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首页> 外文期刊>International Journal of Artificial Intelligence Tools: Architectures, Languages, Algorithms >Application of Morphosyntactic and Class-Based Language Models in Automatic Speech Recognition of Polish
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Application of Morphosyntactic and Class-Based Language Models in Automatic Speech Recognition of Polish

机译:形态语法和基于类的语言模型在波兰语自动语音识别中的应用

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摘要

In this paper we investigate the usefulness of morphosyntactic information as well as clustering in modeling Polish for automatic speech recognition. Polish is an inflectional language, thus we investigate the usefulness of an N-gram model based on morphosyntactic features. We present how individual types of features influence the model and which types of features are best suited for building a language model for automatic speech recognition. We compared the results of applying them with a class-based model that is automatically derived from the training corpus. We show that our approach towards clustering performs significantly better than frequently used SRI LM clustering method. However, this difference is apparent only for smaller corpora.
机译:在本文中,我们研究了句法信息以及聚类在波兰语自动语音识别建模中的有用性。波兰语是一种屈折的语言,因此我们研究基于句法句法特征的N-gram模型的用处。我们介绍了各种类型的特征如何影响模型,以及哪种类型的特征最适合构建自动语音识别的语言模型。我们将应用它们的结果与从训练语料库中自动得出的基于类的模型进行了比较。我们表明,与常用的SRI LM聚类方法相比,我们的聚类方法性能明显更好。但是,这种差异仅在较小的语料库中才明显。

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