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Using a particle swarm method to optimize the weighting in extension theory for the detection of islanding in photovoltaic systems

机译:使用粒子群方法优化扩展理论中的权重,以检测光伏系统中的孤岛

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摘要

This paper proposes a two-dimensional particle swarm optimization (2D-PS0) method for optimizing the weighting in extension theory for the detection of islanding in photovoltaic (PV) power generation systems. Generally, using extension theory to implement and analyze a system with a correlation function would involve constructing a weighting determined by trial and error to help judge the problem's performance. However, the judgment accuracy can be degraded if one uses an inappropriate weighting set. Hence, this paper proposes a weighting determination method for optimizing the performance of the extension method using the 2D-PS0 algorithm. Some simulation results are obtained to verify the effectiveness of the proposed islanding detection method. In addition, the simulated results obtained using the proposed 2D-PS0 algorithm are also compared with those obtained using genetic algorithm (GA) and evolutionary programming (EP) algorithms in order to reveal the search performance of the proposed method.
机译:本文提出了一种二维粒子群优化(2D-PS0)方法,以优化扩展理论中的权重,以检测光伏(PV)发电系统中的孤岛。通常,使用扩展理论来实施和分析具有相关函数的系统将涉及构造通过反复试验确定的权重,以帮助判断问题的性能。但是,如果使用不合适的加权集,可能会降低判断的准确性。因此,本文提出了一种加权确定方法,以利用2D-PS0算法优化扩展方法的性能。仿真结果验证了所提出的孤岛检测方法的有效性。此外,还将使用建议的2D-PS0算法获得的模拟结果与使用遗传算法(GA)和进化规划(EP)算法获得的模拟结果进行比较,以揭示建议方法的搜索性能。

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