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HMM-based sequence-to-frame mapping for voice conversion

机译:基于HMM的语音序列到帧映射

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Voice conversion can be reduced to a problem to find a transformation function between the corresponding speech sequences of two speakers. Perhaps the most voice conversions methods are GMM-based statistical mapping methods [1, 2]. However, the classical GMM-based mapping is frame-to-frame, and cannot take account of the contextual information existing over a speech sequence. It is well known that HMM yields an efficient method to model the density of a whole speech sequence and has found great successes in speech recognition and synthesis. Inspired by this fact, this paper studies how to use HMM for voice conversion. We derive an HMM-based sequence-to-frame mapping function with statistical analysis. Different from previous HMM-based voice conversion methods [3, 4, 5] that used forced alignment for segmentation and transform frames aligned to a state with its associated linear transformation, our method has a soft mapping function as a weighted summation of linear transformations. The weights are calculated as the HMM posterior probabilities of frames. We also propose and compare two methods to learn the parameters of our mapping functions, namely least square error estimation and maximum likelihood estimation. We carried out experiments to examine the proposed HMM-based method for voice conversion.
机译:语音转换可以简化为在两个扬声器的相应语音序列之间找到转换函数的问题。也许大多数语音转换方法是基于GMM的统计映射方法[1、2]。但是,经典的基于GMM的映射是逐帧映射的,无法考虑语音序列上存在的上下文信息。众所周知,HMM产生了一种有效的方法来对整个语音序列的密度进行建模,并且在语音识别和合成方面取得了巨大的成功。受这一事实的启发,本文研究了如何使用HMM进行语音转换。我们通过统计分析得出基于HMM的序列到帧映射函数。与以前的基于HMM的语音转换方法[3、4、5]不同,该方法使用强制对齐进行分段,并使用相关联的线性变换对与状态对齐的帧进行变换,我们的方法具有软映射功能,可以作为线性变换的加权求和。权重被计算为帧的HMM后验概率。我们还提出并比较了两种学习映射函数参数的方法,即最小平方误差估计和最大似然估计。我们进行了实验,以研究提出的基于HMM的语音转换方法。

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