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Prosodic feature based speech emotion recognition at segmental and supra segmental levels

机译:基于韵律特征的语音情感识别在节段和同步分段水平

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Speech emotion recognition has an increasingly significant role in human - computer interfaces as well as in the communication among human beings. This paper presents the results of investigations in emotion recognition based on the prosodic features of 1050 segmental and 1400 supra segmental speech wave files in English. The investigations were done in neutral and six basic emotions collected from ten female speakers of Indian English. The features considered in this investigation are intensity, pitch, and duration or speech rate; which were statistically analyzed. The role of each feature in emotion recognition was quantitatively assessed in terms of the classification rates of the K-Nearest Neighbor, Naive Bayes and the Artificial Neural Network classifiers. At the segmental level, all emotions could be classified, with an average emotion classification rate of 95.91%, based on the prosodic feature set, and these results were validated. The obtained results indicate saving of time and effort by the classification of emotions from minimum inputs and is therefore significant. Besides, the existence of prosody has been acknowledged at the supra segmental level only, as per available literature. At the supra segmental level, all emotions have been recognized at an average classification of 91.96%.
机译:语音情感认可在人机界面中具有越来越重要的作用以及人类之间的沟通。本文基于1050个分段和1400个Supra节段语音波文件的韵律特征,介绍了情感识别的调查结果。从印度英语十个女性扬声器中收集的中性和六种基本情绪进行了调查。在本研究中考虑的特征是强度,间距和持续时间或言语;在统计学分析。根据K-Collow邻居,幼稚贝叶斯和人工神经网络分类器的分类率,每种特征在情绪识别中的作用。在节段水平,所有情绪可以分类,平均情绪分类率为95.91%,基于韵律特征集,这些结果得到了验证。所获得的结果表明,通过从最小输入的情感分类,节省时间和精力,因此很重要。此外,根据可用文献,仅在Supra节段性水平上确认了韵律的存在。在Supra节段水平上,所有情绪都以91.96%的平均分类公认。

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