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Acoustic model merging using acoustic models from multilingual speakers for automatic speech recognition

机译:使用来自多语种扬声器的声学模型进行自动语音识别的声学模型合并

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Many studies have explored on the usage of existing multilingual speech corpora to build an acoustic model for a target language. These works on multilingual acoustic modeling often use multilingual acoustic models to create an initial model. This initial model created is often suboptimal in decoding speech of the target language. Some speech of the target language is then used to adapt and improve the initial model. In this paper however, we investigate multilingual acoustic modeling in enhancing an acoustic model of the target language for automatic speech recognition system. The proposed approach employs context dependent acoustic model merging of a source language to adapt acoustic model of a target language. The source and target language speech are spoken by speakers from the same country. Our experiments on Malay and English automatic speech recognition shows relative improvement in WER from 2% to about 10% when multilingual acoustic model was employed.
机译:许多研究已经探索了现有的多语言语音集团的使用来构建目标语言的声学模型。这些工作在多语言声学建模上经常使用多语言声学模型来创建初始模型。创建的这个初始模型通常是对目标语言的语音进行解码的次优。然后使用目标语言的一些语音来调整和改进初始模型。然而,在本文中,我们研究了多语言声学建模,以增强自动语音识别系统的目标语言的声学模型。该方法采用源语言的上下文相关声学模型合并来调整目标语言的声学模型。来自同一个国家的发言者讲话的来源和目标语言语音。我们对马来语和英语自动语音识别的实验表明,当采用多语言声学模型时,WER的相对改善从2%到约10%。

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