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In matrix multiplication, assume that the A is a 3 x 2 matrix (3 rows, 2 columns ) and B is a 2 x 4 matrix (2 rows, 4 columns ), then if a matrix C = A * B, then C should have 3 rows and 4 columns. Why does numpy not do this multiplication? When I try the following code I get an error : ValueError: operands could not be broadcast together with shapes (3,2) (2,4)

a = np.ones((3,2))
b = np.ones((2,4))
print a*b

I try with transposing A and B and alwasy get the same answer. Why? How do I do the matrix multiplication in this case?

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marked as duplicate by Saullo Castro, RAS, falsetru, Roman C, torazaburo Aug 19 '13 at 16:29

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1 Answer 1

up vote 8 down vote accepted

The * operator for numpy arrays is element wise multiplication (similar to the Hadamard product for arrays of the same dimension), not matrix multiply.

For example:

>>> a
array([[0],
       [1],
       [2]])
>>> b
array([0, 1, 2])
>>> a*b
array([[0, 0, 0],
       [0, 1, 2],
       [0, 2, 4]])

For matrix multiply with numpy arrays:

>>> a = np.ones((3,2))
>>> b = np.ones((2,4))
>>> np.dot(a,b)
array([[ 2.,  2.,  2.,  2.],
       [ 2.,  2.,  2.,  2.],
       [ 2.,  2.,  2.,  2.]])

In addition you can use the matrix class:

>>> a=np.matrix(np.ones((3,2)))
>>> b=np.matrix(np.ones((2,4)))
>>> a*b
matrix([[ 2.,  2.,  2.,  2.],
        [ 2.,  2.,  2.,  2.],
        [ 2.,  2.,  2.,  2.]])

More information on broadcasting numpy arrays can be found here, and more information on the matrix class can be found here.

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One should be careful with the sparse.linalg numpy extension that defines the "LinearOperator" class. In this class, the "*" operator is interpreted as the usual matrix dot product. –  Guillaume Aug 26 at 15:28

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