17

I am using matplotlib in interactive mode to show the user a plot that will help them enter a range of variables. They have the option of hitting "?" to show this plot, and the prompt for variables will then be repeated.

How do I know to not re-draw this plot if it's still being displayed?

Superficially, I have this clunky (pseudo-ish) code:

answer = None
done_plot = False
while answer == None:
    answer = get_answer()
    if answer == '?':
        if done_plot:
            have_closed = True
            ##user's already requested a plot - has s/he closed it?
            ## some check here needed:
            have_closed = ?????

            if have_closed == False:
                print 'You already have the plot on display, will not re-draw'
                answer = None
                continue
        plt.ion()
        fig = plt.figure()
        ### plotting stuff
        done_plot = True
        answer = None
    else:
        ###have an answer from the user...

what can I use (in terms of plt.gca(), fig etc...) to determine if I need to re-plot? Is there a status somewhere I can check?

Many thanks,

David

1
  • Think it needs more clarity in the question. Do you keep track of the figures they have opened? Can there be multiple figures at once or just one figure open? – J Spen Sep 26 '11 at 17:06
28

In the same vein as unutbu's answer, you can also check whether a given figure is still opened with

import matplotlib.pyplot as plt

if plt.fignum_exists(<figure number>):
    # Figure is still opened
else:
    # Figure is closed

The figure number of a figure is in fig.number.

PS: Note that the "number" in figure(num=…) can actually be a string: it is displayed in the window title. However, the figure still has a number attribute which is numeric: the original string num value cannot be used with fignum_exists().

PPS: That said, subplots(…, num=<string num>) properly recovers the existing figure with the given string number. Thus, figures are still known by their string number in some parts of Matplotlib (but fignum_exists() doesn't use such strings).

3
  • 3
    Just a note, you can acquire the number with fig.number like in plt.fignum_exists(fig.number). – CMCDragonkai Jul 9 '18 at 2:22
  • However, when I create a figure by fig, ax1 = plt.subplots(1, 1) and having not yet displayed it, the output of plt.fignum_exists(fig.number) is True. Shouldn't it be False? – Stefano Jun 30 '19 at 19:20
  • A figure does not have to be displayed in order to exist: it is in essence an internal representation of some graphics. Often the graphics is displayed, but sometimes it is not: a simple example is when the figure is being created as a PDF file. It thus makes sense to have access to the figure even when nothing is displayed (one could for instance want to switch between multiple figures with plt.figure(num=…) before any of the figures is complete). – Eric O Lebigot Jul 1 '19 at 11:39
15
import matplotlib.pyplot as plt
if plt.get_fignums():
    # window(s) open
else:
    # no windows
2
  • 2
    matplotlib.pyplot.get_fignums() does nearly the same thing without the additional import. – Avaris Sep 26 '11 at 17:13
  • @Avaris: Thanks, that's better. – unutbu Sep 26 '11 at 18:15

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