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I'm calling a function in Python which I know may stall and force me to restart the script.

How do I call the function or what do I wrap it in so that if it takes longer than 5 seconds the script cancels it and does something else?

share|improve this question
    
Does "stall" mean "run indefinitely" or just "run a few seconds longer than I want to wait, but it will always terminate properly"? It makes a big difference on what the proper answer is for your question. –  Brandon Jan 29 '09 at 20:11
    
Hang for at least 20 seconds though the time period should logically be variable to the situation being dealt with. –  Teifion Jan 30 '09 at 12:02
    
I think you need to distinguish between 2 cases: (simple) - a timeout on pure python function-calls, and (annoying), implementing a timeout on external calls. I suspect that what might work best for one will not be best for the other. –  Salim Fadhley Feb 2 '09 at 13:32
    
I have a version which works with with timeout(seconds=3): do_anything() in this thread: stackoverflow.com/questions/2281850/… –  Thomas Ahle Mar 14 '14 at 9:46
    
related application: Python 3 Timed Input /15528939 –  naxa Mar 13 at 13:16

9 Answers 9

up vote 59 down vote accepted

You may use the signal package if you are running on UNIX:

In [1]: import signal

# Register an handler for the timeout
In [2]: def handler(signum, frame):
   ...:     print "Forever is over!"
   ...:     raise Exception("end of time")
   ...: 

# This function *may* run for an indetermined time...
In [3]: def loop_forever():
   ...:     import time
   ...:     while 1:
   ...:         print "sec"
   ...:         time.sleep(1)
   ...:         
   ...:         

# Register the signal function handler
In [4]: signal.signal(signal.SIGALRM, handler)
Out[4]: 0

# Define a timeout for your function
In [5]: signal.alarm(10)
Out[5]: 0

In [6]: try:
   ...:     loop_forever()
   ...: except Exception, exc: 
   ...:     print exc
   ....: 
sec
sec
sec
sec
sec
sec
sec
sec
Forever is over!
end of time

# Cancel the timer if the function returned before timeout
# (ok, mine won't but yours maybe will :)
In [7]: signal.alarm(0)
Out[7]: 0

10 seconds after the call alarm.alarm(10), the handler is called. This raises an exception that you can intercept from the regular Python code.

This module doesn't play well with threads (but then, who does?)

Note that since we raise an exception when timeout happens, it may end up caught and ignored inside the function, for example of one such function:

def loop_forever():
    while 1:
        print 'sec'
        try:
            time.sleep(10)
        except:
            continue
share|improve this answer
    
Great solution. The advantage of this approach is that it can interrupt almost anything. The disadvantage is it requires python 2.5 or newer... all you luddites better use an alternative method. –  Salim Fadhley Feb 2 '09 at 13:26
    
You should probably also record and restore the old value of the signal handler, returned from the signal.signal call. Also this seems to work for 2.4 also (yay RHEL...). –  xitrium Aug 2 '10 at 8:40
1  
I use Python 2.5.4. There is such an error: Traceback (most recent call last): File "aa.py", line 85, in func signal.signal(signal.SIGALRM, handler) AttributeError: 'module' object has no attribute 'SIGALRM' –  flypen May 13 '11 at 1:59
2  
@flypen that's because signal.alarm and the related SIGALRM are not available on Windows platforms. –  Double AA Aug 19 '11 at 16:20
1  
If there are a lot of processes, and each calls signal.signal --- will they all work properly? Won't each signal.signal call cancel "concurrent" one? –  brownian May 10 '12 at 8:28

You can use multiprocessing.Process to do exactly that.

Code

import multiprocessing
import time

# bar
def bar():
    for i in range(100):
        print "Tick"
        time.sleep(1)

if __name__ == '__main__':
    # Start bar as a process
    p = multiprocessing.Process(target=bar)
    p.start()

    # Wait for 10 seconds or until process finishes
    p.join(10)

    # If thread is still active
    if p.is_alive():
        print "running... let's kill it..."

        # Terminate
        p.terminate()
        p.join()
share|improve this answer
    
p.is_alive() always seems to return true? –  Steve Bennett May 21 '13 at 2:48
    
Just prints "running... let's kill it..." after 10 seconds running Python 2.7.5 on Windows 8. –  Wallacoloo Jul 4 '13 at 1:25
    
@ATOzTOA forgot to add the parenthesis. It should be p.is_alive() –  tepedizzle Jul 9 '13 at 21:09
    
It doesn't print anything. It should print running... let's kill it... –  User Aug 13 '14 at 21:28

I have a different proposal which is a pure function (with the same API as the threading suggestion) and seems to work fine (based on suggestions on this thread)

def timeout(func, args=(), kwargs={}, timeout_duration=1, default=None):
    import signal

    class TimeoutError(Exception):
        pass

    def handler(signum, frame):
        raise TimeoutError()

    # set the timeout handler
    signal.signal(signal.SIGALRM, handler) 
    signal.alarm(timeout_duration)
    try:
        result = func(*args, **kwargs)
    except TimeoutError as exc:
        result = default
    finally:
        signal.alarm(0)

    return result
share|improve this answer
3  
This is the best solution here. –  Martin Konecny Jun 11 '13 at 15:08
1  
You should also restore the original signal handler. See stackoverflow.com/questions/492519/… –  Martin Konecny Jun 11 '13 at 15:21
3  
One more note: The Unix signal method only works if you are applying it in the main thread. Applying it in a sub-thread throws an exception and will not work. –  Martin Konecny Jun 12 '13 at 20:23
2  
This is not the best solution because it only works on linux. –  max Mar 13 '14 at 20:10

If this is some kind of network or file operation, you might also consider using nonblocking IO. This can be a better option if you're doing a lot of these types of operations at once (otherwise, you can bog your system down fairly quickly with a lot of threads). Here's a socket howto that covers nonblocking IO (in the context of network operations).

The downside? Well, it can be a pain to program. Sometimes even moreso than just using a thread.

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This is pretty much a link-only answer. –  Aaron Hall Jul 28 at 17:28
    
While this link may answer the question, it is better to include the essential parts of the answer here and provide the link for reference. Link-only answers can become invalid if the linked page changes. –  scohe001 Jul 28 at 18:43

Here is a slight improvement to the given thread-based solution.

The code below supports exceptions:

def runFunctionCatchExceptions(func, *args, **kwargs):
    try:
        result = func(*args, **kwargs)
    except Exception, message:
        return ["exception", message]

    return ["RESULT", result]


def runFunctionWithTimeout(func, args=(), kwargs={}, timeout_duration=10, default=None):
    import threading
    class InterruptableThread(threading.Thread):
        def __init__(self):
            threading.Thread.__init__(self)
            self.result = default
        def run(self):
            self.result = runFunctionCatchExceptions(func, *args, **kwargs)
    it = InterruptableThread()
    it.start()
    it.join(timeout_duration)
    if it.isAlive():
        return default

    if it.result[0] == "exception":
        raise it.result[1]

    return it.result[1]

Invoking it with a 5 second timeout:

result = timeout(remote_calculate, (myarg,), timeout_duration=5)
share|improve this answer
1  
This will raise a new exception hiding the original traceback. See my version below... –  Meitham Dec 14 '12 at 11:20
    
This is also unsafe, as if within runFunctionCatchExceptions() certain Python functions obtaining GIL are called. E.g. the following would never, or for very long time, return if called within the function: eval(2**9999999999**9999999999). See stackoverflow.com/questions/22138190/… –  Mikko Ohtamaa Oct 27 '14 at 12:53

Jeff version is great that I am using it in a production. However, I have noticed that exception raised inside the function (now an independent thread) are not communicated back to the caller. So here is my workaround it.

import sys
import threading
from datetime import datetime


def timed_run(func, args=(), kwargs={}, timeout=10, default=None):
    """This function will spawn a thread and run the given function
    using the args, kwargs and return the given default value if the
    timeout is exceeded.
    """ 
    class InterruptableThread(threading.Thread):
        def __init__(self):
            threading.Thread.__init__(self)
            self.result = default
            self.exc_info = (None, None, None)

        def run(self):
            try:
                self.result = func(*args, **kwargs)
            except Exception as e:
                self.exc_info = sys.exc_info()

        def suicide(self):
            raise RuntimeError('Stop has been called')

    it = InterruptableThread()
    it.start()
    print("calling %(func)r for %(timeout)r seconds" % locals())
    started_at = datetime.now()
    it.join(timeout)
    ended_at = datetime.now()
    diff = ended_at - started_at
    print("%(f)s exited after %(d)r seconds" % {'f': func, 'd': diff.seconds})
    if it.exc_info[0] is not None:  # if there were any exceptions
        a,b,c = it.exc_info
        raise a,b,c  # communicate that to caller
    if it.isAlive():
        it.suicide()
        raise RuntimeError("%(f)s timed out after %(d)r seconds" % 
                {'f': func, 'd': diff.seconds})
    else:
        return it.result

This will raise the exception providing a full traceback from the line inside the thread that originated the error.

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1  
no. this does not kill the thread. I just tried it. An exception is raised inside the method suicide(), but it does not kill the container thread –  Moataz Elmasry Apr 27 '13 at 22:41

The stopit package, found on pypi, seems to handle timeouts well.

I like the @stopit.threading_timeoutable decorator, which adds a timeout parameter to the decorated function, which does what you expect, it stops the function.

Check it out on pypi: https://pypi.python.org/pypi/stopit

share|improve this answer

How do I call the function or what do I wrap it in so that if it takes longer than 5 seconds the script cancels it?

I posted a gist that solves this question/problem with a decorator and a threading.Timer.

I'll post it here with a breakdown. It was tested with Python 2 and 3.

First the imports. These attempt to keep the code consistent regardless of the Python version:

from __future__ import print_function
import sys
import threading
from time import sleep
try:
    import thread
except ImportError:
    import _thread as thread

Now we have imported our functionality from the standard library.

Next we need a function to terminate the main() from the child thread:

def cdquit(fn_name):
    # print to stderr, unbuffered in Python 2.
    print('{0} took too long'.format(fn_name), file=sys.stderr)
    sys.stderr.flush() # Python 3 stderr is likely buffered.
    thread.interrupt_main() # raises KeyboardInterrupt

And here is the decorator itself:

def exit_after(s):
    '''
    use as decorator to exit process if 
    function takes longer than s seconds
    '''
    def outer(fn):
        def inner(*args, **kwargs):
            timer = threading.Timer(s, cdquit, fn.__name__)
            timer.start()
            try:
                result = fn(*args, **kwargs)
            finally:
                timer.cancel()
            return result
        return inner
    return outer

And here's the usage, modified from my gist, that directly answers your question about exiting after 5 seconds!:

@exit_after(5)
def c():
    sleep(2)
    print('c')

@exit_after(5)
def d():
    print('d started')
    for i in range(10):
        print(i)
        sleep(1)
    print('d will not finish')

And the line d will not finish should not print! Instead the process should exit with a traceback!

How do I call the function or what do I wrap it in so that if it takes longer than 5 seconds the script cancels it and does something else?

To catch it and do something else, you can catch the KeyboardInterrupt.

try:
    d()
except KeyboardInterrupt:
    print('something else')

prints:

d took too long
something else
share|improve this answer

We can use signals for the same. I think the below example will be useful for you. It is very simple compared to threads.

import signal

def timeout(signum, frame):
    raise myException

#this is an infinite loop, never ending under normal circumstances
def main():
    print 'Starting Main ',
    while 1:
        print 'in main ',

#SIGALRM is only usable on a unix platform
signal.signal(signal.SIGALRM, timeout)

#change 5 to however many seconds you need
signal.alarm(5)

try:
    main()
except myException:
    print "whoops"
share|improve this answer
    
It would be better to choose a specific exception and to catch only it. Bare try: ... except: ... are always a bad idea. –  hivert Jul 23 '13 at 11:28
    
I agree with you hivert. –  user2599593 Jul 26 '13 at 6:58

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