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基于肌电信号的膝关节跨越障碍角度预测方法
引用本文:陈天麟,戴佺民,,程光,,马勇杰,孙佰鑫,刘伟锋,许晓容.基于肌电信号的膝关节跨越障碍角度预测方法[J].中国医学物理学杂志,2020,37(10):1293-1301.
作者姓名:陈天麟  戴佺民    程光    马勇杰  孙佰鑫  刘伟锋  许晓容
作者单位:1.北京联合大学机器人学院, 北京 100101; 2.北京联合大学城市轨道交通与物流学院, 北京 100101
摘    要:为解决人体跨越障碍物时膝关节角度输出的问题,针对性设计一种穿戴式信号获取实验台,对下肢运动姿态进行运动分析,将肌肉电信号及关节角度信号作为运动数据,对信号进行处理后利用BP神经网络预测跨越障碍时输出角度,提出一种利用BP神经网络算法,根据不同大腿抬起高度,分析膝关节运动主动肌与被动肌发力程度,预测输出人体跨越障碍时膝关节角度的方法,能够有效帮助假肢膝关节或康复机器人实现跨越障碍的复杂动作。

关 键 词:膝关节  跨越障碍  肌肉电信号  BP神经网络  角度预测

Prediction of knee joint angle when crossing obstacles based on myoelectric signals
CHEN Tianlin,DAI Quanmin,,CHENG Guang,,MA Yongjie,SUN Baixin,LIU Weifeng,XU Xiaorong.Prediction of knee joint angle when crossing obstacles based on myoelectric signals[J].Chinese Journal of Medical Physics,2020,37(10):1293-1301.
Authors:CHEN Tianlin  DAI Quanmin    CHENG Guang    MA Yongjie  SUN Baixin  LIU Weifeng  XU Xiaorong
Affiliation:1. College of Robotics, Beijing Union University, Beijing 100101, China 2. College of Urban Rail Transit and Logistics, Beijing Union University, Beijing 100101, China
Abstract:Abstract: In order to solve the problem of knee joint angle output when the human body crosses obstacles, a wearable signal acquisition test bench is designed. The motion analysis of the lower limb is carried out, and the myoelectrical signals and joint angle signals are used as motion data. After signal processing, BP neural network is used to predict the output angle when crossing obstacles. Herein a novel method based on BP neural network algorithm is proposed to analyze the forces of knee joint motion active muscle and passive muscle according to different thigh lift heights, and to predict the knee joint angle when the human body crosses obstacles. The proposed method can effectively help the prosthetic knee joint or rehabilitation robots implement the complex movement of obstacle crossing.
Keywords:Keywords: knee joint obstacle crossing myoelectrical signal BP neural network angle prediction
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