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Documenting caveats of SimpleKernel #520

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@sethaxen

The docs recommend SimpleKernel for building ones own kernel using Distances.jl. They should probably here also note that not every PreMetric yields a positive-definite kernel.

In particular, as Theorem 1 of https://www.cv-foundation.org/openaccess/content_cvpr_2015/papers/Feragen_Geodesic_Exponential_Kernels_2015_CVPR_paper.pdf notes, the geodesic distance for any "non-flat" manifold does not yield a positive-definite kernel when used in a squared exponential kernel, which would mean e.g. Distances.SphericalAngle will not yield a PD kernel.

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