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A new design method using opposition-based BAT algorithm for HR system identification problem

机译:一种基于对立的BAT算法设计HR系统识别问题的新方法

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摘要

BAT algorithm (BA) is a meta-heuristic algorithm, based on the echolocation behaviour of bats. In this paper, optimal set of filter coefficients is searched by the modified optimisation methodology called opposition-based BAT algorithm (OBA) for infinite impulse response (IIR) system identification problem. Opposition based numbering concept is embedded into the primary foundation of BA metaphorically to enhance the convergence speed and performance for finding better near-global optimal solution. Detailed and balanced search in multidimensional problem space is accomplished with judiciously chosen control parameters of OBA technique. When tested against standard benchmark examples, for same and reduced order models, the simulation results establishthe OBA as a more competent candidate to other evolutionary algorithms as real coded genetic algorithm (RGA), differential evolution (DE) and particle swarm optimisation (PSO) in terms of accuracy and convergence speed.
机译:BAT算法(BA)是一种基于蝙蝠的回声定位行为的元启发式算法。在本文中,通过改进的优化方法(称为基于对立的BAT算法(OBA))来搜索滤波器系数的最佳集合,以解决无限冲激响应(IIR)系统识别问题。基于对立的编号概念已隐喻地嵌入到BA的主要基础中,以提高收敛速度和性能,从而找到更好的近全局最优解。明智地选择OBA技术的控制参数,可以在多维问题空间中进行详细而均衡的搜索。在针对相同和降阶模型的标准基准示例进行测试时,仿真结果确定OBA是其他进化算法(如实数编码遗传算法(RGA),差分进化(DE)和粒子群优化(PSO))中更胜任的候选者。准确性和收敛速度方面。

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