. I have set local1 to output in /var/log/test.log in my syslog.conf and nothing appears, however if I use syslog it's working as expected:

   import syslog

   syslog.syslog(syslog.LOG_LOCAL1, 'Test from syslog')

I am on Debian 6, in an app served trough uwsgi.

Can you help me?

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Where did you place this code? It should be the very first code to be executed in your app. –  Tisho Jul 16 '12 at 12:05
    
@Tisho in a function called in __main__ as first thing. –  Gianluca Jul 16 '12 at 13:15
    
Is your problem solved? –  Tshepang Jul 2 '14 at 11:55

3 Answers 3

The UNIX socket name (the address argument) should end with a filename, not a "/". So it should be address='/dev/log' on linux, typically.

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Perhaps you mean logger.setLevel() instead of logger.setLever().

Also, why do you re-import logging.handlers?

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Yes it's a typo, the code is correct. And I am re-importing logging.handlers because without I get an AttributeError. –  Gianluca Jul 16 '12 at 8:09

You provided local1 as a string, but the module expects a constant. Even the default value is LOG_USER, see http://docs.python.org/2/library/logging.handlers.html#logging.handlers.SysLogHandler

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