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Once I have all the files I require in a particular folder, I would like my python script to zip the folder contents. Is this possible? And how could I go about doing it? A point in the right direction (i.e. a link with an example) or an example that I can see would be extremely helpful. Thanks in advance.

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4  
On Python 2.7+: you could use shutil.make_archive() –  J.F. Sebastian Dec 13 '11 at 21:22

4 Answers 4

up vote 19 down vote accepted

Adapted version of the script is:

#!/usr/bin/env python
from __future__ import with_statement
from contextlib import closing
from zipfile import ZipFile, ZIP_DEFLATED
import os

def zipdir(basedir, archivename):
    assert os.path.isdir(basedir)
    with closing(ZipFile(archivename, "w", ZIP_DEFLATED)) as z:
        for root, dirs, files in os.walk(basedir):
            #NOTE: ignore empty directories
            for fn in files:
                absfn = os.path.join(root, fn)
                zfn = absfn[len(basedir)+len(os.sep):] #XXX: relative path
                z.write(absfn, zfn)

if __name__ == '__main__':
    import sys
    basedir = sys.argv[1]
    archivename = sys.argv[2]
    zipdir(basedir, archivename)

Example:

C:\zipdir> python -mzipdir c:\tmp\test test.zip

It creates 'C:\zipdir\test.zip' archive with the contents of the 'c:\tmp\test' directory.

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3  
Man, that's scary... I was just about to post the EXACT code! (apart from contectlib.closing). Even most of the identifiers match! :b –  efotinis Nov 17 '08 at 21:43
1  
Nice script although when you have a trailing separator in the argument (e.g. 'test/') it will create an archive named '.zip' which is hidden in *nix. For a few moments I thought the script is not working =) –  vitaut Nov 8 '11 at 21:16
    
@vitaut: I've changed it to require explicit archivename. –  J.F. Sebastian Nov 9 '11 at 5:08
    
zfn = absfn[len(basedir)+len(os.sep):] why not absbasedir=os.path.abspath(basedir); os.path.relpath(absfn,absbasedir) ? Also the length of basedir and os.sep can be seen as constant so it should be outside the two for loops. –  naxa Aug 16 '13 at 13:11
    
never heard of contextlib.closing before, but it makes the with statement backward compatible with 2.5. Previously I've ran into error with ... the "with [statement] from future" ;), because some stdlib functions didn't support with in 2.5 (even if the statement itself worked with the import), while supporting it in 2.7. I guess this could be avoided with closing. –  naxa Aug 16 '13 at 13:17

On python 2.7 you might use: shutil.make_archive(base_name, format[, root_dir[, base_dir[, verbose[, dry_run[, owner[, group[, logger]]]]]]]).

base_name archive name minus extension

format format of the archive

root_dit directory to compress.

For example

 shutil.make_archive(target_file, format="bztar", root_dir=compress_me)    
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Simple and it worked a treat! + 1 for best answer –  James Dec 4 '12 at 9:50

Here is a recursive version

def zipfolder(path, relname, archive):
    paths = os.listdir(path)
    for p in paths:
        p1 = os.path.join(path, p) 
        p2 = os.path.join(relname, p)
        if os.path.isdir(p1): 
            zipfolder(p1, p2, archive)
        else:
            archive.write(p1, p2) 

def create_zip(path, relname, archname):
    archive = zipfile.ZipFile(archname, "w", zipfile.ZIP_DEFLATED)
    if os.path.isdir(path):
        zipfolder(path, relname, archive)
    else:
        archive.write(path, relname)
    archive.close()
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Use zipfile module:

import zipfile

compressedFile = zipfile.ZipFile(FILENAME,"a", zipfile.ZIP_DEFLATED)
compressedFile.write(existing_file_name, archived_name)
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1  
I've downvoted this because the problem exactly is that ZipFile has methods only for individual files, and the question is about a way to zip directories recursively instead. –  naxa Aug 16 '13 at 13:08

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