Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I've got a numpy array with shape 1001, 2663. Array contains values of 12 and 127, now I would like to count the number of a specific value, in this case 12. So I try using bincount, but that's doing strange. See what I get:

>>> x.shape
(1001, 2663)
>>> np.bincount(x)
Traceback (most recent call last):
  File "<interactive input>", line 1, in <module>
ValueError: object too deep for desired array
>>> y = np.reshape(x, 2665663)
>>> y.shape
(2665663,)
>>> np.bincount(y)
array([      0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,  529750,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0,       0,       0,       0,       0,       0,       0,
             0, 2135913])
>>> np.nonzero(np.bincount(y))
(array([ 12, 127]),)

The value 529750 is probably the frequency of the values 12 and 2135913 is probably the frequency of value 127, but it won't tell me this. Also the shape of the matrix is strange.

If I try sum with where also wont give me right value:

>>> np.sum(np.where(x==12))
907804649

I'm out of options: dear prestigious uses of SO, how to get the frequency of a specific value in a numpy matrix?

EDIT

Smaller example. But still get results that I don't really understand. Why the zero?

>>> m = np.array([[1,1,2],[2,1,1],[2,1,2]])
>>> np.bincount(m)
Traceback (most recent call last):
  File "<interactive input>", line 1, in <module>
ValueError: object too deep for desired array
>>> n = np.reshape(m, 9)
>>> n
array([1, 1, 2, 2, 1, 1, 2, 1, 2])
>>> np.bincount(n)
array([0, 5, 4])

I think I get it. The zero in [0,5,4] means there are no 0 values in matrix. So in the my real situation, the 529750 is the 12th value in the matrix, matrix value 0-11 are all '0', than get's lots of 0 values (values 13-126) and then value 127 gives frequency of 2135913. But how to get the frequency as single value of a specific number in a numpy array?

share|improve this question
    
I would suggest to try with a smaller (doable by hand) example to understand what's happening. –  hivert Jul 23 '13 at 10:39

3 Answers 3

up vote 1 down vote accepted

You want the number of occurrences of a simple number in your data array? Try

np.bincount(data)[number]
share|improve this answer
    
Just discovered by myself as well. Thanks for your response! But that requires me to first reshape the matrix to a 1D array. Which is no problem of course. As long as my computer has to do it and not me. –  Mattijn Jul 23 '13 at 11:08

bincount returns an array where the frequency of x is bincount[x], It requires a flat input so you can use bincount(array.ravel()) to handle cases when array might not be flat.

If your array only has a few unique values, ie 2 and 127, it might be worth reducing the array using unique before calling bincount ie:

import numpy as np
def frequency(array):
    values, array = np.unique(array, return_inverse=True)
    return values, bincount(array.ravel())

array = np.array([[2, 2, 2],
                  [127, 127, 127],
                  [2, 2, 2]])
frequency(array)
# array([  2, 127]), array([6, 3])

Lastly you can do

np.sum(array == 12)

Notice the difference between array == 12 and np.where(array == 12):

array = np.array([12, 0, 0, 12])
array == 12
# array([ True, False, False,  True], dtype=bool)
np.where(array == 12)
#(array([0, 3]),)

Clearly summing over the second is not going to give you what you want.

share|improve this answer

You can use the 'Counter' from collections module.

from collections import Counter
import numpy as np
my_array=np.asarray(10*np.random.random((10,10)),'int')
my_dict=Counter()
print '\n The Original array \n ', my_array

for i in my_array:
    my_dict=my_dict+Counter(i)

print '\n The Counts \n', my_dict

The O/P is like this

The Original array [[6 8 3 7 6 9 2 2 3 2] [7 0 1 1 8 0 8 2 6 3] [0 4 0 1 8 7 6 1 1 1] [9 2 9 2 5 9 9 6 6 7] [5 1 1 0 3 0 2 7 6 2] [6 5 9 6 4 7 5 4 8 0] [7 0 8 7 1 8 5 1 3 2] [6 7 7 0 8 3 6 5 6 6] [0 7 1 6 1 2 7 8 4 1] [0 8 6 7 1 7 3 3 8 8]]

The Counts Counter ({6: 15, 1: 14, 7: 14, 8: 12, 0: 11, 2: 10, 3: 8, 5: 6, 9: 6, 4: 4})

You can try the most_common() method which gives the most common entries If you want the occurrence of a specific element just access just like dictionary.

Example: my_dict[6] will give 15 for the above code

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.