Check if values in a set are in a numpy array in python
I want to check if a NumPyArray has values in it that are in a set, and if so set that area in an array = 1. If not set a keepRaster = 2.
numpyArray = #some
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In versions 1.4 and higher, numpy provides the in1d function.
>>> test = np.array([0, 1, 2, 5, 0]) >>> states = [0, 2] >>> np.in1d(test, states) array([ True, False, True, False, True], dtype=bool)You can use that as a mask for assignment.
>>> test[np.in1d(test, states)] = 1 >>> test array([1, 1, 1, 5, 1])Here are some more sophisticated uses of numpy's indexing and assignment syntax that I think will apply to your problem. Note the use of bitwise operators to replace
if-based logic:>>> numpy_array = numpy.arange(9).reshape((3, 3)) >>> confused_array = numpy.arange(9).reshape((3, 3)) % 2 >>> mask = numpy.in1d(numpy_array, repeat_set).reshape(numpy_array.shape) >>> mask array([[False, False, False], [ True, False, True], [ True, False, True]], dtype=bool) >>> ~mask array([[ True, True, True], [False, True, False], [False, True, False]], dtype=bool) >>> numpy_array == 0 array([[ True, False, False], [False, False, False], [False, False, False]], dtype=bool) >>> numpy_array != 0 array([[False, True, True], [ True, True, True], [ True, True, True]], dtype=bool) >>> confused_array[mask] = 1 >>> confused_array[~mask & (numpy_array == 0)] = 0 >>> confused_array[~mask & (numpy_array != 0)] = 2 >>> confused_array array([[0, 2, 2], [1, 2, 1], [1, 2, 1]])Another approach would be to use
numpy.where, which creates a brand new array, using values from the second argument wheremaskis true, and values from the third argument wheremaskis false. (As with assignment, the argument can be a scalar or an array of the same shape asmask.) This might be a bit more efficient than the above, and it's certainly more terse:>>> numpy.where(mask, 1, numpy.where(numpy_array == 0, 0, 2)) array([[0, 2, 2], [1, 2, 1], [1, 2, 1]])
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