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      System identification of nonlinear state-space models

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      Automatica
      Elsevier BV

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          Identification and control of dynamical systems using neural networks.

          It is demonstrated that neural networks can be used effectively for the identification and control of nonlinear dynamical systems. The emphasis is on models for both identification and control. Static and dynamic backpropagation methods for the adjustment of parameters are discussed. In the models that are introduced, multilayer and recurrent networks are interconnected in novel configurations, and hence there is a real need to study them in a unified fashion. Simulation results reveal that the identification and adaptive control schemes suggested are practically feasible. Basic concepts and definitions are introduced throughout, and theoretical questions that have to be addressed are also described.
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            The Monte Carlo Method

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              Monte Carlo Smoothing for Nonlinear Time Series

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                Author and article information

                Journal
                Automatica
                Automatica
                Elsevier BV
                00051098
                January 2011
                January 2011
                : 47
                : 1
                : 39-49
                Article
                10.1016/j.automatica.2010.10.013
                72ce6e56-01b0-4e62-ae38-bda72aff20c2
                © 2011

                http://www.elsevier.com/tdm/userlicense/1.0/

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