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Empty Speech Pause Detection in Spontaneous Speech

机译:自发性语音中的空语音暂停检测

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This work describes two new pause detection algorithms and compare their performance with four standard Voice Activity Detection (VAD) methods represented by the adaptive Long Term Spectral Divergence (LTSD) algorithm, the Likelihood Ratio Test (LRT) algorithm, the Neural Network thresholding and G.729. The proposed algorithms exploit the concept of adaptation in order to handle adverse conditions and spontaneous speech properties. The test data are recordings of spontaneous speech made in noisy environments. The experimental results show that the performance of proposed algorithms on noisy and even artificially cleaned speech are superior than that achieved by standard methods reported in literature .
机译:这项工作描述了两种新的暂停检测算法,并将它们的性能与以自适应长期频谱发散(LTSD)算法,似然比测试(LRT)算法,神经网络阈值法和G为代表的四种标准语音活动检测(VAD)方法进行了比较。 .729。提出的算法利用自适应的概念来处理不利条件和自发的语音属性。测试数据是在嘈杂环境中发出的自发语音记录。实验结果表明,所提出的算法在嘈杂甚至人工净化语音上的性能优于文献报道的标准方法。

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