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Word confidence measure based on frame likelihood score

机译:基于帧似然评分的词置信度度量

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摘要

The automatic recognition of natural or close to natural speech is linked to the problem of detection of “new” or “unknown” words. These are the words or the nonverbal acoustical events that do not belong to the speech recognition system’s vocabulary. In this paper we consider a new method for the estimation of confidence score for words at the output of the recognition system based on a likelihood score of the signal frame. The method and confidence measure could be used, for example, for out-of-vocabulary (OOV) word detection and rejection.
机译:自然或接近自然语音的自动识别与检测“新”或“未知”单词有关。这些是不属于语音识别系统词汇的单词或非语言声学事件。在本文中,我们考虑了一种基于信号帧的似然分数估计识别系统输出中单词置信度分数的新方法。该方法和置信度度量可用于例如语音外(OOV)单词检测和拒绝。

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