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Solution of Economic Power Dispatch Problems Using Oppositional Biogeography-based Optimization

机译:基于对立生物地理学的优化方法解决经济动力调度问题

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This article describes a quasi-reflection oppositional biogeography-based optimization for the solution of complex economic load dispatch problems of thermal power plants. This algorithm can take care of economic load dispatch problems, considering different constraints such as transmission losses, ramp rate limits, valve-point loading, and prohibited operating zones. Biogeography deals with the geographical distribution of different biological species. Mathematical models of biogeography describe how a species arises, migrates from one habitat (island) to another, and disappears. This algorithm searches the global optimum mainly through two steps: migration and mutation. This article presents a quasi-reflection oppositional biogeography-based optimization to accelerate the convergence of biogeography-based optimization and to improve solution quality. The proposed method employs opposition-based learning along with a biogeography-based optimization algorithm. Instead of opposite numbers, here, quasi-reflected numbers are used for population initialization and also for generation jumping. The effectiveness of the proposed algorithm has been verified on four different test systems. Compared with the other existing techniques, the proposed algorithm has been found to perform better in a number of cases. Considering the quality of the solution and convergence speed obtained, this method seems to be a promising alternative approach for solving the economic load dispatch problems.
机译:本文介绍了一种基于拟反射对立生物地理学的优化方法,用于解决火力发电厂复杂的经济负荷分配问题。该算法可以考虑各种约束条件,例如传输损耗,斜率限制,阀点负载和禁止的操作区域,从而解决经济的负载分配问题。生物地理学处理不同生物物种的地理分布。生物地理学的数学模型描述了物种如何产生,如何从一个栖息地(岛)迁移到另一个栖息地(岛)并消失。该算法主要通过两个步骤搜索全局最优:迁移和变异。本文提出了基于准反射对立生物地理的优化,以加速基于生物地理的优化的收敛并提高解决方案质量。所提出的方法采用基于对立的学习以及基于生物地理的优化算法。此处,使用拟反映的数字代替相反的数字,以进行种群初始化以及生成跳跃。该算法的有效性已经在四个不同的测试系统上得到了验证。与其他现有技术相比,已发现该算法在许多情况下表现更好。考虑到解决方案的质量和获得的收敛速度,该方法似乎是解决经济负荷分配问题的一种有前途的替代方法。

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