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Articulatory-to-Acoustic Conversion of Mandarin Emotional Speech Based on PSO-LSSVM

机译:基于PSO-LSSVM的普通话情绪言论的明确声学转换

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The production of emotional speech is determined by the movement of the speaker’s tongue, lips, and jaw. In order to combine articulatory data and acoustic data of speakers, articulatory-to-acoustic conversion of emotional speech has been studied. In this paper, parameters of LSSVM model have been optimized using the PSO method, and the optimized PSO-LSSVM model was applied to the articulatory-to-acoustic conversion. The root mean square error (RMSE) and mean Mel-cepstral distortion (MMCD) have been used to evaluate the results of conversion; the evaluated result illustrates that MMCD of MFCC is 1.508?dB, and RMSE of the second formant (F2) is 25.10?Hz. The results of this research can be further applied to the feature fusion of emotion speech recognition to improve the accuracy of emotion recognition.
机译:情绪言论的生产由扬声器舌头,嘴唇和下颌的运动决定。 为了结合扬声器的明晰度数据和声学数据,研究了情绪语音的铰接到声学转换。 在本文中,使用PSO方法优化了LSSVM模型的参数,并将优化的PSO-LSSVM模型应用于铰接到声学转换。 均均方误差(RMSE)和平均晶粒畸形(MMCD)已被用于评估转换的结果; 评估结果说明了MFCC的MMCD为1.508≤DB,第二铅母(F2)的RMSE是25.10·赫兹。 该研究的结果可以进一步应用于情绪语音识别的特征融合,以提高情感识别的准确性。

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