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Fast System Identification Using Affine Projection and a Critically Sampled Subband Adaptive Filter

机译:使用仿射投影和关键采样子带自适应滤波器的快速系统识别

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This paper investigates the use of a subband affine projection (AP) algorithm for solving system identification problems using critically sampled subband adaptive filters. The subband AP is first analyzed with respect to theoretical rate of convergence and computational complexity. Simulation results for the algorithm are presented in the context of measuring a room impulse response for acoustic echo cancellation and tracking changes to the impulse response over time. In these simulations, the subband AP is compared to other subband adaptation algorithms using two-, four-, and eight-channel filter banks and to fullband adaptation algorithms. To evaluate the algorithm in a practical implementation, experimental results are presented for echo cancellation using speech input signals in a conference room. It is shown that a four-channel filter bank with subband AP can achieve an average mean square error that is 5 dB lower than a subband normalized least-mean-square algorithm during initial filter convergence.
机译:本文研究了使用子带仿射投影(AP)算法使用临界采样子带自适应滤波器解决系统识别问题的方法。首先就理论收敛速度和计算复杂度分析子带AP。在测量房间脉冲响应以消除声学回声并跟踪脉冲响应随时间变化的情况下,给出了算法的仿真结果。在这些仿真中,将子带AP与使用二,四和八通道滤波器组的其他子带自适应算法进行了比较,并与全频带自适应算法进行了比较。为了在实际实现中评估该算法,提出了使用会议室语音输入信号进行回声消除的实验结果。结果表明,在初始滤波器收敛期间,具有子带AP的四通道滤波器组可以获得的平均均方误差比子带归一化最小均方算法低5 dB。

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