Central Pattern Generator with Defined Pulse Signals for Compliant-Resistant Control of Biped Robots
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Published:2023-03-02
Issue:1
Volume:8
Page:100
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ISSN:2313-7673
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Container-title:Biomimetics
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language:en
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Short-container-title:Biomimetics
Author:
Xu Zihan1, Fang Qin1, Liu Chengju12, Chen Qijun1
Affiliation:
1. Robot and Artificial Intelligence Lab (RAIL), College of Electronic and Information Engineering, Tongji University, No. 4800 Cao’an Road, Shanghai 201804, China 2. Tongji Artificial Intelligence (Suzhou) Research Institute, Suzhou 215000, China
Abstract
For biped robots, the ability to maintain balance under external forces is an essential requirement. Inspired by human beings’ behaviors to resist external forces, a compliant-resistant balance-control method is proposed to keep the biped robot balance subjected to an external force. A model-free trajectory generator is designed based on the central pattern generator (CPG) to generate compliant-resistant human-like behavior. The CPG pattern generator generates the desired pulse signal utilizing Matsuoka’s CPG. The signal modulator applies the defined signal to the robot’s center of mass (CoM) to generate the workspace trajectory when standing on double feet. Moreover, when standing on single foot, the output signal of the CPG will directly act on the hip joint of the robot to generate the joint space trajectory. Furthermore, the motion engine calculates the workspace trajectory into joint sequence values. The proposed control strategy can generate defined pulse signals to realize compliant-resistant balance control for biped robots. The control strategy proposed in this paper is verified in the NAO simulation environment.
Funder
National Natural Science Foundation of China Suzhou Key Industry Technological Innovation-Core Technology R&D Program Jiangsu Science and Technology Plan Shanghai Municipal Science and Technology Major Project Fundamental Research Funds for the Central Universities. Science and technology innovation action plan - AI technology support project
Subject
Molecular Medicine,Biomedical Engineering,Biochemistry,Biomaterials,Bioengineering,Biotechnology
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