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Learning dynamical systems from data: a simple cross-validation perspective
Published 9 Jul 2020 in cs.LG, math.DS, nlin.CD, stat.CO, and stat.ML | (2007.05074v1)
Abstract: Regressing the vector field of a dynamical system from a finite number of observed states is a natural way to learn surrogate models for such systems. We present variants of cross-validation (Kernel Flows \cite{Owhadi19} and its variants based on Maximum Mean Discrepancy and Lyapunov exponents) as simple approaches for learning the kernel used in these emulators.
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