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An overlapping-feature-based phonological model incorporating linguistic constraints: Applications to speech recognition

机译:结合语言限制的基于重叠特征的语音模型:在语音识别中的应用

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摘要

Modeling phonological units of speech is a critical issue in speech recognition. In this paper, our recent development of an overlapping-feature-based phonological model that represents long-span contextual dependency in speech acoustics is reported. In this model, high-level linguistic constraints are incorporated in automatic construction of the patterns of feature-overlapping and of the hidden Markov model (HMM) states induced by such patterns. The main linguistic information explored includes word and phrase boundaries, morpheme, syllable, syllable constituent categories, and word stress. A consistent computational framework developed for the construction of the feature-based model and the major components of the model are described. Experimental results on the use of the overlapping-feature model in an HMM-based system for speech recognition show improvements over the conventional triphone-based phonological model.
机译:对语音的语音单位建模是语音识别中的关键问题。在本文中,我们报道了基于重叠特征的语音模型的最新发展,该模型表示语音声学中的大跨度语境依赖性。在此模型中,高级语言约束被并入自动构建特征重叠的模式以及由这种模式引起的隐马尔可夫模型(HMM)状态的模式。探索的主要语言信息包括单词和短语边界,词素,音节,音节组成类别和单词重音。描述了为构建基于特征的模型和模型的主要组件而开发的一致的计算框架。在基于HMM的系统中使用重叠特征模型进行语音识别的实验结果表明,与传统的基于三音素的语音模型相比,该方法有所改进。

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