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I have a list of points that are plotted in 3d, and I would like to have a gradient color scheme for the plot. Is this possible? If so, how can it be done? I tried some of the examples on the matplotlib site but none of them worked.

Datagrid.txt is made up of 3 columns of numbers so x,t,u are 3 column vectors with the respected columns in the txt file.

from mpl_toolkits.mplot3d import axes3d
import numpy as np
import pylab

x, t, u = np.loadtxt("datagrid.txt", unpack = True)

fig = pylab.figure()
ax = fig.add_subplot(111, projection = '3d')
ax.plot(x, t, u)
pylab.show()

enter image description here

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1 Answer 1

up vote 1 down vote accepted

Instead of ax.plot, try ax.plot_surface.

EDIT

After discussions with the OP, we found out that the data was given in 1D column vectors, but plot_surface expects 2D arrays. The data was grouped by x values, where each x value has 701 increasing values of t. The data had to be reshaped into 2D arrays like so:

x = x.reshape((-1, 701))
t = t.reshape((-1, 701))
u = u.reshape((-1, 701))

Then, to get the gradient requires specifying a colormap:

ax.plot_surface(x, t, u, cmap=pylab.get_cmap('jet'))

Where the 'jet' colormap is requested. A list of colormaps with matplotlib is available here.

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the plot then comes up blank. –  dustin May 21 '13 at 2:30
    
Are your input arrays each 1D or 2D? If they are 1D, you will have to convert them to 2D. Take a look at how they do it here (this is the source for the plot in the link I gave). –  SethMMorton May 21 '13 at 2:39
    
I suppose I should have asked, is this a surface or 3D line you need to plot? –  SethMMorton May 21 '13 at 2:40
    
it is a bunch of points that make up a surface. I will add an image of it. –  dustin May 21 '13 at 2:41
    
I see. Since it is a surface, at least the Z-axis data set is 2D, correct? I can include in my answer how to convert 1D X and Y data points to 2D if you need. –  SethMMorton May 21 '13 at 2:44

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