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Adding dimensional features for emotion recognition on speech

机译:添加尺寸特征以进行语音情感识别

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Developing accurate emotion recognition systems requires extracting suitable features of these emotions. In this paper, we propose an original approach of parameters extraction based on the strong, theoretical and empirical, correlation between the emotion categories and the dimensional emotions parameters. More precisely, acoustic features and dimensional emotion parameters are combined for better speech emotion characterisation. The procedure consists in developing arousal and valence models by regression on the training data and estimating, by classification, their values in the test data. Hence, when classifying an unknown sample into emotion categories, these estimations could be integrated into the feature vectors. It is noted that the results using this new set of parameters show a significant improvement of the speech emotion recognition performance.
机译:开发准确的情绪识别系统需要提取这些情绪的合适特征。在本文中,我们基于情感类别与维数情感参数之间的强相关性,理论和经验,提出了一种原始的参数提取方法。更精确地,声学特征和维数情感参数被组合以更好地表征语音情感。该程序包括通过对训练数据进行回归并通过分类估计测试数据中的值来开发唤醒和价模型。因此,当将未知样本分类为情感类别时,这些估计可以整合到特征向量中。注意,使用此新参数集的结果显示了语音情感识别性能的显着改善。

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