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A hybrid cultural algorithm based on clonal selection principle for optimal generation scheduling of cascaded hydropower stations

机译:基于克隆选择原理的梯级水电站优化发电调度混合文化算法。

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To solve optimal generation scheduling problem of cascaded hydropower stations, a hybrid cultural algorithm based on clonal selection principle (HCA-CSA) is presented. HCA-CSA uses cultural algorithm (CA) as its framework and clonal selection algorithm (CSA) in population space. Considering the characteristics of CSA, three knowledge structures are redefined in belief space to improve the search purposefulness and directivity of CSA, so as to improve the searching convergence rate and precision. In addition, a recombination and a chaos search operation are adopted in belief space to accelerate convergence rate and precision of the proposed algorithm. HCA-CSA is first tested by several benchmark problems and then it is applied to a case study of optimal generation scheduling of the Three Gorges Cascaded Hydropower Stations. The results obtained show its efficiency on solving complex optimization problems, and it can be an alternative for optimal generation scheduling of cascaded hydropower stations.
机译:为了解决梯级水电站的最优发电调度问题,提出了一种基于克隆选择原理的混合文化算法(HCA-CSA)。 HCA-CSA使用文化算法(CA)作为其框架,并使用种群选择中的克隆选择算法(CSA)。考虑到CSA的特点,在信念空间中重新定义了三种知识结构,以提高CSA的搜索目的性和方向性,从而提高搜索的收敛速度和准确性。另外,在信念空间中采用了重组和混沌搜索操作,以加快算法的收敛速度和精度。 HCA-CSA首先通过几个基准问题进行测试,然后将其应用于三峡梯级水电站优化发电调度的案例研究。所得结果表明,该算法可以有效地解决复杂的优化问题,可以作为梯级水电站优化发电调度的一种选择。

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