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Reconstructed dynamics and chaotic signal modeling

机译:重建动力学和混沌信号建模

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A nonlinear AR model is derived from the reconstructed dynamics of a signal. The underlying system is assumed to be nonlinear, autonomous, and deterministic. In this formulation, the output error scheme is shown to be more suitable than the equation error scheme in training a network as a nonlinear AR model of the signal. A method to incorporate the information of the dynamical invariants in signal modeling is proposed.
机译:非线性AR模型源自信号的重建动态。底层系统被认为是非线性,自主和确定性的。在该配方中,输出误差方案被示出比训练网络作为信号的非线性AR模型更适合于训练网络的等式误差方案。提出了一种结合信号建模中动态不变性信息的方法。

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