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Automatic Detection of Word-Level Reading Errors in Non-native English Speech Based on ASR Output

机译:基于ASR输出的非原生英语语音中的单词级读数错误的自动检测

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Automated reading error detection has attracted a lot of interest in the area of computer-assisted language learning and auto-mated reading tutors. This paper presents preliminary experimental results on automatic detection of word-level reading errors in non-native speech. A state-of-the-art large vocabulary automatic speech recognition (ASR) system is developed to transcribe non-native speech, with performance comparable to humans in transcribing non-native read speech data. With this ASR system, we investigate the feasibility of detecting substitution, insertion and deletion errors from ASR decoding results on non-native read speech. Experimental results show that the performance of detecting substitution and insertion errors are on the low side. Several possible reasons for causing such results are discussed in this paper. Common types of reading errors occurring in non-native read speech and those that are difficult to be detected are analyzed for future investigation.
机译:自动阅读错误检测引起了计算机辅助语言学习和自动交配的阅读导师的兴趣。本文提出了初步实验结果对非原生语音中的单词级读数误差的自动检测。开发了最先进的大型词汇自动语音识别(ASR)系统以转录非本机语音,性能与转录非本机读语音数据的性能相当。通过这款ASR系统,我们研究了从ASR解码结果上检测替换,插入和删除错误的可行性,从而对非本机读取语音。实验结果表明,检测替代和插入误差的性能在低侧。本文讨论了导致此类结果的几种可能的原因。分析了非本机读语音中发生的常见类型的读取误差和难以检测的那些难以进行调查。

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