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Articulatory feature-based pronunciation modeling

机译:基于发音特征的发音建模

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摘要

Spoken language, especially conversational speech, is characterized by great variability in word pronunciation, including many variants that differ grossly from dictionary prototypes. This is one factor in the poor performance of automatic speech recognizers on conversational speech, and it has been very difficult to mitigate in traditional phone-based approaches to speech recognition. An alternative approach, which has been studied by ourselves and others, is one based on sub-phonetic features rather than phones. In such an approach, a word's pronunciation is represented as multiple streams of phonological features rather than a single stream of phones. Features may correspond to the positions of the speech articulators, such as the lips and tongue, or may be more abstract categories such as manner and place. This article reviews our work on a particular type of articulatory feature-based pronunciation model. The model allows for asynchrony between features, as well as per-feature substitutions, making it more natural to account for many pronunciation changes that are difficult to handle with phone-based models. Such models can be efficiently represented as dynamic Bayesian networks. The feature-based models improve significantly over phone-based counterparts in terms of frame perplexity and lexical access accuracy. The remainder of the article discusses related work and future directions.
机译:口语,尤其是会话语音,其特征是单词发音的变化很大,包括许多与词典原型完全不同的变体。这是自动语音识别器在会话语音上性能较差的一个因素,并且在传统的基于电话的语音识别方法中很难缓解。我们和其他人已经研究过的另一种方法是基于子语音功能而不是电话。在这种方法中,单词的发音表示为语音特征的多个流,而不是单个电话流。特征可以对应于语音发音器的位置,例如嘴唇和舌头,或者可以是更抽象的类别,例如方式和位置。本文回顾了我们针对基于发音特征的特定发音模型的工作。该模型允许功能之间的异步以及按功能的替换,这使得处理许多基于电话的模型难以处理的发音更改更为自然。这样的模型可以有效地表示为动态贝叶斯网络。基于功能的模型在帧复杂度和词法访问准确性方面比基于电话的模型有了显着提高。本文的其余部分讨论了相关的工作和未来的方向。

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