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I'm not sure what I'm doing wrong in building up an array. I do some calculations according to which my completed array, z, should look like this:

[[  -2.00000000e+000   2.00000000e+000]
 [  -2.00000000e+000   2.00000000e+000]
 [   2.00000000e+000  -2.00000000e+000]
 [  -2.00000000e+000   2.00000000e+000]
 [   2.00000000e+000  -2.00000000e+000]
 [  -2.00000000e+000   2.00000000e+000]
 [  -2.00000000e+000   2.00000000e+000]
 [   2.00000000e+000  -2.00000000e+000]
 [   2.00000000e+000  -2.00000000e+000]
 [  -2.00000000e+000   2.00000000e+000]
 [  -2.00000000e+000   2.00000000e+000]
 [  -2.00000000e+000   2.00000000e+000]
 [   2.00000000e+000  -2.00000000e+000]
 [   2.00000000e+000  -2.00000000e+000]
 [   2.00000000e+000  -2.00000000e+000]
 [   2.00000000e+000  -2.00000000e+000]
 [   2.00000000e+000  -2.00000000e+000]
 [   2.00000000e+000  -2.00000000e+000]
 [  -2.00000000e+000   2.00000000e+000]
 [  -2.00000000e+000   2.00000000e+000]]

But my array actually turns out with the entire first column being zeros, like this:

[[  5.28650241e-322   2.00000000e+000]
 [  0.00000000e+000   2.00000000e+000]
 [  0.00000000e+000  -2.00000000e+000]
 [  0.00000000e+000   2.00000000e+000]
 [  0.00000000e+000  -2.00000000e+000]
 [  0.00000000e+000   2.00000000e+000]
 [  0.00000000e+000   2.00000000e+000]
 [  0.00000000e+000  -2.00000000e+000]
 [  0.00000000e+000  -2.00000000e+000]
 [  0.00000000e+000   2.00000000e+000]
 [  0.00000000e+000   2.00000000e+000]
 [  0.00000000e+000   2.00000000e+000]
 [  0.00000000e+000  -2.00000000e+000]
 [  0.00000000e+000  -2.00000000e+000]
 [  0.00000000e+000  -2.00000000e+000]
 [  0.00000000e+000  -2.00000000e+000]
 [  0.00000000e+000  -2.00000000e+000]
 [  0.00000000e+000  -2.00000000e+000]
 [  0.00000000e+000   2.00000000e+000]
 [  0.00000000e+000   2.00000000e+000]]

I don't understand where I'm going wrong. Here's my code, which seems simple enough:

import sys
import numpy as np

def is_class(j, c):
    if j == c:
        return 1
    else: 
        return 0

n = 20
m = 2

weights = np.empty([n,m])
for curr_n in range(n):
    weights[curr_n,:] = 1.0/(n)

beta = np.empty([m,n])
for curr_beta in range(m):
    beta[curr_beta,:] = 1./m

y = np.array([1, 1, 0, 1, 0, 1, 1, 0, 0, 1,1,1,0,0,0,0,0,0,1,1])

# BELOW IS THE PART WHERE THERE MUST BE SOME PROBLEM

for j in range(m):    # computing working responses, z
    z = np.empty([n,m])            
    for i in range(n): 
         # the calculation below is tested and works correctly
         i_class = y[i]
         z[i][j] = (is_class(j,i_class) - beta[j][i])/((beta[j][i])*(1. - beta[j][i]))
         weights[i][j] = beta[j][i]*(1. - beta[j][i]) 
         print z[i,j] # this gives the right value that it ought to have
                      # these values can be compared with the first matrix 
                      # which I put up at the beginning of the question

print "Working responses, z:"
print z # now when I print it out, the first column is suddenly full of zeros

As you can see, there's another array that I'm calculating, called weights, but that doesn't seem to have any issues. It has all rows and columns as expected. What's wrong with the way I'm handling z?

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1  
"some calculations", eh? Well, I'm not psychic, but my guess is that those calculations don't do what you want them to do. What you want them to do seems to be a secret, though, so that's as much help as I'm able to give. –  Veedrac May 10 '14 at 9:59
    
I've changed the words on the code comments above to clarify that it's not secret... all the calculations are right there and when I print out z[i,j] it does in fact give me the right values. I've put all the code required to replicate the issue. –  user961627 May 10 '14 at 10:04
    
See, telling me it's not a secret doesn't mean I know what you're trying to do. You have some arrays you want to populate with some values. That's all I can tell. You need to put more effort into explaining what's going on. –  Veedrac May 10 '14 at 10:11
    
you can do the total calculation in a one-liner. No need for loops. Numpy can process on arrays. For example the inner loop: z[j,:] = ((j==y) - beta[j,:])/(beta[j,:]*(1-beta[j,:]) –  Daniel May 10 '14 at 10:27
1  
@user961627 Yes. –  Veedrac Jun 4 '14 at 18:36

1 Answer 1

up vote 1 down vote accepted

You are creating a new array in every j-loop-step. So only the last row will be filled in the final z

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