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Can’t be hard, but I’m having a mental block.

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up vote 98 down vote accepted
import os
os.listdir("path") # returns list
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1  
Jaysus, listdir. Mental block lifted, thank you kindly. – Paul D. Waite May 3 '10 at 16:03

One way:

import os
os.listdir("/home/username/www/")

Another way:

glob.glob("/home/username/www/*")

Examples found here.

The glob.glob method above will not list hidden files.

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Would glob.glob list hidden files (I assume you mean .XYZ files in a Unix file-system context), when used with glob.glob("/home/username/www/.*") ? – Andy Finkenstadt Aug 3 '12 at 17:48
    
Yes I mean files beginning with a dot. The example you gave would work for matching hidden files (and only hidden files). – Trey Hunner Aug 4 '12 at 19:10
    
I just imported glob and used glob.glob(r'c:\users') but it only returned ['c:\\users'] – Musixauce3000 Apr 14 at 19:43
1  
@Musixauce3000: You'll want to do glob.glob(r'c:\users\*') (glob it doesn't actually list directories, but expands asterisks and such which accomplishes a similar task). – Trey Hunner Apr 15 at 7:04

os.walk can be used if you need recursion:

import os
start_path = '.' # current directory
for path,dirs,files in os.walk(start_path):
    for filename in files:
        print os.path.join(path,filename)
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glob.glob or os.listdir will do it.

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import glob ENTER glob.glob(r'c:\users') ENTER only seems to return ['c:\\users']. Why is that? I'd like to use glob.glob because as other users have pointed out, it supposedly returns the contents of a directory while also ignoring hidden files. This is important. – Musixauce3000 Apr 14 at 19:49

The os module handles all that stuff.

os.listdir(path)

Return a list containing the names of the entries in the directory given by path. The list is in arbitrary order. It does not include the special entries '.' and '..' even if they are present in the directory.

Availability: Unix, Windows.

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