Developing a hybrid language model for open vocabulary automatic speech recognition in a lecture speech task

Marc-Antoine Rondeau, R. Rose
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引用次数: 3

Abstract

This paper addresses the problem of open vocabulary automatic speech recognition (ASR) using hybrid statistical language models (LMs). Hybrid LMs differ from closed vocabulary LMs in that the word level lexicon is augmented with an inventory of sub-lexical units (SLUs). The procedures used for selecting these SLUs and expanding out-of-vocabulary (OOV) words according to the SLUs is presented in the paper. The open-vocabulary ASR performance obtained using these techniques is presented for a lecture speech task domain.
基于开放词汇自动语音识别的混合语言模型研究
本文研究了基于混合统计语言模型的开放词汇自动语音识别问题。混合LMs与封闭词汇LMs的不同之处在于,单词级别的词汇库增加了子词汇单元(slu)的清单。本文介绍了选择这些语言单元和根据语言单元扩展词汇外词的程序。在一个演讲任务域,给出了使用这些技术获得的开放词汇ASR性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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