Social navigation framework for autonomous vehicle with hierarchical cyber-physical system architecture

被引:0
|
作者
Imanishi, Yuto [1 ]
Yamada, Hiroyuki [1 ]
机构
[1] Hitachi Ltd, Res & Dev Grp, Ibaraki, Japan
关键词
Social navigation; trajectory planning; cyber-physical system; architecture design; social force model; ROBOT NAVIGATION;
D O I
10.1080/01691864.2023.2279601
中图分类号
TP24 [机器人技术];
学科分类号
080202 ; 1405 ;
摘要
An autonomous vehicle operating alongside humans should ideally have a high social capability, such as being able to communicate with humans, negotiate space, predict reactions, etc. This can be achieved by a prediction feature trained with diverse data on human behavior. Hierarchical cyber-physical system (CPS) architecture design, which sends the prediction feature to an external server while observing a limited operational design domain (ODD) and acquiring data continuously, has great potential to refine the training process as well as improve the performance. However, this architecture design requires the planning and prediction modules to be explicitly decoupled, which takes away from the recent success on social navigation. In this paper, we propose a novel autonomous navigation framework enabling social behavior while decoupling the planning and prediction modules to take advantage of the hierarchical CPS architecture. In the proposed framework, pedestrian trajectories are predicted as reactions to pre-generated candidates for an ego vehicle trajectory, and the ego vehicle trajectory is then selected to maximize mutual benefit to both the ego vehicle and surrounding pedestrians. We evaluated the proposed framework with simulations using the social force model and found that it was able to achieve the social behavior.
引用
收藏
页码:1460 / 1470
页数:11
相关论文
共 50 条
  • [41] Cascading Failures on Reliability in Cyber-Physical System
    Zhang, Zuyuan
    An, Wei
    Shao, Fangming
    IEEE TRANSACTIONS ON RELIABILITY, 2016, 65 (04) : 1745 - 1754
  • [42] Survey of modeling methods in cyber-physical system
    Li R.-F.
    Yang F.
    Xie G.-Q.
    Huang J.
    Duan M.-Q.
    2016, Editorial Board of Journal on Communications (37): : 165 - 175
  • [43] A zonotopic characterization of cyber-physical system vulnerabilities
    Li, Jitao
    Wang, Zhenhua
    Shen, Yi
    Xie, Lihua
    INTERNATIONAL JOURNAL OF ROBUST AND NONLINEAR CONTROL, 2022, 32 (09) : 5379 - 5397
  • [44] SecureCPS: Defending a Nanosatellite Cyber-Physical System
    Forbes, Lance
    Huy Vu
    Udrea, Bogdan
    Hagar, Hamilton
    Koutsoukos, Xenofon D.
    Yampolskiy, Mark
    SENSORS AND SYSTEMS FOR SPACE APPLICATIONS VII, 2014, 9085
  • [45] Integration of Industry 4.0 Related Technologies in Construction Industry: A Framework of Cyber-Physical System
    You, Zhijia
    Feng, Lingjun
    IEEE ACCESS, 2020, 8 (08): : 122908 - 122922
  • [46] MPC for the Cyber-Physical System with Deception Attacks
    Liu, Yuezhi
    Chen, Yong
    Li, Meng
    Wan, Zhi
    PROCEEDINGS OF THE 32ND 2020 CHINESE CONTROL AND DECISION CONFERENCE (CCDC 2020), 2020, : 3847 - 3852
  • [47] Computation Model of Cyber-Physical Immunosensor System
    Martsenyuk, Vasyl
    Klos-Witkowska, Aleksandra
    IEEE ACCESS, 2019, 7 : 62325 - 62337
  • [48] Wireless Camera Nodes on a Cyber-Physical System
    Gardel, A.
    Espinosa, F.
    Nieto, R.
    Lazaro, J. L.
    Bravo, I
    ICDSC 2016: 10TH INTERNATIONAL CONFERENCE ON DISTRIBUTED SMART CAMERA, 2016, : 31 - 36
  • [49] Energy Profile Evaluation of a Cyber-Physical System
    Moraes, Elisabete Nakoneczny
    Becker, Leandro Buss
    2012 BRAZILIAN SYMPOSIUM ON COMPUTING SYSTEM ENGINEERING (SBESC 2012), 2012, : 53 - 58
  • [50] Cyber-Physical System (CPS): State of the Art
    Jamaludin, Juliza
    Rohani, Jemmy Mohd
    2018 INTERNATIONAL CONFERENCE ON COMPUTING, ELECTRONIC AND ELECTRICAL ENGINEERING (ICE CUBE), 2018,