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I've got a script which creates a graph, but the script keeps running in the background until the window is closed. I'd like it to quit as soon as the window is created, so that Ctrl-C in the shell won't kill the window, and so that the user can leave the window open and continue working in the shell without bg-ing it manually. I've seen some solutions with daemons, but I'd like to avoid splitting this into two scripts. Is multiprocessing the easiest solution, or is there something shorter?

The relevant show() command is the last thing that is executed by the script, so I don't need to keep a reference to the window in any way.

Edit: I don't want to save the figure as a file, I want to be able to use the interactive window. Essentially the same as running mian ... & in bash

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2 Answers 2

up vote 2 down vote accepted

This works for Unix:

import pylab
import numpy as np
import multiprocessing as mp
import os

def display():
    os.setsid()
    pylab.show()

mu, sigma = 2, 0.5
v = np.random.normal(mu,sigma,10000)
(n, bins) = np.histogram(v, bins=50, normed=True)
pylab.plot(bins[:-1], n)
p=mp.Process(target=display)
p.start()

When you run this script (from a terminal) the pylab plot is displayed. Pressing Ctrl-C kills the main script, but the plot remains.

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I tried this with if __name__ == '__main__':\n process = Process(target = main)\n process.start(), but no luck. It doesn't display anything, and when I press Ctrl-C it interrupts both processes. –  l0b0 Oct 30 '10 at 16:27
    
Are you using Windows? –  unutbu Oct 30 '10 at 16:29
    
Nope, unutbu, Ubuntu :) –  l0b0 Oct 30 '10 at 16:38
    
@l0b0: Did you try my script exactly the way it is? It should work on Ubuntu without modification. In your comment above, are you really using target = main? It should be target=display. –  unutbu Oct 30 '10 at 16:40
    
When running your script using python test.py, it just halts. Never gets anywhere. When running ./test.py I get a strange "cross" cursor, which saves a screenshot of the window I click on on the desktop as a file called "pylab". Copying the script into a python shell produces nothing except for the pylab.plot line which returns "[<matplotlib.lines.Line2D object at 0x9d59c2c>]". It only works in ipython -pylab. And when using this method in my own script (github.com/l0b0/mian/blob/master/mian/mian.py), nothing happens (Debug output is produced, but no GUI). –  l0b0 Oct 30 '10 at 16:45

I would suggest using os.fork() as the simplest solution. It is the trick that is used in daemons, but it doesn't require two scripts, and it's quite simple. For example:

import os

proc_num = os.fork()

if proc_num != 0:
    #This is the parent process, that should quit immediately to return to the
    #shell.
    print "You can kill the graph with the command \"kill %d\"." % proc_num
    import sys
    sys.exit()

#If we've made it to here, we're the child process, that doesn't have to quit.
import matplotlib.pyplot as plt
plt.plot([1,2,3],[4,5,6])
plt.show()
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