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I am new to Cython and encountered this code snippet:

import numpy as np
cimport numpy as np

testarray = np.arange(5)
cdef np.ndarray[np.int_t, ndim=1] testarray1 = testarray.copy()
cdef np.ndarray[np.float_t, ndim=1] testarray2 = testarray.astype(np.float)

During compilation, it said Buffer types only allowed as function local variables. However, I am using .copy() or .astype() which is returning not a memoryview, but a copy. Why is this still happening? How can I get around this?

Thanks!

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1  
testarray itself is a buffer. So why not put everything into a function and call it from Python? –  Midnighter May 23 at 21:06
    
@Midnighter Thanks! I was trying to define some global constants to save several lines of code... And I never thought that testarray is a buffer itself before. Thanks for the input - I'd go with more verbose code then I guess! :) –  Shawn Wang May 23 at 21:08

1 Answer 1

When you define an array in cython using np.ndarray[Type, dim], that is accessing the python buffer interface, and those can't be set as module level variables. This is a separate issue from views vs copies of numpy array data.

Typically if I want to have an array as a module level variable (i.e not local to a method), I define a typed memoryview and then set it within a method using something like (untested):

import numpy as np
cimport numpy as np

cdef np.int_t[:] testarray1

def init_arrays(np.int_t[:] testarray):
    global testarray1
    testarray1 = testarray.copy()
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Thank you so much Josh! It is very helpful. However, the memoryviewslice would not have ndarray methods such as ndarray.mean() or ndarray.max()... Any chance you know a workaround? –  Shawn Wang May 24 at 5:19
1  
As long as it doesn't incur too much overhead for what you're doing, you can use np.asarray to coerce the typed memoryview to a numpy array docs.cython.org/src/userguide/… within the method that you are using the memoryview in. –  JoshAdel May 24 at 13:55
    
Excellent! That is awesome functionality that I didn't notice. Thank you so much Josh! –  Shawn Wang May 24 at 18:35

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