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How do I see if a file exists or not, without using the try statement?

  • 3
    Why would you want to avoid the exceptions in Python? They are the idiomatic way to do things. – Raúl Salinas-Monteagudo Mar 27 at 14:39

38 Answers 38

9

You can use the following open method to check if a file exists + readable:

open(inputFile, 'r')
  • Just make sure you remember to close the file afterwards! – Zizouz212 Feb 5 '15 at 3:27
8
import os
path = /path/to/dir

root,dirs,files = os.walk(path).next()
if myfile in files:
   print "yes it exists"

This is helpful when checking for several files. Or you want to do a set intersection/ subtraction with an existing list.

  • 2
    This is wrong on two counts: (1) os.walk find all files under a directory tree -- if the user wants to check for ./FILE, it's unlikely he'd want to treat ./some/sub/folder/FILE as a match, which your solution does; and (2) your solution is very inefficient compared to a simple os.path.isfile() call in the case where there are many files below the current directory. In the case where no matching filename-without-path exists within the tree, your code will enumerate every single file in the tree before returning false. – Chris Johnson Jun 13 '17 at 22:10
7

To check if a file exists,

from sys import argv

from os.path import exists
script, filename = argv
target = open(filename)
print "file exists: %r" % exists(filename)
  • 6
    Exists doesn't differentiate between a file and a directory. os.path.isfile is a better way of checking whether file exists. – Pavel Chernikov Aug 23 '15 at 2:12
5

You can use os.listdir to check if a file is in a certain directory.

import os
if 'file.ext' in os.listdir('dirpath'):
    #code
  • 3
    won't work in windows since filesystem isn't case sensitive. And very uneffective because it scans the whole directory. – Jean-François Fabre Jan 7 '17 at 12:24
4
import os

# for testing purpose args defaulted to current folder & file. 
# returns True if file found
def file_exists(FOLDER_PATH='../', FILE_NAME=__file__):
    return os.path.isdir(FOLDER_PATH) \
        and os.path.isfile(os.path.join(FOLDER_PATH, FILE_NAME))

Basically a folder check, then a file check with proper directory separator using os.path.join.

3

You should definitely use this one.

from os.path import exists

if exists("file") == True:
    print "File exists."
elif exists("file") == False:
    print "File doesn't exist."
  • Upvoted due to clear intent to help the OP. I disagree with coding style but that is no reason to downvote. Also, this example is not really self contained since " File "C:\Users****\Desktop\datastore.py", line 4 print "File exists." ^ SyntaxError: invalid syntax " – Dmitry Apr 27 '13 at 13:21
  • 17
    This has a race condition due to the repeat of the exists test. If the file is created after if but before elif, neither branch will be taken. It would be better to simply change that to else to at least make the code deterministic. – tripleee Aug 22 '13 at 6:45
  • 9
    This answer is wrong. os.path.exists returns true for things that aren't files, such as directories. This gives false positives. See the other answers that recommend os.path.isfile. – Chris Johnson Aug 3 '15 at 15:10
0

It isn't needed probably but if it is, here's some code

import os

def file_exists(path, filename):
    for file_or_folder in os.listdir(path):
        if file_or_folder == filename:
            return True
    return False
-5

In this case you can check if the file name exist in listdir or not. If not, then simply the file does not exist.

import os
filename = 'D:\\Python\\Python27\\prz\\passwords\\alpa.txt'
li = filename.split('\\')
st = ''
for i in range(0, len(li)-1):
    st = st + li[i] + '\\'
dirlist = os.listdir(st)
if(li[len(li)-1] in dirlist):
    fp = open(filename, 'r')
else:
    print "FILE NOT FOUND"

This works perfect.

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