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首页> 外文期刊>International Journal of Electrical and Computer Engineering >Discrete wavelet transform-based RI adaptive algorithm for system identification
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Discrete wavelet transform-based RI adaptive algorithm for system identification

机译:基于离散的小波变换的RI自适应算法,用于系统识别

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摘要

In this paper, we propose a new adaptive filtering algorithm for system identification. The algorithm is based on the recursive inverse (RI) adaptive algorithm which suffers from low convergence rates in some applications; i.e., the eigenvalue spread of the autocorrelation matrix is relatively high. The proposed algorithm applies discrete-wavelet transform (DWT) to the input signal which, in turn, helps to overcome the low convergence rate of the RI algorithm with relatively small step-size(s). Different scenarios has been investigated in different noise environments in system identification setting. Experiments demonstrate the advantages of the proposed DWT recursive inverse (DWT-RI) filter in terms of convergence rate and mean-square-error (MSE) compared to the RI, discrete cosine transform LMS (DCTLMS), discrete-wavelet transform LMS (DWT-LMS) and recursive-least-squares (RLS) algorithms under same conditions.
机译:在本文中,我们提出了一种新的自适应滤波算法,用于系统识别。该算法基于递归逆(RI)自适应算法,其在某些应用中受到低收敛速率的算法;即,自相关矩阵的特征值差异相对较高。该算法将离散小波变换(DWT)应用于输入信号,该输入信号又有助于克服RI算法的低收敛速率,具有相对较小的步长大小。在系统识别环境中的不同噪声环境中已经在不同的噪声环境中进行了不同的场景。实验证明,与RI,离散余弦变换LMS(DCTLMS),离散小波变换LMS(DWT)相比,在收敛速率和平均误差(MSE)方面,所提出的DWT递归逆(DWT-RI)滤波器的优点-LMS)和递归 - 最小二乘(RLS)算法在相同条件下。

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