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Detection of confusable words in automatic speech recognition

机译:自动语音识别中可疑单词的检测

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摘要

A new method to detect words that are likely to be confused by speech recognition systems is presented in this letter. A new dissimilarity measure between two words is calculated in two steps. First, the phonetic transcriptions of the words are aligned using only phonetic information. Two kinds of alignments are used: either with or without insertions and deletions. Second, the dissimilarity measure is calculated on the basis of the resulting alignment and acoustic information obtained from the hidden Markov models of the phones. In a classical false acceptance/false rejection framework, the equal error rate was measured to be less than 5%.
机译:这封信提出了一种新的方法,该方法可以检测语音识别系统可能混淆的单词。分两个步骤计算两个单词之间的新差异度量。首先,仅使用语音信息来对齐单词的语音转录。使用两种对齐方式:有或没有插入和删除。其次,根据所得的对准和从电话的隐马尔可夫模型获得的声学信息来计算相异度。在经典的错误接受/错误拒绝框架中,测得的相等错误率小于5%。

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