Source code for gpjax.kernels.computations.eigen

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import beartype.typing as tp
from jaxtyping import (
    Float,
    Num,
)

from gpjax.kernels.computations.base import AbstractKernelComputation
from gpjax.typing import Array

Kernel = tp.TypeVar(
    "Kernel",
    bound="gpjax.kernels.non_euclidean.graph.GraphKernel",
)


[docs] class EigenKernelComputation(AbstractKernelComputation): r"""Eigen kernel computation class. Kernels who operate on an eigen-decomposed structure should use this computation object. """ def _cross_covariance( self, kernel: Kernel, x: Num[Array, "N D"], y: Num[Array, "M D"] ) -> Float[Array, "N M"]: return kernel(x, y)