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REAL-TIME ESTIMATION OF TEMPORAL WORD BOUNDARIES WITHOUT LINGUISTIC KNOWLEDGE

机译:无需语言知识即可实时估计临时单词边界

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摘要

A novel real-time algorithm has been developed for estimating temporal word boundaries in measured speech without the need for interpretation of individual words. This algorithm is the foundational building block of a method for estimating a variety of key metrics such as word production rate, phrase production rate, words per phrase, etc., that are indicative of human mental states. In particular, we are interested in developing a system for monitoring locomotive crew alertness. The majority of existing speech processing algorithms relies on pre-recorded speech corpora. The real-time algorithm presented here is unique in that it employs a simple and efficient pattern matching method to identify temporal word boundaries by monitoring threshold crossings in the speech power signal. This algorithm eliminates the need to interpret the speech, and still produces reasonable estimates of word boundaries. The proposed algorithm has been tested with a batch of experimentally recorded speech data and with real time speech data. The results from the testing are outlined in this paper.
机译:已经开发了一种新颖的实时算法,用于估计所测语音中的时间单词边界,而无需解释单个单词。该算法是一种用于估算各种关键指标(例如单词生成率,短语生成率,每个短语的单词等)的方法的基础,这些指标指示人类的心理状态。特别是,我们对开发一种用于监控机车机组警觉性的系统感兴趣。现有的大多数语音处理算法都依赖于预先记录的语音语料库。这里介绍的实时算法的独特之处在于,它采用一种简单有效的模式匹配方法,通过监视语音功率信号中的阈值交叉来识别时间词边界。该算法消除了对语音的解释,并且仍然可以对单词边界进行合理的估计。该算法已通过一批实验记录的语音数据和实时语音数据进行了测试。测试的结果在本文中概述。

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