• DocumentCode
    24657
  • Title

    Unified Invariants for Cyber-Physical Switched System Stability

  • Author

    Paul, Thara ; Kimball, Jonathan W. ; Zawodniok, Maciej ; Roth, T.P. ; McMillin, Bruce ; Chellappan, Sriram

  • Author_Institution
    Dept. of Electr. & Comput. Eng., Missouri Univ. of Sci. & Technol., Rolla, MO, USA
  • Volume
    5
  • Issue
    1
  • fYear
    2014
  • fDate
    Jan. 2014
  • Firstpage
    112
  • Lastpage
    120
  • Abstract
    Cyber-physical systems (CPS) consist of subsystems of distributed computation interconnected by computer networks that monitor and control switched physical entities interconnected by physical infrastructures. Finding a common semantic among these diverse subsystems that facilitates system synthesis, verification, and monitoring is a significant challenge of a CPS research program. Logical and temporal correctness of computational components, network timing, and frequency response are all system aspects that conspire to impede design, verification, and monitoring. Most current approaches ensure that each subsystem meets its individual specifications according to relevant metrics-stability of a physical system, safety and liveness of a cyber system, etc.-and then composes the overall system by functionality. The individual specifications are given in different semantics for each type of subsystem, and are in general equivalent to the cyber notion of correctness. This paper develops common semantics that span each aspect of a CPS through a new approach, unified invariants; unified invariants also ensure individual subsystem correctness but compose the overall system through logical truth instead of functionality. These individual invariants express and enforce system correctness common to the cyber, physical, and networking CPS subsystems and unified invariant approach ensures that the subsystems do not interfere with each others´ correctness. In particular, the synthesis of switched dynamic CPSs will be unified by cyber, networking, and physical invariants rooted in the principal of Lyapunov-like functions. The goal is to make the resulting CPSs will be safe and stable at the system level, rather than just the subsystem level.
  • Keywords
    Lyapunov methods; power engineering computing; power system stability; Lyapunov-like functions; computer networks; cyber invariants; cyber-physical switched system stability; distributed computation subsystems; networking invariants; physical invariants; switched dynamic CPS; unified invariants; Lyapunov methods; Peer-to-peer computing; Power system stability; Stability analysis; Switched systems; Switches; CPS; Lyapunov-like; invariant;
  • fLanguage
    English
  • Journal_Title
    Smart Grid, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1949-3053
  • Type

    jour

  • DOI
    10.1109/TSG.2013.2283171
  • Filename
    6683097