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首页> 外文期刊>Signal Processing Letters, IEEE >Robust Whisper Activity Detection Using Long-Term Log Energy Variation of Sub-Band Signal
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Robust Whisper Activity Detection Using Long-Term Log Energy Variation of Sub-Band Signal

机译:利用子带信号的长期对数能量变化进行鲁棒的耳语活动检测

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摘要

The goal in the whisper activity detection (WAD) is to find the whispered speech segments in a given noisy recording of whispered speech. Since whispering lacks the periodic glottal excitation, it resembles an unvoiced speech. This noise-like nature of the whispered speech makes WAD a more challenging task compared to a typical voice activity detection (VAD) problem. In this paper, we propose a feature based on the long term variation of the logarithm of the short-time sub-band signal energy for WAD. We also propose an automatic sub-band selection algorithm to maximally discriminate noisy whisper from noise. Experiments with eight noise types in four different signal-to-noise ratio (SNR) conditions show that, for most of the noises, the performance of the proposed WAD scheme is significantly better than that of the existing VAD schemes and whisper detection schemes when used for WAD.
机译:耳语活动检测(WAD)的目标是在给定的耳语语音的嘈杂记录中找到耳语语音片段。由于窃窃私语缺乏周期性的声门兴奋作用,因此类似于清音。与典型的语音活动检测(VAD)问题相比,耳语的这种类似噪声的性质使WAD更具挑战性。在本文中,我们提出了一种基于WAD短时子带信号能量对数的长期变化的特征。我们还提出了一种自动子带选择算法,以最大程度地将嘈杂的耳语与噪声区分开。在四种不同信噪比(SNR)条件下对八种噪声类型进行的实验表明,对于大多数噪声,建议的WAD方案在使用时的性能明显优于现有的VAD方案和耳语检测方案。用于WAD。

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