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Here is my code for a simple multiprocessing task in python

from multiprocessing import Process

def myfunc(num):

    tmp = num * num
    print 'squared O/P will be ', tmp

a = [ i**3 for i in range(5)] ## just defining a list

task = [Process(target = myfunc, args = (i,)) for i in a]  ## creating processes

for each in task : each.start()  # starting processes <------ problem line

for each in task : each.join()   # waiting all to finish up

When I run this code, it hangs at certain point, so to identify it I ran it line by line in python shell and found that when I call 'each.start()' The shell pops out a dialogue box as:

" The program is still running , do you want to kill it? '

and I select 'yes' the shell closes.

When I replace Process with 'threading.Thread' the same code runs but with this nonsense output:

Squared Squared Squared Squared Squared  0    1491625

Is there any help in this regard ? thank in advance

To run my python codes I use Idlex IDE and I start it from terminal.

I have Intel Xeon Processor with 4 cores / 8 Threads, and 8GB RAM

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This works fine on python 2.7 on Ubuntu 12.04, I suggest the problem is with the IDE –  Vorsprung Dec 24 '13 at 12:33
Me too - with python 2.7 and 3.3 in Ubuntu 12.04, IDE - PyCharm –  Andrey Shokhin Dec 24 '13 at 12:44
I am using Python 2.7.3 and Ubuntu 12.04 LTS ... –  Ashutosh Dec 24 '13 at 12:48
But I realise now this is problem with idlex IDE only.. the code works fine with the terminal ( shell ) python/ipython –  Ashutosh Dec 24 '13 at 12:59
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2 Answers

Save the code above into a .py file and then run it in a gnome-terminal with

python myfile.py

Where "myfile.py" is the filename you saved to.

I would assume that the IDE you are using is confused somehow by Process()

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with little though I finally found the problem.

This is happening just because in python, the float and int objects are not 'thread-safe', meaning the memory allocated to calculate any function's value by one thread/process can be overwritten by another and hence they show absurd values. This is also called RACE Condition

To solve this problem , use deque() from collections module or BEST Would be to use 'Lock' facility. deque() , works as arrays but meant for arrays of same kind ( much like MATLAB Arrays ) and is thread/process safe. Lock avoids RACE Condition and

So the edit would be :

def myfunc(num):

    lock.acquire()  ## Please mind the spelling of acquire

    .......some codes .....
    .......some codes......


That's all and it works fine ABSOLUTELY

But one problem still persists and that is with multiprocessing module. Even after calling lock the problem remains same as mentioned in question. Help needed to solve it

Hope it helps others too............

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