4

I have a "do..., until..." structure in Python as follows:

while True:
    if foo() == bar():
        break

It works fine (jumps out in the end) in most of the cases. However, in some of the cases where the condition is never met, it will get stuck there.

Figuring out what are these cases is kind of difficult, since it is essentially a random process behind. So I wish to set a "timeout" thing for the while loop.

Say, if the loop has been running for 1s, but still not yet stops, I wish the loop to terminate itself.

How may I do this?


Update: Here is the actual code:

while True:
    possibleJunctions = junctionReachability[junctions.index(currentJunction)]
    nextJunction = random.choice(filter(lambda (jx, jy): (jx - currentJunction[0]) * (endJunction[0] - currentJunction[0]) > 0 or (jy - currentJunction[1]) * (endJunction[1] - currentJunction[1]) > 0, possibleJunctions) or possibleJunctions)
    if previousJunction != nextJunction: # never go back        
        junctionSequence.append(nextJunction)
        previousJunction = currentJunction
        currentJunction = nextJunction
    if currentJunction == endJunction:
        break
  • 1
    That really depends upon your current scenario. What are foo and bar? Can you paste your actual code? – Blender Sep 23 '13 at 2:22
  • 3
    instead of time make it only go a certain amount of iterations – Serial Sep 23 '13 at 2:23
  • @Blender Thanks for the advice, please see the updated question. – Sibbs Gambling Sep 23 '13 at 2:24
  • a) run it in a separate thread, b) remember the start time and check the passed time every iteration (or every N iterations, if they are quick) – fjarri Sep 23 '13 at 2:25
7
import time

loop_start = time.time()
while time.time() - loop_start <= 1:
    if foo() == bar():
        break
5

EDIT

Dan Doe's solution is simplest and best if your code is synchronous (just runs in a single thread) and you know that the foo and bar functions always terminate within some period of time.

If you have asynchronous code (like a GUI), or if the foo and bar functions you use to test for termination conditions can themselves take too long to complete, then read on.

Run the loop inside a separate thread/process. Run a timer in another process. Once the timer expires, set a flag that would cause the loop to terminate.

Something like this (warning: untested code):

import multiprocessing
import time

SECONDS = 10
event = multiprocessing.Event()

def worker():
  """Does stuff until work is complete, or until signaled to terminate by timer."""
  while not event.is_set():
    if foo() == bar():
      break

def timer():
  """Signals the worker to terminate immediately."""
  time.sleep(SECONDS)
  event.set()

def main():
  """Kicks off subprocesses and waits for both of them to terminate."""
  worker_process = multiprocessing.Process(target=worker)
  timer_process = multiprocessing.Process(target=timer)
  timer_process.start()
  worker_process.start()
  timer_process.join()
  worker_process.join()

if __name__ == "__main__":
  main()

If you were worried about the foo and bar functions taking too long to complete, you could explicitly terminate the worker process from within the timer process.

  • 2
    Hey, what's with the downvote? This is a valid way to handle the problem; and how it's done in asynchronous scenarios (e.g. GUI). – mpenkov Sep 23 '13 at 2:32
  • 1
    meh, some people are cranky. – tacaswell Sep 23 '13 at 2:44
  • 1
    'twasn't my downvote, but perhaps you want parens after main at the end? – kojiro Sep 23 '13 at 3:43
  • Yeah, that'd be a good idea. Thanks :) – mpenkov Sep 23 '13 at 4:06
0

I recommend using a counter. This is a common trick to detect non-convergence.

maxiter = 10000

while True:
  if stopCondition(): break

  maxiter = maxiter - 1
  if maxiter <= 0:
    print >>sys.stderr, "Did not converge."
    break

this requires the least overhead and usually adapts best to different CPUs: even on a faster CPU, you want the same termination behavior; instead of a time-based timeout.

However, it would be even better if you would detect being stuck e.g. with some criterion function that no longer improves.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.