602

Consider the following Python code:

import os
print os.getcwd()

I use os.getcwd() to get the script file's directory location. When I run the script from the command line it gives me the correct path whereas when I run it from a script run by code in a Django view it prints /.

How can I get the path to the script from within a script run by a Django view?

UPDATE:
Summing up the answers thus far - os.getcwd() and os.path.abspath() both give the current working directory which may or may not be the directory where the script resides. In my web host setup __file__ gives only the filename without the path.

Isn't there any way in Python to (always) be able to receive the path in which the script resides?

6
  • 2
    You should read that linked article more closely. It never suggests using getcwd will tell you your script's location. It suggests argv[0], dirname, and abspath. Feb 8 '11 at 15:27
  • @Rob - "print sys.argv[0]" on my web host only gives the filename, without the path Feb 8 '11 at 15:57
  • @Rob - here's an excerpt from the linked article "os.getcwd() returns the current working directory." Feb 8 '11 at 19:08
  • 7
    Yes, but the current working directory has absolutely no relation to the directory your script lives in. Compare with os.chdir, which sets the current working directory; it does not move your script file to a new location on the hard drive. The initial working directory might be the same as the directory your script lives in, but not always; the article even demonstrates that. Feb 8 '11 at 20:12
  • 2
    Note that __file__ will return the filename of the scripts context. Caveat emptor if you're calling out to an external script from your __main__ - you might get a different response than you expected.
    – user559633
    Oct 15 '12 at 16:22

12 Answers 12

947

You need to call os.path.realpath on __file__, so that when __file__ is a filename without the path you still get the dir path:

import os
print(os.path.dirname(os.path.realpath(__file__)))
12
  • 51
    This won't work if you're running from inside an interpreter, since you'll get NameError: name '__file__' is not defined Feb 26 '14 at 21:01
  • 43
    I think that is expected behaviour as, that python command does not exist within a file but inside a string which you pass to the interpreter
    – Har
    Apr 14 '15 at 8:15
  • 12
    @EhteshChoudhury That's because __file__ is a module variable that is only created when a script is being executed -> This variable represents the location of the script. An interpreter isn't being run from a file, so it can't have such a variable.
    – Zizouz212
    Jan 21 '16 at 2:52
  • 5
    Mike, how is it wrong? os.path.dirname(os.path.realpath(__file__)) == sys.path[0] They're identical.
    – bobpaul
    Apr 22 '16 at 16:51
  • 5
    This solution gives the directory of the current file. If this is a module in a package (i.e., script's directory's subdirectory), it is not the same as the script's directory. If the latter is needed, use sys.path[0] instead. To try it, make t/foo.py printing both values and bar.py that simply contains import t.foo. Mar 26 '19 at 21:09
190

Try sys.path[0].

To quote from the Python docs:

As initialized upon program startup, the first item of this list, path[0], is the directory containing the script that was used to invoke the Python interpreter. If the script directory is not available (e.g. if the interpreter is invoked interactively or if the script is read from standard input), path[0] is the empty string, which directs Python to search modules in the current directory first. Notice that the script directory is inserted before the entries inserted as a result of PYTHONPATH.

Source: https://docs.python.org/library/sys.html#sys.path

5
  • 14
    @thang Usually, it would be, but this returns the filepath of the script that is running, not the directory of the called script. In other words, if I call script /baz.py from /foo/bar.py, this solution will return /foo instead of the desired /.
    – Edwin
    Apr 11 '17 at 4:12
  • 1
    I encountered one problem with this solution. I'm building a large program named foo where the main script is called __main__.py and resides in the foo directory. I can either invoke my program by running python foo/__main__.py or simply python foo. With the former, your solution works, but with the latter, I end up with the relative path instead of the absolute path. Wrapping your solution in os.path.realpath() solved this problem. May 29 '18 at 15:43
  • They sys.argv[0] failed in one case for me: When wrapping my scripts into an App on MacOS with py2app, the sys.argv[0] becomes a hard-coded my.app/Contents/Resources/lib/python36.zip, when all my supporting scripts are in my.app/Contents/Resources. It could be a py2app bug but it proves that relying on the argv is still a bit fragile.
    – kakyo
    Jul 3 '18 at 21:47
  • I'm calling a script as a symlink in my bin directory, to an executable python file that's not in my PATH. However, sys.path[0] shows my bin directory rather than the absolute path to the script being run. Jul 13 '18 at 18:39
  • sys.path[0] refers to the location script is running from which in most cases will be the same as the directory containing the script. Now if you compile your script to binary and then execute it, well, then sys.path[0] would refer to %temp% since exe runs from temp. At least this is the case on Windows. Nov 16 '18 at 19:44
150

I use:

import os
import sys

def get_script_path():
    return os.path.dirname(os.path.realpath(sys.argv[0]))

As aiham points out in a comment, you can define this function in a module and use it in different scripts.

8
  • 11
    +1 because the useful __file__ module attribute is not always defined.
    – iacopo
    Jul 3 '13 at 12:13
  • 5
    This is also useful if you want to place getScriptPath() in a different module but get the path of the file that was actually executed rather than the module path.
    – aiham
    Sep 18 '14 at 1:13
  • @aiham: Good point. In fact this function is in my framework utils module :)
    – neuro
    Sep 18 '14 at 7:20
  • 1
    Just a note, this will return the path to the executed Python script. If you have these codes as package somewhere else, these codes will not return the source of the Python file. Aug 28 '17 at 16:51
  • 3
    argv[0] is not a reliable way to find the script's path/filename. It can be a symbolic link's name, or anything else passed to execve(2) system call.
    – youfu
    Nov 15 '17 at 5:33
21

This code:

import os
dn = os.path.dirname(os.path.realpath(__file__))

sets "dn" to the name of the directory containing the currently executing script. This code:

fn = os.path.join(dn,"vcb.init")
fp = open(fn,"r")

sets "fn" to "script_dir/vcb.init" (in a platform independent manner) and opens that file for reading by the currently executing script.

Note that "the currently executing script" is somewhat ambiguous. If your whole program consists of 1 script, then that's the currently executing script and the "sys.path[0]" solution works fine. But if your app consists of script A, which imports some package "P" and then calls script "B", then "P.B" is currently executing. If you need to get the directory containing "P.B", you want the "os.path.realpath(__file__)" solution.

"__file__" just gives the name of the currently executing (top-of-stack) script: "x.py". It doesn't give any path info. It's the "os.path.realpath" call that does the real work.

14
import os,sys
# Store current working directory
pwd = os.path.dirname(__file__)
# Append current directory to the python path
sys.path.append(pwd)
2
  • This works great on my dev machine but doesn't work on my web host - I get '/' Feb 10 '11 at 7:21
  • Odd, do you have access to the apache conf files? Or is this a windows server?
    – jbcurtin
    Feb 10 '11 at 10:02
9
import os
script_dir = os.path.dirname(os.path.realpath(__file__)) + os.sep
0
7

Use os.path.abspath('')

3
  • 1
    This works for everything on my dev machine, but only for script files on my web host. It does not work for settings.py, e.g. the following doesn't work: TEMPLATE_DIRS = ((os.path.abspath('')+'/templates'),) Feb 8 '11 at 19:14
  • This didn't work for me. I'm calling an executable python scdript (that's not in my PATH) via a symlink from my PATH. It just printed my bin directory. Jul 13 '18 at 18:47
  • wow... this works from all the hard cases such as running from notebook which started from parent folder OR in REPL. This should be accepted answer! Jan 24 '19 at 5:29
7

This worked for me (and I found it via the this stackoverflow question)

os.path.realpath(__file__)
4

Here's what I ended up with. This works for me if I import my script in the interpreter, and also if I execute it as a script:

import os
import sys

# Returns the directory the current script (or interpreter) is running in
def get_script_directory():
    path = os.path.realpath(sys.argv[0])
    if os.path.isdir(path):
        return path
    else:
        return os.path.dirname(path)
3

This is a pretty old thread but I've been having this problem when trying to save files into the current directory the script is in when running a python script from a cron job. getcwd() and a lot of the other path come up with your home directory.

to get an absolute path to the script i used

directory = os.path.abspath(os.path.dirname(__file__))

0
import os
exec_filepath = os.path.realpath(__file__)
exec_dirpath = exec_filepath[0:len(exec_filepath)-len(os.path.basename(__file__))]
2
  • 2
    Why not use os.path.dirname? Jul 14 '13 at 20:13
  • I didn't know about os.path.dirname, maybe that works also.
    – Stan
    Jul 19 '13 at 6:09
0

Try this:

def get_script_path(for_file = None):
    path = os.path.dirname(os.path.realpath(sys.argv[0] or 'something'))
    return path if not for_file else os.path.join(path, for_file)

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