15

So say I have a zip file named "files.zip" it contains "text1.txt":

words

and "text2.txt":

other words

How do I tell python to open and read the text1.txt file? I know that usually to open a text file outside of a zip file I would just do this:

file = open('text1.txt','r')

3 Answers 3

27

If you need to open a file inside a ZIP archive in text mode, e.g. to pass it to csv.reader, you can do so with io.TextIOWrapper:

import io
import zipfile

with zipfile.ZipFile("files.zip") as zf:
    with io.TextIOWrapper(zf.open("text1.txt"), encoding="utf-8") as f:
        ...
1
  • 4
    For Python 3.x, I believe this answer — particularly the use of io.TextIoWrapper — is necessary to properly read a text file as text and not as a stream of bytes
    – dancow
    Aug 31, 2021 at 8:52
17

You can use the zipfile module like so:

zip = zipfile.ZipFile('test.zip')
file = zip.read('text1.txt')

Don't forget to import zipfile module: import zipfile

4
  • 10
    It's probably better to use the with ... as formulation, as at stackoverflow.com/a/11482347/2336725
    – Teepeemm
    Nov 5, 2013 at 19:10
  • @Teepeemm why? If you need full text to parse xml as an example Feb 10, 2020 at 18:42
  • @Teepeemm is that just like the with open () function in python?
    – edo101
    Jul 21, 2020 at 17:25
  • 8
    this will return bytes. it does not decode the bytes into a str (unicode) Sep 10, 2021 at 15:40
5

Since Python 3.8, it's been possible to construct Path objects for zipfile contents, and use their read_text method to read them as text. Since Python 3.9 it's been possible to specify text mode in the path object's open method.


with zipfile.ZipFile('spam.zip') as zf:
    # Create a path object.
    path = zipfile.Path(zf, at='somedir/somefile.txt')

    # Read all the contents (Python 3.8+):
    contents = path.read(encoding='UTF-8')

    # Or open as as file (Python 3.9+):
    with path.open(encoding='UTF-8') as f:
        # Do stuff

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