46

Is there an equivalent to the MATLAB

 size()

command in Numpy?

In MATLAB,

>>> a = zeros(2,5)
 0 0 0 0 0
 0 0 0 0 0
>>> size(a)
 2 5

In Python,

>>> a = zeros((2,5))
>>> 
array([[ 0.,  0.,  0.,  0.,  0.],
       [ 0.,  0.,  0.,  0.,  0.]])

>>> ?????
3
  • 2
    Have a look at one of many such pages: scipy.org/NumPy_for_Matlab_Users
    – Benjamin
    Jun 22, 2012 at 14:19
  • I'm really curious why shape is an attribute of arrays and a function in the numpy model but not a method of array objects. Is there an obvious answer? Does it feel like it merits a separate SO question, or is it too potentially opinion-based?
    – Ben Bolker
    Feb 25, 2015 at 18:13
  • Here is the updated NumPy for Matlab Users link. Mar 14, 2019 at 18:25

3 Answers 3

68

This is called the "shape" in NumPy, and can be requested via the .shape attribute:

>>> a = zeros((2, 5))
>>> a.shape
(2, 5)

If you prefer a function, you could also use numpy.shape(a).

2
  • We can switch freely between np.method(x) and x.method when x is a numpy object?
    – Guimoute
    Jul 24, 2018 at 13:22
  • 2
    @Guimoute It depends. First, shape isn't a method, it's a property. And for many methods there are corresponding module-level functions, but not for all of them. You need to consult the documentation for details. Jul 25, 2018 at 12:19
13

Yes numpy has a size function, and shape and size are not quite the same.

Input

import numpy as np
data = [[1, 2, 3, 4], [5, 6, 7, 8]]
arrData = np.array(data)

print(data)
print(arrData.size)
print(arrData.shape)

Output

[[1, 2, 3, 4], [5, 6, 7, 8]]

8 # size

(2, 4) # shape

2

[w,k] = a.shape will give you access to individual sizes if you want to use it for loops like in matlab

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