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首页> 外文期刊>Annals of nuclear energy >Novel genetic algorithm for loading pattern optimization based on core physics heuristics
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Novel genetic algorithm for loading pattern optimization based on core physics heuristics

机译:基于核心物理启发式的遗传算法优化装载模式

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A genetic algorithm based on novel genetic operators is implemented for the problem of nuclear fuel loading pattern optimization. This is achieved using rank selection or tournament selection and novel crossover operator and fitness function constructions, e.g., improved crossover and mutation operators by considering the chromosomes as permutations (which is a specific feature of the loading pattern problem) and the "stage fitness function" that separates the different objectives of the optimization. Another novel feature of the algorithm is the consideration of the geometric nature of the problem and the desired loading pattern solutions. A new geometric crossover is developed to utilize this geometric knowledge and its implementation exhibits good results. A comprehensive study is performed on the effect of different adaptive mutation strategies on the performances of the algorithm. The new algorithm is implemented and applied to two benchmark problems and used to study the effect of boundary conditions on the symmetry of the obtained best solutions. (C) 2018 Elsevier Ltd. All rights reserved.
机译:针对核燃料装载模式优化问题,实现了一种基于新型遗传算子的遗传算法。这是通过使用等级选择或锦标赛选择以及新颖的交叉算子和适应度函数构造来实现的,例如,通过将染色体视为置换(这是加载模式问题的特定特征)和“阶段适应度函数”,可以改进交叉和变异算子。区分了优化的不同目标。该算法的另一个新颖特征是考虑了问题的几何性质和所需的加载模式解。开发了一种新的几何分频器以利用此几何知识,其实现显示出良好的效果。对不同的自适应变异策略对算法性能的影响进行了全面的研究。该新算法被实现并应用于两个基准问题,并用于研究边界条件对获得的最佳解的对称性的影响。 (C)2018 Elsevier Ltd.保留所有权利。

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