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Sound based human emotion recognition using MFCC multiple SVM

机译:基于MFCC和多个SVM的声音识别

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Emotion recognition using human speech is one of the latest challenges in speech processing and Human Machine Interaction (HMI) for the purpose of addressing varied operational needs for the real world applications. Besides human facial expressions, speech has been proven to be one of the most valuable modalities for automatic recognition of human emotions. Speech is a spontaneous medium of perceiving emotions which provides in-depth. Here in this paper, we have used MFCC for extraction of features and Multiple Support Vector Machine (SVM) as a classifier. We have performed extensive experiment on happy, anger, sad, disgust, surprise and neutral emotion sound database. Performance analysis of multiple SVM revealed that non-linear kernel SVM achieved greater accuracy than linear SVM.
机译:使用人类演讲的情感识别是语音处理和人机互动(HMI)的最新挑战之一,以解决现实世界应用的各种运营需求。除了人类的面部表情外,致辞已被证明是自动识别人类情绪最有价值的模式之一。言语是感知情绪的自发介质,提供深入的情感。在本文中,我们使用了MFCC作为分类器的特征和多个支持向量机(SVM)的提取。我们在快乐,愤怒,悲伤,厌恶,惊喜和中性情绪声音数据库上进行了广泛的实验。多个SVM的性能分析显示非线性核SVM比线性SVM实现更高的精度。

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