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MMSE design of nonlinear Volterra equalizers using artificial bee colony algorithm

机译:基于人工蜂群算法的非线性Volterra均衡器MMSE设计。

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摘要

In this paper a novel approach for channel equalization is presented, where a framework for Volterra system is used to model both the channel and the equalizer. We propose development of first-order and second-order Volterra equalizers using minimum mean square error (MMSE) approach and design these equalizers using swarm intelligence based stochastic optimization algorithm which is applied to adapt the equalizer coefficients to the time varying channel. This work proposes to use the artificial bee colony (ABC) algorithm, recently introduced for global optimization, simulating the intelligent foraging behavior of honey bee swarm in a simple, robust, and flexible manner. For comparative analysis, adaptive equalizers like least mean squares (LMSs) equalizer, recursive least squares (RLSs) equalizer and least mean p-Norm (LMP) equalizer and population based optimum equalizers employing PSO are also applied for identical problems and the superiority of the newly proposed algorithm is aptly demonstrated.
机译:在本文中,提出了一种新颖的信道均衡方法,其中使用Volterra系统框架来对信道和均衡器进行建模。我们建议使用最小均方误差(MMSE)方法开发一阶和二阶Volterra均衡器,并使用基于群体智能的随机优化算法设计这些均衡器,该算法用于使均衡器系数适应时变信道。这项工作建议使用最近引入的人工蜂群算法(ABC)进行全局优化,以简单,健壮和灵活的方式模拟蜜蜂群的智能觅食行为。为了进行比较分析,自适应均衡器,例如最小均方(LMS)均衡器,递归最小二乘(RLS)均衡器和最小均值p范数(LMP)均衡器以及采用PSO的基于总体的最佳均衡器,也适用于相同的问题,并且均衡器的优越性恰当地演示了新提出的算法。

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