bundles / numpy 2.5.0.dev0+git20251130.2de293a / numpy / nanvar
_ArrayFunctionDispatcher
numpy:nanvar
source: /dev/numpy/build-install/usr/lib/python3.14/site-packages/numpy/lib/_nanfunctions_impl.py :1688
Signature
def nanvar ( a , axis = None , dtype = None , out = None , ddof = 0 , keepdims = <no value> , * , where = <no value> , mean = <no value> , correction = <no value> ) Summary
Compute the variance along the specified axis, while ignoring NaNs.
Extended Summary
Returns the variance of the array elements, a measure of the spread of a distribution. The variance is computed for the flattened array by default, otherwise over the specified axis.
For all-NaN slices or slices with zero degrees of freedom, NaN is returned and a RuntimeWarning is raised.
Parameters
a: array_likeArray containing numbers whose variance is desired. If
ais not an array, a conversion is attempted.axis: {int, tuple of int, None}, optionalAxis or axes along which the variance is computed. The default is to compute the variance of the flattened array.
dtype: data-type, optionalType to use in computing the variance. For arrays of integer type the default is
float64; for arrays of float types it is the same as the array type.out: ndarray, optionalAlternate output array in which to place the result. It must have the same shape as the expected output, but the type is cast if necessary.
ddof: {int, float}, optional"Delta Degrees of Freedom": the divisor used in the calculation is
N - ddof, whereNrepresents the number of non-NaN elements. By defaultddofis zero.keepdims: bool, optionalIf this is set to True, the axes which are reduced are left in the result as dimensions with size one. With this option, the result will broadcast correctly against the original
a.where: array_like of bool, optionalElements to include in the variance. See
~numpy.ufunc.reducefor details.mean: array_like, optionalProvide the mean to prevent its recalculation. The mean should have a shape as if it was calculated with
keepdims=True. The axis for the calculation of the mean should be the same as used in the call to this var function.correction: {int, float}, optionalArray API compatible name for the
ddofparameter. Only one of them can be provided at the same time.
Returns
variance: ndarray, see dtype parameter aboveIf
outis None, return a new array containing the variance, otherwise return a reference to the output array. If ddof is >= the number of non-NaN elements in a slice or the slice contains only NaNs, then the result for that slice is NaN.
Notes
The variance is the average of the squared deviations from the mean, i.e., var = mean(abs(x - x.mean())**2).
The mean is normally calculated as x.sum() / N, where N = len(x). If, however, ddof is specified, the divisor N - ddof is used instead. In standard statistical practice, ddof=1 provides an unbiased estimator of the variance of a hypothetical infinite population. ddof=0 provides a maximum likelihood estimate of the variance for normally distributed variables.
Note that for complex numbers, the absolute value is taken before squaring, so that the result is always real and nonnegative.
For floating-point input, the variance is computed using the same precision the input has. Depending on the input data, this can cause the results to be inaccurate, especially for float32 (see example below). Specifying a higher-accuracy accumulator using the dtype keyword can alleviate this issue.
For this function to work on sub-classes of ndarray, they must define sum with the kwarg keepdims
Examples
import numpy as np a = np.array([[1, np.nan], [3, 4]])✓
np.nanvar(a) np.nanvar(a, axis=0) np.nanvar(a, axis=1)✗
See also
- mean
Average
- nanmean
- nanstd
- std
Standard deviation
- ufuncs-output-type
ref
- var
Variance while not ignoring NaNs
Aliases
-
numpy.nanvar