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How do I run a python script from within the IDLE interactive shell?

The following throws an error:

>>> python
SyntaxError: invalid syntax
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What does look like? –  TerryA Jun 22 '13 at 5:12
yeah it means something is wrong with youre code post youre code! –  Serial Jun 22 '13 at 5:17
No, not necessarily. Chances are the OP is typing python in an IDLE shell window and that doesn't work. –  Ned Deily Jun 22 '13 at 5:28
Nor would it work in the standard interpreter. This issue has come up before where people mistakenly think that the interpreter prompt is a command-line prompt. –  Terry Jan Reedy Mar 14 at 1:00
You should accept the answer from Ned Deily if that answer your question correctly. This will also help fellow developers to quickly spot the correct answer. –  Krishna_Oza May 5 at 9:28

5 Answers 5

Built-in function: execfile


Deprecated since 2.6: popen

import os
os.popen('python') # Just run the program
os.popen('python').read() # Also gets you the stdout

Advance usage: subprocess

import subprocess['python', '']) # Just run the program
subprocess.check_output(['python', '']) # Also gets you the stdout

Read the docs for details :-)

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The IDLE shell window is not the same as a terminal shell (e.g. running sh or bash). Rather, it is just like being in the Python interactive interpreter (python -i). The easiest way to run a script in IDLE is to use the Open command from the File menu (this may vary a bit depending on which platform you are running) to load your script file into an IDLE editor window and then use the Run -> Run Module command (shortcut F5).

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Hi Ned, Thanks. That was helpful –  user1703914 Jun 23 '13 at 1:39
@user1703914 You're welcome. If it answers your question, please mark the answer as accepted. –  Ned Deily Jun 23 '13 at 2:33
But you can't pass in arguments. :( –  Erica Kane Mar 7 at 2:47
Unfortunately, no, it's not easy to run a Python file in IDLE while passing in command line arguments. There is a long-standing open issue for IDLE to do so ( One workaround for testing is to manually initialize sys.argv at the very beginning of the program, for example, under the usual if __name__ == "__main__" boilerplate. –  Ned Deily Mar 7 at 4:03

execFile('') does the job for me. A thing to note is to enter the complete directory name of the .py file if it isnt in the Python folder itself (atleast this is the case on Windows)

For example, execFile('C:/')

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For example:

import subprocess"C:\")["python", "-h"])
share|improve this answer'c:\path\to\') does not work for me. OSError: [WinError 193] %1 is not a valid Win32 application –  Terry Jan Reedy Mar 14 at 1:08
Try this import os import subprocess DIR = os.path.join('C:\\', 'Users', 'Sergey', 'Desktop', '')['python', DIR]) –  Sergey Nosov Mar 14 at 17:22

Try this

import os
import subprocess

DIR = os.path.join('C:\\', 'Users', 'Sergey', 'Desktop', '')['python', DIR])
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