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Combining subpopulation tables, non-dominated solutions and Strength Pareto of MOEAs to treat service restoration problem in large-scale distribution systems

机译:结合亚人口表,非支配解决方案和MOEA的强度帕累托来处理大规模配电系统中的服务恢复问题

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The network reconfiguration for service restoration (SR) in distribution systems is a combinatorial complex optimization problem since it involves multiple non-linear constraints and objectives. For large networks, no exact algorithm has found adequate SR plans in real-time. On the other hand, methods combining Multi-objective Evolutionary Algorithms (MOEAs) with the Node-depth encoding (NDE) have shown to be able to efficiently generate adequate SR plans for large distribution systems (with thousands of buses and switches). This paper presents a new method that combining NDE with three MOEAs: (i) NSGA-II; (iii) SPEA 2; and (iii) a MOEA based on subpopulation tables. The idea is to obtain a method that cannot-only obtain adequate SR plans for large scale distribution systems, but can also find plans for small or large networks with similar quality. The proposed method, called MEA2N-STR, explores the space of the objectives solutions better than the other MOEAs with NDE, approximating better the Pareto-optimal front. This statement has been demonstrated by several simulations with DSs ranging from 632 to 1,277 switches.
机译:配电系统中用于服务恢复(SR)的网络重新配置是一个组合复杂的优化问题,因为它涉及多个非线性约束和目标。对于大型网络,没有精确的算法可以实时找到适当的SR计划。另一方面,结合多目标进化算法(MOEA)和节点深度编码(NDE)的方法已显示出能够有效地为大型配电系统(具有数千个总线和交换机)生成足够的SR计划的方法。本文提出了一种将NDE与三种MOEA相结合的新方法:(i)NSGA-II; (iii)SPEA 2; (iii)基于子种群表的MOEA。该想法是要获得一种方法,该方法不仅不能为大型配电系统获得足够的SR计划,而且还可以为具有类似质量的小型或大型网络找到计划。提出的称为MEA2N-STR的方法比具有NDE的其他MOEA更好地探索了目标解决方案的空间,从而更好地逼近了Pareto最优前沿。 DS的仿真范围从632到1,277个开关,已经证明了这一说法。

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