Novel Self-adaptive Genetic Algorithm for Solving AC Security Constrained Short-term Hydrothermal Scheduling

Borče Postolov, A. Iliev, D. Dimitrov, A. Causevski, Sofija Nikolova-Poceva
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Abstract

In this paper, a novel Self-Adaptive Genetic Algorithm (SAGA) is proposed to solve the AC Security Constrained Short-term Hydrothermal Scheduling (SCSHTS) problem. The efficiency of the proposed algorithm is tested on the benchmark version of the IEEE 30 BUS system, which consists of four thermal power plants and two hydropower plants, as well as an optimization period of two intervals. The new proposed algorithm is then applied to a standard IEEE 30 BUS system, taking into account all necessary system and security constraints. The results obtained from the new proposed SAGA are compared with those obtained from some metaheuristic methods, such as Conventional Cuckoo Search Algorithm (CCSA), Effective Novel Cuckoo Search Algorithm (ENCSA), and Modified Cuckoo Search Algorithm (MCSA). The simulation results indicate that the proposed SAGA provides better solutions than the other optimization methods that have been applied to this optimization problem.
一种求解AC安全约束下短期热液调度的自适应遗传算法
本文提出了一种新的自适应遗传算法(SAGA)来解决交流安全约束下的短期热液调度(SCSHTS)问题。在由4个火电厂和2个水电厂组成的ieee30总线系统的基准版本以及两个区间的优化周期上,对所提算法的效率进行了测试。然后将新提出的算法应用于标准的IEEE 30总线系统,考虑到所有必要的系统和安全约束。将该算法与传统布谷鸟搜索算法(CCSA)、有效新颖布谷鸟搜索算法(ENCSA)和改进布谷鸟搜索算法(MCSA)等元启发式算法的结果进行了比较。仿真结果表明,所提出的SAGA算法比目前应用于该优化问题的其他优化方法提供了更好的解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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