一种基于肌电图的手势识别新方法。个人和人际变异性分析

Javier Alejandro Ordóñez Flores, Robin Gerardo Alvarez Rueda, Marco E. Benalcázar, Lorena Isabel Barona López, Ángel Leonardo Valdivieso Caraguay, Patricio Cruz, J. P. Vásconez
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引用次数: 2

摘要

用于模式识别的系统通常分为4个阶段:信号采集、预处理、特征提取和分类。然而,在这最后3个阶段使用算法是不合理的,研究人员使用它们时除了在过程结束时获得的结果之外没有其他标准。在本文中,我们提出了一种新的方法,并展示了其在使用放置在前臂上的Myo臂带装置基于8通道肌电图识别五种手势的特殊应用。如果提取n个特征,它们将在n维空间中形成点的聚类,现在选择最佳预处理算法和最佳特征是基于最大化聚类之间的距离。另一方面,为了便于对这一现象的理解,我们对个人和人际变异都进行了处理。作为验证,该方法应用于12个人,识别准确率达到97%。
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A New Methodology For Pattern Recognition Applied To Hand Gestures Recognition Using EMG. Analysis Of Intrapersonal And Interpersonal Variability
Systems used for pattern recognition are usually divided into 4 stages: signal acquisition, preprocessing, feature extraction and classification. However, the use of algorithms in these last 3 stages is not justified and researchers use them without criteria other than the result achieved at the end of the process. In this paper we propose a new methodology and show its particular application to the recognition of five hand gestures based on 8 channels of Electromyography using the Myo armband device placed on the forearm. If n features are extracted, they will form clusters of points in n-dimensional space and now the selection of the best preprocessing algorithms and the best features are based on maximizing the distance among clusters. On the other hand, both intrapersonal and interpersonal variability are treated to facilitate the understanding of the phenomenon. As a demonstration, it was applied to 12 people and the recognition accuracy was 97%.
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