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So I have a 2D array of data producing a plot of many timeseries on the same axes. At the moment, the colour of each line just cycles through and doesn't mean anything.

I want to somehow map the colour of each line to the index of its data - so a set of data with a low index appears red and then fades to blue at a high index.

To clarify, each individual line should be the same colour throughout, not fading with time. The difference should be between each line.


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3 Answers 3

up vote 6 down vote accepted

Often you pass a colormap to a plotting function, but you can also pass a number or array to a colormap and get the colors in return.

So to color each line according to a variable, do something like this:

numlines = 20

for i in np.linspace(0,1, numlines):
    plt.plot(np.arange(numlines),np.tile([i],numlines), linewidth=4,

enter image description here

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plot(x,y,'r') for red lines

plot(x,y,'b') for blue lines

Need more colors for a decent X'mas? See here.


As you asked, there're too many lines to manually set colors. So how about this:

from matplotlib.pyplot import *

x = list(range(10))
amount = 20

for i in range(amount):
    y = [j-i for j in x]
    c = [float(i)/float(amount), 0.0, float(amount-i)/float(amount)] #R,G,B
    plot(x, y, color=c)

It gives:

enter image description here

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Yes but I have a LOT of sets of timeseries - about 200. I can't manually go through and set the colour of each one. I need a way of taking the index of it and getting the colour from a colormap. – Catherine Georgia Dec 20 '12 at 12:41
@CatherineGeorgia Sure. Wait a minute. – Skyler Dec 20 '12 at 12:45

Here I use rgb colors to get an array of 200 different colors. I don't have the time to sort them by intensity, but do a few printouts of the array and you might figure out how. An idea is to sort by the index of the sum of the (sorted) tuples.

import matplotlib.pyplot as plt
from itertools import permutations
from random import sample
import numpy as np

#Get the color-wheel
Nlines = 200
color_lvl = 8
rgb = np.array(list(permutations(range(0,256,color_lvl),3)))/255.0
colors = sample(rgb,Nlines)

x = np.linspace(0,2*np.pi)

for i in range(Nlines):
    plt.plot(i*np.cos(x),i*np.sin(x),color=colors[i]) #color from index

Gives enter image description here

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