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Neural Network-Based Passive Filtering for Delayed Neutral-Type Semi-Markovian Jump Systems
259
Citations
30
References
2016
Year
Stochastic Hybrid SystemNonlinear ControlTime Delay SystemEngineeringExponential Passive FilteringState ObserverSystems EngineeringStochastic ControlOptimization TechniquesSignal ProcessingFilter DesignStability
This paper investigates the problem of exponential passive filtering for a class of stochastic neutral-type neural networks with both semi-Markovian jump parameters and mixed time delays. Our aim is to estimate the states by designing a Luenberger-type observer, such that the filter error dynamics are mean-square exponentially stable with an expected decay rate and an attenuation level. Sufficient conditions for the existence of passive filters are obtained, and a convex optimization algorithm for the filter design is given. In addition, a cone complementarity linearization procedure is employed to cast the nonconvex feasibility problem into a sequential minimization problem, which can be readily solved by the existing optimization techniques. Numerical examples are given to demonstrate the effectiveness of the proposed techniques.
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Notice of Violation of IEEE Publication Principles: New Delay-Dependent Exponential $H_{\infty}$ Synchronization for Uncertain Neural Networks With Mixed Time Delays IEEE Transactions on Systems Man and Cybernetics Part B (Cybernetics) Nonlinear ControlTime Delay SystemEngineeringNetworked ControlNew Delay-dependent Exponential | 2009 | 446 |
2005 | 389 | |
2011 | 327 | |
2008 | 287 | |
1998 | 271 |
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