智能天线系统最小均方矩阵反演算法的性能分析

Weal A. E. Ali, D. Mohamed, A. G. Hassan
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引用次数: 19

摘要

波束形成是一种在不移动天线阵列的情况下,将主波束指向感兴趣的信号,将空波束指向不感兴趣的信号的信号处理技术。该技术通过连续改变阵列方向图的幅度和相位的算法来实现。本文提出了一种混合算法,即最小均方算法和样本矩阵反演算法的结合。将混合算法(最小均方/样本矩阵反演)应用于偶极子阵列,克服了现有算法的不足,实现了鲁棒智能天线系统。为了将主波束聚焦到期望的方向,并将零点放置在干扰信号的方向上,需要计算样本矩阵反演中反演矩阵的权值,这些权值将作为最小均方算法的初始权值。该方法的优点是解决了最小均方算法的收敛速度问题以及样本矩阵反演算法存在的计算量大的问题,减小了最小均方误差。仿真结果表明了最小均方差分析、样本矩阵反演和混合算法的性能,并用MATLAB对这些算法进行了比较和验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance analysis of least mean square sample matrix inversion algorithm for smart antenna system
Beamforming is a signal processing technique that has the ability to direct the main beam toward signal-of-interest and the null toward signal-of-not-interest without moving antenna array. This technique is achieved by using algorithms which change the amplitude and phase of array pattern continuously. This paper presents hybrid algorithm that is a combination of two algorithms, least mean square algorithm and sample matrix inversion algorithm. The hybrid algorithm (least mean square/sample matrix inversion) is applied on an array of dipoles to overcome the shortcomings of existing algorithms for a robust smart antenna system. To focus the main beam toward the desired direction and place the null in the direction of the interference signals, the weights of the inversion matrix in sample matrix inversion are calculated and these weights will be the initial weights in least mean square algorithm. The merit of this approach solves the convergence speed problem of the least mean square algorithm as well as the computation intensive exists in sample matrix inversion algorithm and decreases the least mean square error. The simulation results indicate the analyses of least mean square, sample matrix inversion and hybrid algorithm performances .These techniques are compared and verified using MATLAB.
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