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Nonparallel training for voice conversion based on a parameter adaptation approach

机译:基于参数自适应方法的语音转换非并行训练

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The objective of voice conversion algorithms is to modify the speech by a particular source speaker so that it sounds as if spoken by a different target speaker. Current conversion algorithms employ a training procedure, during which the same utterances spoken by both the source and target speakers are needed for deriving the desired conversion parameters. Such a (parallel) corpus, is often difficult or impossible to collect. Here, we propose an algorithm that relaxes this constraint, i.e., the training corpus does not necessarily contain the same utterances from both speakers. The proposed algorithm is based on speaker adaptation techniques, adapting the conversion parameters derived for a particular pair of speakers to a different pair, for which only a nonparallel corpus is available. We show that adaptation reduces the error obtained when simply applying the conversion parameters of one pair of speakers to another by a factor that can reach 30%. A speaker identification measure is also employed that more insightfully portrays the importance of adaptation, while listening tests confirm the success of our method. Both the objective and subjective tests employed, demonstrate that the proposed algorithm achieves comparable results with the ideal case when a parallel corpus is available.
机译:语音转换算法的目的是修改特定源说话者的语音,使其听起来好像由其他目标说话者说出。当前的转换算法采用训练过程,在此过程中,需要由源说话者和目标说话者说出的相同话语来导出所需的转换参数。这样的(平行)语料库通常很难或不可能收集。在这里,我们提出了一种放宽此约束的算法,即训练语料不一定包含来自两个说话者的相同话语。所提出的算法基于说话者自适应技术,将为特定的一对说话者导出的转换参数调整为不同的配对,对于该配对,仅非并行语料库可用。我们表明,自适应可将简单地将一对扬声器的转换参数应用于另一对扬声器的转换参数时可降低的误差达到30%。还采用了说话人识别措施,可以更深刻地说明适应的重要性,而听力测试则证实了我们方法的成功。进行的客观和主观测试均表明,当有平行语料库可用时,所提出的算法可以达到理想情况下的可比结果。

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