Human-inspired motion model of upper-limb with fast response and learning ability – a promising direction for robot system and control

Author:

Qiao Hong,Li Chuan,Yin Peijie,Wu Wei,Liu Zhi-Yong

Abstract

Purpose – Human movement system is a Multi-DOF, redundant, complex and nonlinear system formed by coordinating combination of neural system, bones, muscles and joints, which is robust and has fast response and learning ability. Imitating human movement system can improve robustness, fast response and learning ability of the robots. Design/methodology/approach – In this paper, we propose a new motion model based on the human motion pathway, especially the information propagation mechanism between the cerebellum and spinal cord. Findings – The proposed motion model proves to have fast response and learning ability through experiments, which matches the features of human motion. Originality/value – The proposed model in this paper introduces the habitual theory in kinesiology and neuroscience into robot control, and improves robustness, fast response and learning ability of the robots. This paper proves that introduction of neuroscience has an important guiding significance for precise and adaptive robot control, such as assembly automation.

Publisher

Emerald

Subject

Industrial and Manufacturing Engineering,Control and Systems Engineering

Cited by 35 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Brain-inspired Intelligent Robotics: Theoretical Analysis and Systematic Application;Machine Intelligence Research;2023-01-10

2. Proximal Policy Optimization With Time-Varying Muscle Synergy for the Control of an Upper Limb Musculoskeletal System;IEEE Transactions on Automation Science and Engineering;2023

3. Improving performance of robots using human-inspired approaches: a survey;Science China Information Sciences;2022-11-21

4. The snake-inspired robots: a review;Assembly Automation;2022-07-08

5. The Development and Challenges of Robot Manipulation;The “Hand-eye-brain” System of Intelligent Robot;2021-08-04

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