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Is this a good approach? Is there a more efficient way to do it (without having to trade code readability for efficiency) ?

for root, dirs, files in os.walk(path, topdown=False):
    for name in files:
        if re.match(r'.*\.mp3', name):
            yield os.path.join(root, name) # returns the path of the .mp3 file

EDIT: Conclusion:

If you ignore recursion, the fastest way to do it is by using the glob module. If you want recursion, switching from re.match() to using slices makes it few milliseconds faster.

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from glob import glob; glob("thedir/*.mp3"). This actually uses regexp under the hood. –  doukremt Mar 7 at 16:24
    
@doukremt: this is not a recursive solution, as required by Deneb. –  Jan-Philip Gehrcke Mar 7 at 16:26
    
@Jan-PhilipGehrcke Even though this is not a recursive solution, I will run some benchmarks to see if it actually performs faster than re.match. (Of course, not in a directory containing subdirectories). –  Deneb Mar 7 at 16:28
    
You should first think about which behavior you need, then think about speed. –  Jan-Philip Gehrcke Mar 7 at 16:30
    
@Jan-PhilipGehrcke: Is it so hard to write a two line recursive function to make it work? Seriously... –  doukremt Mar 7 at 16:31

1 Answer 1

up vote 1 down vote accepted

A Python-based recursive directory walker should definitely include os.walk, that is the right choice. However, I would check for the extension using os.path.splitext() instead of using regex. return is not what you want here I guess, it terminates the iteration when hitting the first mp3 file. Replace it with yield. This creates a generator function. Call it from the outside, and you can easily iterate through all mp3 files in your directory tree.

A working solution, test.py:

import os

def mp3gen():
    for root, dirs, files in os.walk('.'):
        for filename in files:
            if os.path.splitext(filename)[1] == ".mp3":
                yield os.path.join(root, filename)

for mp3file in mp3gen():
    print mp3file

Test:

$ mkdir testenv
$ cd testenv
$ mkdir subdir
$ touch test.mp3
$ touch subdir/test2.mp3
$ touch foo.mp4
$ python test.py
./test.mp3
./subdir/test2.mp3

By the way, whatever you do, it is unlikely that the performance of this iteration is the bottleneck in your workflow. If it is, I would actually use the find utility using find . -name "*.mp3", and then pipe its output to your Python script, then read the items from stdin using for line in sys.stdin.

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Is yield generally faster than return in Python? –  Deneb Mar 7 at 16:27
1  
It is not about speed, this is about behavior. Have you actually tried your code? return leaves the current function, the iteration is aborted at this point. You will never be able to list all mp3 files with your return there, just one. –  Jan-Philip Gehrcke Mar 7 at 16:28
    
You're right. I didn't try the code yet, I wrote it with the certainty that it will actually work (I had print(some_func(os.path.join(root, name))) in mind, but then I wrote return ...) –  Deneb Mar 7 at 16:31
1  
I added a working example, to clarify how to make use of the yield here. Hope that helps. –  Jan-Philip Gehrcke Mar 7 at 16:38
1  
Thanks for the nice words, glad to help! –  Jan-Philip Gehrcke Mar 7 at 16:47

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