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A New Language Model Adaptation Framework Using Modification of Structures of Background Corpus and Language Model

机译:利用背景语料库和语言模型结构修改的新语言模型适应框架

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This paper presents a new framework of language model adaptation based on modification of structures of background corpus and language model. The widely used adaptation approach such as Linear Interpolation Method (LI) and Minimum Discrimination Information (MDI) method are used as the approaches to modify structure of trained background language model in new framework, while Maximum A Posteriori approach (MAP) is used as the method of modifying structure of background corpus. Experiments show that both techniques in the framework yield a significant reduction in perplexity over LI, MAP and MDI method in general adaptation framework about 5.2%, 12.2% and 36.8% respectively.
机译:本文提出了一种基于背景语料库和语言模型结构修改的语言模型适应新框架。在新的框架中,诸如线性插值法(LI)和最小区分信息(MDI)方法等被广泛使用的自适应方法被用作修改训练有素的背景语言模型的结构的方法,而最大后验方法(MAP)被用作方法。修饰背景语料库结构的方法。实验表明,与一般适应框架中的LI,MAP和MDI方法相比,该框架中的这两种技术均显着降低了困惑度,分别降低了5.2%,12.2%和36.8%。

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