基于表面肌电信号的自适应运动识别实时学习方法

R. Kato, H. Yokoi, T. Arai
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引用次数: 46

摘要

本文描述了一种新的实时学习方法,用于从肌电信号中开发鲁棒的运动识别方法,以适应用户特征的变化。该方法是在假定输入动作是连续的,教学动作具有模糊性的前提下进行的,因此可以实现学习数据的自动加、消、选。应用本文提出的方法对8种前臂动作进行了识别实验,结果表明,即使用户特征发生变化,也能保持稳定高效的识别率
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Real-time Learning Method for Adaptable Motion-Discrimination using Surface EMG Signal
This paper describes a new real-time learning method for the development of a robust motion discriminating method from an EMG signal, to adjust to the change in user's characteristics. This method is done under the assumptions that the input motions are continuous, and the teaching motions are ambiguous in nature, therefore, automatic addition, elimination and selection of learning data are possible. Applying our proposed method, we conducted experiments to discriminate eight forearm motions, with the results, a stable and highly effective discrimination rate was achieved and maintained even when changes occurred in user's characteristics
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