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OPTIMIZATION OF COST FUNCTION WEIGHTS FOR UNIT SELECTION SPEECH SYNTHESIS USING SPEECH RECOGNITION

机译:语音识别优化单位选择语音合成的成本函数权重

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摘要

A well known problem in unit selection speech synthesis is designing the join and target function sub-costs and optimizing their corresponding weights so that they reflect the human listeners' preferences. To achieve this we propose a procedure where an objective criterion for optimal speech unit selection is used. The objective criterion for tuning the cost function weights is based on automatic speech recognition results. In order to demonstrate the effectiveness of the proposed method listening tests with 31 naive listeners were performed. The experimental results have shown that the proposed method improves speech quality and intelligibility. In order to evaluate the quality of synthesized speech the unit selection speech synthesis system is compared with two other Croatian speech synthesis systems with voices built using the same recorded speech corpus. One of these voices was built with the Festival speech synthesis system using the statistical parametric method and the other is a diphone concatenation based text-to-speech system. The comparison is based on subjective tests using MOS (mean opinion score) evaluation. The system using the proposed method used for cost function weights optimization performs better than other compared systems according to the subjective tests.
机译:单元选择语音合成中的一个众所周知的问题是设计连接和目标功能子成本,并优化它们的相应权重,以使其反映听众的喜好。为了实现这一点,我们提出了一种使用最佳语音单元选择的客观标准的程序。调整成本函数权重的客观标准基于自动语音识别结果。为了证明所提出方法的有效性,进行了3​​1位天真听众的听力测试。实验结果表明,该方法提高了语音质量和清晰度。为了评估合成语音的质量,将单元选择语音合成系统与其他两个克罗地亚语音合成系统进行比较,这些系统的语音使用相同的录制语音语料库构建。这些声音之一是通过使用统计参数方法的Festival语音合成系统构建的,另一种是基于双音素级联的文本语音转换系统。比较基于使用MOS(平均意见评分)评估的主观测试。根据主观测试,使用提出的用于成本函数权重优化的方法的系统的性能要优于其他比较系统。

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