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A Genetic Algorithm for the Economic Lot Scheduling Problem under Extended Basic Period Approach and Power-of-Two Policy

机译:扩展基础周期法和二权制下经济批量计划问题的遗传算法

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In this study, we propose a genetic algorithm (GA) for the economic lot scheduling problem (ELSP) under extended basic period (EBP) approach and power-of-two (PoT) policy. The proposed GA employs a multi-chromosome solution representation to encode PoT multipliers and the production positions separately. Both feasible and infeasible solutions are maintained in the population through the use of some sophisticated constraint handling methods. Furthermore, a variable neighborhood search (VNS) algorithm is also fused into GA to further enhance the solution quality. The experimental results show that the proposed GA is very competitive to the best performing algorithms from the existing literature under the EBP and PoT policy.
机译:在这项研究中,我们提出了一种遗传算法(GA),用于在扩展基本周期(EBP)方法和二权数(PoT)策略下的经济批量计划问题(ELSP)。拟议的遗传算法采用多染色体解决方案表示来分别编码PoT乘数和生产位置。通过使用一些复杂的约束处理方法,可以在人群中维持可行和不可行的解决方案。此外,还将可变邻域搜索(VNS)算法融合到GA中,以进一步提高解决方案的质量。实验结果表明,在EBP和PoT策略下,所提出的遗传算法与现有文献中性能最好的算法相比具有很大的竞争力。

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