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I want to be able to list only the directories inside some folder. This means I don't want filenames listed, nor do I want additional sub-folders.

Let's see if an example helps. In the current directory we have:

>>> os.listdir(os.getcwd())
['cx_Oracle-doc', 'DLLs', 'Doc', 'include', 'Lib', 'libs', 'LICENSE.txt', 'mod_p
ython-wininst.log', 'NEWS.txt', 'pymssql-wininst.log', 'python.exe', 'pythonw.ex
e', 'README.txt', 'Removemod_python.exe', 'Removepymssql.exe', 'Scripts', 'tcl',
 'Tools', 'w9xpopen.exe']

However, I don't want filenames listed. Nor do I want sub-folders such as \Lib\curses. Essentially what I want works with the following:

>>> for root, dirnames, filenames in os.walk('.'):
...     print dirnames
...     break
...
['cx_Oracle-doc', 'DLLs', 'Doc', 'include', 'Lib', 'libs', 'Scripts', 'tcl', 'Tools']

However, I'm wondering if there's a simpler way of achieving the same results. I get the impression that using os.walk only to return the top level is inefficient/too much.

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10 Answers 10

up vote 47 down vote accepted

Filter the result using os.path.isdir() (and use os.path.join() to get the real path):

>>> [ name for name in os.listdir(thedir) if os.path.isdir(os.path.join(thedir, name)) ]
['ctypes', 'distutils', 'encodings', 'lib-tk', 'config', 'idlelib', 'xml', 'bsddb', 'hotshot', 'logging', 'doc', 'test', 'compiler', 'curses', 'site-packages', 'email', 'sqlite3', 'lib-dynload', 'wsgiref', 'plat-linux2', 'plat-mac']
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5  
This take a lot of processing vs very simple os.walk().next()[1] –  V3ss0n Aug 13 '12 at 19:47
os.walk('.').next()[1]
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7  
A little more description on this is that this is a generator, it won't be walking the other dirs unless you tell it to. So .next()[1] does in one line what all the list comprehensions do. I'd probably do something like DIRNAMES=1 and then next()[DIRNAMES] to make it easier to understand for future code maintainers. –  Mark0978 Nov 15 '12 at 15:49
    
+1 amazing solution. To specify a directory to browse, use: os.walk( os.path.join(mypath,'.')).next()[1] –  Daniel Reis Dec 4 '12 at 11:53
6  
for python v3: next(os.walk('.'))[1] –  André Guilherme Dec 20 '12 at 22:14
    
if your going to do more then text processing; ie processing in the actual folders then full paths might be needed: sorted( [os.path.join(os.getcwd(), item) for item in os.walk(os.curdir).next()[1]] ) –  DevPlayer Jan 3 '13 at 23:35

Filter the list using os.path.isdir to detect directories.

filter(os.path.isdir, os.listdir(os.getcwd()))
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2  
I think this is by far the best combination of readability and conciseness in any of these answers. –  vergenzt Aug 29 '12 at 13:56
2  
This didn't work. My guess is that os.listdir returns a file/folder name, passed on to os.path.isdir, but the latter needs a full path. –  Daniel Reis Dec 4 '12 at 11:50
directories=[d for d in os.listdir(os.getcwd()) if os.path.isdir(d)]
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2  
This can be shortened to filter (os.path.isdir, os.listdir (os.getcwd ()) –  John Millikin Sep 26 '08 at 20:20
    
I think the list comprehension is more readable. –  nosklo Sep 26 '08 at 22:21
2  
Does anyone have any information on whether filter or a list comprehension is faster? Otherwise its just a subjective argument. This of course assumes there's 10 million directories in the cwd and performance is an issue. –  Mark Roddy Sep 26 '08 at 23:12

Note that, instead of doing os.listdir(os.getcwd()), it's preferable to do os.listdir(os.path.curdir). One less function call, and it's as portable.

So, to complete the answer, to get a list of directories in a folder:

def listdirs(folder):
    return [d for d in os.listdir(folder) if os.path.isdir(os.path.join(folder, d))]

If you prefer full pathnames, then use this function:

def listdirs(folder):
    return [
        d for d in (os.path.join(folder, d1) for d1 in os.listdir(folder))
        if os.path.isdir(d)
    ]
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Just to add that using os.listdir() does not "take a lot of processing vs very simple os.walk().next()[1]". This is because os.walk() uses os.listdir() internally. In fact if you test them together:

>>>> import timeit
>>>> timeit.timeit("os.walk('.').next()[1]", "import os", number=10000)
1.1215229034423828
>>>> timeit.timeit("[ name for name in os.listdir('.') if os.path.isdir(os.path.join('.', name)) ]", "import os", number=10000)
1.0592019557952881

The filtering of os.listdir() is very slightly faster.

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being a newbie here i can't yet directly comment but here is a small correction i'd like to add to the following part of ΤΖΩΤΖΙΟΥ's answer :

If you prefer full pathnames, then use this function:

def listdirs(folder):  
  return [
    d for d in (os.path.join(folder, d1) for d1 in os.listdir(folder))
    if os.path.isdir(d)
]

for those still on python < 2.4: the inner construct needs to be a list instead of a tuple and therefore should read like this:

def listdirs(folder):  
  return [
    d for d in [os.path.join(folder, d1) for d1 in os.listdir(folder)]
    if os.path.isdir(d)
  ]

otherwise one gets a syntax error.

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i know its been a while, but this first example really helped me. –  Inbar Rose Aug 2 '12 at 9:24
1  
You get a syntax error because your version doesn't support generator expressions. These were introduced in Python 2.4 whereas list comprehensions have been available since Python 2.0. –  awatts Aug 21 '13 at 10:18
    
@awatts finally solved an old mystery (to me), thanks! –  antiplex Aug 23 '13 at 13:22
[x for x in os.listdir(somedir) if os.path.isdir(os.path.join(somedir, x))]
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For a list of full path names I prefer this version to the other solutions here:

def listdirs(dir):
    return [os.path.join(os.path.join(dir, x)) for x in os.listdir(dir) 
        if os.path.isdir(os.path.join(dir, x))]
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Like so?

>>> [path for path in os.listdir(os.getcwd()) if os.path.isdir(path)]

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