2021
DOI: 10.1088/1674-1056/abd7da
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state estimation for Markov jump neural networks with transition probabilities subject to the persistent dwell-time switching rule*

Abstract: We investigate the problem of ℋ ∞ state estimation for discrete-time Markov jump neural networks. The transition probabilities of the Markov chain are assumed to be piecewise time-varying, and the persistent dwell-time switching rule, as a more general switching rule, is adopted to describe this variation characteristic. Afterwards, based on the classical Lyapunov stability theory, a Lyapunov function is established, in which the information about the Markov jump feature of the system mode an… Show more

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Cited by 14 publications
(5 citation statements)
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“…Costa and do Val [4] further studied some fundamental issues of MJSs, including observability and measurability. In recent years, more topics related to MJSs, ranging from almost sure stability, [5] state estimation, [6] fault detection, [7] and dissipativity-based stabilization, [8] to sampled-data synchronization, [9] have been extensively investigated in the automation community.…”
Section: Introductionmentioning
confidence: 99%
“…Costa and do Val [4] further studied some fundamental issues of MJSs, including observability and measurability. In recent years, more topics related to MJSs, ranging from almost sure stability, [5] state estimation, [6] fault detection, [7] and dissipativity-based stabilization, [8] to sampled-data synchronization, [9] have been extensively investigated in the automation community.…”
Section: Introductionmentioning
confidence: 99%
“…Time delay phenomenon widely exists in the natural world and industrial process, such as perceptual processes, network transmission, machine manufacturing, and so on 1‐4 . Delay systems are proposed for this series of issues.…”
Section: Introductionmentioning
confidence: 99%
“…Time delay phenomenon widely exists in the natural world and industrial process, such as perceptual processes, network transmission, machine manufacturing, and so on. [1][2][3][4] Delay systems are proposed for this series of issues. Many effective methods for analyzing the delay systems are developed, such as the new type of augmented Lyapunov functional stability analysis with less conservatism for linear discrete-time systems and the multibound dependent stability analysis with less computation for nonlinear systems and so on.…”
Section: Introductionmentioning
confidence: 99%
“…In [42], the author solves the filtering problem of a two‐dimensional uncertain linear discrete time‐varying system with random noise by solving a robust regularised least squares problem. In [45], a state estimator of Markov jump neural network is studied by the persistent dwell‐time switching rule. In [17], both the interpolation theory approach and the Riccati equation approach are used to solve the estimation problem.…”
Section: Introductionmentioning
confidence: 99%