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Using zip file, I indicate files locate within an other folder for example: './data/2003-2007/metropolis/Matrix_0_1_0.csv'

My problem is that, when I extract it, the files are found in ./data/2003-2007/metropolis/Matrix_0_1_0.csv, while I would like it to be extract in ./

Here is my code:

def zip_files(src, dst):
    zip_ = zipfile.ZipFile(dst, 'w')

    print src, dst

    for src_ in src:
        zip_.write(src_, os.path.relpath(src_, './'), compress_type = zipfile.ZIP_DEFLATED)

    zip_.close()

Here is the print of src and dst:

    ['./data/2003-2007/metropolis/Matrix_0_1_0.csv', './data/2003-2007/metropolis/Matrix_0_1_1.csv'] ./data/2003-2007/metropolis/csv.zip
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See stackoverflow.com/questions/4917284/… – devnull May 29 '13 at 8:53
    
Thanks but, it doesn't seem to be linked. He is trying to extract, I'm trying to compress. He doesn't use ZipFile.write() – Touki May 29 '13 at 8:55
    
For writing without preserving the directory structure, see stackoverflow.com/questions/7007868/… – devnull May 29 '13 at 8:57
    
Yep. I had read it, but I didn't get it clearly – Touki May 29 '13 at 9:26

As shown in: Python: Getting files into an archive without the directory?

The solution is:

     ''' 
    zip_file:
        @src: Iterable object containing one or more element
        @dst: filename (path/filename if needed)
        @arcname: Iterable object containing the names we want to give to the elements in the archive (has to correspond to src) 
'''
def zip_files(src, dst, arcname=None):
    zip_ = zipfile.ZipFile(dst, 'w')

    print src, dst
    for i in range(len(src)):
        if arcname is None:
            zip_.write(src[i], os.path.basename(src[i]), compress_type = zipfile.ZIP_DEFLATED)
        else:
            zip_.write(src[i], arcname[i], compress_type = zipfile.ZIP_DEFLATED)

    zip_.close()
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