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Estimate the covariance matrix.
Except for the handling of missing data this function does the same as
numpy.cov. For more details and examples, see numpy.cov.
By default, masked values are recognized as such. If x and y have the
same shape, a common mask is allocated: if x[i,j] is masked, then
y[i,j] will also be masked.
Setting allow_masked to False will raise an exception if values are
missing in either of the input arrays.
A 1-D or 2-D array containing multiple variables and observations. Each row of x represents a variable, and each column a single observation of all those variables. Also see rowvar below.
An additional set of variables and observations. y has the same shape as x.
If rowvar is True (default), then each row represents a variable, with observations in the columns. Otherwise, the relationship is transposed: each column represents a variable, while the rows contain observations.
Default normalization (False) is by (N-1), where N is the
number of observations given (unbiased estimate). If bias is True,
then normalization is by N. This keyword can be overridden by
the keyword ddof in numpy versions >= 1.5.
If True, masked values are propagated pair-wise: if a value is masked in x, the corresponding value is masked in y. If False, raises a ValueError exception when some values are missing.
If not None normalization is by (N - ddof), where N is
the number of observations; this overrides the value implied by
bias. The default value is None.
Raised if some values are missing and allow_masked is False.
See also
Examples
>>> import numpy as np
>>> x = np.ma.array([[0, 1], [1, 1]], mask=[0, 1, 0, 1])
>>> y = np.ma.array([[1, 0], [0, 1]], mask=[0, 0, 1, 1])
>>> np.ma.cov(x, y)
masked_array(
data=[[--, --, --, --],
[--, --, --, --],
[--, --, --, --],
[--, --, --, --]],
mask=[[ True, True, True, True],
[ True, True, True, True],
[ True, True, True, True],
[ True, True, True, True]],
fill_value=1e+20,
dtype=float64)
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