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Noise Power Spectral Density Estimation Using MaxNSR Blocking Matrix

机译:基于MaxNSR阻塞矩阵的噪声功率谱密度估计

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In this paper, a multi-microphone noise reduction system based on the generalized sidelobe canceller (GSC) structure is investigated. The system consists of a fixed beamformer providing an enhanced speech reference, a blocking matrix providing a noise reference by suppressing the target speech, and a single-channel spectral post-filter. The spectral post-filter requires the power spectral density (PSD) of the residual noise in the speech reference, which can in principle be estimated from the PSD of the noise reference. However, due to speech leakage in the noise reference, the noise PSD is overestimated, leading to target speech distortion. To minimize the influence of the speech leakage, a maximum noise-to-speech ratio (MaxNSR) blocking matrix is proposed, which maximizes the ratio between the noise and the speech leakage in the noise reference. The proposed blocking matrix can be computed from the generalized eigenvalue decomposition of the correlation matrix of the microphone signals and the noise coherence matrix, which is assumed to be time-invariant. Experimental results in both stationary and nonstationary diffuse noise fields show that the proposed algorithm outperforms existing blocking matrices in terms of target speech blocking ability, noise estimation and noise reduction performance.
机译:本文研究了一种基于广义旁瓣抵消器(GSC)结构的多麦克风降噪系统。该系统由提供增强语音参考的固定波束形成器,通过抑制目标语音提供噪声参考的分块矩阵和单通道频谱后置滤波器组成。频谱后滤波器需要语音参考中的残留噪声的功率谱密度(PSD),原则上可以从噪声参考的PSD进行估计。但是,由于噪声参考中的语音泄漏,噪声PSD被高估,导致目标语音失真。为了最大程度地降低语音泄漏的影响,提出了最大语音噪声比(MaxNSR)阻塞矩阵,该矩阵最大程度地提高了噪声参考中噪声与语音泄漏之间的比率。可以从传声器信号的相关矩阵和噪声相干矩阵的广义特征值分解计算出建议的阻塞矩阵,这被假定为时不变的。在平稳和非平稳扩散噪声场上的实验结果表明,该算法在目标语音阻塞能力,噪声估计和降噪性能方面均优于现有的阻塞矩阵。

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