Evolution and State-of-the-art of intelligent manufacturing from HCPS perspective

被引:0
|
作者
Wang B. [1 ,2 ,3 ]
Yi B. [4 ]
Liu Z. [5 ]
Zhou Y. [6 ]
Zhou Y. [6 ]
机构
[1] School of Mechanical Engineering, Zhejiang University, Hangzhou
[2] Center for Strategic Studies, Chinese Academy of Engineering, Beijing
[3] Department of Mechanical Engineering, University of Michigan, Ann Arbor
[4] School of Traffic and Transportation Engineering, Central South University, Changsha
[5] State Key Lab of CAD&CG, Zhejiang University, Hangzhou
[6] School of Public Policy and Management, Tsinghua University, Beijing
[7] College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan
基金
中国国家自然科学基金;
关键词
Artificial intelligence 2.0; Human-cyber-physical system; New-generation intelligent manufacturing; Policy suggestions; State-of-the-art;
D O I
10.13196/j.cims.2021.10.001
中图分类号
学科分类号
摘要
Human-Cyber-Physical System (HCPS) can provide the theoretical support to understand and develop Intelligent Manufacturing (IM) according to the concepts of human-centric development and integration of industrialization and information technology. To better understand the relationship between HCPS and IM as well as grasp IM development trends, HCPS was analyzed in detail including the definition, connotation and system elements, followed with discussions on IM evolution and characteristics of New-Generation Intelligent Manufacturing (NGIM). The state-of-the-art of NGIM was reviewed from HCPS perspective. Relevant suggestions for China's intelligent manufacturing development were proposed covering perspectives from human, cyber systems, physical systems and system integration, which was expected to provide a reference for understanding and adoption of intelligent manufacturing and HCPS. © 2021, Editorial Department of CIMS. All right reserved.
引用
收藏
页码:2749 / 2761
页数:12
相关论文
共 76 条
  • [61] PACAUX-LEMOINE M P, TRENTESAUX D, REY G Z, Et al., Designing intelligent manufacturing systems through human-machine cooperation principles:A human-centered approach, Computers & Industrial Engineering, 111, pp. 581-595, (2017)
  • [62] TRENTESUAX D, MILLOT P., A human-centred design to break the myth of the "magic human" in intelligent manufacturing systems, Service orientation in holonic and multi-agent manufacturing, (2016)
  • [63] ROMERO D, STAHRE J, WUEST T, Et al., Towards an operator 4.0 typology:A human-centric perspective on the fourth industrial revolution technologies, Proceeding of the International Conference on Computers & Industrial Engineering(CIE46), (2016)
  • [64] ROMERO D, BERNUS P, NORAN O, Et al., The operator 4.0:Human cyber-physical systems & adaptive automation towards human-automation symbiosis work systems[C], Proceedings of IFIP International Conference on Advances in Production Management Systems, pp. 677-686, (2016)
  • [65] WANG L, GAO R, VANCZA J, Et al., Symbiotic human-robot collaborative assembly[J], CIRP Annals, 68, 2, pp. 701-726, (2019)
  • [66] Future of work at the human-technology frontier:Core research(FW-HTF)
  • [67] EDGAR T F, PISTIKOPOULOS E N., Smart manufacturing and energy systems, Computers & Chemical Engineering, 114, pp. 130-144, (2018)
  • [68] SHI Chenbo, MIAO Quan, CHEN Qixin, Key technology and application of the energy internet based on cyber physical systems, Journal of Tsinghua University:Science and Technology, 56, 9, pp. 930-936, (2016)
  • [69] CHENG Lefeng, YU Tao, ZHANG Xiaoshun, Et al., Cyber-physical-social systems based smart energy robotic dispatcher and its knowledge automation:Framework, techniques and challenges, Proceedings of the CSEE, 38, 1, pp. 25-40, (2018)
  • [70] BIAN Mingyuan, LI Keqiang, Strategic analysis on establishing an automobile power in China based on intelligent & connected vehicles, Strategic Study of CAE, 20, 1, pp. 52-58, (2018)