Optimization and Control of Cyber-Physical Vehicle Systems

被引:51
|
作者
Bradley, Justin M. [1 ]
Atkins, Ella M. [2 ]
机构
[1] Univ Nebraska, Comp Sci & Engn Dept, Lincoln, NE 68588 USA
[2] Univ Michigan, Dept Aerosp Engn, Ann Arbor, MI 48109 USA
基金
美国国家科学基金会;
关键词
cyber-physical systems; control; real-time control; optimization; optimal control; robotics; HYBRID ELECTRIC VEHICLE; ANYTIME ALGORITHMS; ATTITUDE-CONTROL; CO-DESIGN; ENERGY; MANAGEMENT; MODEL; STABILIZATION; TRACKING; SCIENCE;
D O I
10.3390/s150923020
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
A cyber-physical system (CPS) is composed of tightly-integrated computation, communication and physical elements. Medical devices, buildings, mobile devices, robots, transportation and energy systems can benefit from CPS co-design and optimization techniques. Cyber-physical vehicle systems (CPVSs) are rapidly advancing due to progress in real-time computing, control and artificial intelligence. Multidisciplinary or multi-objective design optimization maximizes CPS efficiency, capability and safety, while online regulation enables the vehicle to be responsive to disturbances, modeling errors and uncertainties. CPVS optimization occurs at design-time and at run-time. This paper surveys the run-time cooperative optimization or co-optimization of cyber and physical systems, which have historically been considered separately. A run-time CPVS is also cooperatively regulated or co-regulated when cyber and physical resources are utilized in a manner that is responsive to both cyber and physical system requirements. This paper surveys research that considers both cyber and physical resources in co-optimization and co-regulation schemes with applications to mobile robotic and vehicle systems. Time-varying sampling patterns, sensor scheduling, anytime control, feedback scheduling, task and motion planning and resource sharing are examined.
引用
收藏
页码:23020 / 23049
页数:30
相关论文
共 50 条
  • [31] Testing Abstractions for Cyber-Physical Control Systems
    Mandrioli, Claudio
    Carlsson, Max Nyberg
    Maggio, Martina
    [J]. ACM TRANSACTIONS ON SOFTWARE ENGINEERING AND METHODOLOGY, 2024, 33 (01)
  • [32] Towards Resilient Cyber-Physical Control Systems
    Salles-Loustau, Gabriel
    Zonouz, Saman
    [J]. 2015 IEEE GLOBAL CONFERENCE ON SIGNAL AND INFORMATION PROCESSING (GLOBALSIP), 2015, : 662 - 666
  • [33] Fault Tolerance Control in Cyber-Physical Systems
    Chemashkin, Fedor Y.
    Zhilenkov, Andrei A.
    [J]. PROCEEDINGS OF THE 2019 IEEE CONFERENCE OF RUSSIAN YOUNG RESEARCHERS IN ELECTRICAL AND ELECTRONIC ENGINEERING (EICONRUS), 2019, : 1169 - 1171
  • [34] Optimal Information Control in Cyber-Physical Systems
    Soleymani, Touraj
    Hirche, Sandra
    Baras, John S.
    [J]. IFAC PAPERSONLINE, 2016, 49 (22): : 1 - 6
  • [35] Deployment Architectures for Cyber-Physical Control Systems
    Tseng, Shih-Hao
    Anderson, James
    [J]. 2020 AMERICAN CONTROL CONFERENCE (ACC), 2020, : 5287 - 5294
  • [36] Cyber-physical Systems
    Wolf, Wayne
    [J]. COMPUTER, 2009, 42 (03) : 88 - 89
  • [37] An Online Optimization Approach for Control and Communication Codesign in Networked Cyber-Physical Systems
    Cao, Xianghui
    Cheng, Peng
    Chen, Jiming
    Sun, Youxian
    [J]. IEEE TRANSACTIONS ON INDUSTRIAL INFORMATICS, 2013, 9 (01) : 439 - 450
  • [38] Cyber-physical Systems
    Vogel-Heuser, Birgit
    Kowalewski, Stefan
    [J]. AT-AUTOMATISIERUNGSTECHNIK, 2013, 61 (10) : 667 - 668
  • [39] Cyber-Physical Systems
    Lamnabhi-Lagarrigue, Francoise
    Di Benedetto, Maria Domenica
    Schoitsch, Erwin
    [J]. ERCIM NEWS, 2014, (97): : 6 - 7
  • [40] Cyber-Physical Systems
    Letichevsky A.A.
    Letychevskyi O.O.
    Skobelev V.G.
    Volkov V.A.
    [J]. Letichevsky, A.A. (aaletichevsky78@gmail.com), 2017, Springer Science and Business Media, LLC (53) : 821 - 834