[1] |
Anderson P M, Fouad A A, Happ H H. Power system control and stability. IEEE Power Engineering Review, 2002, 15(2): 40.
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[2] |
Kumar P, Kothari D P. Recent philosophies of automatic generation control strategies in power systems. IEEE Transactions on Power Systems, 2005, 20(1): 346-357.
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[3] |
Kundur P. Power System Stability and Control. New York: McGraw-hill, 1994.
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[4] |
Lu K, Zeng G, Luo X, et al. An adaptive resilient load frequency controller for smart grids with DoS attacks. IEEE Transactions on Vehicular Technology, 2020, 69(5): 4689-4699.
|
[5] |
Hu Z, Liu S, Luo W, et al. Resilient distributed fuzzy load frequency regulation for power systems under cross-layer random denial-of-service attacks. IEEE Transactions on Cybernetics, 2020, (99): 1-11.
|
[6] |
Tian E, Peng C. Memory-based event-triggering H1 load frequency control for power systems under deception attacks. IEEE Transactions on Cybernetics, 2020, 50(11): 4610-4618.
|
[7] |
Liu J, Gu Y, Zha L, et al. Event-triggered H1 load frequency control for multiarea power systems under hybrid cyber attacks.IEEE Transactions on Systems Man and Cybernetics: Systems, 2019, 49(8): 1665-1678.
|
[8] |
Peng C, Li J, Fei M. Resilient event-triggering load frequency control for multi-area power systems with energy-limited DoS attacks. IEEE Transactions on Power Systems, 2017, 32(5): 4110-4118.
|
[9] |
Chen C, Zhang K, Yuan K, et al. Novel detection scheme design considering cyber attacks on load frequency control. IEEE Transactions on Industrial Informatics, 2018, 14(5): 1932-1941.
|
[10] |
Bansal K, Mukhija P. Aperiodic sampled-data control of distributed networked control systems under stochastic cyberattacks. IEEE/CAA Journal of Automatica Sinica, 2020, 7(4): 1064-1073.
|
[11] |
Tripathy N S, Chamanbaz M, Bouffanais R. Robust stabilization of resource limited networked control systems under denial-of-service attack. 58th Conference on Decision and Control (CDC). Nice, France: IEEE, 2019: 7683-7689.
|
[12] |
Corradini M L, Cristofaro A. Robust detection and reconstruction of state and sensor attacks for cyber-physical systems using sliding modes. IET Control Theory & Applications, 2017, 11(11): 1756-1766.
|
[13] |
Huang X, Zhai D, Dong J. Adaptive integral sliding-mode control strategy of data-driven cyber-physical systems against a class of actuator attacks. IET Control Theory & Applications, 2017, 12(10): 1440-1447.
|
[14] |
唐文秀, 奚文龙, 李志鹏,等. 基于滑模变结构和高增益状态观测器的直流电机位置控制.中国科学技术大学学报, 2018, 48(1):82-88.Tang W X, Xi H S, Li Z P, et al. Position control of DC-motor based on sliding mode variable structure and high-gain observer. J. Uiv. Sci. Tech. China, 2018, 48(1): 82-88.
|
[15] |
康宇, 奚宏生, 季海波,等. 不确定多变量线性系统的快速收敛滑模变结构控制.中国科学技术大学学报, 2003(6): 91-98. Kang Y, Xi H S, Ji H B, et al. Fast terminal sliding mode control of uncertain multivariable linear systems. J. Uiv. Sci. Tech. China, 2003, 33(6): 91-98.
|
[16] |
Jiang X, Mu X, Hu Z. Decentralized adaptive fuzzy tracking control for a class of nonlinear uncertain interconnected systems with multiple faults and DoS attack. IEEE Transactions on Fuzzy Systems, 2020, (99): 1-1.
|
[17] |
Yan S, Gu Z, Nguang S K, et al. Co-design of event-triggered scheme and H1 output control for Markov jump systems against deception attacks. IEEE Access, 2020, 8: 106554-106563.
|
[18] |
Liu X, Yu X, Ma G, et al. On sliding mode control for networked control systems with semi-Markovian switching and random sensor delays. Information Sciences, 2016, 337: 44-58.
|
[19] |
Peng C, Yue D, Han Q L. Communication and Control for Networked Complex Systems. Heidelberg: Springer, 2015.
|
[20] |
Park P, Ko J W, Jeong C. Reciprocally convex approach to stability of systems with time-varying delays. Automatica, 2011, 47(1): 235-238.
|
[1] |
Anderson P M, Fouad A A, Happ H H. Power system control and stability. IEEE Power Engineering Review, 2002, 15(2): 40.
|
[2] |
Kumar P, Kothari D P. Recent philosophies of automatic generation control strategies in power systems. IEEE Transactions on Power Systems, 2005, 20(1): 346-357.
|
[3] |
Kundur P. Power System Stability and Control. New York: McGraw-hill, 1994.
|
[4] |
Lu K, Zeng G, Luo X, et al. An adaptive resilient load frequency controller for smart grids with DoS attacks. IEEE Transactions on Vehicular Technology, 2020, 69(5): 4689-4699.
|
[5] |
Hu Z, Liu S, Luo W, et al. Resilient distributed fuzzy load frequency regulation for power systems under cross-layer random denial-of-service attacks. IEEE Transactions on Cybernetics, 2020, (99): 1-11.
|
[6] |
Tian E, Peng C. Memory-based event-triggering H1 load frequency control for power systems under deception attacks. IEEE Transactions on Cybernetics, 2020, 50(11): 4610-4618.
|
[7] |
Liu J, Gu Y, Zha L, et al. Event-triggered H1 load frequency control for multiarea power systems under hybrid cyber attacks.IEEE Transactions on Systems Man and Cybernetics: Systems, 2019, 49(8): 1665-1678.
|
[8] |
Peng C, Li J, Fei M. Resilient event-triggering load frequency control for multi-area power systems with energy-limited DoS attacks. IEEE Transactions on Power Systems, 2017, 32(5): 4110-4118.
|
[9] |
Chen C, Zhang K, Yuan K, et al. Novel detection scheme design considering cyber attacks on load frequency control. IEEE Transactions on Industrial Informatics, 2018, 14(5): 1932-1941.
|
[10] |
Bansal K, Mukhija P. Aperiodic sampled-data control of distributed networked control systems under stochastic cyberattacks. IEEE/CAA Journal of Automatica Sinica, 2020, 7(4): 1064-1073.
|
[11] |
Tripathy N S, Chamanbaz M, Bouffanais R. Robust stabilization of resource limited networked control systems under denial-of-service attack. 58th Conference on Decision and Control (CDC). Nice, France: IEEE, 2019: 7683-7689.
|
[12] |
Corradini M L, Cristofaro A. Robust detection and reconstruction of state and sensor attacks for cyber-physical systems using sliding modes. IET Control Theory & Applications, 2017, 11(11): 1756-1766.
|
[13] |
Huang X, Zhai D, Dong J. Adaptive integral sliding-mode control strategy of data-driven cyber-physical systems against a class of actuator attacks. IET Control Theory & Applications, 2017, 12(10): 1440-1447.
|
[14] |
唐文秀, 奚文龙, 李志鹏,等. 基于滑模变结构和高增益状态观测器的直流电机位置控制.中国科学技术大学学报, 2018, 48(1):82-88.Tang W X, Xi H S, Li Z P, et al. Position control of DC-motor based on sliding mode variable structure and high-gain observer. J. Uiv. Sci. Tech. China, 2018, 48(1): 82-88.
|
[15] |
康宇, 奚宏生, 季海波,等. 不确定多变量线性系统的快速收敛滑模变结构控制.中国科学技术大学学报, 2003(6): 91-98. Kang Y, Xi H S, Ji H B, et al. Fast terminal sliding mode control of uncertain multivariable linear systems. J. Uiv. Sci. Tech. China, 2003, 33(6): 91-98.
|
[16] |
Jiang X, Mu X, Hu Z. Decentralized adaptive fuzzy tracking control for a class of nonlinear uncertain interconnected systems with multiple faults and DoS attack. IEEE Transactions on Fuzzy Systems, 2020, (99): 1-1.
|
[17] |
Yan S, Gu Z, Nguang S K, et al. Co-design of event-triggered scheme and H1 output control for Markov jump systems against deception attacks. IEEE Access, 2020, 8: 106554-106563.
|
[18] |
Liu X, Yu X, Ma G, et al. On sliding mode control for networked control systems with semi-Markovian switching and random sensor delays. Information Sciences, 2016, 337: 44-58.
|
[19] |
Peng C, Yue D, Han Q L. Communication and Control for Networked Complex Systems. Heidelberg: Springer, 2015.
|
[20] |
Park P, Ko J W, Jeong C. Reciprocally convex approach to stability of systems with time-varying delays. Automatica, 2011, 47(1): 235-238.
|