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An efficient multi-objective HBMO algorithm for distribution feeder reconfiguration

机译:用于配电馈线重构的高效多目标HBMO算法

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This paper presents an efficient multi-objective honey bee mating optimization (MHBMO) evolutionary algorithm to solve the multi-objective distribution feeder reconfiguration (DFR). The purposes of the DFR problem are to decrease the real power loss, the number of the switching operations and the deviation of the voltage at each node. Conventional algorithms for solving the multi-objective optimization problems convert the multiple objectives into a single objective using a vector of the user-predefined weights. This transformation has several drawbacks. For instance, the final solution of the algorithms extensively depends on the values of the weights. This paper presents a new MHBMO algorithm for the DFR problem. The proposed algorithm utilizes several queens and considers the queens as an external repository to save non-dominated solutions found during the search process. Since the objective functions are not the same, a fuzzy clustering technique is used to control the size of the repository within the limits. The proposed algorithm is tested on two distribution test feeders.
机译:本文提出了一种有效的多目标蜜蜂交配优化(MHBMO)进化算法,以解决多目标分布馈线重构(DFR)。 DFR问题的目的是减少有功功率损耗,开关操作次数以及每个节点上的电压偏差。用于解决多目标优化问题的常规算法使用用户预定义权重的向量将多个目标转换为单个目标。这种转换有几个缺点。例如,算法的最终解决方案在很大程度上取决于权重的值。本文为DFR问题提出了一种新的MHBMO算法。所提出的算法利用了多个皇后,并将皇后作为外部存储库来保存在搜索过程中发现的非主导解。由于目标函数不相同,因此使用模糊聚类技术将存储库的大小控制在限制范围内。该算法在两个分布测试馈线上进行了测试。

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