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Unsupervised Speech Activity Detection Using Voicing Measures and Perceptual Spectral Flux

机译:使用语音测量和感知频谱通量的无监督语音活动检测

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摘要

Effective speech activity detection (SAD) is a necessary first step for robust speech applications. In this letter, we propose a robust and unsupervised SAD solution that leverages four different speech voicing measures combined with a perceptual spectral flux feature, for audio-based surveillance and monitoring applications. Effectiveness of the proposed technique is evaluated and compared against several commonly adopted unsupervised SAD methods under simulated and actual harsh acoustic conditions with varying distortion levels. Experimental results indicate that the proposed SAD scheme is highly effective and provides superior and consistent performance across various noise types and distortion levels.
机译:有效的语音活动检测(SAD)是鲁棒语音应用程序必需的第一步。在这封信中,我们提出了一种健壮且不受监督的SAD解决方案,该解决方案利用了四种不同的语音发声措施以及可感知的频谱通量功能,可用于基于音频的监视和监视应用。在模拟和实际具有变化失真水平的恶劣声学条件下,评估了所提出技术的有效性,并与几种常用的无监督SAD方法进行了比较。实验结果表明,所提出的SAD方案非常有效,并且在各种噪声类型和失真级别上均提供了卓越且一致的性能。

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