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人机协同增强智能控制研究综述

Translated title of the contribution: Review of human-machine collaborative augmented intelligent control research
  • Huaining Wu*
  • , Mi Wang
  • , Wenhua Li
  • *Corresponding author for this work
  • North China University of Water Resources and Electric Power
  • Beihang University

Research output: Contribution to journalArticlepeer-review

Abstract

Due to the limitations of human intelligence and artificial intelligence, developing hybrid augmented intelligence based on human-machine collaboration is one of the main research directions for the new generation of artificial intelligence, and the design of collaborative control algorithms is the core issue in achieving such intelligence. Therefore, a review of the current research status of human-mach ine collaborative enhanced intelligent control systems was provided in this article. Based on the black box characteristics of human behavior, the human behavior modeling methods of human-in-the-loop control systems were systematically sorted out and the advantages, disadvantages, and applicability of various modeling methods were analyzed. For the implementation of human-machine collaborative augmented intelligent control, the control design methods of machines collaborating with humans under different control theory frameworks were elaborated in detail. The scalability of human-machine collaborative control technology in the field of multi-agent systems and the evaluation methods of hybrid intelligence in the human-machine collaborative control systems were investigated and discussed. In addition, the application scenarios of human-machine collaborative augmented intelligent control methods in medical, industrial, military and other fields were presented. The prospects for human-machine collaborative augmented intelligent control research with the support of new technologies such as large models and embodied learning were presented.

Translated title of the contributionReview of human-machine collaborative augmented intelligent control research
Original languageChinese (Traditional)
Pages (from-to)249-265
Number of pages17
JournalGuofang Keji Daxue Xuebao/Journal of National University of Defense Technology
Volume48
Issue number2
DOIs
StatePublished - 2026

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