I have this very simple function right here in which I'm trying to run and test on, however, it doesn't output anything and it doesn't have any errors either. I've checked the code multiple times but it doesn't have any errors.

I printed jobs and here's what I got:

[<Process(Process-12, stopped[1])>, 
<Process(Process-13, stopped[1])>,
<Process(Process-14, stopped[1])>, 
<Process(Process-15, stopped[1])>,
<Process(Process-16, stopped[1])>]

Here's the code:

import multiprocessing

def worker(num):
    print "worker ", num

jobs = []
for i in range(5):
    p = multiprocessing.Process(target = worker, args = (i,))

Here's the result I'm expecting but it's not outputting anything:

Worker: 0
Worker: 1
Worker: 2
Worker: 3
Worker: 4
  • 2
    How do you run it? Works for me. – Igor T. Apr 14 '15 at 13:57
  • @igor Thanks for checking. I'm using Spyder IDE from Anaconda to run the code. – OpenCv Apr 14 '15 at 14:00
  • Do you simply want to print the results - which works in your snippet - or do you want to return them? – SmCaterpillar Apr 14 '15 at 14:01
  • @SmCaterpillar I'm calling the function as a process, I just want to see the results. Like the 2 people above said the code works for them but it doesn't show on mine. – OpenCv Apr 14 '15 at 14:04
  • Here's how I run it: $ python multiproc.so.py worker 0 worker 1 worker 3 worker 2 worker 4 – Igor T. Apr 14 '15 at 14:05

The comments revealed that OP uses Windows as well as Spyder. Since Spyder redirects stdout and Windows does not support forking, a new child process won't print into the Spyder console. This is simply due to the fact that stdout of the new child process is Python's vanilla stdout, which can also be found in sys.__stdout__.

There are two alternatives:

  1. Using the logging module. This would encompass creating and logging all messages to one or several files. Using a single log-file may lead to the problem that the output is slightly garbled since the processes would write concurrently to the file. Using a single file per process could solve this.

  2. Not using print within the child processes, but simply returning the result to the main process. Either by using a queue (or multiprocessing.Manager().Queue() since forking is not possible) or more simply by relying on the multiprocessing Pool's map functionality, see example below.

Multiprocessing example with a Pool:

import multiprocessing

def worker(num):
    """Returns the string of interest"""
    return "worker %d" % num

def main():
    pool = multiprocessing.Pool(4)
    results = pool.map(worker, range(10))


    for result in results:
        # prints the result string in the main process

if __name__ == '__main__':
    # Better protect your main function when you use multiprocessing

which prints (in the main process)

worker 0
worker 1
worker 2
worker 3
worker 4
worker 5
worker 6
worker 7
worker 8
worker 9

EDIT: If you are to impatient to wait for the map function to finish, you can immediately print your results by using imap_unordered and slightly changing the order of the commands:

def main():
    pool = multiprocessing.Pool(4)
    results = pool.imap_unordered(worker, range(10))

    for result in results:
        # prints the result string in the main process as soon as say are ready
        # but results are now no longer in order!

    # The pool should join after printing all results
  • 1
    your answer is correct and thanks. However just letting you know the program has been running for a while (few minutes now) with no output. It increased my CPU usage to 70% and hasn't stopped yet unless i manually kill the kernel. – OpenCv Apr 14 '15 at 16:59
  • 2
    You can also try to use imap_unordered and immediately print the results as soon as they are ready, see my editing.Thereby, you may also spot the jobs that do not finish and cause the infinite loop. – SmCaterpillar Apr 14 '15 at 18:16
  • thanks for this really nice question. is this still valid today? and if I understand well this is only a printing issue right? if I were interested only the the final output, then the Spyder issue you mention do not matter. Is that right? – ℕʘʘḆḽḘ Apr 14 '18 at 19:59

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