Zhipei Hu, Peng Shi, Baishu Xu, Jin Zhang, Huiyan Zhang, Levente Kovács
Abstract
In this paper, secure control strategies are developed for stochastically sampled systems under Denial-of-Service (DoS)/deception attacks. The actual sampling intervals deviate from their nominal values, and these sampling inaccuracies are modeled as uniformly bounded random variables following a truncated Gaussian distribution. Unlike existing studies on sampled-data systems affected by attack-induced packet losses, the obtained stability condition can be directly utilized regardless of variations in the maximum number of consecutive DoS attacks. We begin by developing a continuous-time modeling framework that enables stabilization analysis for the stochastically sampled systems exposed to DoS and deception attacks. To ensure stochastic stability and facilitate secure control, a discrete-time reformulation of the continuous-time model is then introduced. It is shown that the continuous-time system is stochastically stable if and only if its discrete-time counterpart maintains stochastic stability. Following this, a stability condition is derived and a controller synthesis algorithm is proposed to guarantee the stochastic stability of the continuous-time stochastically sampled systems subject to DoS/deception attacks. Finally, simulation results are presented to demonstrate the efficacy of the proposed controller algorithm.
Citation format
HU, Zhipei, et al. Secure control strategies for stochastically sampled systems against dos/deception attacks: A general design algorithm. IEEE Transactions on Control of Network Systems, 2026, 13(2): 960–969.