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I have a zip file with a folder in it, like this:

some.zip/
    some_folder/
         some.xml
         ...

I am using the zipfile library. What I want is to open only some.xml file, but I don't now the some_folder name. My solution looks like this:

    def get_xml(zip_file):
        for filename in zip_file.namelist():
            if filename.endswith('some.xml'):
                return zip_file.open(filename)

I would like to know if there is a better solution than to scan the entire list.

share|improve this question
1  
What have you tried so far? What didn't work? – Martijn Pieters Aug 2 '13 at 11:40
    
I was thinking about using ZipFile.namelist(), but I don't want to iterate over the entire list. – Alexander Zhukov Aug 2 '13 at 11:42
    
You'll have to; only by listing all filenames can you detect the folder names used. – Martijn Pieters Aug 2 '13 at 11:46
up vote 5 down vote accepted

This prints the list of directories inside the test.zip file:

from zipfile import ZipFile


with ZipFile('test.zip', 'r') as f:
    directories = [item for item in f.namelist() if item.endswith('/')]
    print directories

If you know that there is only one directory inside, just take the first item: directories[0].

Hope that helps.

share|improve this answer
    
There are no entries that end with a slash. Ever. Because there are no directory entries. – Martijn Pieters Aug 2 '13 at 11:45
    
@MartijnPieters That is not true. ZipFile exposes directory entries as well. For a ZIP containing files x/y and x/z/w, the expression [i.filename for i in z.infolist()] evaluates to ['x/', 'x/y', 'x/z/', 'x/z/w']. – user4815162342 Aug 2 '13 at 11:46
    
@MartijnPieters I've tested the code before posting - it works. – alecxe Aug 2 '13 at 11:47
    
You are correct, I am wrong. Mea Culpa. The zip spec is.. unclear on the issue and entries for folders are indeed made. – Martijn Pieters Aug 2 '13 at 11:49

Do you want to get directory that containing some.xml?

import os
import zipfile

with zipfile.ZipFile('a.zip', 'r') as zf:
    for name in zf.namelist():
        if os.path.basename(name) == 'some.xml':
            print os.path.dirname(name)
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