基于肌电控制的机械臂手势识别

P Adhau, G KadwaneS., Shital Telrandhe, S RajguruV.
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引用次数: 0

摘要

由于人机交互对人类的重要意义,一直是研究学者们研究的课题。鲁棒人机交互机器人,其指令来自肌电信号(EMG)最近正在研究。这篇文章涉及到对运动系统的研究,该系统允许直接从人体记录信号,然后可以用于控制小型机械臂。通过在人的手上放置电极或传感器来识别各种手势。然后用神经网络识别这些手势。神经网络将训练这些信号。机械臂的离线控制是通过控制机械臂的马达来实现的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Gestures Identification for Myoelectric Based Control of the Robotic Arm
Human robot interaction have been ever the topic of research to research scholars owing to its importance to help humanity. Robust human interacting robot where commands from Electromyogram (EMG) signals is recently being investigated. This article involves study of motions a system that allows signals recorded directly from a human body and thereafter can be used for control of a small robotic arm. The various gestures are recognized by placing the electrodes or sensors on the human hand. These gestures are then identified by using neural network. The neural network will thus train the signals. The offline control of the arm is done by controlling the motors of the robotic arm.
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