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Urban Power Network Substation Optimal Planning Based on Geographic Culture Algorithm

机译:城市电网变电站基于地理培养算法的最优规划

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摘要

A novel intelligent algorithm, refined Geographic Culture Algorithm (GCA), is presented to handle optimal urban power planning about substation locating and sizing. Culture algorithm consists of population space and belief space. The cultural algorithm is different with other integer optimization algorithm, since it is systematic, guidance, population space and belief space promote mutually by communication. GCA adopts the differential evolution algorithm (DE) as population space and proposes four kinds of strategies to constitute the belief space according to the urban power network characteristic. GCA is tested by a realistic planning project and compared with particle swarm optimization (PSO) to verify the effectiveness and feasibility.
机译:提出了一种新颖的智能算法,精致的地理培养算法(GCA),以处理变电站定位和尺寸的最佳城市电力规划。文化算法包括人口空间和信仰空间。文化算法与其他整数优化算法不同,因为它是系统,指导,人口空间和信仰空间通过沟通互联。 GCA采用差分演进算法(DE)作为人口空间,并提出根据城市电网特征构成信仰空间的四种策略。 GCA由一个现实的规划项目测试,并与粒子群优化(PSO)进行比较,以验证有效性和可行性。

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