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Emotion Recognition through Speech Signal for Human-Computer Interaction

机译:通过语音信号进行人机交互的情绪识别

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This paper aims at developing a Speaker Emotion Recognition (SER) system to recognize seven different emotions namely anger, boredom, fear, disgust, happiness, neutral and sadness with a generalized feature set in real-time. Continuous HMM and LIBSVM classifiers are considered in this paper. The choice of LIBSVM classifier provides better recognition rates for few emotions (Anger and Fear) compared to the Continuous HMM classifier used in the earlier work by Xiang Li. The Hilbert-Huang transform (HHT) and Teager Energy Operator (TEO) based features gives the advantage of self-adaptability and hence can be used for real time applications.
机译:本文旨在开发一种说话人情绪识别(SER)系统,以实时设置通用功能来识别七种不同的情绪,即愤怒,无聊,恐惧,厌恶,幸福,中立和悲伤。本文考虑了连续HMM和LIBSVM分类器。相较于香力早期工作中使用的“连续HMM”分类器,选择LIBSVM分类器可以为几乎没有情绪(“愤怒”和“恐惧”)提供更好的识别率。基于Hilbert-Huang变换(HHT)和Teager能量算子(TEO)的功能具有自适应性的优点,因此可用于实时应用。

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