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Acoustic feature selection and classification of emotions in speech using a 3D continuous emotion model

机译:使用3D连续情感模型对语音中的情感进行声学特征选择和分类

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In this paper we report the results obtained from experiments with a database of emotional speech in English in order to find the most important acoustic features to estimate Emotion Primitives which determine the emotional content on speech. We are interested in exploiting the potential benefits of continuous emotion models, so in this paper we demonstrate the feasibility of applying this approach to annotation of emotional speech and we explore ways to take advantage of this kind of annotation to improve the automatic classification of basic emotions.
机译:在本文中,我们报告了使用英语情感语音数据库的实验结果,以便找到最重要的声学特征来估算确定语音情感内容的情感基元。我们有兴趣探索连续情感模型的潜在好处,因此在本文中,我们演示了将这种方法应用于情感语音注释的可行性,并探索了利用这种注释来改善基本情绪自动分类的方法。 。

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