137

What is the best way to get a list of all files in a directory, sorted by date [created | modified], using python, on a windows machine?

17 Answers 17

91

Update: to sort dirpath's entries by modification date in Python 3:

import os
from pathlib import Path

paths = sorted(Path(dirpath).iterdir(), key=os.path.getmtime)

(put @Pygirl's answer here for greater visibility)

If you already have a list of filenames files, then to sort it inplace by creation time on Windows:

files.sort(key=os.path.getctime)

The list of files you could get, for example, using glob as shown in @Jay's answer.


old answer Here's a more verbose version of @Greg Hewgill's answer. It is the most conforming to the question requirements. It makes a distinction between creation and modification dates (at least on Windows).

#!/usr/bin/env python
from stat import S_ISREG, ST_CTIME, ST_MODE
import os, sys, time

# path to the directory (relative or absolute)
dirpath = sys.argv[1] if len(sys.argv) == 2 else r'.'

# get all entries in the directory w/ stats
entries = (os.path.join(dirpath, fn) for fn in os.listdir(dirpath))
entries = ((os.stat(path), path) for path in entries)

# leave only regular files, insert creation date
entries = ((stat[ST_CTIME], path)
           for stat, path in entries if S_ISREG(stat[ST_MODE]))
#NOTE: on Windows `ST_CTIME` is a creation date 
#  but on Unix it could be something else
#NOTE: use `ST_MTIME` to sort by a modification date

for cdate, path in sorted(entries):
    print time.ctime(cdate), os.path.basename(path)

Example:

$ python stat_creation_date.py
Thu Feb 11 13:31:07 2009 stat_creation_date.py
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  • 1
    This worked perfectly. I'm trying to compare two directories cdate with each other. Is there a way to compare the seconds between the two cdates? – Federer Jan 26 '12 at 15:25
  • @malcmcmul: cdate is a float number of seconds since Epoch. – jfs Jan 26 '12 at 18:20
  • 4
    This works but the most succinct solution is at stackoverflow.com/a/4500607/68534 – jmoz Jul 23 '15 at 11:12
  • @jmoz: do you mean like this. The solution you've link is wrong: it doesn't filter regular files. Note: my solution calls stat once per dir.entry. – jfs Jul 23 '15 at 14:43
  • Forgive me, link provided by Sabastian is even more succinct! Thank you. – jmoz Jul 24 '15 at 14:22
153

I've done this in the past for a Python script to determine the last updated files in a directory:

import glob
import os

search_dir = "/mydir/"
# remove anything from the list that is not a file (directories, symlinks)
# thanks to J.F. Sebastion for pointing out that the requirement was a list 
# of files (presumably not including directories)  
files = list(filter(os.path.isfile, glob.glob(search_dir + "*")))
files.sort(key=lambda x: os.path.getmtime(x))

That should do what you're looking for based on file mtime.

EDIT: Note that you can also use os.listdir() in place of glob.glob() if desired - the reason I used glob in my original code was that I was wanting to use glob to only search for files with a particular set of file extensions, which glob() was better suited to. To use listdir here's what it would look like:

import os

search_dir = "/mydir/"
os.chdir(search_dir)
files = filter(os.path.isfile, os.listdir(search_dir))
files = [os.path.join(search_dir, f) for f in files] # add path to each file
files.sort(key=lambda x: os.path.getmtime(x))
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  • glob() is nice, but keep in mind that it skips files starting with a period. *nix systems treat such files as hidden (thus omitting them from listings), but in Windows they are normal files. – efotinis Oct 3 '08 at 19:31
  • These solutions don't exclude dirs from list. – Constantin Oct 3 '08 at 21:00
  • Your os.listdir solution is missing the os.path.join: files.sort(lambda x,y: cmp(os.path.getmtime(os.path.join(search_dir,x)), os.path.getmtime(os.path.join(search_dir,y)))) – Peter Hoffmann Oct 4 '08 at 2:56
  • files.sort(key=lambda fn: os.path.getmtime(os.path.join(search_dir, fn))) – jfs Feb 11 '09 at 20:40
  • 26
    A mere files.sort(key=os.path.getmtime) should work (without lambda). – jfs Dec 3 '09 at 19:01
32

There is an os.path.getmtime function that gives the number of seconds since the epoch and should be faster than os.stat.

import os 

os.chdir(directory)
sorted(filter(os.path.isfile, os.listdir('.')), key=os.path.getmtime)
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23

Here's my version:

def getfiles(dirpath):
    a = [s for s in os.listdir(dirpath)
         if os.path.isfile(os.path.join(dirpath, s))]
    a.sort(key=lambda s: os.path.getmtime(os.path.join(dirpath, s)))
    return a

First, we build a list of the file names. isfile() is used to skip directories; it can be omitted if directories should be included. Then, we sort the list in-place, using the modify date as the key.

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  • It sorted it by oldest first to newest. When I wanted the 5 newest files I had to do the following a[-5:] – Daniel Butler Apr 10 '19 at 21:37
20

Here's a one-liner:

import os
import time
from pprint import pprint

pprint([(x[0], time.ctime(x[1].st_ctime)) for x in sorted([(fn, os.stat(fn)) for fn in os.listdir(".")], key = lambda x: x[1].st_ctime)])

This calls os.listdir() to get a list of the filenames, then calls os.stat() for each one to get the creation time, then sorts against the creation time.

Note that this method only calls os.stat() once for each file, which will be more efficient than calling it for each comparison in a sort.

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  • that's hardly pythonic, though it does solve the job (disclaimer: didn't test the code). – Adriano Varoli Piazza Oct 3 '08 at 19:17
  • This solution doesn't exclude dirs from list. – Constantin Oct 3 '08 at 21:02
  • @Constantin: that's true, but a quick [... if stat.S_ISREG(x)] would handle that. – Greg Hewgill Oct 4 '08 at 3:03
16

Without changing directory:

import os    

path = '/path/to/files/'
name_list = os.listdir(path)
full_list = [os.path.join(path,i) for i in name_list]
time_sorted_list = sorted(full_list, key=os.path.getmtime)

print time_sorted_list

# if you want just the filenames sorted, simply remove the dir from each
sorted_filename_list = [ os.path.basename(i) for i in time_sorted_list]
print sorted_filename_list
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15

In python 3.5+

from pathlib import Path
sorted(Path('.').iterdir(), key=lambda f: f.stat().st_mtime)
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  • 4
    for creation date, use f.stat().st_ctime instead. – alanjds Aug 7 '19 at 19:12
11

Here's my answer using glob without filter if you want to read files with a certain extension in date order (Python 3).

dataset_path='/mydir/'   
files = glob.glob(dataset_path+"/morepath/*.extension")   
files.sort(key=os.path.getmtime)
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7
from pathlib import Path
import os

sorted(Path('./').iterdir(), key=lambda t: t.stat().st_mtime)

or

sorted(Path('./').iterdir(), key=os.path.getmtime)

or

sorted(os.scandir('./'), key=lambda t: t.stat().st_mtime)

where m time is modified time.

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5
# *** the shortest and best way ***
# getmtime --> sort by modified time
# getctime --> sort by created time

import glob,os

lst_files = glob.glob("*.txt")
lst_files.sort(key=os.path.getmtime)
print("\n".join(lst_files))
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  • please provide context – Claire Sep 7 '19 at 6:36
  • "best" is subjective. Your answer would be better if you explained why you think it's the best way. – Bryan Oakley Nov 11 '19 at 17:13
  • If you want "the best", you certainly don't use glob, as it's really slow. – user136036 Feb 5 at 1:00
4
sorted(filter(os.path.isfile, os.listdir('.')), 
    key=lambda p: os.stat(p).st_mtime)

You could use os.walk('.').next()[-1] instead of filtering with os.path.isfile, but that leaves dead symlinks in the list, and os.stat will fail on them.

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1

this is a basic step for learn:

import os, stat, sys
import time

dirpath = sys.argv[1] if len(sys.argv) == 2 else r'.'

listdir = os.listdir(dirpath)

for i in listdir:
    os.chdir(dirpath)
    data_001 = os.path.realpath(i)
    listdir_stat1 = os.stat(data_001)
    listdir_stat2 = ((os.stat(data_001), data_001))
    print time.ctime(listdir_stat1.st_ctime), data_001
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1

Alex Coventry's answer will produce an exception if the file is a symlink to an unexistent file, the following code corrects that answer:

import time
import datetime
sorted(filter(os.path.isfile, os.listdir('.')), 
    key=lambda p: os.path.exists(p) and os.stat(p).st_mtime or time.mktime(datetime.now().timetuple())

When the file doesn't exist, now() is used, and the symlink will go at the very end of the list.

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0

Here is a simple couple lines that looks for extention as well as provides a sort option

def get_sorted_files(src_dir, regex_ext='*', sort_reverse=False): 
    files_to_evaluate = [os.path.join(src_dir, f) for f in os.listdir(src_dir) if re.search(r'.*\.({})$'.format(regex_ext), f)]
    files_to_evaluate.sort(key=os.path.getmtime, reverse=sort_reverse)
    return files_to_evaluate
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0

For completeness with os.scandir (2x faster over pathlib):

import os
sorted(os.scandir('/tmp/test'), key=lambda d: d.stat().st_mtime)
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0

This was my version:

import os

folder_path = r'D:\Movies\extra\new\dramas' # your path
os.chdir(folder_path) # make the path active
x = sorted(os.listdir(), key=os.path.getctime)  # sorted using creation time

folder = 0

for folder in range(len(x)):
    print(x[folder]) # print all the foldername inside the folder_path
    folder = +1
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  • In my code the files are sorted as oldest to newest. To get newest filenames or folders first, you need to add reverse = True in the file list (in my case it was x). so, x = sorted(os.listdir(), key=os.path.getctime, reverse=True) – haqrafiul Jun 3 at 12:18
-6

Maybe you should use shell commands. In Unix/Linux, find piped with sort will probably be able to do what you want.

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