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I am trying to use the example given here to produce contour plots of a function that I use. I have a problem using numpy.meshgrid with this function as it gives me ValueError: setting an array element with a sequence. So I produced instead a list that is taking the value for the different points in the matrix in this fashion:

n_range = numpy.linspace(1,10,100)
mass_range = numpy.logspace(1,6,100)
mu = []
for n in n_range:
    for mass in mass_range:
        mu.append(function(n,mass))
n_range, mass_range = numpy.meshgrid(n_range, mass_range)

So now mu has entries that correspond to

mu[100*i + j] = function(n_range[i], mass_range[j])

How can I now organize another variable that will take the values from mu and will give the right form so I can plot this variable in respect to the numpy.meshgrid that I have created?

As first attempt I tried to use this function:

def plot_contour_mu():
    n_range = np.linspace(1,10,10)
    mass_range = np.logspace(1,6,10)
    n_range, mass_range = np.meshgrid(n_range, mass_range)
    mu = mu0_n_mDM(n_range, mass_range)

But this resulted in the above mentioned ValueError, that was pointing to where I calculate the value for mu0_n_nDM, specifically to the line :

File "mucalc.py", line 109, in mu_0_n_nDM
    return C * B * integrate.romberg(integrand,z_min,z_i)
File "/usr/lib/python2.7/dist-packages/scipy/integrate/quadrature.py", line 653, in romberg
    ordsum = ordsum + _difftrap(vfunc, interval, n)
File "/usr/lib/python2.7/dist-packages/scipy/integrate/quadrature.py", line 527, in _difftrap
    s = sum(function(points),0)
File "/usr/lib/python2.7/dist-packages/scipy/integrate/quadrature.py", line 110, in vfunc
    output[0] = y0
share|improve this question
    
Maybe post how you use meshgrid? It'll be easier to fix that than to write it anew ;) –  Aleksander Lidtke May 1 at 12:04
    
I added now the piece of code I used in the previous attempt –  Ohm May 1 at 15:55

2 Answers 2

up vote 1 down vote accepted

I think you just need to reshape the mu by mu=np.array(mu).reshape(100,100), and plot it by plt.contourf(n_range,mass_range,mu.T)

mu=np.array(mu).reshape(100,100)
plt.contourf(n_range,mass_range,mu.T)
plt.colorbar()

enter image description here

share|improve this answer

Take a look at the tutorial for 3d plotting - http://matplotlib.org/1.3.1/mpl_toolkits/mplot3d/tutorial.html

And the docs for numpy meshgrid to see what type of object it returns - http://docs.scipy.org/doc/numpy/reference/generated/numpy.meshgrid.html

Your n_range, mass_range are two dimensional numpy arrays. Your mu must be the same. This can be accomplished by passing n_range and mass_range as arguments to your function (assuming your function can operate on numpy arrays).

share|improve this answer
    
But what if my function cannot operate on numpy arrays? (it uses scipy.integrate.romberg method, and this gives an error when I try to give it as input an array) –  Ohm May 1 at 15:35
1  
Then you may need to reshape mu (see CT Zhu's answer). Just keep in mind that looping through elements is generally much slower than operating on numpy datatypes with numpy/scipy methods. –  Alex May 1 at 15:58

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