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Efficient Structured Language Modeling for Speech Recognition

机译:用于语音识别的高效结构化语言建模

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The structured language model (SLM) of [1] was one of the first to successfully integrate syntactic structure into language models. We extend the SLM framework in two new directions. First, we propose a new syntactic hierarchical interpolation that improves over previous approaches. Second, we develop a general information-theoretic algorithm for pruning the underlying Jelinek-Mercer interpolated LM used in [1], which substantially reduces the size of the LM, enabling us to train on large data. When combined with hill-climbing [2] the SLM is an accurate model, space-efficient and fast for rescoring large speech lattices. Experimental results on broadcast news demonstrate that the SLM outperforms a large 4-gram LM.
机译:[1]的结构化语言模型(SLM)是第一个将句法结构成功集成到语言模型中的语言模型之一。我们以两个新的方向扩展SLM框架。首先,我们提出了一种新的句法分层插值,可以改善以前的方法。其次,我们开发了一种用于修剪[1]中使用的底层Jelinek-Mercer插值LM的一般信息 - 理论理学算法,这显着降低了LM的大小,使我们能够在大数据上训练。与爬山混合[2]时,SLM是一种准确的模型,节省空间,快速繁殖大型语音格子。广播新闻的实验结果表明,SLM优于一个大的4克LM。

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