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I am trying to execute/call a python script that resides in another directory.

My Problem: When I attempt to open/call the file I get the error

'..' is not recognised as an internal or external command, operable program or batch file

My python code to execute the python file is:

os.system("../test.py abc")

I have also tried this but I get the same error on a DIFFERENT part of the string:

os.system(os.getcwd()+"/../test.py abc")
# results in "c:/users/jim/work products/python/testdir/../test.py abc"

Error:

'c:/users/jim/work ' is not recognised as an internal or external command, operable program or batch file

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Try this: os.system(r'../test.py abc') –  Abhishek Chanda Mar 16 '12 at 3:30
    
Nope doesn't work, same error –  Jake M Mar 16 '12 at 3:33

2 Answers 2

up vote 0 down vote accepted

In windows you should use '..\\executeablename' to run a program or script in the parent directory, not '../' the unix style.

And, to ensure the script can run property, a 'python' is better to be added before the command.

So I think this situation should be:

os.system("python ..\\test.py abc")

It has not been tested since I am using linux, you can just try.

BTW, 'os.system' is kinda deprecated and the subprocess module is recommend to use when execute system level command.

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A .py file isn't an executable, so that won't work on Windows. You have to run it with python.exe:

import subprocess
import sys
subprocess.call([sys.executable, '../test.py', 'abc'])

You could do this with system, but I figure this is easier because you don't have to quote the filename.

share|improve this answer
    
But os.system("test.py abc") works. As long as I have test.py in the same directory I can run the script in a console window and access the commandline argument 'abc'. It should work with a file in the parent directory shouldn't it? –  Jake M Mar 16 '12 at 3:42

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