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Application of voiced-speech variability descriptors to emotion recognition

机译:语音变异性描述符在情绪识别中的应用

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The following paper examines a possibility of applying phone-pronunciation variability descriptors in emotion classification. The proposed group of descriptors comprises a set of statistical parameters of Poincare maps, which are derived for evolution of formant-frequencies and energy of voiced-speech segments. Poincare maps are represented by means of four different parameters that summarize various aspects of plot's scatter. It has been shown that incorporation of the proposed features into a set of commonly-used emotional-speech descriptors, results in a substantial, ten-percent increase in emotion classification performance — recognition rates are at the order of 80% for six-category, speaker independent experiments.
机译:以下论文研究了在情绪分类中应用电话发音变异性描述符的可能性。提议的描述符组包括Poincare映射的一组统计参数,这些参数是为共振峰频率和语音段能量的演变而导出的。庞加莱图通过四个不同的参数来表示,这些参数总结了地块散布的各个方面。研究表明,将拟议的特征整合到一组常用的情绪语音描述符中,可以使情绪分类性能大幅提高百分之十,六种类别的识别率约为80%,演讲者独立实验。

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