Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am using python logging in my django application. A class that connects to a backend api initialises this logger with a filehandler if needed. The class gets instantiated everytime an api call is made. I have tried making sure additional handlers are not added every time, but

lsof | grep my.log 

shows an increasing amount of handlers on my log file and after a while my server fails due to this open file limit.

 self.logger = logging.getLogger("FPA")

        try:
            if self.logger.handlers[0].__class__.__name__=="FileHandler":
                pass
        except Exception, e:
            print 'new filehandler added'+str(e)
            ch = logging.FileHandler(FPA_LOG_TARGET)
            formatter = logging.Formatter("%(asctime)s - %(levelname)s - %(message)s - %(pathname)s @ line %(lineno)d")
            ch.setFormatter(formatter)
            self.logger.setLevel(logging.DEBUG)
            self.logger.addHandler(ch)

I realise this may not be the best way to do this, but I have not found the error in my implementation so far.

share|improve this question
    
What exactly is your question? –  Björn Pollex Mar 16 '11 at 10:17
    
what does print 'new filehandler added'+str(e) print out in your log statement? –  Mahmoud Abdelkader Mar 16 '11 at 10:18
    
My question is what am I doing wrong? –  pyeleven Mar 16 '11 at 10:58
1  
print 'new filehandler added'+str(e) says index out of range, so even if i already initialised the logger, a next instance of my class will not see any handlers. –  pyeleven Mar 16 '11 at 10:58
2  
You need to provide more context for this. It looks totally like the wrong approach, but we can't tell where in your code this occurs? A view function? settings.py? urls.py? Further, why do you keep adding new file handlers? Why isn't this declared once in a logging.ini file? –  S.Lott Mar 16 '11 at 12:32

1 Answer 1

up vote 1 down vote accepted

I did not analysed if for a long time, but it looks like a concurrency problem.

Each process/thread is keeping it's own list of the file handles to the opened log files.

How to fix it? For the multithreaded code, make sure that there is a global dictionary where all handles are kept. For the multiprocess - I'm afraid I do not have an answer... each process is keeping it's own file-handles, maybe mapping it to the memory (memory mapped files could be an option), but I'm not sure that this is good solution - see this remark.

But the main question is why do you need to do such a thing.

First of all, you can use logging.conf file to initialize all your loggers/handlers/formatters and when needed (e.g. specific loger is extensive and you want to log it to the separate file) add another logger with different filename. Which is quite sensible if you will add one logger per django app, by adding in the main __init__.py of the app:

import logging
log = logging.getLogger(__name__)

and then import log in the rest of the app code (views, models, etc.)

To use logging.conf add following lines to your settings.py:

import os
import logging
DIRNAME = os.path.abspath(os.path.dirname(__file__))
logging.config.fileConfig(os.path.join(DIRNAME, 'logging.conf'))

Yes, it is manual, but you do not need to change code, but simply a config file.

Another approach (if you really want to have one file per logger type) is to have a separate process which will keep files open, accept connections from the application. Logging module documentation has a nice example of this method.

Last, but not least there are already some nice solutions which may be helpful. One, quite good, is to use django-sentry. This module can log all your exceptions, 404 (with extra middleware - included) and capture all logging (via included logging handler).

Provided UI will gave you a possibility to search all the logged messages, filter them by the severity and logging source. But this is not limited to those - you can simply add your own modules.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.