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I have looked through many tutorials, as well as other question here on stack overflow, and the documentation and explanation are at minimum, just unexplained code. I would like to send a file that I already have zipped, and send it as an attachment. I have tried copy and pasting the code provided, but its not working, hence I cannot fix the problem.

So what I am asking is if anyone knows who to explain how smtplib as well as email and MIME libraries work together to send a file, more specifically, how to do it with a zip file. Any help would be appreciated.

This is the code that everyone refers to:

import smtplib
import zipfile
import tempfile
from email import encoders
from email.message import Message
from email.mime.base import MIMEBase
from email.mime.multipart import MIMEMultipart    

def send_file_zipped(the_file, recipients, sender='you@you.com'):
    myzip = zipfile.ZipFile('file.zip', 'w')

    # Create the message
    themsg = MIMEMultipart()
    themsg['Subject'] = 'File %s' % the_file
    themsg['To'] = ', '.join(recipients)
    themsg['From'] = sender
    themsg.preamble = 'I am not using a MIME-aware mail reader.\n'
    msg = MIMEBase('application', 'zip')
    msg.set_payload(zf.read())
    encoders.encode_base64(msg)
    msg.add_header('Content-Disposition', 'attachment', 
               filename=the_file + '.zip')
    themsg.attach(msg)
    themsg = themsg.as_string()

    # send the message
    smtp = smtplib.SMTP()
    smtp.connect()
    smtp.sendmail(sender, recipients, themsg)
    smtp.close()

I suspect the issue is this code zips a file as well. I don't want to zip anything as I already have a zipped file I would like to send. In either case, this code is poorly documented as well as the python libraries themselves as they provide no insight on anything past img file and text files.

UPDATE: Error I am getting now. I have also updated what is in my file with the code above

Traceback (most recent call last):
File "/Users/Zeroe/Documents/python_hw/cgi-bin/zip_it.py", line 100, in <module>
send_file_zipped('hw5.zip', 'avaldez@oswego.edu')
File "/Users/Zeroe/Documents/python_hw/cgi-bin/zip_it.py", line 32, in send_file_zipped
msg.set_payload(myzip.read())
TypeError: read() takes at least 2 arguments (1 given)
share|improve this question
4  
What code is not working in what way? – Cameron May 6 '12 at 22:00
    
This is... the second code sample in the documentation for the email module. You'll have to give some specifics to get any answer that won't be essentially be a copy of that sample. – millimoose May 6 '12 at 22:02
    
Its not a copy... I am asking them to actually explain how it does what I need through a zip file. But I will post the same code everyone constantly refers to but does not explain... – Andy May 6 '12 at 22:05
1  
Well then remove the part that would zip the file again from your code. – millimoose May 6 '12 at 22:19
1  
Why do you think that sending an existing zip file is any different from sending an existing img or text file? – Daniel Roseman May 6 '12 at 22:37

I don't really see the problem. Just omit the part which creates the zip file and, instead, just load the zip file you have.

Essentially, this part here

msg = MIMEBase('application', 'zip')
msg.set_payload(zf.read())
encoders.encode_base64(msg)
msg.add_header('Content-Disposition', 'attachment', 
               filename=the_file + '.zip')
themsg.attach(msg)

creates the attachment. The

msg.set_payload(zf.read())

sets, well, the payload of the attachment to what you read from the file zf (probably meaning zip file).

Just open your zip file beforehand and let this line read from it.

share|improve this answer
    
I am doing that but it says the set_payload() takes 2 arguments and thats only one. – Andy May 6 '12 at 23:29
    
@Andy: The docs indicate the second argument, charset, is optional. – martineau May 6 '12 at 23:37
    
I will show you the error I am getting and the updated code like you told me to probably do. I appreciate the help. – Andy May 6 '12 at 23:45
    
@Andy: It's the myzip.read() that takes two arguments because myzip is an instance of the ZipFile class. I think the file you want to send should be the opened normally, i.e. something like zf = open('file.zip', 'rb') then msg.setpayload(zf.read()). – martineau May 7 '12 at 0:00
    
Ok, I will try that. Thank you very much. – Andy May 7 '12 at 1:24

I agree the email package is not well documented yet. I investigated it before and wrote a wrapper module that simplifies these kinds of tasks. For example, the following works:

from pycopia import ezmail

# Get the data
data = open("/usr/lib64/python2.7/test/zipdir.zip").read()

# Make a proper mime message object.
zipattachement = ezmail.MIMEApplication.MIMEApplication(data, "zip",
        filename="zipdir.zip")

# send it.
ezmail.ezmail(["Here is the zip file.", zipattachement],
        To="me@mydomain.com", From="me@mydomain.com", subject="zip send test")

And that's all you need once you have everything installed and configured. :-)

share|improve this answer
1  
Since the OP doesn't have your wrapper module, I doubt this answer will be very useful to them... – martineau May 6 '12 at 23:48
    
@martineau It's open source, so it can be easily obtained. – Keith May 7 '12 at 0:07
    
Oh...not sure how one would know that though, at least from your answer alone. – martineau May 7 '12 at 0:35
    
I assume the OP will ask about it if interested. Or one could just google the package name. ;-) – Keith May 7 '12 at 1:02
    
Hi i have the same requirement, but after installing pycopia and when i tried "from pycopia import ezmail", the following message displayed ImportError: cannot import name ezmail, but when i tried import pycopia, that worked actually, y i am unable to import ezmail? – shiva krishna Oct 22 '12 at 6:40

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