Below there is some fully functioning code.

I am planning to execute this code through command line, however I would like it to end after 60 seconds.

Does anyone know the best way of going about this?

Thanks in advance.

import time
class listener(StreamListener):

    def on_data(self, data):
        try:
            print data
            saveFile = open('twitDB.csv','a')
            saveFile.write(data)
            saveFile.write('\n')
            saveFile.close()
            return True
        except BaseException, e:
            print 'failed ondata,' ,str(e)
            time.sleep(5)

    def on_error(self, status):
        print status
  • 1
    Memorize the time when it started, query the time in on_data and exit if one minutes has passed? – tobias_k Dec 25 '13 at 18:26
  • Is 'import time' at the beginning is memorising the time? Also I cant find the code for querying the time... – user3102640 Dec 25 '13 at 18:30
  • 1
    This is just a class definition. It would not "run from the command line". Do you mean from the python interpreter? – Wyrmwood Dec 25 '13 at 19:10
  • do not catch BaseException unless you reraise it later. Why do you want to ignore SystemExit or KeyboardInterrupt? – jfs Dec 25 '13 at 19:38
  • Basically I want the code to run for one minute every hour, I thought I would code in the cancel after 60 seconds first and then look at using command line so the code ran every hour. Would this not be correct? – user3102640 Dec 25 '13 at 19:39

Try this out:

import os
import time
from datetime import datetime
from threading import Timer

def exitfunc():
    print "Exit Time", datetime.now()
    os._exit(0)

Timer(5, exitfunc).start() # exit in 5 seconds

while True: # infinite loop, replace it with your code that you want to interrupt
    print "Current Time", datetime.now()
    time.sleep(1)

There are some more examples in this StackOverflow question: Executing periodic actions in Python

I think the use of os._exit(0) is discouraged, but I'm not sure. Something about this doesn't feel kosher. It works, though.

  • The code will run fine, with the above inserted however the end function doesn't end. – user3102640 Dec 25 '13 at 18:52
  • Try it now, os._exit(0) exits like you would want it to. – Ehtesh Choudhury Dec 25 '13 at 19:00
  • Running for 5 seconds so were getting there, :D – user3102640 Dec 25 '13 at 19:04
  • No something has gone wrong where by now it's just printing the date repeatedly. – user3102640 Dec 25 '13 at 19:12
  • @Shurane: I've removed redundant code. Feel free to rollback – jfs Dec 25 '13 at 19:52

You could move your code into a daemon thread and exit the main thread after 60 seconds:

#!/usr/bin/env python
import time
import threading

def listen():
    print("put your code here")

t = threading.Thread(target=listen)
t.daemon = True
t.start()

time.sleep(60)
# main thread exits here. Daemon threads do not survive.
  • failed ondata, global name 'listen' is not defined is the error message I get – user3102640 Dec 25 '13 at 19:33
  • @user3102640: I've updated the code. Let me know if something is not clear. – jfs Dec 25 '13 at 21:13
  • I keep getting error with syntax here: ` print("put your code here")` @J.F Sebastian – user3102640 Dec 25 '13 at 21:38
  • @user3102640: the code works as is on Python 2 and Python 3. Make sure the copy-paste process hasn't added Unicode whitespace into the code (just delete whitespace before print and type 4 spaces manually). – jfs Dec 25 '13 at 21:44
  • That's quite neat, @J.F.Sebastian. – Ehtesh Choudhury Dec 25 '13 at 21:50

Use signal.ALARM to get notified after a specified time.

import signal, os

def handler(signum, frame):
    print '60 seconds passed, exiting'
    cleanup_and_exit_your_code()

# Set the signal handler and a 60-second alarm
signal.signal(signal.SIGALRM, handler)
signal.alarm(60)

run_your_code()

From your example it is not obvious what the code will exactly do, how it will run and what kind of loop it will iterate. But you can easily implement the ALARM signal to get notified after the timeout has expired.

  • I get this error message failed ondata, 'module' object has no attribute 'SIGALRM' – user3102640 Dec 25 '13 at 19:25
  • 1
    @user: signal.SIGALRM won't work on some platform e.g., Windows. – jfs Dec 25 '13 at 19:27

This is my favorite way of doing timeout.

def timeout(func, args=None, kwargs=None, TIMEOUT=10, default=None, err=.05):
    if args is None:
        args = []
    elif hasattr(args, "__iter__") and not isinstance(args, basestring):
        args = args
    else:
        args = [args]

    kwargs = {} if kwargs is None else kwargs

    import threading
    class InterruptableThread(threading.Thread):
        def __init__(self):
            threading.Thread.__init__(self)
            self.result = None

        def run(self):
            try:
                self.result = func(*args, **kwargs)
            except:
                self.result = default

    it = InterruptableThread()
    it.start()
    it.join(TIMEOUT* (1 + err))
    if it.isAlive():
        return default
    else:
        return it.result
  • This is a modification of the code found here. code.activestate.com/recipes/473878 – cdhagmann Dec 25 '13 at 19:56
  • You don't actually interrupt func(*args, **kwargs) call. It continues to run whether the timeout happened or not. Moreover misnamed "InterruptableThread" is not a daemon. It will prevent the program to exit if func() is still running. – jfs Dec 25 '13 at 19:59
  • @J.F.Sebastian How would you make this work using a daemon so that func() would timeout then? In other words, could you modify your answer so that if could take a function and arguments like my answer tries to do? – cdhagmann Dec 25 '13 at 20:11
  • Thread(target=func, args=args) will do. – jfs Dec 25 '13 at 20:20
  • @J.F.Sebastian How would I be able to get the results to output using that syntax? I haven't been able to figure that out still. – cdhagmann Dec 31 '13 at 17:07

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