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I have a shell script that loops through a text file containing URL:s that I want to visit and take screenshots of.

All this is done and simple. The script initializes a class that when run creates a screenshot of each site in the list. Some sites take a very, very long time to load, and some might not be loaded at all. So I want to wrap the screengrabber-function in a timeout script, making the function return False if it couldn't finish within 10 seconds.

I'm content with the simplest solution possible, maybe setting a asynchronous timer that will return False after 10 seconds no matter what actually happens inside the function?

Ideas?

Thanks!

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I have a reply here for this question. –  piro Feb 17 '10 at 16:02
    
Duplicate of stackoverflow.com/questions/492519/… –  Wim Feb 17 '10 at 17:05

4 Answers 4

up vote 69 down vote accepted

The process for timing out an operations is described in the documentation for signal.

The basic idea is to use signal handlers to set an alarm for some time interval and raise an exception once that timer expires.

Note that this will only work on UNIX.

Here's an implementation that creates a decorator (save the following code as timeout.py).

from functools import wraps
import errno
import os
import signal

class TimeoutError(Exception):
    pass

def timeout(seconds=10, error_message=os.strerror(errno.ETIME)):
    def decorator(func):
        def _handle_timeout(signum, frame):
            raise TimeoutError(error_message)

        def wrapper(*args, **kwargs):
            signal.signal(signal.SIGALRM, _handle_timeout)
            signal.alarm(seconds)
            try:
                result = func(*args, **kwargs)
            finally:
                signal.alarm(0)
            return result

        return wraps(func)(wrapper)

    return decorator

This creates a decorator called @timeout that can be applied to any long running functions.

So, in your application code, you can use the decorator like so:

from timeout import timeout

# Timeout a long running function with the default expiry of 10 seconds.
@timeout
def long_running_function1():
    ...

# Timeout after 5 seconds
@timeout(5)
def long_running_function2():
    ...

# Timeout after 30 seconds, with the error "Connection timed out"
@timeout(30, os.strerror(errno.ETIMEDOUT))
def long_running_function3():
    ...
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14  
Beware that this is not thread-safe: if you're using multithreading, the signal will get caught by a random thread. For single-threaded programs though, this is the easiest solution. –  Wim Feb 17 '10 at 17:03
1  
Nice. Also, it is recommended to decorate the function wrapper with @functools.wraps(func) –  shx2 Oct 31 '13 at 19:58
1  
FYI, there are missing parens after the first "@timeout". It should read @timeout() def .... –  ron.rothman Mar 16 at 22:28

EDIT 1: This doesn't actually work. It hasn't been deleted because the logic may be salvageable.

Thread-safe version using threading timers:

import threading

class TimeoutError(Exception):
    pass

def die():
     raise TimeoutError()

death_counter = threading.Timer(60, die)
try:
    death_counter.start()
    some_operation()
    death_counter.cancel()
except TimeoutError:
    log_error('Timeout')
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I just tried this. Looks like TimeoutError is raised in a different thread, and is not caught. –  Fabricator Aug 28 at 18:32
    
I guess the 'die' function has to find another way to kill the 'some_operation' function. I'll look into it. –  Jack Aug 28 at 19:28

I rewrote David's answer using the with statement, it allows you do do this:

with timeout(seconds=3):
    sleep(4)

Which will raise a TimeoutError.

The code is still using signals and thus UNIX only:

class timeout:
    def __init__(self, seconds=1, error_message='Timeout'):
        self.seconds = seconds
        self.error_message = error_message
    def handle_timeout(self, signum, frame):
        raise TimeoutError(self.error_message)
    def __enter__(self):
        signal.signal(signal.SIGALRM, self.handle_timeout)
        signal.alarm(self.seconds)
    def __exit__(self, type, value, traceback):
        signal.alarm(0)
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Python < v3 does not have a TimeoutError. But one can very easily write one own class with like explained here: stackoverflow.com/a/1319675/380038 –  Framester Oct 2 at 9:17

The solution to this is multithreading: Execute your website loader code in one thread. Start a second Timer thread, which sends an interrupt to the worker thread after 10s.

Take a look at the Python Threading API.

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yeah I prefer this thread solution over the signaling solution, since timing out an operation is a small operation, and creating a separate thread keeps things to within your own application. –  teddy teddy Dec 18 '12 at 18:09
    
This doesn't work. You can't interrupt a worker thread using the threading module. You can set a value for the worker thread to check periodically to see if it should stop, but that's not the same as an interrupt. –  CivFan Dec 23 at 17:52

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