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Development of a statistical parametric synthesis system for operatic singing in German

机译:德语歌剧演唱统计参数合成系统的开发

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摘要

In this paper we describe the development of a Hidden Markov Model (HMM) based synthesis system for operatic singing in German, which is an extension of the HMM-based synthesis system for popular songs in Japanese and English called “Sinsy”. The implementation of this system consists of German text analysis, lexicon and Letter-To-Sound (LTS) conversion, and syllable duplication, which enables us to convert a German MusicXML input into context-dependent labels for acoustic modelling. Using the front-end, we develop two operatic singing voices, female mezzo-soprano and male bass voices, based on our new database, which consists of singing data of professional opera singers based in Vienna. We describe the details of the database and the recording procedure that is used to acquire singing data of four opera singers in German. For HMM training, we adopt a singer (speaker)-dependent training procedure. For duration modelling we propose a simple method that hierarchically constrains note durations by the overall utterance duration and then constrains phone durations by the synthesised note duration. We evaluate the performance of the voices with two vibrato modelling methods that have been proposed in the literature and show that HM
机译:在本文中,我们描述了基于隐马尔可夫模型(HMM)的德语歌剧演唱合成系统的开发,这是基于HMM的日语和英语流行歌曲合成系统“ Sinsy”的扩展。该系统的实现包括德语文本分析,词典和声音转字母(LTS)以及音节重复,这使我们能够将德语MusicXML输入转换为上下文相关的标签以进行声学建模。在前端的基础上,我们根据新数据库开发了两种歌剧演唱声,女中音女高音和男低音女声,其中包括维也纳专业歌剧歌手的演唱数据。我们描述了数据库的详细信息以及用于获取四名德语歌剧演唱者的歌唱数据的录制程序。对于HMM培训,我们采用依赖歌手(发言人)的培训程序。对于持续时间建模,我们提出了一种简单的方法,该方法通过整体话语持续时间分层约束音符持续时间,然后通过合成音符持续时间约束电话持续时间。我们使用文献中提出的两种颤音建模方法评估声音的性能,并证明

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