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An investigation of heuristic, manual and statistical pronunciation derivation for Pashto

机译:粉碎的启发式,手动和统计发音推导的调查

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In this paper, we study the issue of generating pronunciations for training and decoding with an ASR system for Pashto in the context of a Speech to Speech Translation system developed for TRANSTAC. As with other low resourced languages, a limited amount of acoustic training data was available with a corresponding set of manually produced vowelized pronunciations. We augment this data with other sources, but lack pronunciations for unseen words in the new audio and associated text. Four methods are investigated for generating these pronunciations, or baseforms: an heuristic grapheme to phoneme map, manual annotation, and two methods based on statistical models. The first of these uses a joint Maximum Entropy N-gram model while the other is based on a log-linear Statistical Machine Translation model. We report results on a state of the art, discriminatively trained, ASR system and show that the manual and statistical methods provide an improvement over the grapheme to phoneme map. Moreover, we demonstrate that the automatic statistical methods can perform as well or better than manual generation by native speakers, even in the case where we have a significant number of high quality, manually generated pronunciations beyond those provided by the TRANSTAC program.
机译:在本文中,我们研究了在为Transtac开发的语音翻译系统的语音上的语音上的语音上的语音中生成培训和解码发音和解码的问题。与其他低资源语言一样,有有限量的声学训练数据可用具有相应的手动制作的修饰发音。我们使用其他来源扩充此数据,但缺少新音频和关联文本中的未经看不见语言的发音。研究了四种方法,用于生成这些发音,或基于统计模型的音素映射,手动注释和两种方法的启发式图形。其中的第一个使用联合最大熵N-GRAM模型,而另一个是基于对数线性统计机器翻译模型。我们向现有技术的结果报告,辨别训练,ASR系统,并表明手册和统计方法提供了对Phoneme Map的图形改进。此外,我们证明了自动统计方法也可以由母语扬声器的手动生成来表现,即使在我们具有大量高质量的情况下,手动生成的发音超出由Transtac程序提供的那种情况。

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