Reliability evaluation of Markov cyber-physical system oriented to cognition of equipment operating status

被引:3
作者
Zhang, Qin [1 ]
Liu, Yutang [2 ]
机构
[1] Xinxiang Univ, Sch Math & Stat, Xinxiang 453003, Henan, Peoples R China
[2] Henan Inst Technol, Sch Sci, Xinxiang 453002, Henan, Peoples R China
关键词
Cyber-physical system; Hidden Markov model; Reliability evaluation; Equipment operating status; ATTACKS;
D O I
10.1016/j.comcom.2021.10.004
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
With the rapid development of computing, communication, and control technologies, cyber-physical systems that integrate physical space, information space, and social space have emerged and are widely used in various important infrastructures. This article introduces the composition and basic algorithm of the hidden Markov model, and gives the mathematical description of the hidden Markov model. Since the hidden Markov model can deduce the hidden state of the observation object through the observed feature values, a device operating state cognition scheme based on the hidden Markov model is proposed. A method for analyzing cascading failures is proposed, and the critical threshold value of cyber-physical system under random attack is obtained. It is verified by simulation experiments, and the changes of system critical thresholds under different network parameters are compared and analyzed. We mainly use several sets of simulation experiments to verify the reliability of the critical threshold, and then verify near the critical threshold. Before simulating the cascading failure process, we first construct two random networks based on the average degree and the number of nodes. According to the previous description of the cyber-physical system model, a node in network B is randomly connected with three nodes in network A, so that the two networks are connected together to form a coupled system. Random attack or failure is represented by randomly deleting nodes. In the simulation experiment, we will simulate the process of cascading failure at each step, and after each step of cascading failure, we output and save the number of remaining nodes. When no nodes in the two networks are deleted, the cascading failure will stop, and then we will verify the critical threshold through the data obtained from the analysis. This provides the support of related theories and methods for the design of stable and reliable cyber-physical systems.
引用
收藏
页码:80 / 89
页数:10
相关论文
共 50 条
  • [21] The Importance Of Security In Cyber-Physical System
    alrefaei, Faisal
    [J]. 2020 IEEE 6TH WORLD FORUM ON INTERNET OF THINGS (WF-IOT), 2020,
  • [22] The Concept of the Embody Reliability in Design of Cyber-physical Systems
    Riznyk, Volodymyr
    [J]. 2015 XI INTERNATIONAL CONFERENCE ON PERSPECTIVE TECHNOLOGIES AND METHODS IN MEMS DESIGN (MEMSTECH), 2015, : 113 - 115
  • [23] Security Analysis of Cyber-Physical System
    Li, Bo
    Zhang, Lichen
    [J]. MATERIALS SCIENCE, ENERGY TECHNOLOGY, AND POWER ENGINEERING I, 2017, 1839
  • [24] Blockchain for Cyber-Physical System in Manufacturing
    Ho, Nicholas
    Wong, Pooi-Mun
    Soon, Ren-Jun
    Chng, Chin-Boon
    Chui, Chee-Kong
    [J]. SOICT 2019: PROCEEDINGS OF THE TENTH INTERNATIONAL SYMPOSIUM ON INFORMATION AND COMMUNICATION TECHNOLOGY, 2019, : 385 - 392
  • [25] The Concept of an Open Cyber-Physical System
    Vasiljev, Yury S.
    Volkova, Violetta N.
    Kozlov, Vladimir N.
    [J]. CYBER-PHYSICAL SYSTEMS AND CONTROL, 2020, 95 : 146 - 158
  • [26] FARE: A Framework for Benchmarking Reliability of Cyber-Physical Systems
    Wu, Leon
    Kaiser, Gail
    [J]. 2013 NINTH ANNUAL CONFERENCE ON LONG ISLAND SYSTEMS, APPLICATIONS AND TECHNOLOGY (LISAT 2013), 2013,
  • [27] Architecture of Compressor Equipment Monitoring and Control Cyber-Physical System Based on Influxdata Platform
    Kychkin, Aleksey
    Deryabin, Aleksadr
    Vikentyeva, Olga
    Shestakova, Lidiia
    [J]. 2019 INTERNATIONAL CONFERENCE ON INDUSTRIAL ENGINEERING, APPLICATIONS AND MANUFACTURING (ICIEAM), 2019,
  • [28] An Optimal Planning Model for Cyber-physical Active Distribution System Considering the Reliability Requirements
    Wang, Changjiang
    Yu, Chutian
    Yin, Xunhu
    Zhang, Lijun
    Yuan, Xiang
    Fan, Mingxia
    [J]. 2022 4TH INTERNATIONAL CONFERENCE ON SMART POWER & INTERNET ENERGY SYSTEMS, SPIES, 2022, : 1476 - 1480
  • [29] A Review of the Integration of Cyber-Physical System and Internet of Things A Cyber-Physical Systems Perception of Internet of Things
    Nandhini, Ramesh Sneka
    Lakshmanan, Ramanathan
    [J]. INTERNATIONAL JOURNAL OF ADVANCED COMPUTER SCIENCE AND APPLICATIONS, 2022, 13 (04) : 459 - 465
  • [30] Robustness Assessment of Cyber-Physical System with Different Interdependent Mechanisms
    Wang, Peixiang
    Wang, Qianyi
    Tu, Haicheng
    Xia, Yongxiang
    [J]. ELECTRONICS, 2023, 12 (05)