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首页> 外文期刊>IEEE Transactions on Signal Processing >Nonuniform Subband Adaptive Filtering With Critical Sampling
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Nonuniform Subband Adaptive Filtering With Critical Sampling

机译:具有临界采样的非均匀子带自适应滤波

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摘要

Adaptive subband structures have been proposed with the objective of increasing the convergence speed and/or reducing the computational complexity of conventional adaptive algorithms, mainly for applications that require a large number of adaptive coefficients. In this paper, we present a nonuniform subband structure with critical sampling, which is capable of modeling an arbitrary finite-impulse response (FIR) system with reduced aliasing. A least-mean-square (LMS)-type adaptation algorithm with normalized step sizes, which works at the lowest downsampling rate and minimizes the average of the subband squared errors, is derived for the proposed structure. A convergence analysis of the adaptation algorithm is presented, from which its convergence rate and steady-state mean-square error can be estimated.
机译:已经提出了自适应子带结构,其目的是提高常规自适应算法的收敛速度和/或降低其计算复杂度,主要用于需要大量自适应系数的应用。在本文中,我们提出了具有临界采样的非均匀子带结构,该结构能够建模具有减少混叠的任意有限冲激响应(FIR)系统。对于所提出的结构,推导了具有最小化均方根大小的最小均方(LMS)型自适应算法,该算法以最低的下采样率工作,并使子带平方误差的平均值最小。提出了自适应算法的收敛性分析,从中可以估算出其收敛速度和稳态均方误差。

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