14

How to open a file in the parent directory in python in AppEngine?

I have a python file module/mod.py with the following code

f = open('../data.yml')
z = yaml.load(f)
f.close()

data.yml is in the parent dir of module. The error I get is

IOError: [Errno 13] file not accessible: '../data.yml'

I am using AppEngine SDK 1.3.3.

Is there a work around for this?

24

The open function operates relative to the current process working directory, not the module it is called from. If the path must be module-relative, do this:

import os.path
f = open(os.path.dirname(__file__) + '/../data.yml')
  • 1
    In my opinion, it would be better if, instead of concatenating the filename, you used "os.path.join" For instance: open(os.path.join(os.path.dirname(file), os.pardir, 'data.yml')) – ThatsAMorais Sep 17 '15 at 4:32
  • Yes. But make sure to use _file_ instead of file – sthiers Jul 18 '16 at 9:44
  • Alternatively, make sure to wrap code in back-quotes. – Marcelo Cantos Jul 18 '16 at 11:15
4

Having encountered this question and not being satisfied with the answer, I ran across a different solution. It took the following to get what I wanted.

  1. Determine the current directory using os.path.dirname:

    current_directory = os.path.dirname(__file__)

  2. Determine the parent directory using os.path.split:

    parent_directory = os.path.split(current_directory)[0] # Repeat as needed

  3. Join parent_directory with any sub-directories:

    file_path = os.path.join(parent_directory, 'path', 'to', 'file')

  4. Open the file:

    open(file_path)

Combined together:

open(os.path.join(os.path.split(os.path.dirname(__file__))[0], 'path', 'to', 'file')

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