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首页> 外文期刊>Arabian Journal for Science and Engineering >A Hybrid Particle Swarm Optimization Technique for Adaptive Equalization
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A Hybrid Particle Swarm Optimization Technique for Adaptive Equalization

机译:一种自适应均衡的混合粒子群优化技术

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摘要

Adaptive equalization mitigates the distortions caused by radio channels. The least mean square (LMS) and the recursive least squares (RLS) algorithms are used for such purpose. Recently, particle swarm optimization (PSO) algorithms such as PSO using a linear time decreasing inertia weight (PSO-W) and the PSO using constant constriction factor (PSO-CCF) were shown to be very effective in handling systems having nonlinear behavior. However, these algorithms can be trapped in local minima. This paper presents a new PSO-based algorithm called the hybrid PSO (HPSO) that is capable to handle such problems. The HPSO includes the randomization of particles to improve the search capacity of the swarm, which in turn reduces the probability of being trapped in some local minima. It also adapts the inertia weight assignment to the particles. Extensive simulation results are conducted to confirm the consistency in the performance of the HPSO algorithm in different scenarios. The proposed HPSO secures the minimum steady-state error as compared to LMS and other PSO-based algorithms in both nonlinear and linear channels. Finally, the proposed HPSO algorithm shows a great improvements in Bit Error Rate and convergence rate.
机译:自适应均衡减轻了无线电信道引起的扭曲。最小均方(LMS)和递归最小二乘(RLS)算法用于这种目的。最近,粒子群优化(PSO)诸如使用线性时间减少惯性重量(PSO-W)和使用恒定收缩系数(PSO-CCF)的PSO和PSO的算法在处理具有非线性行为的系统中非常有效。但是,这些算法可以捕获在局部最小值中。本文介绍了一种新的基于PSO的算法,称为混合PSO(HPSO),该算法能够处理此类问题。 HPSO包括粒子的随机化,以改善群体的搜索容量,这反过来减少了捕获的局部最小值的可能性。它还适应惯性重量分配给颗粒。进行了广泛的仿真结果,以确认不同方案中HPSO算法的性能的一致性。与非线性和线性通道的LMS和其他基于PSO的算法相比,所提出的HPSO确保了最小稳态误差。最后,提出的HPSO算法显示了误码率和收敛速率的巨大改进。

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