I read through the zipfile documentation, but couldn't understand how to unzip a file, only how to zip a file. How do I unzip all the contents of a zip file into the same directory?
asked Aug 10, 2010 at 16:19
9 Answers
import zipfile
with zipfile.ZipFile(path_to_zip_file, 'r') as zip_ref:
zip_ref.extractall(directory_to_extract_to)
That's pretty much it!
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11what if the contents of the .zip archive are same, in all .zip archives? how to rename the content before extracting? example: 1.zip 2.zip.. all contain content.txt : extract all like 1content.txt 2content.txt?– IrtazaApr 7, 2016 at 16:59
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13@iratzhash I typically create a new temporary directory for the contents using tempfile: docs.python.org/3/library/tempfile.html I unzip to the temporary directory and the move / organize the files from there. Jul 12, 2017 at 17:28
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18@3kstc I would
from zipfile import ZipFile. When using it, you no longer need to usezipfile.ZipFile, and can useZipFile(zip_file_name).– Debug255Feb 13, 2018 at 2:00 -
1thnx, note: There is no zipfile library, no need to pip install, zipfile is already there...– ntgApr 9, 2019 at 9:06
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1I'd add:
from tempfile import mkdtemp; directory_to_extract_to = mkdtemp()Jul 31, 2019 at 15:23
If you are using Python 3.2 or later:
import zipfile
with zipfile.ZipFile("file.zip","r") as zip_ref:
zip_ref.extractall("targetdir")
You dont need to use the close or try/catch with this as it uses the context manager construction.
answered Apr 16, 2016 at 10:11
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23ZipFile also works as a context manager in 2.7 or later: docs.python.org/2/library/zipfile.html#zipfile.ZipFile Jan 22, 2017 at 15:01
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How to deal with docs.python.org/3.6/library/zipfile.html#zipfile.BadZipFile exception? Generally, what is the best practice to use try/except with context manager (with-statement)? Mar 6, 2019 at 8:24
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2
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2is there a reason to avoid
os.system(f'tar -xvzf {filename}')and instead use zipfile (e.g.zip = ZipFile('file.zip'); zip.extractall() )orshutil.unpack_archive(filename, extract_dir)? Jan 21, 2021 at 20:09 -
3@CharlieParker The main reason is portability.
systemcalls are OS dependent. For example,tarwould not be available on Windows.– FareanorMay 18, 2021 at 16:24
zipfile is a somewhat low-level library. Unless you need the specifics that it provides, you can get away with shutil's higher-level functions make_archive and unpack_archive.
make_archive is already described in this answer. As for unpack_archive:
import shutil
shutil.unpack_archive(filename, extract_dir)
unpack_archive detects the compression format automatically from the "extension" of filename (.zip, .tar.gz, etc), and so does make_archive. Also, filename and extract_dir can be any path-like objects (e.g. pathlib.Path instances) since Python 3.7.
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2This method doesn't work when the zip file has a custom extension, e.g. (
.omtfor OmegaT project packages). It givesraise ReadError("Unknown archive format '{0}'".format(filename)). Mar 3, 2021 at 21:00 -
1@msoutopico you can specify thje format explicitly:
shutil.unpack_archive(filename, extract_dir, format)– foniniMar 4, 2021 at 19:42 -
1what is wrong with
os.system(f'tar -xvzf {path2zip} -C {path2unzip}/')? Aug 10, 2021 at 18:49 -
9@CharlieParker you have already asked the same thing in a comment to another answer, and that comment was answered: stackoverflow.com/questions/3451111/unzipping-files-in-python/…
os.systemis not portable, opens up security issues, is harder to use correctly (e.g. your proposal fails when the paths have special characters), and is less readable.– foniniAug 10, 2021 at 18:58 -
This solution doesn’t seem to maintain executable bits on the stuff inside the archive as it’s unzipped? Jan 26 at 0:51
Use the extractall method, if you're using Python 2.6+
zip = ZipFile('file.zip')
zip.extractall()
answered Aug 10, 2010 at 16:23
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Don't you have to specify a destination (zip.extractall(destination))? Oct 24, 2013 at 18:19
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4Not if you're just extracting into the same directory as the zipfile Dec 4, 2013 at 20:01
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17@DanGayle this appears to be extracting the zip file into the current working directory, NOT the location of the zip file Jun 9, 2017 at 14:41
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5for me, ZipFile() didn't work but zipfile.ZipFile() did - after import zipfile Sep 29, 2018 at 7:34
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4You need to
zip.close()at the end if you don't use awithstatement like the other answers suggest. Jun 22, 2020 at 17:52
You can also import only ZipFile:
from zipfile import ZipFile
zf = ZipFile('path_to_file/file.zip', 'r')
zf.extractall('path_to_extract_folder')
zf.close()
Works in Python 2 and Python 3.
answered Sep 13, 2018 at 16:28
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1Thank you for your attention @MylesHollowed However, this is not a copy from the accepted answer. I agree that they are similar to each other, but they are different. This is also indicated by your comment, because the accepted one is definitely better for you than mine. If it was a copy, it would be the same... For someone my answer may be valuable because it is perhaps more readable and as you noticed import less code... It is because of these differences that I decided to put my answer to give an alternative. Is not that why we can put other answers after accepting one? All the best Oct 30, 2018 at 8:22
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What's wrong with this answer? Why did someone give her a negative point? After all, it is the answer to the question and is distinguished by its simplicity compared to other answers, which may be important for some people who are looking for an answer. Isn't it? Jan 28, 2020 at 14:09
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1@MylesHollowed
import zipfile.ZipFilegeneratesModuleNotFoundError: No module named 'zipfile.ZipFile'; 'zipfile' is not a packagein 3.6.5. I am open to it being operator error on my part, but I don't know what it is.– MikeFFeb 26, 2020 at 16:38 -
1@MikeF I had the same problem with Python 3.8.5 but the workaround was to use
from zipfile import ZipFile. Hope this helps. Oct 15, 2020 at 9:53
try this :
import zipfile
def un_zipFiles(path):
files=os.listdir(path)
for file in files:
if file.endswith('.zip'):
filePath=path+'/'+file
zip_file = zipfile.ZipFile(filePath)
for names in zip_file.namelist():
zip_file.extract(names,path)
zip_file.close()
path : unzip file's path
If you want to do it in shell, instead of writing code.
python3 -m zipfile -e myfiles.zip myfiles/
myfiles.zip is the zip archive and myfiles is the path to extract the files.
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2
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3ZIP files are not tar files. Unless you have a special version of
tarwhich handles ZIP archives, your command wont work at all.tarwith the-zoption processes gzipped tar archives (generally files with extensions.tgzor.tar.gz)– PerryJan 22, 2021 at 19:00
from zipfile import ZipFile
ZipFile("YOURZIP.zip").extractall("YOUR_DESTINATION_DIRECTORY")
The directory where you will extract your files doesn't need to exist before, you name it at this moment
YOURZIP.zip is the name of the zip if your project is in the same directory. If not, use the PATH i.e : C://....//YOURZIP.zip
Think to escape the / by an other / in the PATH
If you have a permission denied try to launch your ide (i.e: Anaconda) as administrator
YOUR_DESTINATION_DIRECTORY will be created in the same directory than your project
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1
import os
zip_file_path = "C:\AA\BB"
file_list = os.listdir(path)
abs_path = []
for a in file_list:
x = zip_file_path+'\\'+a
print x
abs_path.append(x)
for f in abs_path:
zip=zipfile.ZipFile(f)
zip.extractall(zip_file_path)
This does not contain validation for the file if its not zip. If the folder contains non .zip file it will fail.
shutil.unpack_archive().