26

Is there a simple Python function that would allow unzipping a .zip file like so?:

unzip(ZipSource, DestinationDirectory)

I need the solution to act the same on Windows, Mac and Linux: always produce a file if the zip is a file, directory if the zip is a directory, and directory if the zip is multiple files; always inside, not at, the given destination directory

How do I unzip a file in Python?

44

Use the zipfile module in the standard library:

import zipfile,os.path
def unzip(source_filename, dest_dir):
    with zipfile.ZipFile(source_filename) as zf:
        for member in zf.infolist():
            # Path traversal defense copied from
            # http://hg.python.org/cpython/file/tip/Lib/http/server.py#l789
            words = member.filename.split('/')
            path = dest_dir
            for word in words[:-1]:
                while True:
                    drive, word = os.path.splitdrive(word)
                    head, word = os.path.split(word)
                    if not drive:
                        break
                if word in (os.curdir, os.pardir, ''):
                    continue
                path = os.path.join(path, word)
            zf.extract(member, path)

Note that using extractall would be a lot shorter, but that method does not protect against path traversal vulnerabilities before Python 2.7.4. If you can guarantee that your code runs on recent versions of Python.

  • 1
    @tkbx: Both are possible. E.g. with absolute pathnames. – Roland Smith Oct 14 '12 at 21:47
  • 1
    @tkbx Updated with a safe alternative. – phihag Oct 14 '12 at 22:03
  • 1
    Seems strange that this hasn't been made into something like unzip(), or even zipfile.unzip() would be better. Thanks anyway, though, this is much better than os.system('unzip...') and no Windows support. – tkbx Oct 14 '12 at 22:07
  • 3
    @phihag I used the implementation that you posted and it has an odd behavior (python3.3 OSX). It extract the files into the correct directory. Say file z.zip contains a single file a/b/c.txt, this implementation unzips that file into a/b/a/b/c.txt. I was able to fix this by doing if(member.filename.split('/').pop()): member.filename = member.filename.split('/').pop() zf.extract(member, path) right after checking the paths. – zabawaba99 Sep 12 '13 at 21:43
  • 9
    Note that starting from Python 2.7.4 the path traversal vulnerability has been fixed. – vadipp Oct 14 '13 at 10:58
4

Python 3.x use -e argument, not -h.. such as:

python -m zipfile -e compressedfile.zip c:\output_folder

arguments are as follows..

zipfile.py -l zipfile.zip        # Show listing of a zipfile
zipfile.py -t zipfile.zip        # Test if a zipfile is valid
zipfile.py -e zipfile.zip target # Extract zipfile into target dir
zipfile.py -c zipfile.zip src ... # Create zipfile from sources

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