TY - JOUR
T1 - Secure Control of Markovian Jumping Systems Under Deception Attacks
T2 - An Attack-Probability-Dependent Adaptive Event-Triggered Mechanism
AU - Yao, Lan
AU - Huang, Xia
AU - Wang, Zhen
AU - Liu, Kun
N1 - Publisher Copyright:
© 2014 IEEE.
PY - 2023/12/1
Y1 - 2023/12/1
N2 - This article considers the secure control of Markovian jumping systems (MJSs) under stochastic deception attacks that occurred in the communication network. Therein, the stochastic deception attack is described by a Bernoulli random variable. Considering the limited network bandwidth and the impact of deception attacks simultaneously, we propose an attack-probability-dependent adaptive event-triggered mechanism. Not only can it reduce the number of controller updates, but it can also adapt to the variation of system dynamics subject to deception attacks. A mathematical model is established for the closed-loop system under stochastic deception attacks. Then, a time-dependent looped functional is constructed to reduce the conservatism of stability results. The norm of the system state is estimated, and based on the discrete-time Lyapunov theory, a less conservative stability criterion is derived. Then, an easy-to-implement design algorithm for the controller gain is given so that the exponential stabilization in the mean square sense can be realized for the MJS subject to stochastic deception attacks. Finally, an electrical circuit example is provided to validate the feasibility and superiority of the presented method.
AB - This article considers the secure control of Markovian jumping systems (MJSs) under stochastic deception attacks that occurred in the communication network. Therein, the stochastic deception attack is described by a Bernoulli random variable. Considering the limited network bandwidth and the impact of deception attacks simultaneously, we propose an attack-probability-dependent adaptive event-triggered mechanism. Not only can it reduce the number of controller updates, but it can also adapt to the variation of system dynamics subject to deception attacks. A mathematical model is established for the closed-loop system under stochastic deception attacks. Then, a time-dependent looped functional is constructed to reduce the conservatism of stability results. The norm of the system state is estimated, and based on the discrete-time Lyapunov theory, a less conservative stability criterion is derived. Then, an easy-to-implement design algorithm for the controller gain is given so that the exponential stabilization in the mean square sense can be realized for the MJS subject to stochastic deception attacks. Finally, an electrical circuit example is provided to validate the feasibility and superiority of the presented method.
KW - Deception attacks
KW - Markovian jumping systems (MJSs)
KW - event-triggered mechanism (ETM)
KW - looped functional (LF)
KW - secure control
UR - http://www.scopus.com/inward/record.url?scp=85153798487&partnerID=8YFLogxK
U2 - 10.1109/TCNS.2023.3269007
DO - 10.1109/TCNS.2023.3269007
M3 - Article
AN - SCOPUS:85153798487
SN - 2325-5870
VL - 10
SP - 1818
EP - 1830
JO - IEEE Transactions on Control of Network Systems
JF - IEEE Transactions on Control of Network Systems
IS - 4
M1 - 3269007
ER -