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Enhanced real-time cursor control algorithm, based on the spectral analysis of electromyograms.

机译:增强的实时光标控制算法,基于肌电图的频谱分析。

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摘要

This paper presents a new version of an EMG-based, hands-free, cursor control system, and compares its performance to that of a previous version. Both systems use classification algorithms that rely on the periodogram estimation of the power spectral density (PSD) of electromyogram (EMG) signals from muscles in the face. The older system requires three electrodes for EMG input, and utilizes an algorithm that calculates partial power accumulations over the frequency ranges of 0Hz - 145Hz and 145Hz - 600Hz in the PSDs of the EMG signals. The new system requires four electrodes for EMG input, and utilizes an algorithm that calculates mean power frequency (MPF) values to assist in distinguishing the cranial muscle that contracted. An experiment was devised to gauge the point-and-click capabilities of both systems. The experimental results were evaluated using Fitts' Law analysis. The results show that the new algorithm provides improved point-and-click performance over the old algorithm.
机译:本文介绍了基于EMG的免提光标控制系统的新版本,并将其性能与以前的版本进行了比较。两种系统都使用分类算法,这些算法依赖于对来自面部肌肉的肌电图(EMG)信号的功率谱密度(PSD)进行周期图估计。较早的系统需要三个电极用于EMG输入,并利用一种算法来计算EMG信号PSD中0Hz-145Hz和145Hz-600Hz频率范围内的部分功率累积。新系统需要四个电极用于EMG输入,并利用一种算法来计算平均功率频率(MPF)值,以帮助区分收缩的颅肌。设计了一个实验来评估两个系统的点击功能。使用菲茨定律分析评估实验结果。结果表明,新算法与旧算法相比,具有改进的点击性能。

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