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An LVCSR Based Reading Miscue Detection System Using Knowledge of Reference and Error Patterns

机译:基于参考和错误模式知识的基于LVCSR的阅读错误检测系统

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摘要

This paper describes a reading miscue detection system based on the conventional Large Vocabulary Continuous Speech Recognition (LVCSR) framework [1]. In order to incorporate the knowledge of reference (what the reader ought to read) and some error patterns into the decoding process, two methods are proposed: Dynamic Multiple Pronunciation Incorporation (DMPI) and Dynamic Interpolation of Language Model (DILM). DMPI dynamically adds some pronunciation variations into the search space to predict reading substitutions and insertions. To resolve the conflict between the coverage of error predications and the perplexity of the search space, only the pronunciation variants related to the reference are added. DILM dynamically interpolates the general language model based on the analysis of the reference and so keeps the active paths of decoding relatively near the reference. It makes the recognition more accurate, which further improves the detection performance. At the final stage of detection, an improved dynamic program (DP) is used to align the confusion network (CN) from speech recognition and the reference to generate the detecting result. The experimental results show that the proposed two methods can decrease the Equal Error Rate (EER) by 14% relatively, from 46.4% to 39.8%.
机译:本文介绍了一种基于常规大词汇量连续语音识别(LVCSR)框架的阅读错误检测系统[1]。为了将参考知识(读者应该阅读的知识)和一些错误模式纳入解码过程,提出了两种方法:动态多发音合并(DMPI)和语言模型动态插补(DILM)。 DMPI将一些发音变体动态添加到搜索空间中,以预测阅读的替换和插入。为了解决错误预测的覆盖范围和搜索空间的困惑之间的冲突,仅添加与参考有关的发音变体。 DILM根据对参考的分析动态地插补通用语言模型,从而使解码的活动路径相对靠近参考。它使识别更加准确,从而进一步提高了检测性能。在检测的最后阶段,使用改进的动态程序(DP)将语音识别和参考中的混淆网络(CN)对齐,以生成检测结果。实验结果表明,所提出的两种方法可以使平均误码率(EER)相对降低14%,从46.4%降至39.8%。

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