Shipboard Power Systems Reconfiguration-A Cyber-Physical Framework For Response Time Analysis

被引:12
|
作者
Bose, Sayak [1 ]
Natarajan, Balasubramanium [1 ]
Scoglio, Caterina M. [1 ]
Schulz, Noel N. [1 ]
Gruenbacher, Don M. [1 ]
Das, Sanjoy [1 ]
机构
[1] Kansas State Univ, Dept Elect & Comp Engn, Manhattan, KS 66506 USA
关键词
Cyber-physical systems; delay distribution; end-to-end response time analysis framework; real-time quality of service (QoS); sensor topology; shipboard power system (SPS); NETWORK; DELAY; CALCULUS;
D O I
10.1109/TII.2013.2262282
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Several applications within a shipboard system involve the integration of physical systems (e. g., power systems) and cyber computing platforms such as command and control, communications, and sensing networks, and require real-time quality of service (QoS) guarantees. In this paper, the distribution of total (end-to-end) delay associated with fault diagnosis and reconfiguration of shipboard power system (SPS) is investigated from a cyber-physical systems (CPS) perspective. Specifically, a cross-layer end-to-end delay analysis framework is introduced for SPS reconfiguration. The proposed framework stochastically models the heterogeneity of actions of various subsystems involved in the reconfiguration tasks viz., generation of fault information by sensor nodes associated to the power system, processing of actions at control center to resolve fault locations and reconfiguration, and flow of information through communication network to perform necessary actions. The proposed framework then combines appropriately the output delay distributions from each subsystem to: 1) analytically predict the distribution of end-to-end delay in SPS reconfiguration after the occurrence of faults and 2) analyze and design real-time reconfiguration solutions for shipboard CPS, that meet total delay requirements. Simulations using various topological scenarios demonstrate that the proposed analytical framework closely predict the total delay associated with SPS reconfiguration.
引用
收藏
页码:439 / 449
页数:11
相关论文
共 50 条
  • [21] A complementary Cyber-Human Systems framework for Industry 4.0 Cyber-Physical Systems
    Krugh M.
    Mears L.
    Krugh, Matthew (mkrugh@clemson.edu), 2018, Elsevier Ltd (15) : 89 - 92
  • [22] Cyber-Physical Systems
    Letichevsky A.A.
    Letychevskyi O.O.
    Skobelev V.G.
    Volkov V.A.
    Letichevsky, A.A. (aaletichevsky78@gmail.com), 2017, Springer Science and Business Media, LLC (53) : 821 - 834
  • [23] An Integrated Framework for Traceability and Impact Analysis in Requirements Verification of Cyber-Physical Systems
    Mengist, Alachew
    Buffoni, Lena
    Pop, Adrian
    ELECTRONICS, 2021, 10 (08)
  • [24] Cyber-physical systems: a bibliometric analysis of literature
    Singh, Nitin
    Panigrahi, Prabin Kumar
    Zhang, Zuopeng
    Jasimuddin, Sajjad M.
    JOURNAL OF INTELLIGENT MANUFACTURING, 2024, : 2335 - 2371
  • [25] A Cyber-Physical Modeling and Assessment Framework for Power Grid Infrastructures
    Davis, Katherine R.
    Davis, Charles M.
    Zonouz, Saman A.
    Bobba, Rakesh B.
    Berthier, Robin
    Garcia, Luis
    Sauer, Peter W.
    IEEE TRANSACTIONS ON SMART GRID, 2015, 6 (05) : 2464 - 2475
  • [26] Resilience quantification model for cyber-physical power systems
    AlMuhaini, Mohammad
    IET CYBER-PHYSICAL SYSTEMS: THEORY & APPLICATIONS, 2024, : 454 - 462
  • [27] Visiting Power Laws in Cyber-Physical Networking Systems
    Li, Ming
    Zhao, Wei
    MATHEMATICAL PROBLEMS IN ENGINEERING, 2012, 2012
  • [28] Integrated moving target defense and control reconfiguration for securing Cyber-Physical systems
    Potteiger, Bradley
    Zhang, Zhenkai
    Koutsoukos, Xenofon
    MICROPROCESSORS AND MICROSYSTEMS, 2020, 73
  • [29] Securing Cyber-Physical Systems with Adaptive Commensurate Response
    Zheng, Zhiyuan
    Jin, Shan
    Bettati, Riccardo
    Reddy, A. L. Narasimha
    2017 IEEE CONFERENCE ON COMMUNICATIONS AND NETWORK SECURITY (CNS), 2017, : 155 - 163
  • [30] The analysis of traffic control cyber-physical systems
    Shi Jianjun
    Wu Xu
    Guan Jizhen
    Chen Yangzhou
    INTELLIGENT AND INTEGRATED SUSTAINABLE MULTIMODAL TRANSPORTATION SYSTEMS PROCEEDINGS FROM THE 13TH COTA INTERNATIONAL CONFERENCE OF TRANSPORTATION PROFESSIONALS (CICTP2013), 2013, 96 : 2487 - 2496