Homogeneous nonlinear event-triggered extended state observers for uncertain MIMO random systems

In this paper, homogeneous nonlinear event-triggered extended state observers (ESOs) constructed from finite-time stable systems are designed for a class of uncertain multi-input multi-output (MIMO) random systems. Each subsystem is subject to the nonlinear coupling effect of nonlinear unmodeled dyn...

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Published inCommunications in nonlinear science & numerical simulation Vol. 148; p. 108827
Main Authors Xiao, Zijian, Liu, Xiaohua, Wu, Ze-Hao, Zeng, Pengyu, Liang, Zhongwen
Format Journal Article
LanguageEnglish
Published Elsevier B.V 01.09.2025
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ISSN1007-5704
DOI10.1016/j.cnsns.2025.108827

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Abstract In this paper, homogeneous nonlinear event-triggered extended state observers (ESOs) constructed from finite-time stable systems are designed for a class of uncertain multi-input multi-output (MIMO) random systems. Each subsystem is subject to the nonlinear coupling effect of nonlinear unmodeled dynamics, bounded noise, and colored noise, which is regarded as the random total disturbance. An event generator with a guaranteed positive minimum inter-execution time for every sample path solution of the random systems, is developed for the design of homogeneous nonlinear event-triggered ESO for each subsystem. The almost sure convergence of estimation errors of unmeasurable states and random total disturbance of each subsystem is demonstrated with a rigorous theoretical proof. Some numerical simulations are provided to authenticate the theoretical result. •Homogeneous nonlinear event-triggered extended state observers constructed from finite-time stable systems are designed for a class of uncertain MIMO random systems, which aim at improving estimation accuracy and saving communication/computation resources.•Each subsystem of the uncertain MIMO random systems is subject to large-scale random total disturbance including the nonlinear coupling effect of unknown dynamics between subsystems, bounded noises, and colored noises.
AbstractList In this paper, homogeneous nonlinear event-triggered extended state observers (ESOs) constructed from finite-time stable systems are designed for a class of uncertain multi-input multi-output (MIMO) random systems. Each subsystem is subject to the nonlinear coupling effect of nonlinear unmodeled dynamics, bounded noise, and colored noise, which is regarded as the random total disturbance. An event generator with a guaranteed positive minimum inter-execution time for every sample path solution of the random systems, is developed for the design of homogeneous nonlinear event-triggered ESO for each subsystem. The almost sure convergence of estimation errors of unmeasurable states and random total disturbance of each subsystem is demonstrated with a rigorous theoretical proof. Some numerical simulations are provided to authenticate the theoretical result. •Homogeneous nonlinear event-triggered extended state observers constructed from finite-time stable systems are designed for a class of uncertain MIMO random systems, which aim at improving estimation accuracy and saving communication/computation resources.•Each subsystem of the uncertain MIMO random systems is subject to large-scale random total disturbance including the nonlinear coupling effect of unknown dynamics between subsystems, bounded noises, and colored noises.
ArticleNumber 108827
Author Xiao, Zijian
Zeng, Pengyu
Liu, Xiaohua
Wu, Ze-Hao
Liang, Zhongwen
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Keywords Extended state observer
State estimation
Colored noise
Multi-input multi-output random systems
Event-triggering mechanism
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Snippet In this paper, homogeneous nonlinear event-triggered extended state observers (ESOs) constructed from finite-time stable systems are designed for a class of...
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elsevier
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Publisher
StartPage 108827
SubjectTerms Colored noise
Event-triggering mechanism
Extended state observer
Multi-input multi-output random systems
State estimation
Title Homogeneous nonlinear event-triggered extended state observers for uncertain MIMO random systems
URI https://dx.doi.org/10.1016/j.cnsns.2025.108827
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