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 have been learning python since few weeks. In one of the problem I have to zip the files contained in list to the specified path. I am using python in Windows.

python zipall.py C:\temp C:\example

should extract particular type of files from C:\example, which I did successfully in some list (say listX). Now the job is to make zip file C:\temp consisting of the all files in listX in zipped form. How to perform this operation in Python?

I have to make zip file in specified path (here C:\temp) containing all files that are contained in list (here listX).

I tried zipfile.ZipFile() as below:

zip_name = zipfile.ZipFile(tozip, 'w')
l=len(listX)
ctr=0
for thelist in listX:
    zip_name = zipfile.ZipFile(tozip+str(ctr), 'w')
    if ctr<=l:
        ctr+=1
    zip_name.write(thelist,'zip')

It certainly creates 'l' zip files but I have to create 'l' zip files within path given by tozip ('C:\temp' above)

share|improve this question
    
A short answer is that you can do what you appear to want simply with the zip.exe program (available from Info-ZIP, for instance) without needing Python at all. If that does not meet your needs, it would be valuable to have some more detail in order to help you. For example, it isn't clear what you mean by list 'special'. Can you edit your question to include the file zipall.py? Thanks. –  Simon Feb 13 '13 at 4:30
    
What have you tried so far? –  That1Guy Feb 13 '13 at 21:32
add comment

1 Answer

zipfile.ZipFile creates the output ZIP archive for you in the location you want the ZIP file written to. But you need to give it a filename, not a directory name. From your description it sounds like tozip was set to C:\temp. In which case you should use os.path.join to construct a filename, like this:

import os.path
tozip = os.path.join(r'C:\temp', 'out.zip')

That should get you an archive created in the directory you want. Note that you may do this instead, using the handy 'tempfile' library to avoid hardcoding a Windows path into your script:

import os.path
from tempfile import gettempdir
tozip = os.path.join(gettempdir(), 'out.zip')

Now, as you're iterating through the list, I think you want to add each file one at a time to the single archive you're creating, right? Your code is looping through listX, but for each file in listX it's creating a new ZIP archive, and adding that file to the new archive. Also, as it goes through the list, because each time you're assigning the new ZIP archive to zip_name, you've completely forgotten about the archive that you really want to have your output in. So I think you want this instead:

theZip = zipfile.ZipFile(tozip, 'w')
for elem in listX:
    theZip.write(elem)
share|improve this answer
add comment

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.