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Thai spelling analysis for automatic spelling speech recognition

机译:泰语拼写分析可自动识别语音

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Spelling speech recognition can be applied for several purposes including enhancement of speech recognition systems and implementation of name retrieval systems. This paper presents a Thai spelling analysis to develop a Thai spelling speech recognizer. The Thai phonetic characteristics, alphabet system and spelling methods have been analyzed. As a training resource, two alternative corpora, a small spelling speech corpus and an existing large continuous speech corpus, are used to train hidden Markov models (HMMs). Then their recognition results are compared to each other. To solve the problem of utterance speed difference between spelling utterances and continuous speech utterances, the adjustment of utterance speed has been taken into account. Two alternative language models, bigram and trigram, are used for investigating performance of spelling speech recognition. Our approach achieves up to 98.0% letter correction rate, 97.9% letter accuracy and 82.8% utterance correction rate when the language model is trained based on trigrarn and the acoustic model is trained from the small spelling speech corpus with eight Gaussian mixtures. (C) 2007 Elsevier Inc. All rights reserved.
机译:拼写语音识别可以用于多种目的,包括增强语音识别系统和实现名称检索系统。本文介绍了泰语拼写分析,以开发泰语拼写语音识别器。分析了泰语的语音特性,字母系统和拼写方法。作为一种培训资源,可以使用两个备选语料库,一个小的拼写语音语料库和一个现有的大型连续语音语料库,来训练隐马尔可夫模型(HMM)。然后将它们的识别结果相互比较。为了解决拼写发声和连续语音发声之间的发声速度差异的问题,已经考虑了发声速度的调节。两种替代语言模型bigram和trigram用于调查拼写语音识别的性能。当基于trigrarn训练语言模型并且从带有8种高斯混合音的小型拼写语音语料库训练声学模型时,我们的方法可实现高达98.0%的字母纠正率,97.9%的字母准确性和82.8%的语音纠正率。 (C)2007 Elsevier Inc.保留所有权利。

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