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I want to create a zip file. Add a folder to the zip file and then add a bunch of files to that folder.

So I want to end up with a zip file with a single folder with files in.

I dont know if its bad practice to have folders in zip files or something but google gives me nothing on the subject.

I started out with this:

def addFolderToZip(myZipFile,folder):
    folder = folder.encode('ascii') #convert path to ascii for ZipFile Method
    for file in glob.glob(folder+"/*"):
            if os.path.isfile(file):
                print file
                myZipFile.write(file, os.path.basename(file), zipfile.ZIP_DEFLATED)
            elif os.path.isdir(file):
                addFolderToZip(myZipFile,file)

def createZipFile(filename,files,folders):
    curTime=strftime("__%Y_%m_%d", time.localtime())
    filename=filename+curTime;
    print filename
    zipFilename=utils.getFileName("files", filename+".zip")
    myZipFile = zipfile.ZipFile( zipFilename, "w" ) # Open the zip file for writing 
    for file in files:
        file = file.encode('ascii') #convert path to ascii for ZipFile Method
        if os.path.isfile(file):
            (filepath, filename) = os.path.split(file)
            myZipFile.write( file, filename, zipfile.ZIP_DEFLATED )

    for folder in  folders:   
        addFolderToZip(myZipFile,folder)  
    myZipFile.close()
    return (1,zipFilename)


(success,filename)=createZipFile(planName,files,folders);

Taken from: http://mail.python.org/pipermail/python-list/2006-August/396166.html

Which gets rid of all folders and puts all files in the target folder (and its subfolders) into a single zip file. I couldnt get it to add an entire folder.

If I feed the path to a folder in myZipFile.write, I get

IOError: [Errno 13] Permission denied: '..\packed\bin'

Any help is much welcome.

Related question: How do I zip the contents of a folder using python (version 2.5)?

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added related question –  J.F. Sebastian Jan 19 '09 at 19:18
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11 Answers

up vote 23 down vote accepted

Ok, after i understood what you want, it is as simple as using the second argument of zipfile.write, where you can use whatever you want:

import zipfile
myZipFile = zipfile.ZipFile("zip.zip", "w" )
myZipFile.write("test.py", "dir\\test.py", zipfile.ZIP_DEFLATED )

creates a zipfile where test.py would be extracted to a directory called dir

EDIT: I once had to create an empty directory in a zip file: it is possible. after the code above just delete the file test.py from the zipfile, the file is gone, but the empty directory stays.

share|improve this answer
    
Yes, that looks like the thing I need. After reading ΤΖΩΤΖΙΟΥ's comment, I now understand how the "folders" in zip files work. And I found some code in the related question that also did what I want, but I didnt understand how. Ill experiment some more and return to post the code I actually used. :) –  mizipzor Jan 19 '09 at 22:29
    
And what's best, it's the same way with tarfile as well, should you ever create one :) in tarfile the parameter is called arcname for archive name. –  Matthieu M. Mar 31 '10 at 17:11
    
For this to work across platform you need to use os.path.join("dir","test.py") –  Globalkeith Jun 17 '12 at 21:40
    
For the directory entries themselves (including empty directories), I think you can just pass them to .write as if they were files. But use zipfile.ZIP_STORED for directories. I added an answer with more details. –  z0r Aug 18 '13 at 5:04
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You can also use shutil

import shutil

shutil.make_archive("desired_zipfile_name_no", "zip", "name_of_the_folder_you_want_to_zip")

This will put the whole folder in the zip.

share|improve this answer
4  
It is available only on Python 2.7+ –  J.F. Sebastian Dec 13 '11 at 21:24
1  
An interesting thing about that method, it appends .zip to your desired_zipfile_name_no even if it already has a .zip extension. It then returns the full path it wrote to with the new extension. (You can use other formats besides zip, I expect it appends their extension as well.) –  zekel Jan 26 '12 at 19:14
    
It doesn't preserve symlinks –  ppetraki Mar 6 at 17:14
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A zip file has no directory structure, it just has a bunch of pathnames and their contents. These pathnames should be relative to an imaginary root folder (the ZIP file itself). "../" prefixes have no defined meaning in a zip file.

Consider you have a file, a and you want to store it in a "folder" inside a zip file. All you have to do is prefix the filename with a folder name when storing the file in the zipfile:

zipi= zipfile.ZipInfo()
zipi.filename= "folder/a" # this is what you want
zipi.date_time= time.localtime(os.path.getmtime("a"))[:6]
zipi.compress_type= zipfile.ZIP_DEFLATED
filedata= open("a", "rb").read()

zipfile1.writestr(zipi, filedata) # zipfile1 is a zipfile.ZipFile instance

I don't know of any ZIP implementations allowing the inclusion of an empty folder in a ZIP file. I can think of a workaround (storing a dummy filename in the zip "folder" which should be ignored on extraction), but not portable across implementations.

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2  
I see. So if I got this right, a zip file doesnt contain any folders. But if a file has a path separator in its name, its shown as a file within a folder in most archive managers? And will be created that way when the archive is unpacked? –  mizipzor Jan 19 '09 at 22:09
1  
Correct. It's hard to do, since the archive tools correctly escape path separators in file names. You python program, however, can force in unescaped names. –  S.Lott Jan 19 '09 at 22:25
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import zipfile
import os


class ZipUtilities:

    def toZip(self, file, filename):
    	zip_file = zipfile.ZipFile(filename, 'w')
    	if os.path.isfile(file):
            		zip_file.write(file)
        	else:
            		self.addFolderToZip(zip_file, file)
    	zip_file.close()

    def addFolderToZip(self, zip_file, folder): 
    	for file in os.listdir(folder):
    		full_path = os.path.join(folder, file)
    		if os.path.isfile(full_path):
    			print 'File added: ' + str(full_path)
    			zip_file.write(full_path)
    		elif os.path.isdir(full_path):
    			print 'Entering folder: ' + str(full_path)
    			self.addFolderToZip(zip_file, full_path)

def main():
    utilities = ZipUtilities()
    filename = 'TEMP.zip'
    directory = 'TEMP'
    utilities.toZip(directory, filename)

main()

I'm running:

python tozip.py

This is the log:

havok@fireshield:~$ python tozip.py

File added: TEMP/NARF (7ª copia)

Entering folder: TEMP/TEMP2

File added: TEMP/TEMP2/NERF (otra copia)

File added: TEMP/TEMP2/NERF (copia)

File added: TEMP/TEMP2/NARF

File added: TEMP/TEMP2/NARF (copia)

File added: TEMP/TEMP2/NARF (otra copia)

Entering folder: TEMP/TEMP2/TEMP3

File added: TEMP/TEMP2/TEMP3/DOCUMENTO DEL FINAL

File added: TEMP/TEMP2/TEMP3/DOCUMENTO DEL FINAL (copia)

File added: TEMP/TEMP2/NERF

File added: TEMP/NARF (copia) (otra copia)

File added: TEMP/NARF (copia) (copia)

File added: TEMP/NARF (6ª copia)

File added: TEMP/NERF (copia) (otra copia)

File added: TEMP/NERF (4ª copia)

File added: TEMP/NERF (otra copia)

File added: TEMP/NERF (3ª copia)

File added: TEMP/NERF (6ª copia)

File added: TEMP/NERF (copia)

File added: TEMP/NERF (5ª copia)

File added: TEMP/NARF (8ª copia)

File added: TEMP/NARF (3ª copia)

File added: TEMP/NARF (5ª copia)

File added: TEMP/NERF (copia) (3ª copia)

File added: TEMP/NARF

File added: TEMP/NERF (copia) (copia)

File added: TEMP/NERF (8ª copia)

File added: TEMP/NERF (7ª copia)

File added: TEMP/NARF (copia)

File added: TEMP/NARF (otra copia)

File added: TEMP/NARF (4ª copia)

File added: TEMP/NERF

File added: TEMP/NARF (copia) (3ª copia)

As you can see, it work, the archive is ok too. This is a recursive function that can zip an entire folder. The only problem is that it doesn't create a empty folder.

Cheers.

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Below is some code for zipping an entire directory into a zipfile.

This seems to work OK creating zip files on both windows and linux. The output files seem to extract properly on windows (built-in Compressed Folders feature, WinZip, and 7-Zip) and linux. However, empty directories in a zip file appear to be a thorny issue. The solution below seems to work but the output of "zipinfo" on linux is concerning. Also the directory permissions are not set correctly for empty directories in the zip archive. This appears to require some more in depth research.

I got some info from this velocity reviews thread and this python mailing list thread.

Note that this function is designed to put files in the zip archive with either no parent directory or just one parent directory, so it will trim any leading directories in the filesystem paths and not include them inside the zip archive paths. This is generally the case when you want to just take a directory and make it into a zip file that can be extracted in different locations.

Keyword arguments:

dirPath -- string path to the directory to archive. This is the only required argument. It can be absolute or relative, but only one or zero leading directories will be included in the zip archive.

zipFilePath -- string path to the output zip file. This can be an absolute or relative path. If the zip file already exists, it will be updated. If not, it will be created. If you want to replace it from scratch, delete it prior to calling this function. (default is computed as dirPath + ".zip")

includeDirInZip -- boolean indicating whether the top level directory should be included in the archive or omitted. (default True)

(Note that StackOverflow seems to be failing to pretty print my python with triple quoted strings, so I just converted my doc strings to the post text here)

#!/usr/bin/python
import os
import zipfile

def zipdir(dirPath=None, zipFilePath=None, includeDirInZip=True):

    if not zipFilePath:
        zipFilePath = dirPath + ".zip"
    if not os.path.isdir(dirPath):
        raise OSError("dirPath argument must point to a directory. "
            "'%s' does not." % dirPath)
    parentDir, dirToZip = os.path.split(dirPath)
    #Little nested function to prepare the proper archive path
    def trimPath(path):
        archivePath = path.replace(parentDir, "", 1)
        if parentDir:
            archivePath = archivePath.replace(os.path.sep, "", 1)
        if not includeDirInZip:
            archivePath = archivePath.replace(dirToZip + os.path.sep, "", 1)
        return os.path.normcase(archivePath)

    outFile = zipfile.ZipFile(zipFilePath, "w",
        compression=zipfile.ZIP_DEFLATED)
    for (archiveDirPath, dirNames, fileNames) in os.walk(dirPath):
        for fileName in fileNames:
            filePath = os.path.join(archiveDirPath, fileName)
            outFile.write(filePath, trimPath(filePath))
        #Make sure we get empty directories as well
        if not fileNames and not dirNames:
            zipInfo = zipfile.ZipInfo(trimPath(archiveDirPath) + "/")
            #some web sites suggest doing
            #zipInfo.external_attr = 16
            #or
            #zipInfo.external_attr = 48
            #Here to allow for inserting an empty directory.  Still TBD/TODO.
            outFile.writestr(zipInfo, "")
    outFile.close()

Here's some sample usages. Note that if your dirPath argument has several leading directories, only the LAST one will be included by default. Pass includeDirInZip=False to omit all leading directories.

zipdir("foo") #Just give it a dir and get a .zip file
zipdir("foo", "foo2.zip") #Get a .zip file with a specific file name
zipdir("foo", "foo3nodir.zip", False) #Omit the top level directory
zipdir("../test1/foo", "foo4nopardirs.zip")
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On my tests, it worked with zipInfo.external_attr = 16 –  Adi Roiban Aug 31 '12 at 10:04
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after adding some imports your code runs fine for me, how do you call the script, maybe you could tell us the folder structure of the '..\packed\bin' directory.

I called your code with the following arguments:

planName='test.zip'
files=['z.py',]
folders=['c:\\temp']
(success,filename)=createZipFile(planName,files,folders)

`

share|improve this answer
    
Calling the code with those arguments would create a test.zip file containing both z.py and every file in c:\temp but no folders. Just a zip with many files. But I found an answer in the related question that seems to do what I want. Going to look more into that one. –  mizipzor Jan 19 '09 at 20:32
    
Yes, maybe you could give an example how to call rhe code, so your error comes up. –  RSabet Jan 19 '09 at 21:27
    
There is no error. The code creates a zip file and all that. The problem lies in that I want folders to be created when the file is unzipped, or the zip file containing folders depending on how you look at it. –  mizipzor Jan 19 '09 at 22:07
    
thanks now i understand ! –  RSabet Jan 19 '09 at 22:10
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here is my function i use to zip a folder:

import os
import os.path
import zipfile

def zip_dir(dirpath, zippath):
    fzip = zipfile.ZipFile(zippath, 'w', zipfile.ZIP_DEFLATED)
    basedir = os.path.dirname(dirpath) + '/' 
    for root, dirs, files in os.walk(dirpath):
        if os.path.basename(root)[0] == '.':
            continue #skip hidden directories        
        dirname = root.replace(basedir, '')
        for f in files:
            if f[-1] == '~' or (f[0] == '.' and f != '.htaccess'):
                #skip backup files and all hidden files except .htaccess
                continue
            fzip.write(root + '/' + f, dirname + '/' + f)
    fzip.close()
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Heres the edited code I ran. Its based on the code above, taken from the mailing list. I added the imports and made a main routine. I also cut out the fiddling with the output filename to make the code shorter.

#!/usr/bin/env python

import os, zipfile, glob, sys

def addFolderToZip(myZipFile,folder):
    folder = folder.encode('ascii') #convert path to ascii for ZipFile Method
    for file in glob.glob(folder+"/*"):
            if os.path.isfile(file):
                print file
                myZipFile.write(file, os.path.basename(file), zipfile.ZIP_DEFLATED)
            elif os.path.isdir(file):
                addFolderToZip(myZipFile,file)

def createZipFile(filename,files,folders):
    myZipFile = zipfile.ZipFile( filename, "w" ) # Open the zip file for writing 
    for file in files:
        file = file.encode('ascii') #convert path to ascii for ZipFile Method
        if os.path.isfile(file):
            (filepath, filename) = os.path.split(file)
            myZipFile.write( file, filename, zipfile.ZIP_DEFLATED )

    for folder in  folders:   
        addFolderToZip(myZipFile,folder)  
    myZipFile.close()
    return (1,filename)

if __name__=="__main__":
    #put everything in sys.argv[1] in out.zip, skip files
    print createZipFile("out.zip", [], sys.argv[1])

At work, on my Windows box, this code ran fine but didnt create any "folders" in the zipfile. At least I recall it did. Now at home, on my Linux box, the zip file created seems to be bad:

$ unzip -l out.zip 
Archive:  out.zip
  End-of-central-directory signature not found.  Either this file is not
  a zipfile, or it constitutes one disk of a multi-part archive.  In the
  latter case the central directory and zipfile comment will be found on
  the last disk(s) of this archive.
unzip:  cannot find zipfile directory in one of out.zip or
        out.zip.zip, and cannot find out.zip.ZIP, period.

I dont know if I accidently broke the code, I think its the same. Crossplatform issues? Either way, its not related to my original question; getting folders in the zip file. Just wanted to post the code I actually ran, not the code I based my code on.

share|improve this answer
    
is this new code? Then it should be a new question. If not update your question with new facts. This doesn't appear to be an answer. –  S.Lott Jan 20 '09 at 3:20
    
sys.argv[1] is a string. You pass it as a folders. When you iterate over a string you get a single letter at a time. –  J.F. Sebastian Jan 20 '09 at 4:27
    
Post new questions as questions, not as answers. –  J.F. Sebastian Jan 20 '09 at 4:30
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Thank you wery much for this useful function! I found it very useful as I was also searching for help. However, maybe it would be useful to change it a little bit so that

basedir = os.path.dirname(dirpath) + '/'

would be

basedir = os.path.dirname(dirpath + '/')

Because found that if I want to zip folder 'Example' which is located at 'C:\folder\path\notWanted\to\zip\Example',

I got in Windows:

dirpath = 'C:\folder\path\notWanted\to\zip\Example'
basedir = 'C:\folder\path\notWanted\to\zip\Example/'
dirname = 'C:\folder\path\notWanted\to\zip\Example\Example\Subfolder_etc'

But I suppose your code should give

dirpath = 'C:\folder\path\notWanted\to\zip\Example'
basedir = 'C:\folder\path\notWanted\to\zip\Example\'
dirname = '\Subfolder_etc'
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If you look at a zip file created with Info-ZIP, you'll see that directories are indeed listed:

$ zip foo.zip -r foo
  adding: foo/ (stored 0%)
  adding: foo/foo.jpg (deflated 84%)
$ less foo.zip
  Archive:  foo.zip
 Length   Method    Size  Cmpr    Date    Time   CRC-32   Name
--------  ------  ------- ---- ---------- ----- --------  ----
       0  Stored        0   0% 2013-08-18 14:32 00000000  foo/
  476320  Defl:N    77941  84% 2013-08-18 14:31 55a52268  foo/foo.jpg
--------          -------  ---                            -------
  476320            77941  84%                            2 files

Notice that the directory entry has zero length and is not compressed. It seems you can achieve the same thing with Python by writing the directory by name, but forcing it to not use compression.

if os.path.isdir(name):
    zf.write(name, arcname=arcname, compress_type=zipfile.ZIP_STORED)
else:
    zf.write(name, arcname=arcname, compress_type=zipfile.ZIP_DEFLATED)

It might be worth making sure arcname ends in a /.

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When you wanna create an empty folder, you can do it like this:

    storage = api.Storage.open("empty_folder.zip","w")
    res = storage.open_resource("hannu//","w")
    storage.close()

Folder not showe in winextractor, but when you extract it it is showed.

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