马尔可夫-2输入变换域自适应滤波器的性能研究

Zhao Sheng-kui, M. Zhihong, Khoo Suiyang
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引用次数: 1

摘要

本文分析了离散傅立叶变换LMS自适应滤波器(DFT-LMS)和离散余弦变换LMS自适应滤波器(DCT-LMS)在马尔可夫-2输入下的性能。为了提高最小均方自适应滤波器的收敛性,分别采用DFT-LMS和DCT-LMS对输入进行固定正交变换和功率归一化预处理。我们用DFT-LMS和DCT-LMS对马尔可夫-2输入得到了预处理后的输入自相关矩阵的特征值和特征值分布的渐近结果。这些结果明确地显示了DFT-LMS优于DFT-LMS的去相关特性,并提供了有限长DFT-LMS和DFT-LMS自适应滤波器的特征值扩展的上界。仿真结果与分析结果一致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On performance of transform domain adaptive filters with Markov-2 inputs
In this paper, the analysis for the performance of the discrete Fourier transform LMS adaptive filter (DFT-LMS) and the discrete cosine transform LMS adaptive filter (DCT-LMS) for the Markov-2 inputs is presented. To improve the convergence property of the least mean squares (LMS) adaptive filter, the DFT-LMS and DCT-LMS preprocess the inputs with the fixed orthogonal transforms and power normalization. We derive the asymptotic results for the eigenvalues and eigenvalue distributions of the preprocessed input autocorrelation matrices with DFT-LMS and DCT-LMS for Markov-2 inputs. These results explicitly show the superior decorrelation property of DCT-LMS over that of DFT-LMS, and also provide the upper bounds for the eigenvalue spreads of the finite-length DFT-LMS and DCT-LMS adaptive filters. Simulation results are demonstrated to support the analytic results.
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