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a.zip---
      -- b.txt
      -- c.txt
      -- d.txt

Methods to process the zip files with Python,

I could expand the zip file to a temporary directory, then process each txt file one bye one

Here, I am more interested to know whether or not python provides such a way so that I don't have to manually expand the zip file and just simply treat the zip file as a specialized folder and process each txt accordingly.

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All of these are duplicates: stackoverflow.com/search?q=python+zipfile –  S.Lott Sep 23 '11 at 19:22
    
1  
Or maybe a duplicate of this: stackoverflow.com/questions/4890860/… –  S.Lott Sep 23 '11 at 19:25

2 Answers 2

up vote 7 down vote accepted

The Python standard library helps you.

Doug Hellman blogs very informative about selected modules: http://www.doughellmann.com/PyMOTW/zipfile/

To comment on Davids post: From Python 2.7 on the Zipfile object provides a context manager, so the recommended way would be:

import zipfile
with zipfile.ZipFile("zipfile.zip", "r") as f:
    for name in f.namelist():
        data = f.read(name)
        print name, len(data), repr(data[:10])

So the close method will be called automatically, which is important if you write to the file.

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Yes you can process each file by itself. Take a look at the tutorial here. For your needs you can do something like this example from that tutorial:

import zipfile
file = zipfile.ZipFile("zipfile.zip", "r")
for name in file.namelist():
    data = file.read(name)
    print name, len(data), repr(data[:10])

This will iterate over each file in the archive and print out its name, length and the first 10 bytes.

The comprehensive reference documentation is here.

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using file as a variable name conflicts with the builtin file type. –  rocksportrocker Sep 23 '11 at 19:20

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