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Speech feature analysis and spectrum conversion from children to young adults

机译:从儿童到年轻人的语音特征分析和频谱转换

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In this paper, the short time spectral envelope differences are analyzed and compared between children and young adults speech. Based on the analysis, a feature matching alignment Gaussian mixture model (FMA-GMM) is proposed to achieve the voice conversion from children to young adults. The model is gender-dependent and feature parallel training. In FMA-GMM, the F0 track matching degree is computed between several children and young adult speakers. Then a child and a young adult who have the best matching degree are chose to making feature warping alignment. The test speech is produced by twelve young people who provide the recordings in childhood. Experimental results show that the proposed method can achieve better performance than GMM and piece-wise linear warping function.
机译:本文对儿童和年轻人语音之间的短时频谱包络差异进行了分析和比较。在分析的基础上,提出了一种特征匹配对准高斯混合模型(FMA-GMM),以实现从儿童到年轻人的语音转换。该模型取决于性别,并具有并行训练的功能。在FMA-GMM中,F0音轨匹配度是在几个儿童和成年年轻人之间计算的。然后选择具有最佳匹配度的儿童和年轻成年人进行特征翘曲对齐。测试语音由十二个年轻人提供,他们在童年时期提供录音。实验结果表明,该方法比GMM和分段线性翘曲函数具有更好的性能。

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