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Inversion for Refractivity Parameters Using a Dynamic Adaptive Cuckoo Search with Crossover Operator Algorithm

机译:使用交叉算子算法的动态自适应布谷鸟搜索进行折射率参数反演

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摘要

Using the RFC technique to estimate refractivity parameters is a complex nonlinear optimization problem. In this paper, an improved cuckoo search (CS) algorithm is proposed to deal with this problem. To enhance the performance of the CS algorithm, a parameter dynamic adaptive operation and crossover operation were integrated into the standard CS (DACS-CO). Rechenberg's 1/5 criteria combined with learning factor were used to control the parameter dynamic adaptive adjusting process. The crossover operation of genetic algorithm was utilized to guarantee the population diversity. The new hybrid algorithm has better local search ability and contributes to superior performance. To verify the ability of the DACS-CO algorithm to estimate atmospheric refractivity parameters, the simulation data and real radar clutter data are both implemented. The numerical experiments demonstrate that the DACS-CO algorithm can provide an effective method for near-real-time estimation of the atmospheric refractivity profile from radar clutter.
机译:使用RFC技术估计折射率参数是一个复杂的非线性优化问题。针对这一问题,本文提出了一种改进的布谷鸟搜索算法。为了提高CS算法的性能,将参数动态自适应操作和交叉操作集成到标准CS(DACS-CO)中。将Rechenberg的1/5标准与学习因子相结合,用于控制参数动态自适应调整过程。利用遗传算法的交叉运算来保证种群多样性。新的混合算法具有更好的本地搜索能力,并有助于提高性能。为了验证DACS-CO算法估算大气折射率参数的能力,均实现了仿真数据和真实雷达杂波数据。数值实验表明,DACS-CO算法可以为雷达杂波近实时估算大气折射率分布提供一种有效的方法。

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