Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I want to write a script to add all the ‘.py’ files into a zip file.

Here is what I have:

import zipfile
import os

working_folder = 'C:\\Python27\\'

files = os.listdir(working_folder)

files_py = []

for f in files:
    if f[-2:] == 'py':
        fff = working_folder + f
        files_py.append(fff)

ZipFile = zipfile.ZipFile("zip testing.zip", "w" )

for a in files_py:
    ZipFile.write(a, zipfile.ZIP_DEFLATED)

However it gives an error:

Traceback (most recent call last):
  File "C:\Python27\working.py", line 19, in <module>
    ZipFile.write(str(a), zipfile.ZIP_DEFLATED)
  File "C:\Python27\lib\zipfile.py", line 1121, in write
    arcname = os.path.normpath(os.path.splitdrive(arcname)[1])
  File "C:\Python27\lib\ntpath.py", line 125, in splitdrive
    if p[1:2] == ':':
TypeError: 'int' object has no attribute '__getitem__'

so seems the file names given is not correct.

share|improve this question
1  
Just a quick note, use os.path.join(working_folder, f) to generate the real path, don't use string concatenation directly '+' –  e-nouri Aug 28 '14 at 9:01
1  
@MarkK: with os.path() your code can be made cross-platform more easily, as the library takes care of the correct path separators. You also don't need to care as much about providing a path separator at the end of working_folder. –  Martijn Pieters Aug 28 '14 at 9:08
1  
@MarkK: on the same note, you can use str.endswith() instead of slicing: if f.endswith('.py'):. –  Martijn Pieters Aug 28 '14 at 9:09
1  
@MarkK: and ZipFile doesn't require anything to be collected into one folder. You can give it any list of files, then provide the second arcname argument to specify the filename (with path) within the archive. os.path.basename() could work for example to put all files in a flat hierarchy. –  Martijn Pieters Aug 28 '14 at 9:10
1  
@MarkK As the Master Martin said :D your code will be cross plateform and it won't break of you run on windows or linux, also it is better than dealing with string directly, because you don't have to add additional checks. Check the documentation for the os.path function you will find some great information there, Cheers ! –  e-nouri Aug 28 '14 at 9:12

2 Answers 2

up vote 4 down vote accepted

You need to pass in the compression type as a keyword argument:

ZipFile.write(a, compress_type=zipfile.ZIP_DEFLATED)

Without the keyword argument, you are giving ZipFile.write() an integer arcname argument instead, and that is causing the error you see as the arcname is being normalised.

share|improve this answer

according to the guidance above, the final is: (just putting them together in case it could be useful)

import zipfile
import os

working_folder = 'C:\\Python27\\'

files = os.listdir(working_folder)

files_py = []

for f in files:
    if f.endswith('py'):
        fff = os.path.join(working_folder, f)
        files_py.append(fff)

ZipFile = zipfile.ZipFile("zip testing3.zip", "w" )

for a in files_py:
    ZipFile.write(os.path.basename(a), compress_type=zipfile.ZIP_DEFLATED)
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.