Optimal state and fault estimation for two-dimensional discrete systems

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31
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SCOPUS

35

초록

An optimal state and fault estimation scheme is proposed for two-dimensional discrete systems subject to either deterministic disturbances or stochastic disturbances (noises). A direct solution to the deterministic estimation problem is obtained first, based on a well-designed regularized least squares problem with a dynamic constraint of a two-dimensional singular system, augmented from the original system state and unknown disturbance. After proving the solution equivalence between the deterministic scenario and the stochastic one in the sense of optimal state and fault estimation, a unified solution, based on a Riccati-like equation recursion, can be established by weighting parameterization for two-dimensional systems in deterministic and stochastic cases. The unified solution also works as the optimal state observer and generalized Kalman filter for two-dimensional singular systems. Generalization discussions concerning different system descriptions with respect to fault as well as the implementations of the proposed estimator are also presented. Simulation illustrates the effectiveness of the proposed method. (C) 2020 Elsevier Ltd. All rights reserved.

키워드

Optimal estimationTwo-dimensional systemsState and fault estimationLeast squares2-D SINGULAR SYSTEMSJUMP MODES BEHAVIORSTABILITY ANALYSISSWITCHED SYSTEMSOBSERVERSDESIGNSTABILIZATIONFILTER
제목
Optimal state and fault estimation for two-dimensional discrete systems
저자
Zhao, DongLi, YueyangAhn, Choon KiDing, Steven X.
DOI
10.1016/j.automatica.2020.108856
발행일
2020-05
유형
Article
저널명
Automatica
115