Literature DB >> 18267832

Radial basis function neural network for approximation and estimation of nonlinear stochastic dynamic systems.

S S Elanayar V T1, Y C Shin.   

Abstract

This paper presents a means to approximate the dynamic and static equations of stochastic nonlinear systems and to estimate state variables based on radial basis function neural network (RBFNN). After a nonparametric approximate model of the system is constructed from a priori experiments or simulations, a suboptimal filter is designed based on the upper bound error in approximating the original unknown plant with nonlinear state and output equations. The procedures for both training and state estimation are described along with discussions on approximation error. Nonlinear systems with linear output equations are considered as a special case of the general formulation. Finally, applications of the proposed RBFNN to the state estimation of highly nonlinear systems are presented to demonstrate the performance and effectiveness of the method.

Entities:  

Year:  1994        PMID: 18267832     DOI: 10.1109/72.298229

Source DB:  PubMed          Journal:  IEEE Trans Neural Netw        ISSN: 1045-9227


  3 in total

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Journal:  Cogn Neurodyn       Date:  2010-09-18       Impact factor: 5.082

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Authors:  Ching-Chia Li; Bor-Shing Lin; Sheng-Chen Wen; Yuan-Teng Liang; Hung-Yu Sung; Jhen-Hao Jhan; Bor-Shyh Lin
Journal:  IEEE J Transl Eng Health Med       Date:  2022-03-11       Impact factor: 3.316

3.  An Optimal Radial Basis Function Neural Network Enhanced Adaptive Robust Kalman Filter for GNSS/INS Integrated Systems in Complex Urban Areas.

Authors:  Yipeng Ning; Jian Wang; Houzeng Han; Xinglong Tan; Tianjun Liu
Journal:  Sensors (Basel)       Date:  2018-09-13       Impact factor: 3.576

  3 in total

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