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Electromyogram signal based human emotion classification using KNN and LDA

机译:使用KNN和LDA基于肌电图信号的人类情感分类

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In this paper, we presents Electromyogram (EMG) signal based human emotion classification using K Nearest Neighbor (KNN) and Linear Discriminant Analysis (LDA). Five most dominating emotions such as: happy, disgust, fear, sad and neutral are considered and these emotions are induced through Audio-visual stimuli (video clips). EMG signals are obtained by using 3 electrodes over 10 trials per emotion and preprocessed by using Butterworth 6th order filter to remove noises and external interferences. EMG signals on decomposed into four different frequency ranges ((8 Hz– 16 Hz), (16 Hz– 31 Hz) and (16 Hz– 63 Hz)) using Discrete Wavelet Transform (DWT). The ststistical features extracted from the above frequency bands are mapped into five different emotions using two simple classifiers such as KNN and LDA. The value of K in KNN is varied randomly, and maximum classification rate is achieved at K=3. KNN classifier gives the highest classification rate on four emotions (disgust, happy, fear and neutral) different emotions and LDA on sad emotion. The maximum classification rate of disgust, happy, fear neutral, and sad are 90.83%, 100%, 94.17%, and 90.28% and 43.89%, respectively are achieved using KNN and LDA. The results from the proposed methodology are promising and female are easily evoked by different emotional stimuli compared to male.
机译:在本文中,我们使用K最近邻(KNN)和线性判别分析(LDA)呈现基于肌电图(EMG)信号的人体情绪分类。诸如:考虑过五个最统治的情绪,如:幸福,厌恶,恐惧,悲伤和中性,通过视听刺激(视频剪辑)引起这些情绪。通过使用每种情绪的3个电极和通过使用Butterworth 6 TH 订单过滤器预处理的3个电极获得EMG信号,以去除噪声和外部干扰。使用离散小波变换(DWT)分解成四种不同频率范围((8Hz-16 Hz)和(16Hz-63Hz)和(16Hz-63Hz))的EMG信号。使用两个简单的分类器如KNN和LDA,从上述频带提取的标志特征映射到五种不同的情绪中。 KNN中的k值随机变化,并且在k = 3处实现了最大分类速率。 KNN分类器给出了四种情绪(厌恶,快乐,恐惧和中性)不同情绪和LDA的最高分类率。使用KNN和LDA可以实现最大的厌恶,快乐,恐惧中性和悲伤的最大分类率90.83%,100%,94.17%和90.28%和43.89%。拟议方法的结果是有前途的,与男性相比,不同的情绪刺激很容易引起女性。

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