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I want to use PyLZMA to extract a file from an archive (e.g. test.7z) and extract it to the same directory.

I'm a newbie to Python and have no idea how to start. I've done some googling and found some examples and docs, but I don't understand how they work.

Could someone please post the basic code for what I want to do so that I can start to work and understand?

share|improve this question
Could you show some examples of what you have tried and how it failed? – Levon May 22 '12 at 11:54
It seems this library is indeed completely undocumented, except some docstrings of the kind class Base(object): """base oject"""... – larsmans May 22 '12 at 11:58
People here usually frown upon "give me the code" questions, try to show some effort, show us what you found, tried and what you're missing and you'll get better support. – KurzedMetal May 22 '12 at 12:16
What I found: the examples here: i tried f = Archive7z(open('test.7z', 'rb')) f.list() which displays the archive's content but I dont't know how to tell python to extract it. (I'll keep searching for a solution on my own) – Philipp May 22 '12 at 12:48
Phi Lieb: Take another look at @Brian B's answer. – martineau Nov 22 '13 at 2:43

2 Answers 2

up vote 7 down vote accepted

Here is a Python class to handle the basic functionality. I have used it for my own work:

import py7zlib
class SevenZFile(object):
    def is_7zfile(cls, filepath):
        Class method: determine if file path points to a valid 7z archive.
        is7z = False
        fp = None
            fp = open(filepath, 'rb')
            archive = py7zlib.Archive7z(fp)
            n = len(archive.getnames())
            is7z = True
            if fp:
        return is7z

    def __init__(self, filepath):
        fp = open(filepath, 'rb')
        self.archive = py7zlib.Archive7z(fp)

    def extractall(self, path):
        for name in self.archive.getnames():
            outfilename = os.path.join(path, name)
            outdir = os.path.dirname(outfilename)
            if not os.path.exists(outdir):
            outfile = open(outfilename, 'wb')
share|improve this answer

Here are two code snippets i found here

# Compress the input file (as a stream) to a file (as a stream)
i = open(source_file, 'rb')
o = open(compressed_file, 'wb')
s = pylzma.compressfile(i)
while True:
    tmp =
    if not tmp: break

# Decomrpess the file (as a stream) to a file (as a stream)
i = open(compressed_file, 'rb')
o = open(decompressed_file, 'wb')
s = pylzma.decompressobj()
while True:
    tmp =
    if not tmp: break
share|improve this answer
Similar snippets are already in ; also, s.flush() should be noted for the decompression case. (yet, somehow, googling leads here first, heh) – HoverHell Jul 31 '12 at 10:07
Since the OP wants to extract a file from an archive, I don't think this answers the question and find it astonishing that it was up-voted at all. – martineau Nov 22 '13 at 2:16
usage.txt --> @ – philshem Aug 14 '14 at 20:54

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