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I have a large data set with files containing three also large single column vectors (backazimuth, frequency and power) for every day in a month. I would like to display the data on a polar plot using something like contourf. However, I am not sure how to reshape the power data into a 2D array. An example is below,

from pylab import *

z = rand(100)    # 1D

BAZ, FREQ = meshgrid(x, y)
ax = plt.subplot(111, polar=True)
contourf(BAZ, FREQ, z)       # z needs to be 2D

Any know how I can reshape z so this will work??? thanks, David

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Have a look at this question (possible duplicate). – tiago Nov 19 '12 at 12:20

1 Answer 1

up vote 0 down vote accepted

From link in tiago's comment above answer is,

z = rand(100) 

xgrid = np.linspace(x.min(), x.max(), 100)
ygrid = np.linspace(y.min(), y.max(), 100)
xgrid, ygrid = np.meshgrid(xgrid, ygrid)
zgrid = griddata(x,y,z, xgrid, ygrid)

ax = plt.subplot(111, polar=True)
contourf(xgrid, ygrid, zgrid) 

Thanks D

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