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hi i have a dict with 3-int-tuple representing color (as key) and an int representing the numbers of occurences of that color in an image (as value)

for exemple, this is a 4x4 pixels image with 3 colors: {(87, 82, 44): 1, (255, 245, 241): 11, (24, 13, 9): 4}

i want to plot a pie chart of list [1,11,4] in which each slice of the piechart is colored with the right color.. how can i do?

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2 Answers 2

up vote 3 down vote accepted

Update: the other answer from Paul is much better but there's not really any point in me just editing my original answer until it's essentially the same :) (I can't delete this answer because it's accepted.)

Does this do what you want? I just took an example from the matplotlib documentation and turned your data into parameters that pie() expects:

# This is a trivial modification of the example here:
# http://matplotlib.sourceforge.net/examples/pylab_examples/pie_demo.html

from pylab import *

data = {(87, 82, 44): 1, (255, 245, 241): 11, (24, 13, 9): 4}

colors = []
counts = []

for color, count in data.items():
    colors.append([float(x)/255 for x in color])
    counts.append(count)

figure(1, figsize=(6,6))

pie(counts, colors=colors, autopct='%1.1f%%', shadow=True)
title('Example Pie Chart', bbox={'facecolor':'0.8', 'pad':5})

show()

The result looks like this:

The resulting pie chart

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colors in 0:1 not in 0:255! thanks : ) –  nkint Feb 27 '11 at 16:03

Mark beat me by 5 minutes, so points should go to him, but here's my (nearly identical, but more terse) answer anyway:

from matplotlib import pyplot

data = {(87, 82, 44): 1, (255, 245, 241): 11, (24, 13, 9): 4}
colors, values = data.keys(), data.values()
# matplotlib wants colors as 0.0-1.0 floats, not 0-255 ints
colors = [tuple(i/255. for i in c) for c in colors]
pyplot.pie(values, colors=colors)
pyplot.show()
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+1: Not importing * is clearly more sensible :) I'd resisted using zip(*...) for splitting the items on the basis that it's bad if the list is large, but it's hardly relevant in this example... –  Mark Longair Feb 27 '11 at 15:45
    
@Mark: fixed it! :) –  Paul Feb 27 '11 at 15:57
    
:) Ah, I'd never noticed this useful bit in the documentation before: "If items(), keys(), values(), iteritems(), iterkeys(), and itervalues() are called with no intervening modifications to the dictionary, the lists will directly correspond." Do you mind if I incorporate that change into my answer, with a reference to your answer? –  Mark Longair Feb 27 '11 at 16:37
    
(Apparently I can't just delete my answer now that it's been accepted, which would be my preference...) –  Mark Longair Feb 27 '11 at 16:39
    
@Mark: Yeah, I had to look up the dict order thing too. Your solution met all the OP's requirements with absolutely negligible performance issues for the stated use-case. On top of that, it is much more clear and understandable, i.e. doesn't require any knowledge of list comprehensions or dictionary ordering rules. "Better" is just a matter of opinion at this point. –  Paul Feb 28 '11 at 0:23

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