open() gives FileNotFoundError/IOError: Errno 2 No such file or directory
- Make sure the file exists: use
os.listdir()
to see the list of files in the current working directory - Make sure you're in the directory you think you're in with
os.getcwd()
(if you launch your code from an IDE, you may well be in a different directory) - You can then either:
- Call
os.chdir(dir)
,dir
being the folder where the file is located, then open the file with just its name like you were doing. - Specify an absolute path to the file in your
open
call.
- Call
- Remember to use a raw string if your path uses backslashes, like
so:
dir = r'C:\Python32'
- If you don't use raw-string, you have to escape every backslash:
'C:\\User\\Bob\\...'
- Forward-slashes also work on Windows
'C:/Python32'
and do not need to be escaped.
- If you don't use raw-string, you have to escape every backslash:
Let me clarify how Python finds files:
- An absolute path is a path that starts with your computer's root directory, for example
C:\Python\scripts
if you're on Windows. - A relative path is a path that does not start with your computer's root directory, and is instead relative to something called the working directory. You can view Python's current working directory by calling
os.getcwd()
.
If you try to do open('sortedLists.yaml')
, Python will see that you are passing it a relative path, so it will search for the file inside the current working directory.
Calling os.chdir()
will change the current working directory.
Example: Let's say file.txt
is found in C:\Folder
.
To open it, you can do:
os.chdir(r'C:\Folder')
open('file.txt') # relative path, looks inside the current working directory
or
open(r'C:\Folder\file.txt') # absolute path
Most likely, the problem is that you're using a relative file path to open the file, but the current working directory isn't set to what you think it is.
It's a common misconception that relative paths are relative to the location of the python script, but this is untrue. Relative file paths are always relative to the current working directory, and the current working directory doesn't have to be the location of your python script.
You have three options:
-
Use an absolute path to open the file:
file = open(r'C:\path\to\your\file.yaml')
-
Generate the path to the file relative to your python script:
from pathlib import Path script_location = Path(__file__).absolute().parent file_location = script_location / 'file.yaml' file = file_location.open()
(See also: How do I get the path and name of the file that is currently executing?)
-
Change the current working directory before opening the file:
import os os.chdir(r'C:\path\to\your\file') file = open('file.yaml')
Other common mistakes that could cause a "file not found" error include:
-
Accidentally using escape sequences in a file path:
path = 'C:\Users\newton\file.yaml' # Incorrect! The '\n' in 'Users\newton' is a line break character!
To avoid making this mistake, remember to use raw string literals for file paths:
path = r'C:\Users\newton\file.yaml' # Correct!
(See also: Windows path in Python)
-
Forgetting that Windows doesn't display file extensions:
Since Windows doesn't display known file extensions, sometimes when you think your file is named
file.yaml
, it's actually namedfile.yaml.yaml
. Double-check your file's extension.
The file may be existing but may have a different path. Try writing the absolute path for the file.
Try os.listdir()
function to check that atleast python sees the file.
Try it like this:
file1 = open(r'Drive:\Dir\recentlyUpdated.yaml')
Possibly, you closed the 'file1'.
Just use 'w' flag, that create new file:
file1 = open('recentlyUpdated.yaml', 'w')
mode is an optional string that specifies the mode in which the file is opened. It defaults to 'r' which means open for reading in text mode. Other common values are 'w' for writing (truncating the file if it already exists)...
(see also https://docs.python.org/3/library/functions.html?highlight=open#open)
If is VSCode see the workspace. If you are in other workspace this error can rise