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Linearly-Constrained Minimum-Variance Method for Spherical Microphone Arrays Based on Plane-Wave Decomposition of the Sound Field

机译:基于声场平面波分解的球形麦克风阵列线性约束最小方差方法

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摘要

Speech signals recorded in real environments may be corrupted by ambient noise and reverberation. Therefore, noise reduction and dereverberation algorithms for speech enhancement are typically employed in speech communication systems. Although microphone arrays are useful in reducing the effect of noise and reverberation, existing methods have limited success in significantly removing both reverberation and noise in real environments. This paper presents a method for noise reduction and dereverberation that overcomes some of the limitations of previous methods. The method uses a spherical microphone array to achieve plane-wave decomposition (PWD) of the sound field, based on direction-of-arrival (DOA) estimation of the desired signal and its reflections. A multi-channel linearly-constrained minimum-variance (LCMV) filter is introduced to achieve further noise reduction. The PWD beamformer achieves dereverberation while the LCMV filter reduces the uncorrelated noise with a controllable dereverberation constraint. In contrast to other methods, the proposed method employs DOA estimation, rather than room impulse response identification, to achieve dereverberation, and relative transfer function (RTF) estimation between the source reflections to achieve noise reduction while avoiding signal cancellation. The paper includes a simulation investigation and an experimental study, comparing the proposed method to currently available methods.
机译:真实环境中录制的语音信号可能会被环境噪声和混响破坏。因此,在语音通信系统中通常采用用于语音增强的降噪和去混响算法。尽管麦克风阵列可用于减少噪声和混响的影响,但是现有方法在显着消除真实环境中的混响和噪声方面取得的成功有限。本文提出了一种减少噪声和消除混响的方法,该方法克服了先前方法的某些局限性。该方法基于对所需信号及其反射的到达方向(DOA)估计,使用球形麦克风阵列实现声场的平面波分解(PWD)。引入了多通道线性约束最小方差(LCMV)滤波器,以进一步降低噪声。 PWD波束形成器实现了去混响,而LCMV滤波器以可控制的去混响约束降低了不相关的噪声。与其他方法相比,所提出的方法采用DOA估计而不是房间脉冲响应识别来实现去混响,并且在源反射之间采用相对传递函数(RTF)估计以减少噪声同时避免信号消除。该论文包括仿真研究和实验研究,将所提出的方法与当前可用的方法进行了比较。

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