基于K-NN和Naïve贝叶斯的手势识别比较

D. Pamungkas, Imanuel Simatupang, S. K. Risandriya
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引用次数: 1

摘要

有一些技术可以利用肌电信号来识别手部的手势。本文对K-NN方法与Naïve贝叶斯算法进行了比较。为了获得肌电图信号,使用Myo臂带,将其放置在受试者的手臂上。两种算法使用五种手势进行比较。这些手势被用来驱动移动机器人沿着特定的路径移动。结果表明,Naïve贝叶斯的成功分数高于K-NN。此外,当使用这些算法来控制机器人时,Naïve贝叶斯方法比K-NN算法更快地完成路径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparison Gestures Recognition Using K-NN and Naïve Bayes
There are some technics to recognize the gesture of the hands using electromyography signals (EMG). Comparing the K-NN method and the Naïve Bayes algorithm is presented in this paper. To obtain the EMG signal, a Myo armband is used, which is placed in the arm of a subject. Five gestures of the hand are used to be compared by both algorithms. Those gestures are utilized to drive a mobile robot to follow a particular path. The results show that the Naïve Bayes has success scores higher than the K-NN. Moreover, when the algorithms are used to control the robot, the Naïve Bayes method is faster to complete the path than the K-NN algorithm.
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