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I am trying to write a python program to test a server written in C. The python program launches the compiled server using the subprocess module:

pid = subprocess.Popen(args.server_file_path).pid

This works fine, however if the python program terminates unexpectedly due to an error, the spawned process is left running. I need a way to ensure that if the python program exits unexpectedly, the server process is killed as well.

Some more details:

  • Linux or OSX operating systems only
  • Server code can not be modified in any way
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"due to an error" -- What kind of error? –  mgilson Jan 2 '13 at 20:06
    
Networking errors, Keyboard interrupt, etc. –  charliehorse55 Jan 2 '13 at 20:08
1  
supervisor is an open-source process management daemon written in Python. The source code might be worth a look if you have the time. –  Phil Frost Jan 2 '13 at 20:25
    
Duplicate of stackoverflow.com/q/1884941/205521 –  Thomas Ahle Jun 20 at 13:45

1 Answer 1

up vote 13 down vote accepted

I would atexit.register a function to terminate the process:

import atexit
process = subprocess.Popen(args.server_file_path)
atexit.register(process.terminate)
pid = process.pid

Or maybe:

import atexit
process = subprocess.Popen(args.server_file_path)
@atexit.register
def kill_process():
    try:
        process.terminate()
    except OSError:
        pass #ignore the error.  The OSError doesn't seem to be documented(?)
             #as such, it *might* be better to process.poll() and check for 
             #`None` (meaning the process is still running), but that 
             #introduces a race condition.  I'm not sure which is better,
             #hopefully someone that knows more about this than I do can 
             #comment.

pid = process.pid

Note that this doesn't help you if you do something nasty to cause python to die in a non-graceful way (e.g. via os._exit or if you cause a SegmentationFault or BusError)

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@ire_and_curses -- Thanks for adding the link. it's appreciated. –  mgilson Jan 2 '13 at 20:20
1  
the "nasty case" is the most interesting one ) –  vak Oct 24 '13 at 9:09
    
I give an option for the "nasty case" in stackoverflow.com/questions/25542110/…, but it doesn't help here (it requires access to the client source code). –  Bas Wijnen Sep 3 at 1:12

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