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On the Comparison of Different Phrase Boundary Detection Approaches Trained on Czech TTS Speech Corpora

机译:捷克TTS语音基层训练不同短语边界检测方法的比较

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The phrasing is a very important issue in the process of speech synthesis since it ensures higher naturalness and intelligibility of synthesized sentences. There are many different approaches to phrase boundary detection, including simple classification-based, HMM-based, CRF-based approaches, however, different types of neural networks are used for this task as well. The paper compares representative methods for phrasing of Czech sentences using large-scale TTS speech corpora as training data, taking only speaker-dependent phrasing issue into consideration.
机译:这种短语是语音合成过程中的一个非常重要的问题,因为它确保了综合句子的更高的自然和可懂度。短语边界检测有许多不同的方法,包括基于简单的分类,基于HMM的基于CRF的方法,然而,对此任务使用不同类型的神经网络。本文比较了使用大规模TTS语音基层作为培训数据的捷克句子的代表方法,只考虑了扬声器依赖的措辞。

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