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in my code i loop though raw_input() to see if the user has requested to quit. My app can quit before the user quits, but my problem is the app is still alive until i enter a key to return from the blocking function raw_input(). Can i do to force raw_input() to return? by maybe sending it fake input? could i terminate the thread its on? (the only data it has is a single var call wantQuit).

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Sample code would be nice. –  codeape Feb 16 '09 at 11:46
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4 Answers

up vote 3 down vote accepted

You can use this time out function that wraps your function. Here's the recipe from: http://code.activestate.com/recipes/473878/

def timeout(func, args=(), kwargs={}, timeout_duration=1, default=None):
    '''This function will spwan a thread and run the given function using the args, kwargs and 
    return the given default value if the timeout_duration is exceeded 
    ''' 
    import threading
    class InterruptableThread(threading.Thread):
        def __init__(self):
            threading.Thread.__init__(self)
            self.result = default
        def run(self):
            try:
                self.result = func(*args, **kwargs)
            except:
                self.result = default
    it = InterruptableThread()
    it.start()
    it.join(timeout_duration)
    if it.isAlive():
        return it.result
    else:
        return it.result
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Nice. Confirmed to work in both WinXP and Linux. –  Deestan Feb 16 '09 at 16:34
    
That code is a lie: the InterruptableThread is in fact not interruptable. It will block either way and stay around forever. It should at least be marked as daemon thread so that it won't stop the interpreter from exiting. Somebody noticed the problem already: code.activestate.com/recipes/473878/#c3 –  Bluehorn Aug 25 '11 at 7:56
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Why don't you just mark the thread as daemonic?

From the docs:

A thread can be flagged as a “daemon thread”. The significance of this flag is that the entire Python program exits when only daemon threads are left. The initial value is inherited from the creating thread. The flag can be set through the daemon attribute.

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You might use a non-blocking function to read user input.
This solution is windows-specific:

import msvcrt
import time

while True:
    # test if there are keypresses in the input buffer
    while msvcrt.kbhit(): 
        # read a character
        print msvcrt.getch()
    # no keypresses, sleep for a while...
    time.sleep(1)

To do something similar in Unix, which reads a line at a time, unlike the windows version reading char by char (thanks to Aaron Digulla for providing the link to the python user forum):

import sys
import select

i = 0
while i < 10:
    i = i + 1
    r,w,x = select.select([sys.stdin.fileno()],[],[],2)
    if len(r) != 0:
        print sys.stdin.readline()

See also: http://code.activestate.com/recipes/134892/

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+1 for taking the time to write an example :) –  Aaron Digulla Feb 17 '09 at 8:51
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There is a post on the Python mailing list which explains how to do this for Unix:

# this works on some platforms:

import signal, sys

def alarm_handler(*args):
    raise Exception("timeout")

def function_xyz(prompt, timeout):
    signal.signal(signal.SIGALRM, alarm_handler)
    signal.alarm(timeout)
    sys.stdout.write(prompt)
    sys.stdout.flush()
    try:
        text = sys.stdin.readline()
    except:
        text = ""
    signal.alarm(0)
    return text
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Thanks, I added a small example in my answer based on that post (+1) –  Paolo Tedesco Feb 16 '09 at 16:33
    
404 on the link –  jonasl Aug 19 '10 at 12:17
    
Thanks. Fixed the link and copied the source here. –  Aaron Digulla Aug 19 '10 at 14:04
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