Stabilizing bit rate conditions of linear systems under DoS attacks without acknowledgments

IF 3.7 3区 计算机科学 Q2 AUTOMATION & CONTROL SYSTEMS
Yuan Liu, Qiang Ling
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引用次数: 0

Abstract

This paper is concerned with the quantized stabilization of linear systems under denial-of-service (DoS) attacks. In particular, we investigate the systems without acknowledgment (ACK) signals from the decoder to the encoder. Moreover, the concerned systems are also subject to transmission delay and bounded process noise. The major challenge of the quantized control strategy design lies in the absence of ACKs, which may break the synchronization between the encoder and decoder. This challenge is addressed by a novel control strategy under which redundant symbols are encoded and transmitted after sampling. Large transmission delay can be tackled by our strategy as long as more bit rates are used. To further save communication bandwidth, event-triggered sampling is applied. We derive sufficient bit rate conditions for the input-to-state stability (ISS) of the system, which depends on the unstable eigenvalues of the system, the transmission delay, and the DoS parameters. Moreover, we give the DoS conditions under which the derived stabilizing bit rate conditions can be lower than the minimum bit rate condition for systems under periodic sampling with ACKs. A numerical example is given to verify our results.
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来源期刊
CiteScore
7.30
自引率
14.60%
发文量
586
审稿时长
6.9 months
期刊介绍: The Journal of The Franklin Institute has an established reputation for publishing high-quality papers in the field of engineering and applied mathematics. Its current focus is on control systems, complex networks and dynamic systems, signal processing and communications and their applications. All submitted papers are peer-reviewed. The Journal will publish original research papers and research review papers of substance. Papers and special focus issues are judged upon possible lasting value, which has been and continues to be the strength of the Journal of The Franklin Institute.
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