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The selection of neural models of nonlinear dynamical systems by statistical tests

机译:通过统计检验选择非线性动力系统的神经模型

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摘要

A procedure for the selection of neural models of dynamical processes is presented. It uses statistical tests at various levels of model reduction, in order to provide optimal tradeoffs between accuracy and parsimony. The efficiency of the method is illustrated by the modeling of a highly nonlinear NARX process.
机译:提出了选择动力学过程神经模型的程序。它在模型简化的各个级别上使用统计测试,以在准确性和简约性之间提供最佳折衷。该方法的效率通过高度非线性的NARX过程的建模来说明。

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