20

I'm trying to create a utility class for traversing all the files in a directory, including those within subdirectories and sub-subdirectories. I tried to use a generator because generators are cool; however, I hit a snag.


def grab_files(directory):
    for name in os.listdir(directory):
        full_path = os.path.join(directory, name)
        if os.path.isdir(full_path):
            yield grab_files(full_path)
        elif os.path.isfile(full_path):
            yield full_path
        else:
            print('Unidentified name %s. It could be a symbolic link' % full_path)

When the generator reaches a directory, it simply yields the memory location of the new generator; it doesn't give me the contents of the directory.

How can I make the generator yield the contents of the directory instead of a new generator?

If there's already a simple library function to recursively list all the files in a directory structure, tell me about it. I don't intend to replicate a library function.

52

Why reinvent the wheel when you can use os.walk

import os
for root, dirs, files in os.walk(path):
    for name in files:
        print os.path.join(root, name)

os.walk is a generator that yields the file names in a directory tree by walking the tree either top-down or bottom-up

  • 44
    But then again, by reinventing the wheel we could os.cycle rather than os.walk... – mjv Nov 9 '09 at 1:15
  • 8
    I think it's a joke... "reinventing the wheel"? Walking vs. cycling? Pretty good.. :) – Ned Batchelder Nov 9 '09 at 1:18
  • Yes, Ned, a joke. The suggestion to os.walk() is the way-to-go, unless one is merely trying to learn about generators and uses directory traversal as a practical exercise for it. – mjv Nov 9 '09 at 1:36
  • @Ned: I literally just facepalmed. – Jed Smith Nov 9 '09 at 2:10
  • 6
    os.walk might be a generator, but its granularity is a directory level and the files it returns is a list. If you have a directory with millions of files in it, good luck using os.walk. At least this is true in 2.7. – woot May 17 '15 at 15:05
10

I agree with the os.walk solution

For pure pedantic purpose, try iterate over the generator object, instead of returning it directly:


def grab_files(directory):
    for name in os.listdir(directory):
        full_path = os.path.join(directory, name)
        if os.path.isdir(full_path):
            for entry in grab_files(full_path):
                yield entry
        elif os.path.isfile(full_path):
            yield full_path
        else:
            print('Unidentified name %s. It could be a symbolic link' % full_path)
  • Thanks for the example. I figured out this solution about five minutes after I had posted the question. XD – Evan Kroske Nov 9 '09 at 21:07
6

Starting with Python 3.4, you can use the Pathlib module:

In [48]: def alliter(p):
   ....:     yield p
   ....:     for sub in p.iterdir():
   ....:         if sub.is_dir():
   ....:             yield from alliter(sub)
   ....:         else:
   ....:             yield sub
   ....:             

In [49]: g = alliter(pathlib.Path("."))                                                                                                                                                              

In [50]: [next(g) for _ in range(10)]
Out[50]: 
[PosixPath('.'),
 PosixPath('.pypirc'),
 PosixPath('.python_history'),
 PosixPath('lshw'),
 PosixPath('.gstreamer-0.10'),
 PosixPath('.gstreamer-0.10/registry.x86_64.bin'),
 PosixPath('.gconf'),
 PosixPath('.gconf/apps'),
 PosixPath('.gconf/apps/gnome-terminal'),
 PosixPath('.gconf/apps/gnome-terminal/%gconf.xml')]

This is essential the object-oriented version of sjthebats answer. Note that the Path.glob ** pattern returns only directories!

  • For people dealing with many files in directories, I believe this is the only truly iterative solution on this answer and possibly the only high-level way in the python(3) standard library. It should probably be added as an option to iterdir(). – KobeJohn Feb 1 '17 at 4:21
  • @KobeJohn Isn't yield from alliter(sub) within a generator alliter rather recursive than iterative? – gerrit Jun 29 '17 at 13:05
  • You are right. What I mean is that it gives you results without first doing a full stat on all the files in a directory. So even when you have a large number of files it can generate results immediately. – KobeJohn Jun 30 '17 at 5:06
5

As of Python 3.4, you can use the glob() method from the built-in pathlib module:

import pathlib
p = pathlib.Path('.')
list(p.glob('**/*'))    # lists all files recursively
  • 1
    Just to confirm, type(p.glob('**/*')) indeed returns generator. – Bram Vanroy Sep 27 '18 at 13:56
0

You can use path.py. Unfortunately the author's website is no longer around, but you can still download the code from PyPI. This library is a wrapper around path functions in the os module.

path.py provides a walkfiles() method which returns a generator iterating recursively over all files in the directory:

>>> from path import path
>>> print path.walkfiles.__doc__
 D.walkfiles() -> iterator over files in D, recursively.

        The optional argument, pattern, limits the results to files
        with names that match the pattern.  For example,
        mydir.walkfiles('*.tmp') yields only files with the .tmp
        extension.

>>> p = path('/tmp')
>>> p.walkfiles()
<generator object walkfiles at 0x8ca75a4>
>>> 
0

addendum to the answer of gerrit. I wanted to make something more flexible.

list all files in pth matching a given pattern, can also list dirs if only_file is False

from pathlib import Path

def walk(pth=Path('.'), pattern='*', only_file=True) :
    """ list all files in pth matching a given pattern, can also list dirs if only_file is False """
    if pth.match(pattern) and not (only_file and pth.is_dir()) :
        yield pth
    for sub in pth.iterdir():
        if sub.is_dir():
            yield from walk(sub, pattern, only_file)
        else:
            if sub.match(pattern) :
                yield sub

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