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Asynchronous Control for Discrete-Time Hidden Markov Jump Power Systems

K. Subramanian, Young Hoon Joo, Han Sol Kim

2021IEEE Transactions on Cybernetics109 citationsDOI

Abstract

In this article, the stabilization problem of discrete-time power systems subject to random abrupt changes is studied via asynchronous control. In this regard, the transient faults in the power lines, and subsequent switching of associated circuit breakers are modeled as a Markov chain. Based on this, the power systems are described as discrete-time Markov jump systems. The focus is mainly to design the control for Markov jump-based power systems (MJPSs) when modes of the control asynchronously run with the modes of power systems. To do this, a hidden Markov model technique is used to characterize the nonsynchronization between the control and system. By constructing the mode-dependent stochastic Lyapunov function, the sufficient conditions are acquired in the form of linear matrix inequalities (LMIs), which ensure not only the stochastic stability of the resulting hidden MJPSs but also the existence of the desired control. Finally, the simulation example reveals the efficiency of the designed control law.

Topics & Concepts

Control theory (sociology)Discrete time and continuous timeMarkov chainLyapunov functionAsynchronous communicationComputer scienceStability (learning theory)Power (physics)Hidden Markov modelJumpTransient (computer programming)Markov processElectric power systemMathematicsControl (management)Nonlinear systemArtificial intelligenceComputer networkMachine learningOperating systemStatisticsPhysicsQuantum mechanicsPower System Optimization and StabilityMicrogrid Control and OptimizationFrequency Control in Power Systems
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