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as a replacement value for another within an operation with arrays, or how to search within an array and replace a value by another

for example:

array ([[NaN, 1., 1., 1., 1., 1., 1.]
       [1., NaN, 1., 1., 1., 1., 1.]
       [1., 1., NaN, 1., 1., 1., 1.]
       [1., 1., 1., NaN, 1., 1., 1.]
       [1., 1., 1., 1., NaN, 1., 1.]
       [1., 1., 1., 1., 1., NaN, 1.]
       [1., 1., 1., 1., 1., 1., NaN]])

where it can replace NaN by 0. thanks for any response

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2 Answers 2

up vote 17 down vote accepted

You could do this:

import numpy as np
x=np.array([[np.NaN, 1., 1., 1., 1., 1., 1.],[1., np.NaN, 1., 1., 1., 1., 1.],[1., 1., np.NaN, 1., 1., 1., 1.], [1., 1., 1., np.NaN, 1., 1., 1.], [1., 1., 1., 1., np.NaN, 1., 1.],[1., 1., 1., 1., 1., np.NaN, 1.], [1., 1., 1., 1., 1., 1., np.NaN]])
x[np.isnan(x)]=0

np.isnan(x) returns a boolean array which is True wherever x is NaN. x[ boolean_array ] = 0 employs fancy indexing to assign the value 0 wherever the boolean array is True.

For a great introduction to fancy indexing and much more, see also the numpybook.

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NameError: name 'x' is not defined not work –  ricardo Nov 25 '09 at 22:21
    
@ricardo: Let x be your numpy array. –  unutbu Nov 25 '09 at 22:25
    
hi, excellent response, thanks –  ricardo Nov 26 '09 at 20:04
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these days there is the special function:

a = numpy.nan_to_num(a)
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Just saved my bacon while doing in Inverse Filter. [image-processing] –  David Poole Oct 25 '11 at 4:17
    
But this will involve a temporary variable with same type and shape as a, it will matter on large matrices. –  dashesy Jan 21 at 3:44
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