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Gradient methods for the optimization of dynamical systems containing neural networks

IEEE Transactions on Neural Networks · 1991 · Vol. 2(2) · pp. 252–262
Kumpati S. NarendraK. Parthasarathy

Abstract

An extension of the backpropagation method, termed dynamic backpropagation, which can be applied in a straightforward manner for the optimization of the weights (parameters) of multilayer neural networks is discussed. The method is based on the fact that gradient methods used in linear dynamical systems can be combined with backpropagation methods for neural networks to obtain the gradient of a performance index of nonlinear dynamical systems. The method can be applied to any complex system which can be expressed as the interconnection of linear dynamical systems and multilayer neural networks. To facilitate the practical implementation of the proposed method, emphasis is placed on the diagrammatic representation of the system which generates the gradient of the performance function.

Neural Networks and ApplicationsControl Systems and IdentificationSensor Technology and Measurement SystemsBackpropagationArtificial neural networkComputer scienceDynamical systems theoryGradient methodNonlinear systemRepresentation (politics)Linear dynamical systemActivation functionArtificial intelligence
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646
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References
Identification and control of dynamical systems using neural networks
IEEE Transactions on Neural Networks · 1990 · 7,989 citations
Backpropagation through time: what it does and how to do it
Proceedings of the IEEE · 1990 · 4,849 citations
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