I found out in this helpful answer that plt.scatter()
and plt.plot()
behave differently when a logrithmic scale is used on the y axis.
With plot
, I can change to log any time before I use plt.show()
, but log has to be set up-front, before the scatter method is used.
Is this just a historical and irreversible artifact in matplotlib, or is this in the 'unexpected behavior' category?
import matplotlib.pyplot as plt
X = [0.997, 2.643, 0.354, 0.075, 1.0, 0.03, 2.39, 0.364, 0.221, 0.437]
Y = [15.487507, 2.320735, 0.085742, 0.303032, 1.0, 0.025435, 4.436435,
0.025435, 0.000503, 2.320735]
plt.figure()
plt.subplot(2,2,1)
plt.scatter(X, Y)
plt.xscale('log')
plt.yscale('log')
plt.title('scatter - scale last')
plt.subplot(2,2,2)
plt.plot(X, Y)
plt.xscale('log')
plt.yscale('log')
plt.title('plot - scale last')
plt.subplot(2,2,3)
plt.xscale('log')
plt.yscale('log')
plt.scatter(X, Y)
plt.title('scatter - scale first')
plt.subplot(2,2,4)
plt.xscale('log')
plt.yscale('log')
plt.plot(X, Y)
plt.title('plot - scale first')
plt.show()
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