Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

As you know, python smtplib has a debug level.When I set it a true param, it will print some send information.
The problem is, I try to get the debug info to log into a file, but They just stay on my cmd console. How can I do to log them?

Info like this:

connect: ('192.168.1.101', 25)
connect: (25, '192.168.1.101')
reply: '220 ESMTP on WinWebMail [3.8.1.3] ready.  http://www.winwebmail.com\r\n'

reply: retcode (220); Msg: ESMTP on WinWebMail [3.8.1.3] ready.  http://www.winw
ebmail.com
connect: ESMTP on WinWebMail [3.8.1.3] ready.  http://www.winwebmail.com
send: 'ehlo [169.254.63.67]\r\n'
reply: '250-SIZE\r\n'
reply: '250 AUTH LOGIN\r\n'
reply: retcode (250); Msg: SIZE
AUTH LOGIN
bla bla bla bla........
share|improve this question
up vote 9 down vote accepted

The smtplib prints directly to stderr, e.g. line 823 in smtplib.py:

print>>stderr, 'connect fail:', host

You'd have to either monkey patch sys.stderr before you import smtplib or smtplib.stderr before you run your mail code.

I might also suggest patching smtplib.stderr with a custom object that has a write method to wrap your logging code (if you are using the logging library for instance):

import logging
import smtp

class StderrLogger(object):

    def __init__(self):
        self.logger = logging.getLogger('mail')

    def write(self, message):
        self.logger.debug(message)

org_stderr = smtp.stderr
smtp.stderr = StderrLogger()

# do your smtp stuff

smtp.stderr = org_stderr

This question contains some useful examples of patching stderr with context managers.

share|improve this answer
    
Wow,it works. Thanks~! :) – soasme Sep 5 '11 at 3:15

Some time ago I forked smtplib, and added a logfile option (among other things). You can try that, if you want. It also has a new name, SMTP.py.

share|improve this answer

Hardly clean, but since it doesn't seem SMTP objects provide the ability to specify where debug output goes:

import sys
orig_std = (sys.stdout, sys.stderr)
sys.stdout = sys.stderr = open("/path/to/log", "a")
# smtplib stuff
sys.stdout, sys.stderr = orig_std
share|improve this answer
    
I used the same way in my code, but it seems that the std redirection is only limited in the code, the stderr information write by smtplib is still in the console. And I just use a dirty way to solve it temporary: add" fsock = open('error.log', 'w') stderr = fsock" in the /lib/smtplib.py code. – soasme Sep 5 '11 at 2:55

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.