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A Pareto supplier selection algorithm for minimum the life cycle cost of complex product system

机译:最小化复杂产品系统生命周期成本的Pareto供应商选择算法

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Supplier selection has significant impact on life cycle cost of complex product system (CoPS). In this paper, a new variant of supplier selection problem named life cycle supplier selection of CoPS (LSS&CoPS) problem is addressed. There are three kinds of choices for a manufacturer to complete a CoPS: self-made, purchasing the finished component and outsourcing. Different selection not only results in difference of procurement cost of CoPS, but also results in reliability changing after it delivered to customer which greatly influences the operating cost in CoPS's lifecycle. However, the minimizing of two objectives is mutually conflicted. This paper presents a bi-objective LSS&CoPS model which considering operating stage of CoPS to balance the procurement cost and operating cost. Moreover, a hybridization of Pareto genetic algorithm (PGA) with multi-intersection and similarity crossover (MSC) strategy is proposed to solve the bi-objective problem. Also, a dual-chromosome is used to represent the variable-length chromosome. Finally, a cement equipment supplier optimal in a cement equipment enterprise is provided. Example indicates that the procurement cost and operating cost have been optimized, yields a Pareto optimal solution of supplier schema for project managers to make-decision and decrease the life cycle cost of CoPS. Additionally, the results show that the proposed approach is more preferably in Pareto optimal solution searching. (C) 2015 Elsevier Ltd. All rights reserved.
机译:供应商的选择对复杂产品系统(CoPS)的生命周期成本有重大影响。本文提出了一种新的供应商选择问题,即生命周期供应商选择CoPS(LSS&CoPS)问题。制造商完成CoPS共有三种选择:自制,购买成品组件和外包。选择不同,不仅会导致CoPS采购成本的差异,而且还会导致交付给客户后的可靠性发生变化,从而极大地影响CoPS生命周期中的运营成本。但是,两个目标的最小化是相互矛盾的。本文提出了一种双目标的LSS&CoPS模型,该模型考虑了CoPS的运营阶段来平衡采购成本和运营成本。此外,提出了一种基于Pareto遗传算法(PGA)和多交叉相似度交叉(MSC)策略的混合算法,以解决双目标问题。同样,双染色体用于代表可变长度染色体。最后,提供了在水泥设备企业中最佳的水泥设备供应商。实例表明采购成本和运营成本已得到优化,为项目经理提供了帕累托最优的供应商方案解决方案,使项目经理可以做出决定并降低CoPS的生命周期成本。另外,结果表明,所提出的方法在帕累托最优解搜索中更优选。 (C)2015 Elsevier Ltd.保留所有权利。

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