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A study on average voice model training using vocal tract length normalization

机译:利用声带长度归一化的平均语音模型培训研究

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摘要

This paper describes a new training technique of average voice model using speaker normalization. In the proposed technique, to reduce the influence of variability of formant frequency due to the difference in vocal tract lengths of speakers, we incorporate a vocal length normalization technique into training stage of the spectral part of average voice model. It is observed that average voice model trained using the proposed technique generates sharper spectral envelope than the conventional average model. Moreover, from the results of subjective tests, it is shown that the proposed technique generates average voice of better quality than models trained using the conventional or speaker adaptive training techniques.
机译:本文介绍了使用扬声器归一化的平均语音模型的新培训技术。 在提出的技术中,为了减少因子频率差异扬声器的差异而降低了成形频率变异的影响,我们将声音长度归一化技术纳入平均语音模型的光谱部分的训练阶段。 观察到,使用所提出的技术训练的平均语音模型比传统的平均模型产生更清晰的光谱信封。 此外,从主观测试的结果,示出了所提出的技术产生比使用传统或扬声器自适应训练技术训练的模型更好的质量的平均声音。

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