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A multi-objective cellular genetic algorithm for energy-oriented balancing and sequencing problem of mixed-model assembly line

机译:混合模型装配线能量导向平衡与排序问题的多目标细胞遗传算法

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Energy shortage has led to increasing concerns regarding energy-efficient manufacturing systems. In this study, an energy-oriented balancing and sequencing problem of mixed-model assembly line is proposed along with a cellular strategy-based genetic Algorithm. First, a bi-objective mathematical model with energy consumption and balance rate is developed. Second, a multi-objective algorithm that integrates a cellular strategy and local search is presented to solve this bi-objective problem. Third, a set of bench-mark problems is generated; the parameters of the algorithm are carefully set using the Taguchi method. The performance of the proposed algorithm is shown from two aspects: by a comparison with the algorithm without the cellular strategy and by a comparison with a non-dominated sorting genetic algorithm. Both the comparisons are conducted based on three given criteria. (C) 2019 Elsevier Ltd. All rights reserved.
机译:能源短缺导致人们越来越关注节能制造系统。在这项研究中,提出了基于能量策略的混合模型装配线平衡和排序问题,以及基于细胞策略的遗传算法。首先,建立了一个具有能耗和平衡率的双目标数学模型。其次,提出了一种融合了蜂窝策略和局部搜索的多目标算法来解决该双目标问题。第三,产生了一系列基准问题。使用Taguchi方法仔细设置算法的参数。从两个方面展示了所提出算法的性能:与不具有蜂窝策略的算法进行比较以及与非支配排序遗传算法进行比较。两种比较都是基于三个给定的标准进行的。 (C)2019 Elsevier Ltd.保留所有权利。

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