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So I wish to create a log(y) vs log(x) of the following function in python. I am not sure how the range (w) should be composed to get a good graph. For now I have left it blank.

import numpy as np
import matplotlib.pyplot as plt

w =  
y = 1/(1+2.56e-8*(w)^2)

plt.plot(log(w),log(y));

Okay so now I have to do one more plot but its a little bit more complicated.

w = np.arange(1e3, 1e7, 1e3)

z = 1/ (((5.89824e-15 (w ** 4))+(1-2.56e-8 (w ** 2))) ** 0.5)
b = plt.loglog(w, z);

This give me an error:

    z = 1/ (((5.89824e-15 (w ** 4))+(1-2.56e-8 (w ** 2))) ** 0.5)
TypeError: 'float' object is not callable

Never mind I fixed it.

share|improve this question
    
Are you aware of the function plt.loglog? –  Warren Weckesser Oct 7 '12 at 14:47
    
I wasn't. The fellow below showed it to me. –  Shagster_84 Oct 7 '12 at 16:52

1 Answer 1

up vote 2 down vote accepted

You can use the numpy.arange function to get a numpy version of range. A reasonable range for this function is:

w = np.arange(1e3, 1e7, 1e3)

(That is, going from 1000 to 10000000 in steps of 1000). However, note that in order to make Python know you're trying to use exponentiation rather than the bitwise xor operator, you should change your line to:

y = 1/(1+2.56e-8*(w ** 2))

Then, if you make a log-log plot, you end up with:

plt.loglog(w, y)

enter image description here

share|improve this answer
    
Thanks, that worked. I wasn't aware of the loglog() function. –  Shagster_84 Oct 7 '12 at 17:07
    
It may also be worth considering numpy.logspace for creating w. –  Mark Dickinson Oct 7 '12 at 17:25

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