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Sparse power spectrum based robust voice activity detector

机译:基于稀疏功率谱的鲁棒语音活动检测器

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This paper presents a robust approach to improve the performance of voice activity detector (VAD) in low signal-to-noise ratio (SNR) noisy environments. To this end, we first generate sparse representations by Bregman Iteration based sparse decomposition with a learned over-complete dictionary, and derive a kind of audio feature called sparse power spectrum from the sparse representations. we then propose a method to calculate the short segment average spectrum and long segment average spectrum from sparse power spectrum. Finally, we design a criterion to detect speech region and non-speech region based on the above average spectrum. Experiments show that the proposed approach further improves the performance of VAD in low SNR noisy environments.
机译:本文提出了一种在低信噪比(SNR)噪声环境下提高语音活动检测器(VAD)性能的可靠方法。为此,我们首先通过基于Bregman Iteration的稀疏分解生成一个稀疏表示,该稀疏分解是通过学习过的完全字典进行的,然后从稀疏表示中导出一种称为稀疏功率谱的音频特征。然后,我们提出了一种根据稀疏功率谱计算短段平均频谱和长段平均频谱的方法。最后,基于上述平均频谱,设计了一种检测语音区域和非语音区域的准则。实验表明,该方法可以进一步提高VAD在低SNR噪声环境下的性能。

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