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An acoustic-phonetic analysis of large vocabulary continuous Mandarin speech recognition for non-native speakers

机译:非母语人士对大词汇量连续汉语普通话语音识别的声学分析

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This paper addresses non-native accent issues in large vocabulary continuous speech recognition. We propose to analyze the transformation rules of non-native Mandarin speech spoken by native speakers of Naxi and Dai in Yunnan at the level of initials and finals. Firstly, baseline HMM models are trained using the project 863' standard Mandarin corpus to test their performance on non-native speech recognition. Secondly, the non-native speech data is transcribed, based on the baseline HMM models. In more detail, we analyze the error recognition rates of all initials and all finals, and their typical substitute error. The results obtained from our experiments might be useful for adapting a native speaker ASR system to model non-native accented data.
机译:本文解决了大词汇量连续语音识别中的非母语口音问题。我们建议从纳西语和韵母的角度分析云南纳西族和Dai族以母语为母语的普通话的转换规则。首先,使用项目863的标准普通话语料库对基线HMM模型进行训练,以测试其在非母语语音识别中的性能。其次,基于基线HMM模型,转录非本地语音数据。更详细地,我们分析所有首字母和所有结尾的错误识别率,以及它们的典型替代错误。从我们的实验中获得的结果可能有助于使母语为ASR的系统适应非母语重音数据的建模。

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