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I have a function that occasionally hangs. Normally I would set an alarm, but I'm in Windows and it's unavailable. Is there a simple way around this, or should I just create a thread that calls time.sleep()?


Ended up going with a thread. Only trick was using os._exit instead of sys.exit

import os
import time
import threading

class Alarm (threading.Thread):
    def __init__ (self, timeout):
    	threading.Thread.__init__ (self)
    	self.timeout = timeout
    	self.setDaemon (True)
    def run (self):
    	time.sleep (self.timeout)
    	os._exit (1)

alarm = Alarm (4)
alarm.start ()
time.sleep (2)
del alarm
print 'yup'

alarm = Alarm (4)
alarm.start ()
time.sleep (8)
del alarm
print 'nope'  # we don't make it this far
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2 Answers

The most robust solution is to use a subprocess, then kill that subprocess. Python2.6 adds .kill() to subprocess.Popen().

I don't think your threading approach works as you expect. Deleting your reference to the Thread object won't kill the thread. Instead, you'd need to set an attribute that the thread checks once it wakes up.

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can you clarify how to use .kill() to deal with a hanging function after a certain amount of time? –  Double AA Aug 19 '11 at 17:14
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You could - as you mentioned - just kick off a new thread that sleeps for that number of seconds.

Or you can use one of Windows' multimedia timers (in Python, that'd be in windll.winmm). I believe timeSetEvent is what you're looking for. Incidentally, I found a piece of code that uses it here.

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