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Role of gender influence in vocal Hindi conversations: A study on speech emotion recognition

机译:性别影响在印地语语音对话中的作用:语音情感识别研究

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Recent times have been marked with the increasing demand for more intelligent human computer interfaces. By adding emotion recognition abilities, voice based interfaces can be made more human centric. As natural languages do not share similar acoustic-phonetic features and vary in production of speech sound, the emotion recognition accuracy gets affected with respect to the user's language. This work aims at studying the patterns of stress and intonation for emotional speech in Hindi (Indo-Aryan language) and analyzing the influence of gender on speech emotion recognition accuracy. The paper proposes a combined system for gender distinction and emotion recognition by extracting basic prosodic and spectral speech features and also compares three different classification algorithms. The performed experimentation over a Hindi emotional corpus reveals that 78% correct speech emotion recognition accuracy can obtained by adopting support vector machines for classification.
机译:近年来,对更智能的人机界面的需求不断增长。通过添加情感识别功能,基于语音的界面可以变得更加以人为本。由于自然语言不共享相似的语音特征,并且语音的产生方式各不相同,因此,情感识别的准确性会受到用户语言的影响。这项工作旨在研究印地语(印地语-雅利安语)中的情感语音的压力和语调模式,并分析性别对语音情感识别准确性的影响。通过提取基本的韵律和频谱语音特征,提出了一种用于性别区分和情感识别的组合系统,并比较了三种不同的分类算法。在印地语情感语料库上进行的实验表明,采用支持向量机进行分类可以获得78%的正确语音情感识别准确度。

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