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Voice activity detection over multiresolution subspaces

机译:多分辨率子空间上的语音活动检测

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In this paper, voice activity detection (VAD) is posed as a binary detection problem of an unknown speech signal in both stationary (vehicular) and nonstationary (babble) noise environments. Optimal detection methods are applied on the wavelet transform coefficients of a signal segment to determine the presence of speech. Theoretical analysis is done to justify the effectiveness of multiresolution decomposition on the computation of the noise eigenvalues and vectors and sufficient statistics. VAD results are compared to optimal detection without wavelet transformation and to an energy based method which is used as control. The results show the superiority of the proposed method as increased accuracy in detection.
机译:在本文中,语音活动检测(VAD)构成了固定(车辆)和非固定((语)噪声环境中未知语音信号的二进制检测问题。最佳检测方法应用于信号段的小波变换系数,以确定语音的存在。进行了理论分析,以证明多分辨率分解对噪声特征值和向量的计算以及足够的统计量的有效性。将VAD结果与没有小波变换的最佳检测结果以及用作控制的基于能量的方法进行了比较。结果表明,所提方法的优越性在于提高了检测精度。

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