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Multichannel identification of room acoustic systems with adaptive filters based on orthonormal basis functions

机译:基于正交基函数的自适应滤波器对房间声学系统的多通道识别

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Many acoustic signal enhancement applications require adaptive filters with a long impulse response, but with a small number of filter parameters. Fixed-poles infinite impulse response (IIR) adaptive filters based on orthonormal basis functions (OBFs) present advantages over finite impulse response filters and other IIR filters, assuring stability and fast global convergence in the adaptation of the filter parameters. A scalable algorithm is introduced for the estimation of the poles of an adaptive OBF filter from multichannel input-output data. The set of poles, common to all the acoustic channels considered, is estimated in parallel to the adaptation of the linear filter parameters. It will be shown that the result of the identification with common poles is quite robust to variations in the room transfer function, suggesting the possibility that poles may be kept fixed after estimation.
机译:许多声学信号增强应用需要具有长脉冲响应但滤波器参数数量很少的自适应滤波器。基于正交基函数(OBF)的固定极点无限冲激响应(IIR)自适应滤波器与有限冲激响应滤波器和其他IIR滤波器相比,具有优势,可以确保滤波器参数的自适应性和快速全局收敛性。引入了可伸缩算法,用于根据多通道输入输出数据估计自适应OBF滤波器的极点。平行于线性滤波器参数的调整,对所有考虑的声学通道共有的极点集进行了估计。将显示,使用公共极点进行识别的结果对于房间传递函数的变化非常稳健,这表明估计后极点可以保持固定的可能性。

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